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cedar_policy/
api.rs

1/*
2 * Copyright Cedar Contributors
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 *      https://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17//! This module contains the public library api
18#![allow(
19    clippy::missing_panics_doc,
20    clippy::missing_errors_doc,
21    clippy::similar_names,
22    clippy::result_large_err, // see #878
23    reason = "this module doesn't currently comply with these lints"
24)]
25
26mod id;
27use cedar_policy_core::pst::error_body;
28#[cfg(feature = "entity-manifest")]
29use cedar_policy_core::validator::entity_manifest;
30// TODO (#1157) implement wrappers for these structs before they become public
31#[cfg(feature = "entity-manifest")]
32pub use cedar_policy_core::validator::entity_manifest::{
33    AccessTrie, EntityManifest, EntityRoot, Fields, RootAccessTrie,
34};
35use cedar_policy_core::validator::json_schema;
36use cedar_policy_core::validator::typecheck::{PolicyCheck, Typechecker};
37pub use id::*;
38
39#[cfg(feature = "deprecated-schema-compat")]
40mod deprecated_schema_compat;
41
42mod err;
43pub use err::*;
44
45#[cfg(feature = "tpe")]
46mod tpe;
47#[cfg(feature = "tpe")]
48pub use tpe::*;
49
50pub use ast::Effect;
51pub use authorizer::Decision;
52#[cfg(feature = "partial-eval")]
53use cedar_policy_core::ast::BorrowedRestrictedExpr;
54use cedar_policy_core::ast::{self, RequestSchema, RestrictedExpr};
55use cedar_policy_core::authorizer::{self};
56use cedar_policy_core::entities::{ContextSchema, Dereference};
57use cedar_policy_core::est::{self, TemplateLink};
58use cedar_policy_core::evaluator::Evaluator;
59#[cfg(feature = "partial-eval")]
60use cedar_policy_core::evaluator::RestrictedEvaluator;
61use cedar_policy_core::extensions::Extensions;
62use cedar_policy_core::parser;
63pub use cedar_policy_core::pst;
64use cedar_policy_core::FromNormalizedStr;
65use itertools::{Either, Itertools};
66use linked_hash_map::LinkedHashMap;
67use miette::Diagnostic;
68use ref_cast::RefCast;
69use serde::{Deserialize, Serialize};
70use smol_str::SmolStr;
71use std::collections::{BTreeMap, BTreeSet, HashMap, HashSet};
72use std::io::Read;
73use std::str::FromStr;
74use std::sync::Arc;
75
76#[expect(
77    clippy::unwrap_used,
78    reason = "`CARGO_PKG_VERSION` should return a valid SemVer version string"
79)]
80pub(crate) mod version {
81    use semver::Version;
82    use std::sync::LazyLock;
83
84    // Cedar Rust SDK Semantic Versioning version
85    static SDK_VERSION: LazyLock<Version> =
86        LazyLock::new(|| env!("CARGO_PKG_VERSION").parse().unwrap());
87    // Cedar language version
88    // The patch version field may be unnecessary
89    static LANG_VERSION: LazyLock<Version> = LazyLock::new(|| Version::new(4, 5, 0));
90
91    /// Get the Cedar SDK Semantic Versioning version
92    pub fn get_sdk_version() -> Version {
93        SDK_VERSION.clone()
94    }
95    /// Get the Cedar language version
96    pub fn get_lang_version() -> Version {
97        LANG_VERSION.clone()
98    }
99}
100
101/// Entity datatype
102#[repr(transparent)]
103#[derive(Debug, Clone, PartialEq, Eq, RefCast, Hash)]
104pub struct Entity(pub(crate) ast::Entity);
105
106#[doc(hidden)] // because this converts to a private/internal type
107impl AsRef<ast::Entity> for Entity {
108    fn as_ref(&self) -> &ast::Entity {
109        &self.0
110    }
111}
112
113#[doc(hidden)]
114impl From<ast::Entity> for Entity {
115    fn from(entity: ast::Entity) -> Self {
116        Self(entity)
117    }
118}
119
120impl Entity {
121    /// Create a new `Entity` with this Uid, attributes, and parents (and no tags).
122    ///
123    /// Attribute values are specified here as "restricted expressions".
124    /// See docs on `RestrictedExpression`
125    /// ```
126    /// # use cedar_policy::{Entity, EntityId, EntityTypeName, EntityUid, RestrictedExpression};
127    /// # use std::collections::{HashMap, HashSet};
128    /// # use std::str::FromStr;
129    /// let eid = EntityId::from_str("alice").unwrap();
130    /// let type_name = EntityTypeName::from_str("User").unwrap();
131    /// let euid = EntityUid::from_type_name_and_id(type_name, eid);
132    /// let attrs = HashMap::from([
133    ///     ("age".to_string(), RestrictedExpression::from_str("21").unwrap()),
134    ///     ("department".to_string(), RestrictedExpression::from_str("\"CS\"").unwrap()),
135    /// ]);
136    /// let parent_eid = EntityId::from_str("admin").unwrap();
137    /// let parent_type_name = EntityTypeName::from_str("Group").unwrap();
138    /// let parent_euid = EntityUid::from_type_name_and_id(parent_type_name, parent_eid);
139    /// let parents = HashSet::from([parent_euid]);
140    /// let entity = Entity::new(euid, attrs, parents);
141    ///```
142    pub fn new(
143        uid: EntityUid,
144        attrs: HashMap<String, RestrictedExpression>,
145        parents: HashSet<EntityUid>,
146    ) -> Result<Self, EntityAttrEvaluationError> {
147        Self::new_with_tags(uid, attrs, parents, [])
148    }
149
150    /// Create a new `Entity` with no attributes or tags.
151    ///
152    /// Unlike [`Entity::new()`], this constructor cannot error.
153    /// (The only source of errors in `Entity::new()` are attributes.)
154    pub fn new_no_attrs(uid: EntityUid, parents: HashSet<EntityUid>) -> Self {
155        // note that we take a "parents" parameter here; we will compute TC when
156        // the `Entities` object is created
157        Self(ast::Entity::new_with_attr_partial_value(
158            uid.into(),
159            [],
160            HashSet::new(),
161            parents.into_iter().map(EntityUid::into).collect(),
162            [],
163        ))
164    }
165
166    /// Create a new `Entity` with this Uid, attributes, parents, and tags.
167    ///
168    /// Attribute and tag values are specified here as "restricted expressions".
169    /// See docs on [`RestrictedExpression`].
170    pub fn new_with_tags(
171        uid: EntityUid,
172        attrs: impl IntoIterator<Item = (String, RestrictedExpression)>,
173        parents: impl IntoIterator<Item = EntityUid>,
174        tags: impl IntoIterator<Item = (String, RestrictedExpression)>,
175    ) -> Result<Self, EntityAttrEvaluationError> {
176        // note that we take a "parents" parameter here, not "ancestors"; we
177        // will compute TC when the `Entities` object is created
178        Ok(Self(ast::Entity::new(
179            uid.into(),
180            attrs.into_iter().map(|(k, v)| (k.into(), v.0)),
181            HashSet::new(),
182            parents.into_iter().map(EntityUid::into).collect(),
183            tags.into_iter().map(|(k, v)| (k.into(), v.0)),
184            Extensions::all_available(),
185        )?))
186    }
187
188    /// Create a new `Entity` with this Uid, no attributes, and no parents.
189    /// ```
190    /// # use cedar_policy::{Entity, EntityId, EntityTypeName, EntityUid};
191    /// # use std::str::FromStr;
192    /// let eid = EntityId::from_str("alice").unwrap();
193    /// let type_name = EntityTypeName::from_str("User").unwrap();
194    /// let euid = EntityUid::from_type_name_and_id(type_name, eid);
195    /// let alice = Entity::with_uid(euid);
196    /// # cool_asserts::assert_matches!(alice.attr("age"), None);
197    /// ```
198    pub fn with_uid(uid: EntityUid) -> Self {
199        Self(ast::Entity::with_uid(uid.into()))
200    }
201
202    /// Test if two entities are structurally equal. That is, not only do they
203    /// have the same UID, but they also have the same attributes and ancestors.
204    ///
205    /// Note that ancestor equality is determined by examining the ancestors
206    /// entities provided when constructing these objects, without computing
207    /// their transitive closure. For accurate comparison, entities should be
208    /// constructed with the transitive closure precomputed or be drawn from an
209    /// [`Entities`] object which will perform this computation.
210    pub fn deep_eq(&self, other: &Self) -> bool {
211        self.0.deep_eq(&other.0)
212    }
213
214    /// Get the Uid of this entity
215    /// ```
216    /// # use cedar_policy::{Entity, EntityId, EntityTypeName, EntityUid};
217    /// # use std::str::FromStr;
218    /// # let eid = EntityId::from_str("alice").unwrap();
219    /// let type_name = EntityTypeName::from_str("User").unwrap();
220    /// let euid = EntityUid::from_type_name_and_id(type_name, eid);
221    /// let alice = Entity::with_uid(euid.clone());
222    /// assert_eq!(alice.uid(), euid);
223    /// ```
224    pub fn uid(&self) -> EntityUid {
225        self.0.uid().clone().into()
226    }
227
228    /// Get the value for the given attribute, or `None` if not present.
229    ///
230    /// This can also return Some(Err) if the attribute is not a value (i.e., is
231    /// unknown due to partial evaluation).
232    /// ```
233    /// # use cedar_policy::{Entity, EntityId, EntityTypeName, EntityUid, EvalResult, RestrictedExpression};
234    /// # use std::collections::{HashMap, HashSet};
235    /// # use std::str::FromStr;
236    /// let eid = EntityId::from_str("alice").unwrap();
237    /// let type_name = EntityTypeName::from_str("User").unwrap();
238    /// let euid = EntityUid::from_type_name_and_id(type_name, eid);
239    /// let attrs = HashMap::from([
240    ///     ("age".to_string(), RestrictedExpression::from_str("21").unwrap()),
241    ///     ("department".to_string(), RestrictedExpression::from_str("\"CS\"").unwrap()),
242    /// ]);
243    /// let entity = Entity::new(euid, attrs, HashSet::new()).unwrap();
244    /// assert_eq!(entity.attr("age").unwrap().unwrap(), EvalResult::Long(21));
245    /// assert_eq!(entity.attr("department").unwrap().unwrap(), EvalResult::String("CS".to_string()));
246    /// assert!(entity.attr("foo").is_none());
247    /// ```
248    pub fn attr(&self, attr: &str) -> Option<Result<EvalResult, PartialValueToValueError>> {
249        match ast::Value::try_from(self.0.get(attr)?.clone()) {
250            Ok(v) => Some(Ok(EvalResult::from(v))),
251            Err(e) => Some(Err(e)),
252        }
253    }
254
255    /// Iterate over all attributes of the entity, as (name, value) pairs
256    ///
257    /// The value for any individual attribute may be `Err` if the attribute is
258    /// not a value (i.e., is unknown due to partial evaluation).
259    pub fn attrs(
260        &self,
261    ) -> impl Iterator<Item = (&str, Result<EvalResult, PartialValueToValueError>)> {
262        self.0.attrs().map(|(k, v)| {
263            (
264                k.as_ref(),
265                ast::Value::try_from(v.clone()).map(EvalResult::from),
266            )
267        })
268    }
269
270    /// Get the value for the given tag, or `None` if not present.
271    ///
272    /// This can also return Some(Err) if the tag is not a value (i.e., is
273    /// unknown due to partial evaluation).
274    pub fn tag(&self, tag: &str) -> Option<Result<EvalResult, PartialValueToValueError>> {
275        match ast::Value::try_from(self.0.get_tag(tag)?.clone()) {
276            Ok(v) => Some(Ok(EvalResult::from(v))),
277            Err(e) => Some(Err(e)),
278        }
279    }
280
281    /// Iterate over all tags of the entity, as (name, value) pairs
282    ///
283    /// The value for any individual tag may be `Err` if the tag is not a value
284    /// (i.e., is unknown due to partial evaluation).
285    pub fn tags(
286        &self,
287    ) -> impl Iterator<Item = (&str, Result<EvalResult, PartialValueToValueError>)> {
288        self.0.tags().map(|(k, v)| {
289            (
290                k.as_ref(),
291                ast::Value::try_from(v.clone()).map(EvalResult::from),
292            )
293        })
294    }
295
296    /// Consume the entity and return the entity's owned Uid, attributes and parents.
297    pub fn into_inner(
298        self,
299    ) -> (
300        EntityUid,
301        HashMap<String, RestrictedExpression>,
302        HashSet<EntityUid>,
303    ) {
304        let (uid, attrs, ancestors, mut parents, _) = self.0.into_inner();
305        parents.extend(ancestors);
306
307        let attrs = attrs
308            .into_iter()
309            .map(|(k, v)| {
310                (
311                    k.to_string(),
312                    match v {
313                        ast::PartialValue::Value(val) => {
314                            RestrictedExpression(ast::RestrictedExpr::from(val))
315                        }
316                        ast::PartialValue::Residual(exp) => {
317                            RestrictedExpression(ast::RestrictedExpr::new_unchecked(exp))
318                        }
319                    },
320                )
321            })
322            .collect();
323
324        (
325            uid.into(),
326            attrs,
327            parents.into_iter().map(Into::into).collect(),
328        )
329    }
330
331    /// Parse an entity from an in-memory JSON value
332    /// If a schema is provided, it is handled identically to [`Entities::from_json_str`]
333    pub fn from_json_value(
334        value: serde_json::Value,
335        schema: Option<&Schema>,
336    ) -> Result<Self, EntitiesError> {
337        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
338        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
339            schema.as_ref(),
340            Extensions::all_available(),
341            cedar_policy_core::entities::TCComputation::ComputeNow,
342        );
343        eparser.single_from_json_value(value).map(Self)
344    }
345
346    /// Parse an entity from a JSON string
347    /// If a schema is provided, it is handled identically to [`Entities::from_json_str`]
348    pub fn from_json_str(
349        src: impl AsRef<str>,
350        schema: Option<&Schema>,
351    ) -> Result<Self, EntitiesError> {
352        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
353        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
354            schema.as_ref(),
355            Extensions::all_available(),
356            cedar_policy_core::entities::TCComputation::ComputeNow,
357        );
358        eparser.single_from_json_str(src).map(Self)
359    }
360
361    /// Parse an entity from a JSON reader
362    /// If a schema is provided, it is handled identically to [`Entities::from_json_str`]
363    pub fn from_json_file(f: impl Read, schema: Option<&Schema>) -> Result<Self, EntitiesError> {
364        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
365        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
366            schema.as_ref(),
367            Extensions::all_available(),
368            cedar_policy_core::entities::TCComputation::ComputeNow,
369        );
370        eparser.single_from_json_file(f).map(Self)
371    }
372
373    /// Dump an `Entity` object into an entity JSON file.
374    ///
375    /// The resulting JSON will be suitable for parsing in via
376    /// `from_json_*`, and will be parse-able even with no [`Schema`].
377    ///
378    /// To read an `Entity` object from JSON , use
379    /// [`Self::from_json_file`], [`Self::from_json_value`], or [`Self::from_json_str`].
380    pub fn write_to_json(&self, f: impl std::io::Write) -> Result<(), EntitiesError> {
381        self.0.write_to_json(f)
382    }
383
384    /// Dump an `Entity` object into an in-memory JSON object.
385    ///
386    /// The resulting JSON will be suitable for parsing in via
387    /// `from_json_*`, and will be parse-able even with no `Schema`.
388    ///
389    /// To read an `Entity` object from JSON , use
390    /// [`Self::from_json_file`], [`Self::from_json_value`], or [`Self::from_json_str`].
391    pub fn to_json_value(&self) -> Result<serde_json::Value, EntitiesError> {
392        self.0.to_json_value()
393    }
394
395    /// Dump an `Entity` object into a JSON string.
396    ///
397    /// The resulting JSON will be suitable for parsing in via
398    /// `from_json_*`, and will be parse-able even with no `Schema`.
399    ///
400    /// To read an `Entity` object from JSON , use
401    /// [`Self::from_json_file`], [`Self::from_json_value`], or [`Self::from_json_str`].
402    pub fn to_json_string(&self) -> Result<String, EntitiesError> {
403        self.0.to_json_string()
404    }
405}
406
407impl std::fmt::Display for Entity {
408    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
409        write!(f, "{}", self.0)
410    }
411}
412
413/// Represents an entity hierarchy, and allows looking up `Entity` objects by
414/// Uid.
415#[repr(transparent)]
416#[derive(Debug, Clone, Default, PartialEq, Eq, RefCast)]
417pub struct Entities(pub(crate) cedar_policy_core::entities::Entities);
418
419#[doc(hidden)] // because this converts to a private/internal type
420impl AsRef<cedar_policy_core::entities::Entities> for Entities {
421    fn as_ref(&self) -> &cedar_policy_core::entities::Entities {
422        &self.0
423    }
424}
425
426#[doc(hidden)]
427impl From<cedar_policy_core::entities::Entities> for Entities {
428    fn from(entities: cedar_policy_core::entities::Entities) -> Self {
429        Self(entities)
430    }
431}
432
433use entities_errors::EntitiesError;
434
435impl Entities {
436    /// Create a fresh `Entities` with no entities
437    /// ```
438    /// # use cedar_policy::Entities;
439    /// let entities = Entities::empty();
440    /// # assert!(entities.is_empty());
441    /// ```
442    pub fn empty() -> Self {
443        Self(cedar_policy_core::entities::Entities::new())
444    }
445
446    /// Get the `Entity` with the given Uid, if any
447    pub fn get(&self, uid: &EntityUid) -> Option<&Entity> {
448        match self.0.entity(uid.as_ref()) {
449            Dereference::Residual(_) | Dereference::NoSuchEntity => None,
450            Dereference::Data(e) => Some(Entity::ref_cast(e)),
451        }
452    }
453
454    /// Transform the store into a partial store, where
455    /// attempting to dereference a non-existent `EntityUid` results in
456    /// a residual instead of an error.
457    #[doc = include_str!("../experimental_warning.md")]
458    #[must_use]
459    #[cfg(feature = "partial-eval")]
460    pub fn partial(self) -> Self {
461        Self(self.0.partial())
462    }
463
464    /// Iterate over the `Entity`'s in the `Entities`
465    pub fn iter(&self) -> impl Iterator<Item = &Entity> {
466        self.0.iter().map(Entity::ref_cast)
467    }
468
469    /// Test if two entity hierarchies are structurally equal. The hierarchies
470    /// must contain the same set of entity ids, and the entities with each id
471    /// must be structurally equal (decided by [`Entity::deep_eq`]). Ancestor
472    /// equality between entities is always decided by comparing the transitive
473    /// closure of ancestor and not direct parents.
474    pub fn deep_eq(&self, other: &Self) -> bool {
475        self.0.deep_eq(&other.0)
476    }
477
478    /// Create an `Entities` object with the given entities.
479    ///
480    /// `schema` represents a source of `Action` entities, which will be added
481    /// to the entities provided.
482    /// (If any `Action` entities are present in the provided entities, and a
483    /// `schema` is also provided, each `Action` entity in the provided entities
484    /// must exactly match its definition in the schema or an error is
485    /// returned.)
486    ///
487    /// If a `schema` is present, this function will also ensure that the
488    /// produced entities fully conform to the `schema` -- for instance, it will
489    /// error if attributes have the wrong types (e.g., string instead of
490    /// integer), or if required attributes are missing or superfluous
491    /// attributes are provided.
492    /// ## Errors
493    /// - [`EntitiesError::Duplicate`] if there are any duplicate entities in `entities`
494    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
495    ///   to the schema
496    pub fn from_entities(
497        entities: impl IntoIterator<Item = Entity>,
498        schema: Option<&Schema>,
499    ) -> Result<Self, EntitiesError> {
500        cedar_policy_core::entities::Entities::from_entities(
501            entities.into_iter().map(|e| e.0),
502            schema
503                .map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0))
504                .as_ref(),
505            cedar_policy_core::entities::TCComputation::ComputeNow,
506            Extensions::all_available(),
507        )
508        .map(Entities)
509    }
510
511    /// Add all of the [`Entity`]s in the collection to this [`Entities`]
512    /// structure, re-computing the transitive closure.
513    ///
514    /// If a `schema` is provided, this method will ensure that the added
515    /// entities fully conform to the schema -- for instance, it will error if
516    /// attributes have the wrong types (e.g., string instead of integer), or if
517    /// required attributes are missing or superfluous attributes are provided.
518    /// (This method will not add action entities from the `schema`.)
519    ///
520    /// Re-computing the transitive closure can be expensive, so it is advised
521    /// to not call this method in a loop.
522    /// ## Errors
523    /// - [`EntitiesError::Duplicate`] if there is a pair of non-identical entities in `entities` with the same Entity UID,
524    ///   or there is an entity in `entities` with the same Entity UID as a non-identical entity in this structure
525    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
526    ///   to the schema
527    pub fn add_entities(
528        self,
529        entities: impl IntoIterator<Item = Entity>,
530        schema: Option<&Schema>,
531    ) -> Result<Self, EntitiesError> {
532        Ok(Self(
533            self.0.add_entities(
534                entities.into_iter().map(|e| Arc::new(e.0)),
535                schema
536                    .map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0))
537                    .as_ref(),
538                cedar_policy_core::entities::TCComputation::ComputeNow,
539                Extensions::all_available(),
540            )?,
541        ))
542    }
543
544    /// Removes each of the [`EntityUid`]s in the iterator
545    /// from this [`Entities`] structure, re-computing the transitive
546    /// closure after removing all edges to/from the removed entities.
547    ///
548    /// Re-computing the transitive closure can be expensive, so it is
549    /// advised to not call this method in a loop.
550    pub fn remove_entities(
551        self,
552        entity_ids: impl IntoIterator<Item = EntityUid>,
553    ) -> Result<Self, EntitiesError> {
554        Ok(Self(self.0.remove_entities(
555            entity_ids.into_iter().map(|euid| euid.0),
556            cedar_policy_core::entities::TCComputation::ComputeNow,
557        )?))
558    }
559
560    /// Updates or adds all of the [`Entity`]s in the collection to this [`Entities`]
561    /// structure, re-computing the transitive closure.
562    ///
563    /// If a `schema` is provided, this method will ensure that the added
564    /// entities fully conform to the schema -- for instance, it will error if
565    /// attributes have the wrong types (e.g., string instead of integer), or if
566    /// required attributes are missing or superfluous attributes are provided.
567    /// (This method will not add action entities from the `schema`.)
568    ///
569    /// Re-computing the transitive closure can be expensive, so it is advised
570    /// to not call this method in a loop.
571    /// ## Errors
572    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
573    ///   to the schema
574    pub fn upsert_entities(
575        self,
576        entities: impl IntoIterator<Item = Entity>,
577        schema: Option<&Schema>,
578    ) -> Result<Self, EntitiesError> {
579        Ok(Self(
580            self.0.upsert_entities(
581                entities.into_iter().map(|e| Arc::new(e.0)),
582                schema
583                    .map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0))
584                    .as_ref(),
585                cedar_policy_core::entities::TCComputation::ComputeNow,
586                Extensions::all_available(),
587            )?,
588        ))
589    }
590
591    /// Parse an entities JSON file (in [&str] form) and add them into this
592    /// [`Entities`] structure, re-computing the transitive closure
593    ///
594    /// If a `schema` is provided, this will inform the parsing: for instance, it
595    /// will allow `__entity` and `__extn` escapes to be implicit.
596    /// This method will also ensure that the added entities fully conform to the
597    /// schema -- for instance, it will error if attributes have the wrong types
598    /// (e.g., string instead of integer), or if required attributes are missing
599    /// or superfluous attributes are provided.
600    /// (This method will not add action entities from the `schema`.)
601    ///
602    /// Re-computing the transitive closure can be expensive, so it is advised
603    /// to not call this method in a loop.
604    /// ## Errors
605    /// - [`EntitiesError::Duplicate`] if there is a pair of non-identical entities in
606    ///   `entities` with the same Entity UID, or there is an entity in `entities` with the
607    ///   same Entity UID as a non-identical entity in this structure
608    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
609    ///   to the schema
610    /// - [`EntitiesError::Deserialization`] if there are errors while parsing the json
611    pub fn add_entities_from_json_str(
612        self,
613        json: &str,
614        schema: Option<&Schema>,
615    ) -> Result<Self, EntitiesError> {
616        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
617        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
618            schema.as_ref(),
619            Extensions::all_available(),
620            cedar_policy_core::entities::TCComputation::ComputeNow,
621        );
622        let new_entities = eparser.iter_from_json_str(json)?.map(Arc::new);
623        Ok(Self(self.0.add_entities(
624            new_entities,
625            schema.as_ref(),
626            cedar_policy_core::entities::TCComputation::ComputeNow,
627            Extensions::all_available(),
628        )?))
629    }
630
631    /// Parse an entities JSON file (in [`serde_json::Value`] form) and add them
632    /// into this [`Entities`] structure, re-computing the transitive closure
633    ///
634    /// If a `schema` is provided, this will inform the parsing: for instance, it
635    /// will allow `__entity` and `__extn` escapes to be implicit.
636    /// This method will also ensure that the added entities fully conform to the
637    /// schema -- for instance, it will error if attributes have the wrong types
638    /// (e.g., string instead of integer), or if required attributes are missing
639    /// or superfluous attributes are provided.
640    /// (This method will not add action entities from the `schema`.)
641    ///
642    /// Re-computing the transitive closure can be expensive, so it is advised
643    /// to not call this method in a loop.
644    /// ## Errors
645    /// - [`EntitiesError::Duplicate`] if there is a pair of non-identical entities in
646    ///   `entities` with the same Entity UID, or there is an entity in `entities` with the same
647    ///   Entity UID as a non-identical entity in this structure
648    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
649    ///   to the schema
650    /// - [`EntitiesError::Deserialization`] if there are errors while parsing the json
651    pub fn add_entities_from_json_value(
652        self,
653        json: serde_json::Value,
654        schema: Option<&Schema>,
655    ) -> Result<Self, EntitiesError> {
656        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
657        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
658            schema.as_ref(),
659            Extensions::all_available(),
660            cedar_policy_core::entities::TCComputation::ComputeNow,
661        );
662        let new_entities = eparser.iter_from_json_value(json)?.map(Arc::new);
663        Ok(Self(self.0.add_entities(
664            new_entities,
665            schema.as_ref(),
666            cedar_policy_core::entities::TCComputation::ComputeNow,
667            Extensions::all_available(),
668        )?))
669    }
670
671    /// Parse an entities JSON file (in [`std::io::Read`] form) and add them
672    /// into this [`Entities`] structure, re-computing the transitive closure
673    ///
674    /// If a `schema` is provided, this will inform the parsing: for instance, it
675    /// will allow `__entity` and `__extn` escapes to be implicit.
676    /// This method will also ensure that the added entities fully conform to the
677    /// schema -- for instance, it will error if attributes have the wrong types
678    /// (e.g., string instead of integer), or if required attributes are missing
679    /// or superfluous attributes are provided.
680    /// (This method will not add action entities from the `schema`.)
681    ///
682    /// Re-computing the transitive closure can be expensive, so it is advised
683    /// to not call this method in a loop.
684    ///
685    /// ## Errors
686    /// - [`EntitiesError::Duplicate`] if there is a pair of non-identical entities in `entities`
687    ///   with the same Entity UID, or there is an entity in `entities` with the same Entity UID as a
688    ///   non-identical entity in this structure
689    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
690    ///   to the schema
691    /// - [`EntitiesError::Deserialization`] if there are errors while parsing the json
692    pub fn add_entities_from_json_file(
693        self,
694        json: impl std::io::Read,
695        schema: Option<&Schema>,
696    ) -> Result<Self, EntitiesError> {
697        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
698        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
699            schema.as_ref(),
700            Extensions::all_available(),
701            cedar_policy_core::entities::TCComputation::ComputeNow,
702        );
703        let new_entities = eparser.iter_from_json_file(json)?.map(Arc::new);
704        Ok(Self(self.0.add_entities(
705            new_entities,
706            schema.as_ref(),
707            cedar_policy_core::entities::TCComputation::ComputeNow,
708            Extensions::all_available(),
709        )?))
710    }
711
712    /// Parse an entities JSON file (in `&str` form) into an `Entities` object
713    ///
714    /// `schema` represents a source of `Action` entities, which will be added
715    /// to the entities parsed from JSON.
716    /// (If any `Action` entities are present in the JSON, and a `schema` is
717    /// also provided, each `Action` entity in the JSON must exactly match its
718    /// definition in the schema or an error is returned.)
719    ///
720    /// If a `schema` is present, this will also inform the parsing: for
721    /// instance, it will allow `__entity` and `__extn` escapes to be implicit.
722    ///
723    /// Finally, if a `schema` is present, this function will ensure
724    /// that the produced entities fully conform to the `schema` -- for
725    /// instance, it will error if attributes have the wrong types (e.g., string
726    /// instead of integer), or if required attributes are missing or
727    /// superfluous attributes are provided.
728    ///
729    /// ## Errors
730    /// - [`EntitiesError::Duplicate`] if there are any duplicate entities in `entities`
731    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
732    ///   to the schema
733    /// - [`EntitiesError::Deserialization`] if there are errors while parsing the json
734    ///
735    /// ```
736    /// # use cedar_policy::{Entities, EntityId, EntityTypeName, EntityUid, EvalResult, Request,PolicySet};
737    /// # use std::str::FromStr;
738    /// let data =r#"
739    /// [
740    /// {
741    ///   "uid": {"type":"User","id":"alice"},
742    ///   "attrs": {
743    ///     "age":19,
744    ///     "ip_addr":{"__extn":{"fn":"ip", "arg":"10.0.1.101"}}
745    ///   },
746    ///   "parents": [{"type":"Group","id":"admin"}]
747    /// },
748    /// {
749    ///   "uid": {"type":"Group","id":"admin"},
750    ///   "attrs": {},
751    ///   "parents": []
752    /// }
753    /// ]
754    /// "#;
755    /// let entities = Entities::from_json_str(data, None).unwrap();
756    /// # let euid = EntityUid::from_str(r#"User::"alice""#).unwrap();
757    /// # let entity = entities.get(&euid).unwrap();
758    /// # assert_eq!(entity.attr("age").unwrap().unwrap(), EvalResult::Long(19));
759    /// # let ip = entity.attr("ip_addr").unwrap().unwrap();
760    /// # assert_eq!(ip, EvalResult::ExtensionValue("ip(\"10.0.1.101\")".to_string()));
761    /// ```
762    pub fn from_json_str(json: &str, schema: Option<&Schema>) -> Result<Self, EntitiesError> {
763        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
764        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
765            schema.as_ref(),
766            Extensions::all_available(),
767            cedar_policy_core::entities::TCComputation::ComputeNow,
768        );
769        eparser.from_json_str(json).map(Entities)
770    }
771
772    /// Parse an entities JSON file (in `serde_json::Value` form) into an
773    /// `Entities` object
774    ///
775    /// `schema` represents a source of `Action` entities, which will be added
776    /// to the entities parsed from JSON.
777    /// (If any `Action` entities are present in the JSON, and a `schema` is
778    /// also provided, each `Action` entity in the JSON must exactly match its
779    /// definition in the schema or an error is returned.)
780    ///
781    /// If a `schema` is present, this will also inform the parsing: for
782    /// instance, it will allow `__entity` and `__extn` escapes to be implicit.
783    ///
784    /// Finally, if a `schema` is present, this function will ensure
785    /// that the produced entities fully conform to the `schema` -- for
786    /// instance, it will error if attributes have the wrong types (e.g., string
787    /// instead of integer), or if required attributes are missing or
788    /// superfluous attributes are provided.
789    ///
790    /// ## Errors
791    /// - [`EntitiesError::Duplicate`] if there are any duplicate entities in `entities`
792    /// - [`EntitiesError::InvalidEntity`]if `schema` is not none and any entities do not conform
793    ///   to the schema
794    /// - [`EntitiesError::Deserialization`] if there are errors while parsing the json
795    ///
796    /// ```
797    /// # use cedar_policy::{Entities, EntityId, EntityTypeName, EntityUid, EvalResult, Request,PolicySet};
798    /// let data =serde_json::json!(
799    /// [
800    /// {
801    ///   "uid": {"type":"User","id":"alice"},
802    ///   "attrs": {
803    ///     "age":19,
804    ///     "ip_addr":{"__extn":{"fn":"ip", "arg":"10.0.1.101"}}
805    ///   },
806    ///   "parents": [{"type":"Group","id":"admin"}]
807    /// },
808    /// {
809    ///   "uid": {"type":"Group","id":"admin"},
810    ///   "attrs": {},
811    ///   "parents": []
812    /// }
813    /// ]
814    /// );
815    /// let entities = Entities::from_json_value(data, None).unwrap();
816    /// ```
817    pub fn from_json_value(
818        json: serde_json::Value,
819        schema: Option<&Schema>,
820    ) -> Result<Self, EntitiesError> {
821        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
822        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
823            schema.as_ref(),
824            Extensions::all_available(),
825            cedar_policy_core::entities::TCComputation::ComputeNow,
826        );
827        eparser.from_json_value(json).map(Entities)
828    }
829
830    /// Parse an entities JSON file (in `std::io::Read` form) into an `Entities`
831    /// object
832    ///
833    /// `schema` represents a source of `Action` entities, which will be added
834    /// to the entities parsed from JSON.
835    /// (If any `Action` entities are present in the JSON, and a `schema` is
836    /// also provided, each `Action` entity in the JSON must exactly match its
837    /// definition in the schema or an error is returned.)
838    ///
839    /// If a `schema` is present, this will also inform the parsing: for
840    /// instance, it will allow `__entity` and `__extn` escapes to be implicit.
841    ///
842    /// Finally, if a `schema` is present, this function will ensure
843    /// that the produced entities fully conform to the `schema` -- for
844    /// instance, it will error if attributes have the wrong types (e.g., string
845    /// instead of integer), or if required attributes are missing or
846    /// superfluous attributes are provided.
847    ///
848    /// ## Errors
849    /// - [`EntitiesError::Duplicate`] if there are any duplicate entities in `entities`
850    /// - [`EntitiesError::InvalidEntity`] if `schema` is not none and any entities do not conform
851    ///   to the schema
852    /// - [`EntitiesError::Deserialization`] if there are errors while parsing the json
853    pub fn from_json_file(
854        json: impl std::io::Read,
855        schema: Option<&Schema>,
856    ) -> Result<Self, EntitiesError> {
857        let schema = schema.map(|s| cedar_policy_core::validator::CoreSchema::new(&s.0));
858        let eparser = cedar_policy_core::entities::EntityJsonParser::new(
859            schema.as_ref(),
860            Extensions::all_available(),
861            cedar_policy_core::entities::TCComputation::ComputeNow,
862        );
863        eparser.from_json_file(json).map(Entities)
864    }
865
866    /// Is entity `a` an ancestor of entity `b`?
867    /// Same semantics as `b in a` in the Cedar language
868    pub fn is_ancestor_of(&self, a: &EntityUid, b: &EntityUid) -> bool {
869        match self.0.entity(b.as_ref()) {
870            Dereference::Data(b) => b.is_descendant_of(a.as_ref()),
871            _ => a == b, // if b doesn't exist, `b in a` is only true if `b == a`
872        }
873    }
874
875    /// Get an iterator over the ancestors of the given Euid.
876    /// Returns `None` if the given `Euid` does not exist.
877    pub fn ancestors<'a>(
878        &'a self,
879        euid: &EntityUid,
880    ) -> Option<impl Iterator<Item = &'a EntityUid>> {
881        let entity = match self.0.entity(euid.as_ref()) {
882            Dereference::Residual(_) | Dereference::NoSuchEntity => None,
883            Dereference::Data(e) => Some(e),
884        }?;
885        Some(entity.ancestors().map(EntityUid::ref_cast))
886    }
887
888    /// Returns the number of `Entity`s in the `Entities`
889    pub fn len(&self) -> usize {
890        self.0.len()
891    }
892
893    /// Returns true if the `Entities` contains no `Entity`s
894    pub fn is_empty(&self) -> bool {
895        self.0.is_empty()
896    }
897
898    /// Dump an `Entities` object into an entities JSON file.
899    ///
900    /// The resulting JSON will be suitable for parsing in via
901    /// `from_json_*`, and will be parse-able even with no `Schema`.
902    ///
903    /// To read an `Entities` object from an entities JSON file, use
904    /// `from_json_file`.
905    pub fn write_to_json(&self, f: impl std::io::Write) -> std::result::Result<(), EntitiesError> {
906        self.0.write_to_json(f)
907    }
908
909    /// Dump an `Entities` object into an in-memory JSON object.
910    ///
911    /// The resulting JSON will be suitable for parsing in via
912    /// `from_json_*`, and will be parse-able even with no `Schema`.
913    ///
914    /// To read an `Entities` object from JSON, use
915    /// [`Self::from_json_file`], [`Self::from_json_value`], or [`Self::from_json_str`].
916    pub fn to_json_value(&self) -> Result<serde_json::Value, EntitiesError> {
917        self.0.to_json_value()
918    }
919
920    #[doc = include_str!("../experimental_warning.md")]
921    /// Visualize an `Entities` object in the graphviz `dot`
922    /// format. Entity visualization is best-effort and not well tested.
923    /// Feel free to submit an issue if you are using this feature and would like it improved.
924    pub fn to_dot_str(&self) -> String {
925        let mut dot_str = String::new();
926        #[expect(clippy::unwrap_used, reason = "writing to a String cannot fail")]
927        self.0.to_dot_str(&mut dot_str).unwrap();
928        dot_str
929    }
930}
931
932/// Validates scope variables against the provided schema
933///
934/// Returns Ok(()) if the context is valid according to the schema, or an error otherwise
935///
936/// This validation is already handled by `Request::new`, so there is no need to separately call
937/// if you are validating the whole request
938pub fn validate_scope_variables(
939    principal: &EntityUid,
940    action: &EntityUid,
941    resource: &EntityUid,
942    schema: &Schema,
943) -> std::result::Result<(), RequestValidationError> {
944    Ok(RequestSchema::validate_scope_variables(
945        &schema.0,
946        Some(&principal.0),
947        Some(&action.0),
948        Some(&resource.0),
949    )?)
950}
951
952/// Utilities for defining `IntoIterator` over `Entities`
953pub mod entities {
954
955    /// `IntoIter` iterator for `Entities`
956    #[derive(Debug)]
957    pub struct IntoIter {
958        pub(super) inner: <cedar_policy_core::entities::Entities as IntoIterator>::IntoIter,
959    }
960
961    impl Iterator for IntoIter {
962        type Item = super::Entity;
963
964        fn next(&mut self) -> Option<Self::Item> {
965            self.inner.next().map(super::Entity)
966        }
967        fn size_hint(&self) -> (usize, Option<usize>) {
968            self.inner.size_hint()
969        }
970    }
971}
972
973impl IntoIterator for Entities {
974    type Item = Entity;
975    type IntoIter = entities::IntoIter;
976
977    fn into_iter(self) -> Self::IntoIter {
978        Self::IntoIter {
979            inner: self.0.into_iter(),
980        }
981    }
982}
983
984/// Authorizer object, which provides responses to authorization queries
985#[repr(transparent)]
986#[derive(Debug, Clone, RefCast)]
987pub struct Authorizer(authorizer::Authorizer);
988
989#[doc(hidden)] // because this converts to a private/internal type
990impl AsRef<authorizer::Authorizer> for Authorizer {
991    fn as_ref(&self) -> &authorizer::Authorizer {
992        &self.0
993    }
994}
995
996impl Default for Authorizer {
997    fn default() -> Self {
998        Self::new()
999    }
1000}
1001
1002impl Authorizer {
1003    /// Create a new `Authorizer`
1004    ///
1005    /// The authorizer uses the `stacker` crate to manage stack size and tries to use a sane default.
1006    /// If the default is not right for you, you can try wrapping the authorizer or individual calls
1007    /// to `is_authorized` in `stacker::grow`.
1008    /// Note that on platforms not supported by `stacker` (e.g., Wasm, Android),
1009    /// the authorizer will simply assume that the stack size is sufficient. As a result, large inputs
1010    /// may result in stack overflows and crashing the process.
1011    /// But on all platforms supported by `stacker` (Linux, macOS, ...), Cedar will return the
1012    /// graceful error `RecursionLimit` instead of crashing.
1013    /// ```
1014    /// # use cedar_policy::{Authorizer, Context, Entities, EntityId, EntityTypeName,
1015    /// # EntityUid, Request,PolicySet};
1016    /// # use std::str::FromStr;
1017    /// # // create a request
1018    /// # let p_eid = EntityId::from_str("alice").unwrap();
1019    /// # let p_name: EntityTypeName = EntityTypeName::from_str("User").unwrap();
1020    /// # let p = EntityUid::from_type_name_and_id(p_name, p_eid);
1021    /// #
1022    /// # let a_eid = EntityId::from_str("view").unwrap();
1023    /// # let a_name: EntityTypeName = EntityTypeName::from_str("Action").unwrap();
1024    /// # let a = EntityUid::from_type_name_and_id(a_name, a_eid);
1025    /// #
1026    /// # let r_eid = EntityId::from_str("trip").unwrap();
1027    /// # let r_name: EntityTypeName = EntityTypeName::from_str("Album").unwrap();
1028    /// # let r = EntityUid::from_type_name_and_id(r_name, r_eid);
1029    /// #
1030    /// # let c = Context::empty();
1031    /// #
1032    /// # let request: Request = Request::new(p, a, r, c, None).unwrap();
1033    /// #
1034    /// # // create a policy
1035    /// # let s = r#"permit(
1036    /// #     principal == User::"alice",
1037    /// #     action == Action::"view",
1038    /// #     resource == Album::"trip"
1039    /// #   )when{
1040    /// #     principal.ip_addr.isIpv4()
1041    /// #   };
1042    /// # "#;
1043    /// # let policy = PolicySet::from_str(s).expect("policy error");
1044    /// # // create entities
1045    /// # let e = r#"[
1046    /// #     {
1047    /// #         "uid": {"type":"User","id":"alice"},
1048    /// #         "attrs": {
1049    /// #             "age":19,
1050    /// #             "ip_addr":{"__extn":{"fn":"ip", "arg":"10.0.1.101"}}
1051    /// #         },
1052    /// #         "parents": []
1053    /// #     }
1054    /// # ]"#;
1055    /// # let entities = Entities::from_json_str(e, None).expect("entity error");
1056    /// let authorizer = Authorizer::new();
1057    /// let r = authorizer.is_authorized(&request, &policy, &entities);
1058    /// ```
1059    pub fn new() -> Self {
1060        Self(authorizer::Authorizer::new())
1061    }
1062
1063    /// Returns an authorization response for `r` with respect to the given
1064    /// `PolicySet` and `Entities`.
1065    ///
1066    /// The language spec and formal model give a precise definition of how this
1067    /// is computed.
1068    /// ```
1069    /// # use cedar_policy::{Authorizer,Context,Decision,Entities,EntityId,EntityTypeName, EntityUid, Request,PolicySet};
1070    /// # use std::str::FromStr;
1071    /// // create a request
1072    /// let p_eid = EntityId::from_str("alice").unwrap();
1073    /// let p_name: EntityTypeName = EntityTypeName::from_str("User").unwrap();
1074    /// let p = EntityUid::from_type_name_and_id(p_name, p_eid);
1075    ///
1076    /// let a_eid = EntityId::from_str("view").unwrap();
1077    /// let a_name: EntityTypeName = EntityTypeName::from_str("Action").unwrap();
1078    /// let a = EntityUid::from_type_name_and_id(a_name, a_eid);
1079    ///
1080    /// let r_eid = EntityId::from_str("trip").unwrap();
1081    /// let r_name: EntityTypeName = EntityTypeName::from_str("Album").unwrap();
1082    /// let r = EntityUid::from_type_name_and_id(r_name, r_eid);
1083    ///
1084    /// let c = Context::empty();
1085    ///
1086    /// let request: Request = Request::new(p, a, r, c, None).unwrap();
1087    ///
1088    /// // create a policy
1089    /// let s = r#"
1090    /// permit (
1091    ///   principal == User::"alice",
1092    ///   action == Action::"view",
1093    ///   resource == Album::"trip"
1094    /// )
1095    /// when { principal.ip_addr.isIpv4() };
1096    /// "#;
1097    /// let policy = PolicySet::from_str(s).expect("policy error");
1098    ///
1099    /// // create entities
1100    /// let e = r#"[
1101    ///     {
1102    ///         "uid": {"type":"User","id":"alice"},
1103    ///         "attrs": {
1104    ///             "age":19,
1105    ///             "ip_addr":{"__extn":{"fn":"ip", "arg":"10.0.1.101"}}
1106    ///         },
1107    ///         "parents": []
1108    ///     }
1109    /// ]"#;
1110    /// let entities = Entities::from_json_str(e, None).expect("entity error");
1111    ///
1112    /// let authorizer = Authorizer::new();
1113    /// let response = authorizer.is_authorized(&request, &policy, &entities);
1114    /// assert_eq!(response.decision(), Decision::Allow);
1115    /// ```
1116    pub fn is_authorized(&self, r: &Request, p: &PolicySet, e: &Entities) -> Response {
1117        self.0.is_authorized(r.0.clone(), &p.ast, &e.0).into()
1118    }
1119
1120    /// A partially evaluated authorization request.
1121    /// The Authorizer will attempt to make as much progress as possible in the presence of unknowns.
1122    /// If the Authorizer can reach a response, it will return that response.
1123    /// Otherwise, it will return a list of residual policies that still need to be evaluated.
1124    #[doc = include_str!("../experimental_warning.md")]
1125    #[cfg(feature = "partial-eval")]
1126    pub fn is_authorized_partial(
1127        &self,
1128        query: &Request,
1129        policy_set: &PolicySet,
1130        entities: &Entities,
1131    ) -> PartialResponse {
1132        let response = self
1133            .0
1134            .is_authorized_core(query.0.clone(), &policy_set.ast, &entities.0);
1135        PartialResponse(response)
1136    }
1137}
1138
1139/// Authorization response returned from the `Authorizer`
1140#[derive(Debug, PartialEq, Eq, Clone)]
1141pub struct Response {
1142    /// Authorization decision
1143    pub(crate) decision: Decision,
1144    /// Diagnostics providing more information on how this decision was reached
1145    pub(crate) diagnostics: Diagnostics,
1146}
1147
1148/// A partially evaluated authorization response.
1149///
1150/// Splits the results into several categories: satisfied, false, and residual for each policy effect.
1151/// Also tracks all the errors that were encountered during evaluation.
1152#[doc = include_str!("../experimental_warning.md")]
1153#[cfg(feature = "partial-eval")]
1154#[repr(transparent)]
1155#[derive(Debug, Clone, RefCast)]
1156pub struct PartialResponse(cedar_policy_core::authorizer::PartialResponse);
1157
1158#[cfg(feature = "partial-eval")]
1159impl PartialResponse {
1160    /// Attempt to reach a partial decision; the presence of residuals may result in returning [`None`],
1161    /// indicating that a decision could not be reached given the unknowns
1162    pub fn decision(&self) -> Option<Decision> {
1163        self.0.decision()
1164    }
1165
1166    /// Convert this response into a concrete evaluation response.
1167    /// All residuals are treated as errors
1168    pub fn concretize(self) -> Response {
1169        self.0.concretize().into()
1170    }
1171
1172    /// Returns the set of [`Policy`]s that were definitely satisfied.
1173    /// This will be the set of policies (both `permit` and `forbid`) that evaluated to `true`
1174    pub fn definitely_satisfied(&self) -> impl Iterator<Item = Policy> + '_ {
1175        self.0.definitely_satisfied().map(Policy::from_ast)
1176    }
1177
1178    /// Returns the set of [`PolicyId`]s that encountered errors
1179    pub fn definitely_errored(&self) -> impl Iterator<Item = &PolicyId> {
1180        self.0.definitely_errored().map(PolicyId::ref_cast)
1181    }
1182
1183    /// Returns an over-approximation of the set of determining policies
1184    ///
1185    /// This is all policies that may be determining for any substitution of the unknowns.
1186    /// Policies not in this set will not affect the final decision, regardless of any
1187    /// substitutions.
1188    ///
1189    /// For more information on what counts as "determining" see: <https://docs.cedarpolicy.com/auth/authorization.html#request-authorization>
1190    pub fn may_be_determining(&self) -> impl Iterator<Item = Policy> + '_ {
1191        self.0.may_be_determining().map(Policy::from_ast)
1192    }
1193
1194    /// Returns an under-approximation of the set of determining policies
1195    ///
1196    /// This is all policies that must be determining for all possible substitutions of the unknowns.
1197    /// This set will include policies that evaluated to `true` and are guaranteed to be
1198    /// contributing to the final authorization decision.
1199    ///
1200    /// For more information on what counts as "determining" see: <https://docs.cedarpolicy.com/auth/authorization.html#request-authorization>
1201    pub fn must_be_determining(&self) -> impl Iterator<Item = Policy> + '_ {
1202        self.0.must_be_determining().map(Policy::from_ast)
1203    }
1204
1205    /// Returns the set of non-trivial (meaning more than just `true` or `false`) residual expressions.
1206    ///
1207    /// Call [`Policy::to_pst()`] on each result to convert to [`pst::Policy`]
1208    /// for structured inspection of the residual expression tree.
1209    pub fn nontrivial_residuals(&'_ self) -> impl Iterator<Item = Policy> + '_ {
1210        self.0.nontrivial_residuals().map(Policy::from_ast)
1211    }
1212
1213    /// Returns every policy as a residual expression.
1214    ///
1215    /// Call [`Policy::to_pst()`] on each result to convert to [`pst::Policy`]
1216    /// for structured inspection of the residual expression tree.
1217    pub fn all_residuals(&'_ self) -> impl Iterator<Item = Policy> + '_ {
1218        self.0.all_residuals().map(Policy::from_ast)
1219    }
1220
1221    /// Returns all unknown entities during the evaluation of the response
1222    pub fn unknown_entities(&self) -> HashSet<EntityUid> {
1223        let mut entity_uids = HashSet::new();
1224        for policy in self.0.all_residuals() {
1225            entity_uids.extend(policy.unknown_entities().into_iter().map(Into::into));
1226        }
1227        entity_uids
1228    }
1229
1230    /// Return the residual for a given [`PolicyId`], if it exists in the response
1231    pub fn get(&self, id: &PolicyId) -> Option<Policy> {
1232        self.0.get(id.as_ref()).map(Policy::from_ast)
1233    }
1234
1235    /// Attempt to re-authorize this response given a mapping from unknowns to values.
1236    #[expect(
1237        clippy::needless_pass_by_value,
1238        reason = "don't want to change signature of deprecated public function"
1239    )]
1240    #[deprecated = "use reauthorize_with_bindings"]
1241    pub fn reauthorize(
1242        &self,
1243        mapping: HashMap<SmolStr, RestrictedExpression>,
1244        auth: &Authorizer,
1245        es: &Entities,
1246    ) -> Result<Self, ReauthorizationError> {
1247        self.reauthorize_with_bindings(mapping.iter().map(|(k, v)| (k.as_str(), v)), auth, es)
1248    }
1249
1250    /// Attempt to re-authorize this response given a mapping from unknowns to values, provided as an iterator.
1251    /// Exhausts the iterator, returning any evaluation errors in the restricted expressions, regardless whether there is a matching unknown.
1252    pub fn reauthorize_with_bindings<'m>(
1253        &self,
1254        mapping: impl IntoIterator<Item = (&'m str, &'m RestrictedExpression)>,
1255        auth: &Authorizer,
1256        es: &Entities,
1257    ) -> Result<Self, ReauthorizationError> {
1258        let exts = Extensions::all_available();
1259        let evaluator = RestrictedEvaluator::new(exts);
1260        let mapping = mapping
1261            .into_iter()
1262            .map(|(name, expr)| {
1263                evaluator
1264                    .interpret(BorrowedRestrictedExpr::new_unchecked(expr.0.as_ref()))
1265                    .map(|v| (name.into(), v))
1266            })
1267            .collect::<Result<HashMap<_, _>, EvaluationError>>()?;
1268        let r = self.0.reauthorize(&mapping, &auth.0, &es.0)?;
1269        Ok(Self(r))
1270    }
1271}
1272
1273#[cfg(feature = "partial-eval")]
1274#[doc(hidden)]
1275impl From<cedar_policy_core::authorizer::PartialResponse> for PartialResponse {
1276    fn from(pr: cedar_policy_core::authorizer::PartialResponse) -> Self {
1277        Self(pr)
1278    }
1279}
1280
1281/// Diagnostics providing more information on how a `Decision` was reached
1282#[derive(Debug, PartialEq, Eq, Clone)]
1283pub struct Diagnostics {
1284    /// `PolicyId`s of the policies that contributed to the decision.
1285    /// If no policies applied to the request, this set will be empty.
1286    reason: HashSet<PolicyId>,
1287    /// Errors that occurred during authorization. The errors should be
1288    /// treated as unordered, since policies may be evaluated in any order.
1289    errors: Vec<AuthorizationError>,
1290}
1291
1292#[doc(hidden)]
1293impl From<authorizer::Diagnostics> for Diagnostics {
1294    fn from(diagnostics: authorizer::Diagnostics) -> Self {
1295        Self {
1296            reason: diagnostics.reason.into_iter().map(PolicyId::new).collect(),
1297            errors: diagnostics.errors.into_iter().map(Into::into).collect(),
1298        }
1299    }
1300}
1301
1302impl Diagnostics {
1303    /// Get the `PolicyId`s of the policies that contributed to the decision.
1304    /// If no policies applied to the request, this set will be empty.
1305    /// ```
1306    /// # use cedar_policy::{Authorizer, Context, Decision, Entities, EntityId, EntityTypeName,
1307    /// # EntityUid, Request,PolicySet};
1308    /// # use std::str::FromStr;
1309    /// # // create a request
1310    /// # let p_eid = EntityId::from_str("alice").unwrap();
1311    /// # let p_name: EntityTypeName = EntityTypeName::from_str("User").unwrap();
1312    /// # let p = EntityUid::from_type_name_and_id(p_name, p_eid);
1313    /// #
1314    /// # let a_eid = EntityId::from_str("view").unwrap();
1315    /// # let a_name: EntityTypeName = EntityTypeName::from_str("Action").unwrap();
1316    /// # let a = EntityUid::from_type_name_and_id(a_name, a_eid);
1317    /// #
1318    /// # let r_eid = EntityId::from_str("trip").unwrap();
1319    /// # let r_name: EntityTypeName = EntityTypeName::from_str("Album").unwrap();
1320    /// # let r = EntityUid::from_type_name_and_id(r_name, r_eid);
1321    /// #
1322    /// # let c = Context::empty();
1323    /// #
1324    /// # let request: Request = Request::new(p, a, r, c, None).unwrap();
1325    /// #
1326    /// # // create a policy
1327    /// # let s = r#"permit(
1328    /// #     principal == User::"alice",
1329    /// #     action == Action::"view",
1330    /// #     resource == Album::"trip"
1331    /// #   )when{
1332    /// #     principal.ip_addr.isIpv4()
1333    /// #   };
1334    /// # "#;
1335    /// # let policy = PolicySet::from_str(s).expect("policy error");
1336    /// # // create entities
1337    /// # let e = r#"[
1338    /// #     {
1339    /// #         "uid": {"type":"User","id":"alice"},
1340    /// #         "attrs": {
1341    /// #             "age":19,
1342    /// #             "ip_addr":{"__extn":{"fn":"ip", "arg":"10.0.1.101"}}
1343    /// #         },
1344    /// #         "parents": []
1345    /// #     }
1346    /// # ]"#;
1347    /// # let entities = Entities::from_json_str(e, None).expect("entity error");
1348    /// let authorizer = Authorizer::new();
1349    /// let response = authorizer.is_authorized(&request, &policy, &entities);
1350    /// match response.decision() {
1351    ///     Decision::Allow => println!("ALLOW"),
1352    ///     Decision::Deny => println!("DENY"),
1353    /// }
1354    /// println!("note: this decision was due to the following policies:");
1355    /// for reason in response.diagnostics().reason() {
1356    ///     println!("{}", reason);
1357    /// }
1358    /// ```
1359    pub fn reason(&self) -> impl Iterator<Item = &PolicyId> {
1360        self.reason.iter()
1361    }
1362
1363    /// Get the errors that occurred during authorization. The errors should be
1364    /// treated as unordered, since policies may be evaluated in any order.
1365    /// ```
1366    /// # use cedar_policy::{Authorizer, Context, Decision, Entities, EntityId, EntityTypeName,
1367    /// # EntityUid, Request,PolicySet};
1368    /// # use std::str::FromStr;
1369    /// # // create a request
1370    /// # let p_eid = EntityId::from_str("alice").unwrap();
1371    /// # let p_name: EntityTypeName = EntityTypeName::from_str("User").unwrap();
1372    /// # let p = EntityUid::from_type_name_and_id(p_name, p_eid);
1373    /// #
1374    /// # let a_eid = EntityId::from_str("view").unwrap();
1375    /// # let a_name: EntityTypeName = EntityTypeName::from_str("Action").unwrap();
1376    /// # let a = EntityUid::from_type_name_and_id(a_name, a_eid);
1377    /// #
1378    /// # let r_eid = EntityId::from_str("trip").unwrap();
1379    /// # let r_name: EntityTypeName = EntityTypeName::from_str("Album").unwrap();
1380    /// # let r = EntityUid::from_type_name_and_id(r_name, r_eid);
1381    /// #
1382    /// # let c = Context::empty();
1383    /// #
1384    /// # let request: Request = Request::new(p, a, r, c, None).unwrap();
1385    /// #
1386    /// # // create a policy
1387    /// # let s = r#"permit(
1388    /// #     principal == User::"alice",
1389    /// #     action == Action::"view",
1390    /// #     resource == Album::"trip"
1391    /// #   )when{
1392    /// #     principal.ip_addr.isIpv4()
1393    /// #   };
1394    /// # "#;
1395    /// # let policy = PolicySet::from_str(s).expect("policy error");
1396    /// # // create entities
1397    /// # let e = r#"[
1398    /// #     {
1399    /// #         "uid": {"type":"User","id":"alice"},
1400    /// #         "attrs": {
1401    /// #             "age":19,
1402    /// #             "ip_addr":{"__extn":{"fn":"ip", "arg":"10.0.1.101"}}
1403    /// #         },
1404    /// #         "parents": []
1405    /// #     }
1406    /// # ]"#;
1407    /// # let entities = Entities::from_json_str(e, None).expect("entity error");
1408    /// let authorizer = Authorizer::new();
1409    /// let response = authorizer.is_authorized(&request, &policy, &entities);
1410    /// match response.decision() {
1411    ///     Decision::Allow => println!("ALLOW"),
1412    ///     Decision::Deny => println!("DENY"),
1413    /// }
1414    /// for err in response.diagnostics().errors() {
1415    ///     println!("{}", err);
1416    /// }
1417    /// ```
1418    pub fn errors(&self) -> impl Iterator<Item = &AuthorizationError> + '_ {
1419        self.errors.iter()
1420    }
1421
1422    /// Consume the `Diagnostics`, producing owned versions of `reason()` and `errors()`
1423    pub(crate) fn into_components(
1424        self,
1425    ) -> (
1426        impl Iterator<Item = PolicyId>,
1427        impl Iterator<Item = AuthorizationError>,
1428    ) {
1429        (self.reason.into_iter(), self.errors.into_iter())
1430    }
1431}
1432
1433impl Response {
1434    /// Create a new `Response`
1435    pub fn new(
1436        decision: Decision,
1437        reason: HashSet<PolicyId>,
1438        errors: Vec<AuthorizationError>,
1439    ) -> Self {
1440        Self {
1441            decision,
1442            diagnostics: Diagnostics { reason, errors },
1443        }
1444    }
1445
1446    /// Get the authorization decision
1447    pub fn decision(&self) -> Decision {
1448        self.decision
1449    }
1450
1451    /// Get the authorization diagnostics
1452    pub fn diagnostics(&self) -> &Diagnostics {
1453        &self.diagnostics
1454    }
1455}
1456
1457#[doc(hidden)]
1458impl From<authorizer::Response> for Response {
1459    fn from(a: authorizer::Response) -> Self {
1460        Self {
1461            decision: a.decision,
1462            diagnostics: a.diagnostics.into(),
1463        }
1464    }
1465}
1466
1467/// Used to select how a policy will be validated.
1468#[derive(Default, Eq, PartialEq, Copy, Clone, Debug, Serialize, Deserialize)]
1469#[cfg_attr(feature = "wasm", derive(tsify::Tsify))]
1470#[cfg_attr(feature = "wasm", tsify(into_wasm_abi, from_wasm_abi))]
1471#[serde(rename_all = "camelCase")]
1472#[non_exhaustive]
1473pub enum ValidationMode {
1474    /// Validate that policies do not contain any type errors, and additionally
1475    /// have a restricted form which is amenable for analysis.
1476    #[default]
1477    Strict,
1478    /// Validate that policies do not contain any type errors.
1479    #[doc = include_str!("../experimental_warning.md")]
1480    #[cfg(feature = "permissive-validate")]
1481    Permissive,
1482    /// Validate using a partial schema. Policies may contain type errors.
1483    #[doc = include_str!("../experimental_warning.md")]
1484    #[cfg(feature = "partial-validate")]
1485    Partial,
1486}
1487
1488#[doc(hidden)]
1489impl From<ValidationMode> for cedar_policy_core::validator::ValidationMode {
1490    fn from(mode: ValidationMode) -> Self {
1491        match mode {
1492            ValidationMode::Strict => Self::Strict,
1493            #[cfg(feature = "permissive-validate")]
1494            ValidationMode::Permissive => Self::Permissive,
1495            #[cfg(feature = "partial-validate")]
1496            ValidationMode::Partial => Self::Partial,
1497        }
1498    }
1499}
1500
1501/// Validator object, which provides policy validation and typechecking.
1502#[repr(transparent)]
1503#[derive(Debug, Clone, RefCast)]
1504pub struct Validator(cedar_policy_core::validator::Validator);
1505
1506#[doc(hidden)] // because this converts to a private/internal type
1507impl AsRef<cedar_policy_core::validator::Validator> for Validator {
1508    fn as_ref(&self) -> &cedar_policy_core::validator::Validator {
1509        &self.0
1510    }
1511}
1512
1513impl Validator {
1514    /// Construct a new `Validator` to validate policies using the given
1515    /// `Schema`.
1516    pub fn new(schema: Schema) -> Self {
1517        Self(cedar_policy_core::validator::Validator::new(schema.0))
1518    }
1519
1520    /// Get the `Schema` this `Validator` is using.
1521    pub fn schema(&self) -> &Schema {
1522        RefCast::ref_cast(self.0.schema())
1523    }
1524
1525    /// Validate all policies in a policy set, collecting all validation errors
1526    /// found into the returned `ValidationResult`. Each error is returned together with the
1527    /// policy id of the policy where the error was found. If a policy id
1528    /// included in the input policy set does not appear in the output iterator, then
1529    /// that policy passed the validator. If the function `validation_passed`
1530    /// returns true, then there were no validation errors found, so all
1531    /// policies in the policy set have passed the validator.
1532    pub fn validate(&self, pset: &PolicySet, mode: ValidationMode) -> ValidationResult {
1533        ValidationResult::from(self.0.validate(&pset.ast, mode.into()))
1534    }
1535
1536    /// Validate all policies in a policy set, collecting all validation errors
1537    /// found into the returned `ValidationResult`. If validation passes, run level
1538    /// validation (RFC 76). Each error is returned together with the policy id of the policy
1539    /// where the error was found. If a policy id included in the input policy set does not
1540    /// appear in the output iterator, then that policy passed the validator. If the function
1541    /// `validation_passed` returns true, then there were no validation errors found, so
1542    /// all policies in the policy set have passed the validator.
1543    pub fn validate_with_level(
1544        &self,
1545        pset: &PolicySet,
1546        mode: ValidationMode,
1547        max_deref_level: u32,
1548    ) -> ValidationResult {
1549        ValidationResult::from(
1550            self.0
1551                .validate_with_level(&pset.ast, mode.into(), max_deref_level),
1552        )
1553    }
1554}
1555
1556/// Contains all the type information used to construct a `Schema` that can be
1557/// used to validate a policy.
1558#[derive(Debug, Clone)]
1559pub struct SchemaFragment {
1560    value: cedar_policy_core::validator::ValidatorSchemaFragment<
1561        cedar_policy_core::validator::ConditionalName,
1562        cedar_policy_core::validator::ConditionalName,
1563    >,
1564    lossless:
1565        cedar_policy_core::validator::json_schema::Fragment<cedar_policy_core::validator::RawName>,
1566}
1567
1568#[doc(hidden)] // because this converts to a private/internal type
1569impl
1570    AsRef<
1571        cedar_policy_core::validator::ValidatorSchemaFragment<
1572            cedar_policy_core::validator::ConditionalName,
1573            cedar_policy_core::validator::ConditionalName,
1574        >,
1575    > for SchemaFragment
1576{
1577    fn as_ref(
1578        &self,
1579    ) -> &cedar_policy_core::validator::ValidatorSchemaFragment<
1580        cedar_policy_core::validator::ConditionalName,
1581        cedar_policy_core::validator::ConditionalName,
1582    > {
1583        &self.value
1584    }
1585}
1586
1587#[doc(hidden)] // because this converts from a private/internal type
1588impl
1589    TryFrom<
1590        cedar_policy_core::validator::json_schema::Fragment<cedar_policy_core::validator::RawName>,
1591    > for SchemaFragment
1592{
1593    type Error = SchemaError;
1594    fn try_from(
1595        json_frag: cedar_policy_core::validator::json_schema::Fragment<
1596            cedar_policy_core::validator::RawName,
1597        >,
1598    ) -> Result<Self, Self::Error> {
1599        Ok(Self {
1600            value: json_frag.clone().try_into()?,
1601            lossless: json_frag,
1602        })
1603    }
1604}
1605
1606fn get_annotation_by_key(
1607    annotations: &est::Annotations,
1608    annotation_key: impl AsRef<str>,
1609) -> Option<&str> {
1610    annotations
1611        .0
1612        .get(&annotation_key.as_ref().parse().ok()?)
1613        .map(|value| annotation_value_to_str_ref(value.as_ref()))
1614}
1615
1616fn annotation_value_to_str_ref(value: Option<&ast::Annotation>) -> &str {
1617    value.map_or("", |a| a.as_ref())
1618}
1619
1620fn annotations_to_pairs(annotations: &est::Annotations) -> impl Iterator<Item = (&str, &str)> {
1621    annotations
1622        .0
1623        .iter()
1624        .map(|(key, value)| (key.as_ref(), annotation_value_to_str_ref(value.as_ref())))
1625}
1626
1627impl SchemaFragment {
1628    /// Get annotations of a non-empty namespace.
1629    ///
1630    /// We do not allow namespace-level annotations on the empty namespace.
1631    ///
1632    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`]
1633    pub fn namespace_annotations(
1634        &self,
1635        namespace: EntityNamespace,
1636    ) -> Option<impl Iterator<Item = (&str, &str)>> {
1637        self.lossless
1638            .0
1639            .get(&Some(namespace.0))
1640            .map(|ns_def| annotations_to_pairs(&ns_def.annotations))
1641    }
1642
1643    /// Get annotation value of a non-empty namespace by annotation key
1644    /// `annotation_key`
1645    ///
1646    /// We do not allow namespace-level annotations on the empty namespace.
1647    ///
1648    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`]
1649    /// or `annotation_key` is not a valid annotation key
1650    /// or it does not exist
1651    pub fn namespace_annotation(
1652        &self,
1653        namespace: EntityNamespace,
1654        annotation_key: impl AsRef<str>,
1655    ) -> Option<&str> {
1656        let ns = self.lossless.0.get(&Some(namespace.0))?;
1657        get_annotation_by_key(&ns.annotations, annotation_key)
1658    }
1659
1660    /// Get annotations of a common type declaration
1661    ///
1662    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`] or
1663    /// `ty` is not a valid common type ID or `ty` is not found in the
1664    /// corresponding namespace definition
1665    pub fn common_type_annotations(
1666        &self,
1667        namespace: Option<EntityNamespace>,
1668        ty: &str,
1669    ) -> Option<impl Iterator<Item = (&str, &str)>> {
1670        let ns_def = self.lossless.0.get(&namespace.map(|n| n.0))?;
1671        let ty = json_schema::CommonTypeId::new(ast::UnreservedId::from_normalized_str(ty).ok()?)
1672            .ok()?;
1673        ns_def
1674            .common_types
1675            .get(&ty)
1676            .map(|ty| annotations_to_pairs(&ty.annotations))
1677    }
1678
1679    /// Get annotation value of a common type declaration by annotation key
1680    /// `annotation_key`
1681    ///
1682    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`]
1683    /// or `ty` is not a valid common type ID
1684    /// or `ty` is not found in the corresponding namespace definition
1685    /// or `annotation_key` is not a valid annotation key
1686    /// or it does not exist
1687    pub fn common_type_annotation(
1688        &self,
1689        namespace: Option<EntityNamespace>,
1690        ty: &str,
1691        annotation_key: impl AsRef<str>,
1692    ) -> Option<&str> {
1693        let ns_def = self.lossless.0.get(&namespace.map(|n| n.0))?;
1694        let ty = json_schema::CommonTypeId::new(ast::UnreservedId::from_normalized_str(ty).ok()?)
1695            .ok()?;
1696        get_annotation_by_key(&ns_def.common_types.get(&ty)?.annotations, annotation_key)
1697    }
1698
1699    /// Get annotations of an entity type declaration
1700    ///
1701    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`] or
1702    /// `ty` is not a valid entity type name or `ty` is not found in the
1703    /// corresponding namespace definition
1704    pub fn entity_type_annotations(
1705        &self,
1706        namespace: Option<EntityNamespace>,
1707        ty: &str,
1708    ) -> Option<impl Iterator<Item = (&str, &str)>> {
1709        let ns_def = self.lossless.0.get(&namespace.map(|n| n.0))?;
1710        let ty = ast::UnreservedId::from_normalized_str(ty).ok()?;
1711        ns_def
1712            .entity_types
1713            .get(&ty)
1714            .map(|ty| annotations_to_pairs(&ty.annotations))
1715    }
1716
1717    /// Get annotation value of an entity type declaration by annotation key
1718    /// `annotation_key`
1719    ///
1720    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`]
1721    /// or `ty` is not a valid entity type name
1722    /// or `ty` is not found in the corresponding namespace definition
1723    /// or `annotation_key` is not a valid annotation key
1724    /// or it does not exist
1725    pub fn entity_type_annotation(
1726        &self,
1727        namespace: Option<EntityNamespace>,
1728        ty: &str,
1729        annotation_key: impl AsRef<str>,
1730    ) -> Option<&str> {
1731        let ns_def = self.lossless.0.get(&namespace.map(|n| n.0))?;
1732        let ty = ast::UnreservedId::from_normalized_str(ty).ok()?;
1733        get_annotation_by_key(&ns_def.entity_types.get(&ty)?.annotations, annotation_key)
1734    }
1735
1736    /// Get annotations of an action declaration
1737    ///
1738    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`] or
1739    /// `id` is not found in the corresponding namespace definition
1740    pub fn action_annotations(
1741        &self,
1742        namespace: Option<EntityNamespace>,
1743        id: &EntityId,
1744    ) -> Option<impl Iterator<Item = (&str, &str)>> {
1745        let ns_def = self.lossless.0.get(&namespace.map(|n| n.0))?;
1746        ns_def
1747            .actions
1748            .get(id.unescaped())
1749            .map(|a| annotations_to_pairs(&a.annotations))
1750    }
1751
1752    /// Get annotation value of an action declaration by annotation key
1753    /// `annotation_key`
1754    ///
1755    /// Returns `None` if `namespace` is not found in the [`SchemaFragment`]
1756    /// or `id` is not found in the corresponding namespace definition
1757    /// or `annotation_key` is not a valid annotation key
1758    /// or it does not exist
1759    pub fn action_annotation(
1760        &self,
1761        namespace: Option<EntityNamespace>,
1762        id: &EntityId,
1763        annotation_key: impl AsRef<str>,
1764    ) -> Option<&str> {
1765        let ns_def = self.lossless.0.get(&namespace.map(|n| n.0))?;
1766        get_annotation_by_key(
1767            &ns_def.actions.get(id.unescaped())?.annotations,
1768            annotation_key,
1769        )
1770    }
1771
1772    /// Extract namespaces defined in this [`SchemaFragment`].
1773    ///
1774    /// `None` indicates the empty namespace.
1775    pub fn namespaces(&self) -> impl Iterator<Item = Option<EntityNamespace>> + '_ {
1776        self.value.namespaces().filter_map(|ns| {
1777            match ns.map(|ns| ast::Name::try_from(ns.clone())) {
1778                Some(Ok(n)) => Some(Some(EntityNamespace(n))),
1779                None => Some(None), // empty namespace, which we want to surface to the user
1780                Some(Err(_)) => {
1781                    // if the `SchemaFragment` contains namespaces with
1782                    // reserved `__cedar` components, that's an internal
1783                    // implementation detail; hide that from the user.
1784                    // Also note that `EntityNamespace` is backed by `Name`
1785                    // which can't even contain names with reserved
1786                    // `__cedar` components.
1787                    None
1788                }
1789            }
1790        })
1791    }
1792
1793    /// Create a [`SchemaFragment`] from a string containing JSON in the
1794    /// JSON schema format.
1795    pub fn from_json_str(src: &str) -> Result<Self, SchemaError> {
1796        let lossless = cedar_policy_core::validator::json_schema::Fragment::from_json_str(src)?;
1797        Ok(Self {
1798            value: lossless.clone().try_into()?,
1799            lossless,
1800        })
1801    }
1802
1803    /// Create a [`SchemaFragment`] from a JSON value (which should be an
1804    /// object of the shape required for the JSON schema format).
1805    pub fn from_json_value(json: serde_json::Value) -> Result<Self, SchemaError> {
1806        let lossless = cedar_policy_core::validator::json_schema::Fragment::from_json_value(json)?;
1807        Ok(Self {
1808            value: lossless.clone().try_into()?,
1809            lossless,
1810        })
1811    }
1812
1813    /// Parse a [`SchemaFragment`] from a reader containing the Cedar schema syntax
1814    pub fn from_cedarschema_file(
1815        r: impl std::io::Read,
1816    ) -> Result<(Self, impl Iterator<Item = SchemaWarning>), CedarSchemaError> {
1817        let (lossless, warnings) =
1818            cedar_policy_core::validator::json_schema::Fragment::from_cedarschema_file(
1819                r,
1820                Extensions::all_available(),
1821            )?;
1822        Ok((
1823            Self {
1824                value: lossless.clone().try_into()?,
1825                lossless,
1826            },
1827            warnings,
1828        ))
1829    }
1830
1831    /// Parse a [`SchemaFragment`] from a string containing the Cedar schema syntax
1832    pub fn from_cedarschema_str(
1833        src: &str,
1834    ) -> Result<(Self, impl Iterator<Item = SchemaWarning>), CedarSchemaError> {
1835        let (lossless, warnings) =
1836            cedar_policy_core::validator::json_schema::Fragment::from_cedarschema_str(
1837                src,
1838                Extensions::all_available(),
1839            )?;
1840        Ok((
1841            Self {
1842                value: lossless.clone().try_into()?,
1843                lossless,
1844            },
1845            warnings,
1846        ))
1847    }
1848
1849    /// Create a [`SchemaFragment`] directly from a JSON file (which should
1850    /// contain an object of the shape required for the JSON schema format).
1851    pub fn from_json_file(file: impl std::io::Read) -> Result<Self, SchemaError> {
1852        let lossless = cedar_policy_core::validator::json_schema::Fragment::from_json_file(file)?;
1853        Ok(Self {
1854            value: lossless.clone().try_into()?,
1855            lossless,
1856        })
1857    }
1858
1859    /// Serialize this [`SchemaFragment`] as a JSON value
1860    pub fn to_json_value(self) -> Result<serde_json::Value, SchemaError> {
1861        serde_json::to_value(self.lossless).map_err(|e| SchemaError::JsonSerialization(e.into()))
1862    }
1863
1864    /// Serialize this [`SchemaFragment`] as a JSON string
1865    pub fn to_json_string(&self) -> Result<String, SchemaError> {
1866        serde_json::to_string(&self.lossless).map_err(|e| SchemaError::JsonSerialization(e.into()))
1867    }
1868
1869    /// Serialize this [`SchemaFragment`] into a string in the Cedar schema
1870    /// syntax
1871    pub fn to_cedarschema(&self) -> Result<String, ToCedarSchemaError> {
1872        let str = self.lossless.to_cedarschema()?;
1873        Ok(str)
1874    }
1875}
1876
1877impl TryInto<Schema> for SchemaFragment {
1878    type Error = SchemaError;
1879
1880    /// Convert [`SchemaFragment`] into a [`Schema`]. To build the [`Schema`] we
1881    /// need to have all entity types defined, so an error will be returned if
1882    /// any undeclared entity types are referenced in the schema fragment.
1883    fn try_into(self) -> Result<Schema, Self::Error> {
1884        Ok(Schema(
1885            cedar_policy_core::validator::ValidatorSchema::from_schema_fragments(
1886                [self.value],
1887                Extensions::all_available(),
1888            )?,
1889        ))
1890    }
1891}
1892
1893impl FromStr for SchemaFragment {
1894    type Err = CedarSchemaError;
1895    /// Construct [`SchemaFragment`] from a string containing a schema formatted
1896    /// in the Cedar schema format. This can fail if the string is not a valid
1897    /// schema. This function does not check for consistency in the schema
1898    /// (e.g., references to undefined entities) because this is not required
1899    /// until a `Schema` is constructed.
1900    fn from_str(src: &str) -> Result<Self, Self::Err> {
1901        Self::from_cedarschema_str(src).map(|(frag, _)| frag)
1902    }
1903}
1904
1905/// Object containing schema information used by the validator.
1906#[repr(transparent)]
1907#[derive(Debug, Clone, RefCast)]
1908pub struct Schema(pub(crate) cedar_policy_core::validator::ValidatorSchema);
1909
1910#[doc(hidden)] // because this converts to a private/internal type
1911impl AsRef<cedar_policy_core::validator::ValidatorSchema> for Schema {
1912    fn as_ref(&self) -> &cedar_policy_core::validator::ValidatorSchema {
1913        &self.0
1914    }
1915}
1916
1917#[doc(hidden)]
1918impl From<cedar_policy_core::validator::ValidatorSchema> for Schema {
1919    fn from(schema: cedar_policy_core::validator::ValidatorSchema) -> Self {
1920        Self(schema)
1921    }
1922}
1923
1924impl FromStr for Schema {
1925    type Err = CedarSchemaError;
1926
1927    /// Construct a [`Schema`] from a string containing a schema formatted in
1928    /// the Cedar schema format. This can fail if it is not possible to parse a
1929    /// schema from the string, or if errors in values in the schema are
1930    /// uncovered after parsing. For instance, when an entity attribute name is
1931    /// found to not be a valid attribute name according to the Cedar
1932    /// grammar.
1933    fn from_str(schema_src: &str) -> Result<Self, Self::Err> {
1934        Self::from_cedarschema_str(schema_src).map(|(schema, _)| schema)
1935    }
1936}
1937
1938impl Schema {
1939    /// Create a [`Schema`] from multiple [`SchemaFragment`]. The individual
1940    /// fragments may reference entity or common types that are not declared in that
1941    /// fragment, but all referenced entity and common types must be declared in some
1942    /// fragment.
1943    pub fn from_schema_fragments(
1944        fragments: impl IntoIterator<Item = SchemaFragment>,
1945    ) -> Result<Self, SchemaError> {
1946        Ok(Self(
1947            cedar_policy_core::validator::ValidatorSchema::from_schema_fragments(
1948                fragments.into_iter().map(|f| f.value),
1949                Extensions::all_available(),
1950            )?,
1951        ))
1952    }
1953
1954    /// Create a [`Schema`] from a JSON value (which should be an object of the
1955    /// shape required for the JSON schema format).
1956    pub fn from_json_value(json: serde_json::Value) -> Result<Self, SchemaError> {
1957        Ok(Self(
1958            cedar_policy_core::validator::ValidatorSchema::from_json_value(
1959                json,
1960                Extensions::all_available(),
1961            )?,
1962        ))
1963    }
1964
1965    /// Create a [`Schema`] from a string containing JSON in the appropriate
1966    /// shape.
1967    pub fn from_json_str(json: &str) -> Result<Self, SchemaError> {
1968        Ok(Self(
1969            cedar_policy_core::validator::ValidatorSchema::from_json_str(
1970                json,
1971                Extensions::all_available(),
1972            )?,
1973        ))
1974    }
1975
1976    /// Create a [`Schema`] directly from a file containing JSON in the
1977    /// appropriate shape.
1978    pub fn from_json_file(file: impl std::io::Read) -> Result<Self, SchemaError> {
1979        Ok(Self(
1980            cedar_policy_core::validator::ValidatorSchema::from_json_file(
1981                file,
1982                Extensions::all_available(),
1983            )?,
1984        ))
1985    }
1986
1987    /// Parse the schema from a reader, in the Cedar schema format.
1988    pub fn from_cedarschema_file(
1989        file: impl std::io::Read,
1990    ) -> Result<(Self, impl Iterator<Item = SchemaWarning> + 'static), CedarSchemaError> {
1991        let (schema, warnings) =
1992            cedar_policy_core::validator::ValidatorSchema::from_cedarschema_file(
1993                file,
1994                Extensions::all_available(),
1995            )?;
1996        Ok((Self(schema), warnings))
1997    }
1998
1999    /// Parse the schema from a string, in the Cedar schema format.
2000    pub fn from_cedarschema_str(
2001        src: &str,
2002    ) -> Result<(Self, impl Iterator<Item = SchemaWarning>), CedarSchemaError> {
2003        let (schema, warnings) =
2004            cedar_policy_core::validator::ValidatorSchema::from_cedarschema_str(
2005                src,
2006                Extensions::all_available(),
2007            )?;
2008        Ok((Self(schema), warnings))
2009    }
2010
2011    /// Extract from the schema an [`Entities`] containing the action entities
2012    /// declared in the schema.
2013    pub fn action_entities(&self) -> Result<Entities, EntitiesError> {
2014        Ok(Entities(self.0.action_entities()?))
2015    }
2016
2017    /// Returns an iterator over every entity type that can be a principal for any action in this schema
2018    ///
2019    /// Note: this iterator may contain duplicates.
2020    ///
2021    /// # Examples
2022    /// Here's an example of using a [`std::collections::HashSet`] to get a de-duplicated set of principals
2023    /// ```
2024    /// use std::collections::HashSet;
2025    /// use cedar_policy::Schema;
2026    /// let schema : Schema = r#"
2027    ///     entity User;
2028    ///     entity Folder;
2029    ///     action Access appliesTo {
2030    ///         principal : User,
2031    ///         resource : Folder,
2032    ///     };
2033    ///     action Delete appliesTo {
2034    ///         principal : User,
2035    ///         resource : Folder,
2036    ///     };
2037    /// "#.parse().unwrap();
2038    /// let principals = schema.principals().collect::<HashSet<_>>();
2039    /// assert_eq!(principals, HashSet::from([&"User".parse().unwrap()]));
2040    /// ```
2041    pub fn principals(&self) -> impl Iterator<Item = &EntityTypeName> {
2042        self.0.principals().map(RefCast::ref_cast)
2043    }
2044
2045    /// Returns an iterator over every entity type that can be a resource for any action in this schema
2046    ///
2047    /// Note: this iterator may contain duplicates.
2048    /// # Examples
2049    /// Here's an example of using a [`std::collections::HashSet`] to get a de-duplicated set of resources
2050    /// ```
2051    /// use std::collections::HashSet;
2052    /// use cedar_policy::Schema;
2053    /// let schema : Schema = r#"
2054    ///     entity User;
2055    ///     entity Folder;
2056    ///     action Access appliesTo {
2057    ///         principal : User,
2058    ///         resource : Folder,
2059    ///     };
2060    ///     action Delete appliesTo {
2061    ///         principal : User,
2062    ///         resource : Folder,
2063    ///     };
2064    /// "#.parse().unwrap();
2065    /// let resources = schema.resources().collect::<HashSet<_>>();
2066    /// assert_eq!(resources, HashSet::from([&"Folder".parse().unwrap()]));
2067    /// ```
2068    pub fn resources(&self) -> impl Iterator<Item = &EntityTypeName> {
2069        self.0.resources().map(RefCast::ref_cast)
2070    }
2071
2072    /// Returns an iterator over every entity type that can be a principal for `action` in this schema
2073    ///
2074    /// ## Errors
2075    ///
2076    /// Returns [`None`] if `action` is not found in the schema
2077    pub fn principals_for_action(
2078        &self,
2079        action: &EntityUid,
2080    ) -> Option<impl Iterator<Item = &EntityTypeName>> {
2081        self.0
2082            .principals_for_action(&action.0)
2083            .map(|iter| iter.map(RefCast::ref_cast))
2084    }
2085
2086    /// Returns an iterator over every entity type that can be a resource for `action` in this schema
2087    ///
2088    /// ## Errors
2089    ///
2090    /// Returns [`None`] if `action` is not found in the schema
2091    pub fn resources_for_action(
2092        &self,
2093        action: &EntityUid,
2094    ) -> Option<impl Iterator<Item = &EntityTypeName>> {
2095        self.0
2096            .resources_for_action(&action.0)
2097            .map(|iter| iter.map(RefCast::ref_cast))
2098    }
2099
2100    /// Returns an iterator over all the [`RequestEnv`]s that are valid
2101    /// according to this schema.
2102    pub fn request_envs(&self) -> impl Iterator<Item = RequestEnv> + '_ {
2103        self.0
2104            .unlinked_request_envs(cedar_policy_core::validator::ValidationMode::Strict)
2105            .map(Into::into)
2106    }
2107
2108    /// Returns an iterator over all the entity types that can be an ancestor of `ty`
2109    ///
2110    /// ## Errors
2111    ///
2112    /// Returns [`None`] if the `ty` is not found in the schema
2113    pub fn ancestors<'a>(
2114        &'a self,
2115        ty: &'a EntityTypeName,
2116    ) -> Option<impl Iterator<Item = &'a EntityTypeName> + 'a> {
2117        self.0
2118            .ancestors(&ty.0)
2119            .map(|iter| iter.map(RefCast::ref_cast))
2120    }
2121
2122    /// Returns an iterator over all the action groups defined in this schema
2123    pub fn action_groups(&self) -> impl Iterator<Item = &EntityUid> {
2124        self.0.action_groups().map(RefCast::ref_cast)
2125    }
2126
2127    /// Returns an iterator over all entity types defined in this schema
2128    pub fn entity_types(&self) -> impl Iterator<Item = &EntityTypeName> {
2129        self.0
2130            .entity_types()
2131            .map(|ety| RefCast::ref_cast(ety.name()))
2132    }
2133
2134    /// Returns an iterator over all actions defined in this schema
2135    pub fn actions(&self) -> impl Iterator<Item = &EntityUid> {
2136        self.0.actions().map(RefCast::ref_cast)
2137    }
2138
2139    /// Returns an iterator over the actions that apply to this principal and
2140    /// resource type, as specified by the `appliesTo` block for the action in
2141    /// this schema.
2142    pub fn actions_for_principal_and_resource<'a: 'b, 'b>(
2143        &'a self,
2144        principal_type: &'b EntityTypeName,
2145        resource_type: &'b EntityTypeName,
2146    ) -> impl Iterator<Item = &'a EntityUid> + 'b {
2147        self.0
2148            .actions_for_principal_and_resource(&principal_type.0, &resource_type.0)
2149            .map(RefCast::ref_cast)
2150    }
2151}
2152
2153/// Convert a Cedar schema string to JSON format with resolved types.
2154///
2155/// This function resolves ambiguous "`EntityOrCommon`" types to their specific
2156/// Entity or `CommonType` classifications using the schema's type definitions.
2157/// This is primarily meant to be used when working with schemas programmatically,
2158/// for example when creating a schema building UI.
2159///
2160/// Returns `Ok((json_value, warnings))` on success, or `Err(error)` on failure.
2161/// Fails if there are any types in the schema that are unresolved.
2162pub fn schema_str_to_json_with_resolved_types(
2163    schema_str: &str,
2164) -> Result<(serde_json::Value, Vec<SchemaWarning>), CedarSchemaError> {
2165    // Parse the Cedar schema string into a fragment
2166    let (json_schema_fragment, warnings) =
2167        json_schema::Fragment::from_cedarschema_str(schema_str, Extensions::all_available())
2168            .map_err(
2169                |e: cedar_policy_core::validator::CedarSchemaError| -> CedarSchemaError {
2170                    e.into()
2171                },
2172            )?;
2173
2174    let warnings_as_schema_warnings: Vec<SchemaWarning> = warnings.collect();
2175
2176    // Use the new method from json_schema.rs to get the resolved fragment
2177    let fully_resolved_fragment =
2178        match json_schema_fragment.to_internal_name_fragment_with_resolved_types() {
2179            Ok(fragment) => fragment,
2180            Err(e) => {
2181                // SchemaError can be directly converted to CedarSchemaError
2182                return Err(e.into());
2183            }
2184        };
2185
2186    // Serialize the resolved fragment to JSON
2187    let json_value = serde_json::to_value(&fully_resolved_fragment).map_err(|e| {
2188        let schema_error = SchemaError::JsonSerialization(
2189            cedar_policy_core::validator::schema_errors::JsonSerializationError::from(e),
2190        );
2191        CedarSchemaError::Schema(schema_error)
2192    })?;
2193
2194    Ok((json_value, warnings_as_schema_warnings))
2195}
2196
2197/// Contains the result of policy validation.
2198///
2199/// The result includes the list of issues found by validation and whether validation succeeds or fails.
2200
2201#[cfg(test)]
2202mod test_schema_str_to_json_with_resolved_types {
2203    use super::*;
2204
2205    #[test]
2206    fn test_unresolved_type_error() {
2207        let schema_str = r#"entity User = { "name": MyName };"#;
2208
2209        let result = schema_str_to_json_with_resolved_types(schema_str);
2210
2211        // Should return an error because MyName is not defined
2212        match result {
2213            Ok(_) => panic!("Expected error but got success - MyName should not be resolved"),
2214            Err(CedarSchemaError::Schema(SchemaError::TypeNotDefined(type_not_defined_error))) => {
2215                // Verify that the error message contains information about the undefined type "MyName"
2216                let error_message = format!("{}", type_not_defined_error);
2217                assert!(
2218                    error_message.contains("MyName"),
2219                    "Expected error message to contain 'MyName', but got: {}",
2220                    error_message
2221                );
2222
2223                // Verify it's specifically about failing to resolve types
2224                assert!(
2225                    error_message.contains("failed to resolve type"),
2226                    "Expected error message to mention 'failed to resolve type', but got: {}",
2227                    error_message
2228                );
2229            }
2230            Err(CedarSchemaError::Schema(other_schema_error)) => {
2231                panic!(
2232                    "Expected TypeNotDefined error, but got different SchemaError: {:?}",
2233                    other_schema_error
2234                );
2235            }
2236            Err(CedarSchemaError::Parse(parse_error)) => {
2237                panic!(
2238                    "Expected TypeNotDefined error, but got parse error: {:?}",
2239                    parse_error
2240                );
2241            }
2242            Err(CedarSchemaError::Io(io_error)) => {
2243                panic!(
2244                    "Expected TypeNotDefined error, but got IO error: {:?}",
2245                    io_error
2246                );
2247            }
2248        }
2249    }
2250
2251    #[test]
2252    fn test_successful_resolution() {
2253        let schema_str = r#"
2254            type MyName = String;
2255            entity User = { "name": MyName };
2256        "#;
2257
2258        let result = schema_str_to_json_with_resolved_types(schema_str);
2259
2260        match result {
2261            Ok((json_value, warnings)) => {
2262                // Verify we got a JSON value
2263                assert!(json_value.is_object(), "Expected JSON object");
2264
2265                // Verify the JSON doesn't contain "EntityOrCommon" (should be resolved)
2266                let json_str = serde_json::to_string(&json_value).unwrap();
2267                assert!(
2268                    !json_str.contains("EntityOrCommon"),
2269                    "JSON should not contain unresolved EntityOrCommon types: {}",
2270                    json_str
2271                );
2272
2273                // Verify MyName is resolved to a reference to the common type
2274                assert!(
2275                    json_str.contains("MyName"),
2276                    "JSON should contain resolved MyName type reference: {}",
2277                    json_str
2278                );
2279
2280                // Should have no warnings for this simple valid schema
2281                assert_eq!(warnings.len(), 0, "Expected no warnings for valid schema");
2282            }
2283            Err(e) => panic!("Expected success but got error: {:?}", e),
2284        }
2285    }
2286}
2287/// Validation succeeds if there are no fatal errors. There may still be
2288/// non-fatal warnings present when validation passes.
2289#[derive(Debug, Clone)]
2290pub struct ValidationResult {
2291    validation_errors: Vec<ValidationError>,
2292    validation_warnings: Vec<ValidationWarning>,
2293}
2294
2295impl ValidationResult {
2296    /// True when validation passes. There are no errors, but there may be
2297    /// non-fatal warnings. Use [`ValidationResult::validation_passed_without_warnings`]
2298    /// to check that there are also no warnings.
2299    pub fn validation_passed(&self) -> bool {
2300        self.validation_errors.is_empty()
2301    }
2302
2303    /// True when validation passes (i.e., there are no errors) and there are
2304    /// additionally no non-fatal warnings.
2305    pub fn validation_passed_without_warnings(&self) -> bool {
2306        self.validation_errors.is_empty() && self.validation_warnings.is_empty()
2307    }
2308
2309    /// Get an iterator over the errors found by the validator.
2310    pub fn validation_errors(&self) -> impl Iterator<Item = &ValidationError> {
2311        self.validation_errors.iter()
2312    }
2313
2314    /// Get an iterator over the warnings found by the validator.
2315    pub fn validation_warnings(&self) -> impl Iterator<Item = &ValidationWarning> {
2316        self.validation_warnings.iter()
2317    }
2318
2319    fn first_error_or_warning(&self) -> Option<&dyn Diagnostic> {
2320        self.validation_errors
2321            .first()
2322            .map(|e| e as &dyn Diagnostic)
2323            .or_else(|| {
2324                self.validation_warnings
2325                    .first()
2326                    .map(|w| w as &dyn Diagnostic)
2327            })
2328    }
2329
2330    pub(crate) fn into_errors_and_warnings(
2331        self,
2332    ) -> (
2333        impl Iterator<Item = ValidationError>,
2334        impl Iterator<Item = ValidationWarning>,
2335    ) {
2336        (
2337            self.validation_errors.into_iter(),
2338            self.validation_warnings.into_iter(),
2339        )
2340    }
2341}
2342
2343#[doc(hidden)]
2344impl From<cedar_policy_core::validator::ValidationResult> for ValidationResult {
2345    fn from(r: cedar_policy_core::validator::ValidationResult) -> Self {
2346        let (errors, warnings) = r.into_errors_and_warnings();
2347        Self {
2348            validation_errors: errors.map(ValidationError::from).collect(),
2349            validation_warnings: warnings.map(ValidationWarning::from).collect(),
2350        }
2351    }
2352}
2353
2354impl std::fmt::Display for ValidationResult {
2355    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
2356        match self.first_error_or_warning() {
2357            Some(diagnostic) => write!(f, "{diagnostic}"),
2358            None => write!(f, "no errors or warnings"),
2359        }
2360    }
2361}
2362
2363impl std::error::Error for ValidationResult {
2364    fn source(&self) -> Option<&(dyn std::error::Error + 'static)> {
2365        self.first_error_or_warning()
2366            .and_then(std::error::Error::source)
2367    }
2368
2369    fn description(&self) -> &str {
2370        #[expect(
2371            deprecated,
2372            reason = "description() is deprecated but we still want to forward it"
2373        )]
2374        self.first_error_or_warning()
2375            .map_or("no errors or warnings", std::error::Error::description)
2376    }
2377
2378    fn cause(&self) -> Option<&dyn std::error::Error> {
2379        #[expect(
2380            deprecated,
2381            reason = "cause() is deprecated but we still want to forward it"
2382        )]
2383        self.first_error_or_warning()
2384            .and_then(std::error::Error::cause)
2385    }
2386}
2387
2388// Except for `.related()`, and `.severity` everything is forwarded to the first
2389// error, or to the first warning if there are no errors. This is done for the
2390// same reason as policy parse errors.
2391impl Diagnostic for ValidationResult {
2392    fn related(&self) -> Option<Box<dyn Iterator<Item = &dyn Diagnostic> + '_>> {
2393        let mut related = self
2394            .validation_errors
2395            .iter()
2396            .map(|err| err as &dyn Diagnostic)
2397            .chain(
2398                self.validation_warnings
2399                    .iter()
2400                    .map(|warn| warn as &dyn Diagnostic),
2401            );
2402        related.next().map(move |first| match first.related() {
2403            Some(first_related) => Box::new(first_related.chain(related)),
2404            None => Box::new(related) as Box<dyn Iterator<Item = _>>,
2405        })
2406    }
2407
2408    fn severity(&self) -> Option<miette::Severity> {
2409        self.first_error_or_warning()
2410            .map_or(Some(miette::Severity::Advice), Diagnostic::severity)
2411    }
2412
2413    fn labels(&self) -> Option<Box<dyn Iterator<Item = miette::LabeledSpan> + '_>> {
2414        self.first_error_or_warning().and_then(Diagnostic::labels)
2415    }
2416
2417    fn source_code(&self) -> Option<&dyn miette::SourceCode> {
2418        self.first_error_or_warning()
2419            .and_then(Diagnostic::source_code)
2420    }
2421
2422    fn code(&self) -> Option<Box<dyn std::fmt::Display + '_>> {
2423        self.first_error_or_warning().and_then(Diagnostic::code)
2424    }
2425
2426    fn url(&self) -> Option<Box<dyn std::fmt::Display + '_>> {
2427        self.first_error_or_warning().and_then(Diagnostic::url)
2428    }
2429
2430    fn help(&self) -> Option<Box<dyn std::fmt::Display + '_>> {
2431        self.first_error_or_warning().and_then(Diagnostic::help)
2432    }
2433
2434    fn diagnostic_source(&self) -> Option<&dyn Diagnostic> {
2435        self.first_error_or_warning()
2436            .and_then(Diagnostic::diagnostic_source)
2437    }
2438}
2439
2440/// Scan a set of policies for potentially confusing/obfuscating text.
2441///
2442/// These checks are also provided through [`Validator::validate`] which provides more
2443/// comprehensive error detection, but this function can be used to check for
2444/// confusable strings without defining a schema.
2445pub fn confusable_string_checker<'a>(
2446    templates: impl Iterator<Item = &'a Template> + 'a,
2447) -> impl Iterator<Item = ValidationWarning> + 'a {
2448    cedar_policy_core::validator::confusable_string_checks(templates.map(|t| &t.ast))
2449        .map(std::convert::Into::into)
2450}
2451
2452/// Represents a namespace.
2453///
2454/// An `EntityNamespace` can can be constructed using
2455/// [`EntityNamespace::from_str`] or by calling `parse()` on a string.
2456/// _This can fail_, so it is important to properly handle an `Err` result.
2457///
2458/// ```
2459/// # use cedar_policy::EntityNamespace;
2460/// let id : Result<EntityNamespace, _> = "My::Name::Space".parse();
2461/// # assert_eq!(id.unwrap().to_string(), "My::Name::Space".to_string());
2462/// ```
2463#[derive(Debug, Clone, Hash, PartialEq, Eq, PartialOrd, Ord)]
2464pub struct EntityNamespace(pub(crate) ast::Name);
2465
2466#[doc(hidden)] // because this converts to a private/internal type
2467impl AsRef<ast::Name> for EntityNamespace {
2468    fn as_ref(&self) -> &ast::Name {
2469        &self.0
2470    }
2471}
2472
2473/// This `FromStr` implementation requires the _normalized_ representation of the
2474/// namespace. See <https://github.com/cedar-policy/rfcs/pull/9/>.
2475impl FromStr for EntityNamespace {
2476    type Err = ParseErrors;
2477
2478    fn from_str(namespace_str: &str) -> Result<Self, Self::Err> {
2479        ast::Name::from_normalized_str(namespace_str)
2480            .map(EntityNamespace)
2481            .map_err(Into::into)
2482    }
2483}
2484
2485impl std::fmt::Display for EntityNamespace {
2486    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
2487        write!(f, "{}", self.0)
2488    }
2489}
2490
2491#[derive(Debug, Clone, Default)]
2492/// A struct representing a `PolicySet` as a series of strings for ser/de.
2493/// A `PolicySet` that contains template-linked policies cannot be
2494/// represented as this struct.
2495pub(crate) struct StringifiedPolicySet {
2496    /// The static policies in the set
2497    pub policies: Vec<String>,
2498    /// The policy templates in the set
2499    pub policy_templates: Vec<String>,
2500}
2501
2502/// Represents a set of `Policy`s
2503#[derive(Debug, Clone, Default)]
2504pub struct PolicySet {
2505    /// AST representation. Technically partially redundant with the other fields.
2506    /// Internally, we ensure that the duplicated information remains consistent.
2507    pub(crate) ast: ast::PolicySet,
2508    /// Policies in the set (this includes both static policies and template linked-policies)
2509    policies: LinkedHashMap<PolicyId, Policy>,
2510    /// Templates in the set
2511    templates: LinkedHashMap<PolicyId, Template>,
2512}
2513
2514impl PartialEq for PolicySet {
2515    fn eq(&self, other: &Self) -> bool {
2516        // eq is based on just the `ast`
2517        self.ast.eq(&other.ast)
2518    }
2519}
2520impl Eq for PolicySet {}
2521
2522#[doc(hidden)] // because this converts to a private/internal type
2523impl AsRef<ast::PolicySet> for PolicySet {
2524    fn as_ref(&self) -> &ast::PolicySet {
2525        &self.ast
2526    }
2527}
2528
2529#[doc(hidden)]
2530impl From<ast::PolicySet> for PolicySet {
2531    fn from(pset: ast::PolicySet) -> Self {
2532        Self::from_ast(pset)
2533    }
2534}
2535
2536impl FromStr for PolicySet {
2537    type Err = ParseErrors;
2538
2539    /// Create a policy set from multiple statements.
2540    ///
2541    /// Policy ids will default to "policy*" with numbers from 0.
2542    /// If you load more policies, do not use the default id, or there will be conflicts.
2543    ///
2544    /// See [`Policy`] for more.
2545    fn from_str(policies: &str) -> Result<Self, Self::Err> {
2546        let (texts, pset) = parser::parse_policyset_and_also_return_policy_text(policies)?;
2547        #[expect(clippy::expect_used, reason = "By the invariant on `parse_policyset_and_also_return_policy_text(policies)`, every `PolicyId` in `pset.policies()` occurs as a key in `text`.")]
2548        let policies = pset.policies().map(|p|
2549            (
2550                PolicyId::new(p.id().clone()),
2551                Policy { lossless: LosslessPolicy::policy_or_template_text(*texts.get(p.id()).expect("internal invariant violation: policy id exists in asts but not texts")), ast: p.clone() }
2552            )
2553        ).collect();
2554        #[expect(
2555            clippy::expect_used,
2556            reason = "By the invariant on `parse_policyset_and_also_return_policy_text(policies)`, every `PolicyId` in `pset.templates()` also occurs as a key in `text`."
2557        )]
2558        let templates = pset
2559            .templates()
2560            .map(|t| {
2561                (
2562                    PolicyId::new(t.id().clone()),
2563                    Template {
2564                        lossless: LosslessTemplate::from_text(*texts.get(t.id()).expect(
2565                            "internal invariant violation: template id exists in asts but not ests",
2566                        )),
2567                        ast: t.clone(),
2568                    },
2569                )
2570            })
2571            .collect();
2572        Ok(Self {
2573            ast: pset,
2574            policies,
2575            templates,
2576        })
2577    }
2578}
2579
2580impl PolicySet {
2581    /// Build the policy set AST from the EST
2582    fn from_est(est: &est::PolicySet) -> Result<Self, PolicySetError> {
2583        let ast: ast::PolicySet = est.clone().try_into()?;
2584        #[expect(
2585            clippy::expect_used,
2586            reason = "Since conversion from EST to AST succeeded, every `PolicyId` in `ast.policies()` occurs in `est`"
2587        )]
2588        let policies = ast
2589            .policies()
2590            .map(|p| {
2591                (
2592                    PolicyId::new(p.id().clone()),
2593                    Policy {
2594                        lossless: LosslessPolicy::Est(est.get_policy(p.id()).expect(
2595                            "internal invariant violation: policy id exists in asts but not ests",
2596                        )),
2597                        ast: p.clone(),
2598                    },
2599                )
2600            })
2601            .collect();
2602        #[expect(
2603            clippy::expect_used,
2604            reason = "Since conversion from EST to AST succeeded, every `PolicyId` in `ast.templates()` occurs in `est`"
2605        )]
2606        let templates = ast
2607            .templates()
2608            .map(|t| {
2609                (
2610                    PolicyId::new(t.id().clone()),
2611                    Template {
2612                        lossless: LosslessTemplate::Est(est.get_template(t.id()).expect(
2613                            "internal invariant violation: template id exists in asts but not ests",
2614                        )),
2615                        ast: t.clone(),
2616                    },
2617                )
2618            })
2619            .collect();
2620        Ok(Self {
2621            ast,
2622            policies,
2623            templates,
2624        })
2625    }
2626
2627    /// Build the [`PolicySet`] from just the AST information
2628    pub(crate) fn from_ast(ast: ast::PolicySet) -> Self {
2629        let templates = ast
2630            .templates()
2631            .cloned()
2632            .map(|t| (PolicyId::new(t.id().clone()), t.into()))
2633            .collect();
2634        let policies = ast
2635            .policies()
2636            .cloned()
2637            .map(|p| (PolicyId::new(p.id().clone()), p.into()))
2638            .collect();
2639        Self {
2640            ast,
2641            policies,
2642            templates,
2643        }
2644    }
2645
2646    /// Construct a [`PolicySet`] from a PST [`pst::PolicySet`].
2647    ///
2648    /// Templates, static policies, and template links are all converted.
2649    /// A subsequent call to [`to_pst()`](Self::to_pst) or
2650    /// [`try_into_pst()`](Self::try_into_pst) will return the original PST
2651    /// without re-conversion.
2652    pub fn from_pst(pst_set: pst::PolicySet) -> Result<Self, PolicySetError> {
2653        let mut set = Self::new();
2654        for (id, template) in pst_set.templates {
2655            if id != template.id {
2656                return Err(policy_set_errors::InconsistentPolicyId {
2657                    map_key: id.into(),
2658                    inner_id: template.id.into(),
2659                }
2660                .into());
2661            }
2662            let ast_template: ast::Template = template.clone().try_into()?;
2663            set.ast.add_template(ast_template.clone())?;
2664            set.templates.insert(
2665                id.into(),
2666                Template {
2667                    ast: ast_template,
2668                    lossless: LosslessTemplate::Pst(template),
2669                },
2670            );
2671        }
2672        for (id, static_policy) in pst_set.policies {
2673            if &id != static_policy.id() {
2674                return Err(policy_set_errors::InconsistentPolicyId {
2675                    map_key: id.into(),
2676                    inner_id: static_policy.id().clone().into(),
2677                }
2678                .into());
2679            }
2680            let pst_policy = pst::Policy::Static(static_policy);
2681            let ast_policy: ast::Policy = pst_policy.clone().try_into()?;
2682            set.ast.add(ast_policy.clone())?;
2683            set.policies.insert(
2684                id.into(),
2685                Policy {
2686                    ast: ast_policy,
2687                    lossless: LosslessPolicy::Pst(pst_policy),
2688                },
2689            );
2690        }
2691        for link in pst_set.template_links {
2692            let vals: HashMap<SlotId, EntityUid> = link
2693                .values
2694                .into_iter()
2695                .map(|(k, v)| {
2696                    let ast_uid = ast::EntityUID::from(v);
2697                    (k.into(), EntityUid(ast_uid))
2698                })
2699                .collect();
2700            set.link(link.template_id.into(), link.new_id.into(), vals)?;
2701        }
2702        Ok(set)
2703    }
2704
2705    /// Deserialize the [`PolicySet`] from a JSON string
2706    pub fn from_json_str(src: impl AsRef<str>) -> Result<Self, PolicySetError> {
2707        let est: est::PolicySet = serde_json::from_str(src.as_ref())
2708            .map_err(|e| policy_set_errors::JsonPolicySetError { inner: e })?;
2709        Self::from_est(&est)
2710    }
2711
2712    /// Deserialize the [`PolicySet`] from a JSON value
2713    pub fn from_json_value(src: serde_json::Value) -> Result<Self, PolicySetError> {
2714        let est: est::PolicySet = serde_json::from_value(src)
2715            .map_err(|e| policy_set_errors::JsonPolicySetError { inner: e })?;
2716        Self::from_est(&est)
2717    }
2718
2719    /// Deserialize the [`PolicySet`] from a JSON reader
2720    pub fn from_json_file(r: impl std::io::Read) -> Result<Self, PolicySetError> {
2721        let est: est::PolicySet = serde_json::from_reader(r)
2722            .map_err(|e| policy_set_errors::JsonPolicySetError { inner: e })?;
2723        Self::from_est(&est)
2724    }
2725
2726    /// Serialize the [`PolicySet`] as a JSON value
2727    pub fn to_json(self) -> Result<serde_json::Value, PolicySetError> {
2728        let est = self.est()?;
2729        let value = serde_json::to_value(est)
2730            .map_err(|e| policy_set_errors::JsonPolicySetError { inner: e })?;
2731        Ok(value)
2732    }
2733
2734    /// Get the PST representation of this [`PolicySet`].
2735    ///
2736    /// Returns a [`pst::PolicySet`] containing the templates, static policies,
2737    /// and template links. Linked policies are decomposed into
2738    /// [`pst::TemplateLink`] entries.
2739    ///
2740    /// If the `PolicySet` was originally constructed from PST, the stored
2741    /// representation is cloned. Otherwise, each policy and template is
2742    /// converted to PST.
2743    pub fn to_pst(&self) -> Result<pst::PolicySet, PolicySetError> {
2744        let templates = self
2745            .templates
2746            .iter()
2747            .map(|(id, t)| Ok((id.clone().into(), t.to_pst()?)))
2748            .collect::<Result<_, pst::PstConstructionError>>()?;
2749        let mut policies = LinkedHashMap::new();
2750        let mut template_links = Vec::new();
2751        for (id, policy) in &self.policies {
2752            if policy.is_static() {
2753                if let pst::Policy::Static(sp) = policy.to_pst()? {
2754                    policies.insert(id.clone().into(), sp);
2755                }
2756            } else {
2757                template_links.push(pst::TemplateLink {
2758                    template_id: policy.ast.template().id().clone().into(),
2759                    new_id: id.clone().into(),
2760                    values: policy
2761                        .ast
2762                        .env()
2763                        .iter()
2764                        .map(|(k, v)| ((*k).into(), v.clone().into()))
2765                        .collect(),
2766                });
2767            }
2768        }
2769        Ok(pst::PolicySet {
2770            templates,
2771            policies,
2772            template_links,
2773        })
2774    }
2775
2776    /// Get an owned PST representation of this [`PolicySet`].
2777    ///
2778    /// Like [`to_pst()`](Self::to_pst), but consumes `self` to avoid cloning
2779    /// when the `PolicySet` was originally constructed from PST.
2780    pub fn try_into_pst(self) -> Result<pst::PolicySet, PolicySetError> {
2781        let templates = self
2782            .templates
2783            .into_iter()
2784            .map(|(id, t)| Ok((id.into(), t.try_into_pst()?)))
2785            .collect::<Result<_, pst::PstConstructionError>>()?;
2786        let mut policies = LinkedHashMap::new();
2787        let mut template_links = Vec::new();
2788        for (id, policy) in self.policies {
2789            if policy.is_static() {
2790                if let pst::Policy::Static(sp) = policy.try_into_pst()? {
2791                    policies.insert(id.into(), sp);
2792                }
2793            } else {
2794                template_links.push(pst::TemplateLink {
2795                    template_id: policy.ast.template().id().clone().into(),
2796                    new_id: id.into(),
2797                    values: policy
2798                        .ast
2799                        .env()
2800                        .iter()
2801                        .map(|(k, v)| ((*k).into(), v.clone().into()))
2802                        .collect(),
2803                });
2804            }
2805        }
2806        Ok(pst::PolicySet {
2807            templates,
2808            policies,
2809            template_links,
2810        })
2811    }
2812
2813    /// Get the EST representation of the [`PolicySet`]
2814    fn est(self) -> Result<est::PolicySet, PolicyToJsonError> {
2815        let (static_policies, template_links): (Vec<_>, Vec<_>) =
2816            fold_partition(self.policies, is_static_or_link)?;
2817        let static_policies = static_policies.into_iter().collect::<LinkedHashMap<_, _>>();
2818        let templates = self
2819            .templates
2820            .into_iter()
2821            .map(|(id, template)| {
2822                template
2823                    .lossless
2824                    .est(|| template.ast.clone().into())
2825                    .map(|est| (id.into(), est))
2826            })
2827            .collect::<Result<LinkedHashMap<_, _>, _>>()?;
2828        let est = est::PolicySet {
2829            templates,
2830            static_policies,
2831            template_links,
2832        };
2833
2834        Ok(est)
2835    }
2836
2837    /// Get the human-readable Cedar syntax representation of this policy set.
2838    /// This function is primarily intended for rendering JSON policies in the
2839    /// human-readable syntax, but it will also return the original policy text
2840    /// (though possibly re-ordering policies within the policy set) when the
2841    /// policy-set contains policies parsed from the human-readable syntax.
2842    ///
2843    /// This will return `None` if there are any linked policies in the policy
2844    /// set because they cannot be directly rendered in Cedar syntax. It also
2845    /// cannot record policy ids because these cannot be specified in the Cedar
2846    /// syntax. The policies may be reordered, so parsing the resulting string
2847    /// with [`PolicySet::from_str`] is likely to yield different policy id
2848    /// assignments. For these reasons you should prefer serializing as JSON (or protobuf) and
2849    /// only using this function to obtain a representation to display to human
2850    /// users.
2851    ///
2852    /// This function does not format the policy according to any particular
2853    /// rules.  Policy formatting can be done through the Cedar policy CLI or
2854    /// the `cedar-policy-formatter` crate.
2855    pub fn to_cedar(&self) -> Option<String> {
2856        match self.stringify() {
2857            Some(StringifiedPolicySet {
2858                policies,
2859                policy_templates,
2860            }) => {
2861                let policies_as_vec = policies
2862                    .into_iter()
2863                    .chain(policy_templates)
2864                    .collect::<Vec<_>>();
2865                Some(policies_as_vec.join("\n\n"))
2866            }
2867            None => None,
2868        }
2869    }
2870
2871    /// Get the human-readable Cedar syntax representation of this policy set,
2872    /// as a vec of strings. This function is useful to break up a large cedar
2873    /// file containing many policies into individual policies.
2874    ///
2875    /// This will return `None` if there are any linked policies in the policy
2876    /// set because they cannot be directly rendered in Cedar syntax. It also
2877    /// cannot record policy ids because these cannot be specified in the Cedar
2878    /// syntax. The policies may be reordered, so parsing the resulting string
2879    /// with [`PolicySet::from_str`] is likely to yield different policy id
2880    /// assignments. For these reasons you should prefer serializing as JSON (or protobuf) and
2881    /// only using this function to obtain a compact cedar representation,
2882    /// perhaps for storage purposes.
2883    ///
2884    /// This function does not format the policy according to any particular
2885    /// rules.  Policy formatting can be done through the Cedar policy CLI or
2886    /// the `cedar-policy-formatter` crate.
2887    pub(crate) fn stringify(&self) -> Option<StringifiedPolicySet> {
2888        let policies = self
2889            .policies
2890            .values()
2891            // We'd like to print policies in a deterministic order, so we sort
2892            // before printing, hoping that the size of policy sets is fairly
2893            // small.
2894            .sorted_by_key(|p| AsRef::<str>::as_ref(p.id()))
2895            .map(Policy::to_cedar)
2896            .collect::<Option<Vec<_>>>()?;
2897        let policy_templates = self
2898            .templates
2899            .values()
2900            .sorted_by_key(|t| AsRef::<str>::as_ref(t.id()))
2901            .map(Template::to_cedar)
2902            .collect_vec();
2903
2904        Some(StringifiedPolicySet {
2905            policies,
2906            policy_templates,
2907        })
2908    }
2909
2910    /// Create a fresh empty `PolicySet`
2911    pub fn new() -> Self {
2912        Self {
2913            ast: ast::PolicySet::new(),
2914            policies: LinkedHashMap::new(),
2915            templates: LinkedHashMap::new(),
2916        }
2917    }
2918
2919    /// Create a `PolicySet` from the given policies
2920    pub fn from_policies(
2921        policies: impl IntoIterator<Item = Policy>,
2922    ) -> Result<Self, PolicySetError> {
2923        let mut set = Self::new();
2924        for policy in policies {
2925            set.add(policy)?;
2926        }
2927        Ok(set)
2928    }
2929
2930    /// Merges this `PolicySet` with another `PolicySet`.
2931    /// This `PolicySet` is modified while the other `PolicySet`
2932    /// remains unchanged.
2933    ///
2934    /// The flag `rename_duplicates` controls the expected behavior
2935    /// when a `PolicyId` in this and the other `PolicySet` conflict.
2936    ///
2937    /// When `rename_duplicates` is false, conflicting `PolicyId`s result
2938    /// in a `PolicySetError::AlreadyDefined` error.
2939    ///
2940    /// Otherwise, when `rename_duplicates` is true, conflicting `PolicyId`s from
2941    /// the other `PolicySet` are automatically renamed to avoid conflict.
2942    /// This renaming is returned as a Hashmap from the old `PolicyId` to the
2943    /// renamed `PolicyId`.
2944    pub fn merge(
2945        &mut self,
2946        other: &Self,
2947        rename_duplicates: bool,
2948    ) -> Result<HashMap<PolicyId, PolicyId>, PolicySetError> {
2949        match self.ast.merge_policyset(&other.ast, rename_duplicates) {
2950            Ok(renaming) => {
2951                let renaming: HashMap<PolicyId, PolicyId> = renaming
2952                    .into_iter()
2953                    .map(|(old_pid, new_pid)| (PolicyId::new(old_pid), PolicyId::new(new_pid)))
2954                    .collect();
2955
2956                for (old_pid, op) in &other.policies {
2957                    let pid = renaming.get(old_pid).unwrap_or(old_pid);
2958                    if !self.policies.contains_key(pid) {
2959                        let lossless = if renaming.contains_key(old_pid) {
2960                            op.lossless.new_id(pid.clone())
2961                        } else {
2962                            op.lossless.clone()
2963                        };
2964                        #[expect(
2965                            clippy::unwrap_used,
2966                            reason = "`pid` is the new id of a policy from `other`, so it will be in `self` after merging"
2967                        )]
2968                        let new_p = Policy {
2969                            // Use the representation from `self.ast` so that we get a version with internal references to
2970                            // policy ids updated to account for the renaming.
2971                            ast: self.ast.get(pid.as_ref()).unwrap().clone(),
2972                            lossless,
2973                        };
2974                        self.policies.insert(pid.clone(), new_p);
2975                    }
2976                }
2977                for (old_pid, ot) in &other.templates {
2978                    let pid = renaming.get(old_pid).unwrap_or(old_pid);
2979                    if !self.templates.contains_key(pid) {
2980                        let lossless = if renaming.contains_key(old_pid) {
2981                            ot.lossless.new_id(pid.clone())
2982                        } else {
2983                            ot.lossless.clone()
2984                        };
2985                        #[expect(
2986                            clippy::unwrap_used,
2987                            reason = "`pid` is the new id of a template from `other`, so it will be in `self` after merging"
2988                        )]
2989                        let new_t = Template {
2990                            ast: self.ast.get_template(pid.as_ref()).unwrap().clone(),
2991                            lossless,
2992                        };
2993                        self.templates.insert(pid.clone(), new_t);
2994                    }
2995                }
2996
2997                Ok(renaming)
2998            }
2999            Err(ast::PolicySetError::Occupied { id }) => Err(PolicySetError::AlreadyDefined(
3000                policy_set_errors::AlreadyDefined {
3001                    id: PolicyId::new(id),
3002                },
3003            )),
3004        }
3005    }
3006
3007    /// Add an static policy to the `PolicySet`. To add a template instance, use
3008    /// `link` instead. This function will return an error (and not modify
3009    /// the `PolicySet`) if a template-linked policy is passed in.
3010    pub fn add(&mut self, policy: Policy) -> Result<(), PolicySetError> {
3011        if policy.is_static() {
3012            let id = PolicyId::new(policy.ast.id().clone());
3013            self.ast.add(policy.ast.clone())?;
3014            self.policies.insert(id, policy);
3015            Ok(())
3016        } else {
3017            Err(PolicySetError::ExpectedStatic(
3018                policy_set_errors::ExpectedStatic::new(),
3019            ))
3020        }
3021    }
3022
3023    /// Remove a static `Policy` from the `PolicySet`.
3024    ///
3025    /// This will error if the policy is not a static policy.
3026    pub fn remove_static(&mut self, policy_id: PolicyId) -> Result<Policy, PolicySetError> {
3027        let Some(policy) = self.policies.remove(&policy_id) else {
3028            return Err(PolicySetError::PolicyNonexistent(
3029                policy_set_errors::PolicyNonexistentError { policy_id },
3030            ));
3031        };
3032        if self
3033            .ast
3034            .remove_static(&ast::PolicyID::from_string(&policy_id))
3035            .is_ok()
3036        {
3037            Ok(policy)
3038        } else {
3039            //Restore self.policies
3040            self.policies.insert(policy_id.clone(), policy);
3041            Err(PolicySetError::PolicyNonexistent(
3042                policy_set_errors::PolicyNonexistentError { policy_id },
3043            ))
3044        }
3045    }
3046
3047    /// Add a `Template` to the `PolicySet`
3048    pub fn add_template(&mut self, template: Template) -> Result<(), PolicySetError> {
3049        let id = PolicyId::new(template.ast.id().clone());
3050        self.ast.add_template(template.ast.clone())?;
3051        self.templates.insert(id, template);
3052        Ok(())
3053    }
3054
3055    /// Remove a `Template` from the `PolicySet`.
3056    ///
3057    /// This will error if any policy is linked to the template.
3058    /// This will error if `policy_id` is not a template.
3059    pub fn remove_template(&mut self, template_id: PolicyId) -> Result<Template, PolicySetError> {
3060        let Some(template) = self.templates.remove(&template_id) else {
3061            return Err(PolicySetError::TemplateNonexistent(
3062                policy_set_errors::TemplateNonexistentError { template_id },
3063            ));
3064        };
3065        // If self.templates and self.ast disagree, authorization cannot be trusted.
3066        #[expect(clippy::panic, reason = "We just found the policy in self.templates")]
3067        match self
3068            .ast
3069            .remove_template(&ast::PolicyID::from_string(&template_id))
3070        {
3071            Ok(_) => Ok(template),
3072            Err(ast::PolicySetTemplateRemovalError::RemoveTemplateWithLinksError(_)) => {
3073                self.templates.insert(template_id.clone(), template);
3074                Err(PolicySetError::RemoveTemplateWithActiveLinks(
3075                    policy_set_errors::RemoveTemplateWithActiveLinksError { template_id },
3076                ))
3077            }
3078            Err(ast::PolicySetTemplateRemovalError::NotTemplateError(_)) => {
3079                self.templates.insert(template_id.clone(), template);
3080                Err(PolicySetError::RemoveTemplateNotTemplate(
3081                    policy_set_errors::RemoveTemplateNotTemplateError { template_id },
3082                ))
3083            }
3084            Err(ast::PolicySetTemplateRemovalError::RemovePolicyNoTemplateError(_)) => {
3085                panic!("Found template policy in self.templates but not in self.ast");
3086            }
3087        }
3088    }
3089
3090    /// Get policies linked to a `Template` in the `PolicySet`.
3091    /// If any policy is linked to the template, this will error
3092    pub fn get_linked_policies(
3093        &self,
3094        template_id: PolicyId,
3095    ) -> Result<impl Iterator<Item = &PolicyId>, PolicySetError> {
3096        self.ast
3097            .get_linked_policies(&ast::PolicyID::from_string(&template_id))
3098            .map_or_else(
3099                |_| {
3100                    Err(PolicySetError::TemplateNonexistent(
3101                        policy_set_errors::TemplateNonexistentError { template_id },
3102                    ))
3103                },
3104                |v| Ok(v.map(PolicyId::ref_cast)),
3105            )
3106    }
3107
3108    /// Iterate over all the `Policy`s in the `PolicySet`.
3109    ///
3110    /// This will include both static and template-linked policies.
3111    pub fn policies(&self) -> impl Iterator<Item = &Policy> {
3112        self.policies.values()
3113    }
3114
3115    /// Iterate over the `Template`'s in the `PolicySet`.
3116    pub fn templates(&self) -> impl Iterator<Item = &Template> {
3117        self.templates.values()
3118    }
3119
3120    /// Get a `Template` by its `PolicyId`
3121    pub fn template(&self, id: &PolicyId) -> Option<&Template> {
3122        self.templates.get(id)
3123    }
3124
3125    /// Get a `Policy` by its `PolicyId`
3126    pub fn policy(&self, id: &PolicyId) -> Option<&Policy> {
3127        self.policies.get(id)
3128    }
3129
3130    /// Extract annotation data from a `Policy` by its `PolicyId` and annotation key.
3131    /// If the annotation is present without an explicit value (e.g., `@annotation`),
3132    /// then this function returns `Some("")`. It returns `None` only when the
3133    /// annotation is not present.
3134    pub fn annotation(&self, id: &PolicyId, key: impl AsRef<str>) -> Option<&str> {
3135        self.ast
3136            .get(id.as_ref())?
3137            .annotation(&key.as_ref().parse().ok()?)
3138            .map(AsRef::as_ref)
3139    }
3140
3141    /// Extract annotation data from a `Template` by its `PolicyId` and annotation key.
3142    /// If the annotation is present without an explicit value (e.g., `@annotation`),
3143    /// then this function returns `Some("")`. It returns `None` only when the
3144    /// annotation is not present.
3145    pub fn template_annotation(&self, id: &PolicyId, key: impl AsRef<str>) -> Option<&str> {
3146        self.ast
3147            .get_template(id.as_ref())?
3148            .annotation(&key.as_ref().parse().ok()?)
3149            .map(AsRef::as_ref)
3150    }
3151
3152    /// Returns true iff the `PolicySet` is empty
3153    pub fn is_empty(&self) -> bool {
3154        debug_assert_eq!(
3155            self.ast.is_empty(),
3156            self.policies.is_empty() && self.templates.is_empty()
3157        );
3158        self.ast.is_empty()
3159    }
3160
3161    /// Returns the number of `Policy`s in the `PolicySet`.
3162    ///
3163    /// This will include both static and template-linked policies.
3164    pub fn num_of_policies(&self) -> usize {
3165        self.policies.len()
3166    }
3167
3168    /// Returns the number of `Template`s in the `PolicySet`.
3169    pub fn num_of_templates(&self) -> usize {
3170        self.templates.len()
3171    }
3172
3173    /// Attempt to link a template and add the new template-linked policy to the policy set.
3174    /// If link fails, the `PolicySet` is not modified.
3175    /// Failure can happen for three reasons
3176    ///   1) The map passed in `vals` may not match the slots in the template
3177    ///   2) The `new_id` may conflict w/ a policy that already exists in the set
3178    ///   3) `template_id` does not correspond to a template. Either the id is
3179    ///      not in the policy set, or it is in the policy set but is either a
3180    ///      linked or static policy rather than a template
3181    pub fn link(
3182        &mut self,
3183        template_id: PolicyId,
3184        new_id: PolicyId,
3185        vals: HashMap<SlotId, EntityUid>,
3186    ) -> Result<(), PolicySetError> {
3187        let unwrapped_vals: HashMap<ast::SlotId, ast::EntityUID> = vals
3188            .into_iter()
3189            .map(|(key, value)| (key.into(), value.into()))
3190            .collect();
3191
3192        // Try to get the template with the id we're linking from.  We do this
3193        // _before_ calling `self.ast.link` because `link` mutates the policy
3194        // set by creating a new link entry in a hashmap. This happens even when
3195        // trying to link a static policy, which we want to error on here.
3196        let Some(template) = self.templates.get(&template_id) else {
3197            return Err(if self.policies.contains_key(&template_id) {
3198                policy_set_errors::ExpectedTemplate::new().into()
3199            } else {
3200                policy_set_errors::LinkingError {
3201                    inner: ast::LinkingError::NoSuchTemplate {
3202                        id: template_id.into(),
3203                    },
3204                }
3205                .into()
3206            });
3207        };
3208
3209        let linked_ast = self.ast.link(
3210            template_id.into(),
3211            new_id.clone().into(),
3212            unwrapped_vals.clone(),
3213        )?;
3214
3215        #[expect(
3216            clippy::expect_used,
3217            reason = "`lossless.link()` will not fail after `ast.link()` succeeds"
3218        )]
3219        let linked_lossless = template
3220            .lossless
3221            .clone()
3222            .link(
3223                new_id.clone().into(),
3224                unwrapped_vals.iter().map(|(k, v)| (*k, v)),
3225            )
3226            // The only error case for `lossless.link()` is a template with
3227            // slots which are not filled by the provided values. `ast.link()`
3228            // will have already errored if there are any unfilled slots in the
3229            // template.
3230            .expect("ast.link() didn't fail above, so this shouldn't fail");
3231        self.policies.insert(
3232            new_id,
3233            Policy {
3234                ast: linked_ast.clone(),
3235                lossless: linked_lossless,
3236            },
3237        );
3238        Ok(())
3239    }
3240
3241    /// Get all the unknown entities from the policy set
3242    #[doc = include_str!("../experimental_warning.md")]
3243    #[cfg(feature = "partial-eval")]
3244    pub fn unknown_entities(&self) -> HashSet<EntityUid> {
3245        let mut entity_uids = HashSet::new();
3246        for policy in self.policies.values() {
3247            entity_uids.extend(policy.unknown_entities());
3248        }
3249        entity_uids
3250    }
3251
3252    /// Unlink a template-linked policy from the policy set.
3253    /// Returns the policy that was unlinked.
3254    pub fn unlink(&mut self, policy_id: PolicyId) -> Result<Policy, PolicySetError> {
3255        let Some(policy) = self.policies.remove(&policy_id) else {
3256            return Err(PolicySetError::LinkNonexistent(
3257                policy_set_errors::LinkNonexistentError { policy_id },
3258            ));
3259        };
3260        // If self.policies and self.ast disagree, authorization cannot be trusted.
3261        #[expect(clippy::panic, reason = "We just found the policy in self.policies")]
3262        match self.ast.unlink(&ast::PolicyID::from_string(&policy_id)) {
3263            Ok(_) => Ok(policy),
3264            Err(ast::PolicySetUnlinkError::NotLinkError(_)) => {
3265                //Restore self.policies
3266                self.policies.insert(policy_id.clone(), policy);
3267                Err(PolicySetError::UnlinkLinkNotLink(
3268                    policy_set_errors::UnlinkLinkNotLinkError { policy_id },
3269                ))
3270            }
3271            Err(ast::PolicySetUnlinkError::UnlinkingError(_)) => {
3272                panic!("Found linked policy in self.policies but not in self.ast")
3273            }
3274        }
3275    }
3276}
3277
3278impl std::fmt::Display for PolicySet {
3279    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
3280        // prefer to display the lossless format
3281        let mut policies = self.policies().peekable();
3282        while let Some(policy) = policies.next() {
3283            policy.lossless.fmt(|| policy.ast.clone().into(), f)?;
3284            if policies.peek().is_some() {
3285                writeln!(f)?;
3286            }
3287        }
3288        Ok(())
3289    }
3290}
3291
3292/// Given a [`PolicyId`] and a [`Policy`], determine if the policy represents a static policy or a
3293/// link
3294fn is_static_or_link(
3295    (id, policy): (PolicyId, Policy),
3296) -> Result<Either<(ast::PolicyID, est::Policy), TemplateLink>, PolicyToJsonError> {
3297    match policy.template_id() {
3298        Some(template_id) => {
3299            let values = policy
3300                .ast
3301                .env()
3302                .iter()
3303                .map(|(id, euid)| (*id, euid.clone()))
3304                .collect();
3305            Ok(Either::Right(TemplateLink {
3306                new_id: id.into(),
3307                template_id: template_id.clone().into(),
3308                values,
3309            }))
3310        }
3311        None => policy
3312            .lossless
3313            .est(|| policy.ast.clone().into())
3314            .map(|est| Either::Left((id.into(), est))),
3315    }
3316}
3317
3318/// Like [`itertools::Itertools::partition_map`], but accepts a function that can fail.
3319/// The first invocation of `f` that fails causes the whole computation to fail
3320#[expect(
3321    clippy::redundant_pub_crate,
3322    reason = "can't be private because it's used in tests"
3323)]
3324pub(crate) fn fold_partition<T, A, B, E>(
3325    i: impl IntoIterator<Item = T>,
3326    f: impl Fn(T) -> Result<Either<A, B>, E>,
3327) -> Result<(Vec<A>, Vec<B>), E> {
3328    let mut lefts = vec![];
3329    let mut rights = vec![];
3330
3331    for item in i {
3332        match f(item)? {
3333            Either::Left(left) => lefts.push(left),
3334            Either::Right(right) => rights.push(right),
3335        }
3336    }
3337
3338    Ok((lefts, rights))
3339}
3340
3341/// The "type" of a [`Request`], i.e., the [`EntityTypeName`]s of principal
3342/// and resource, the [`EntityUid`] of action, and [`Option<EntityTypeName>`]s
3343/// of principal slot and resource slot
3344#[derive(Debug, Clone, PartialEq, Eq, Hash, PartialOrd, Ord)]
3345pub struct RequestEnv {
3346    pub(crate) principal: EntityTypeName,
3347    pub(crate) action: EntityUid,
3348    pub(crate) resource: EntityTypeName,
3349    pub(crate) principal_slot: Option<EntityTypeName>,
3350    pub(crate) resource_slot: Option<EntityTypeName>,
3351}
3352
3353impl RequestEnv {
3354    /// Construct a [`RequestEnv`]
3355    pub fn new(principal: EntityTypeName, action: EntityUid, resource: EntityTypeName) -> Self {
3356        Self {
3357            principal,
3358            action,
3359            resource,
3360            principal_slot: None,
3361            resource_slot: None,
3362        }
3363    }
3364
3365    /// Construct a [`RequestEnv`] that contains slots in the scope
3366    pub fn new_request_env_with_slots(
3367        principal: EntityTypeName,
3368        action: EntityUid,
3369        resource: EntityTypeName,
3370        principal_slot: Option<EntityTypeName>,
3371        resource_slot: Option<EntityTypeName>,
3372    ) -> Self {
3373        Self {
3374            principal,
3375            action,
3376            resource,
3377            principal_slot,
3378            resource_slot,
3379        }
3380    }
3381
3382    /// Get the principal type name
3383    pub fn principal(&self) -> &EntityTypeName {
3384        &self.principal
3385    }
3386
3387    /// Get the action [`EntityUid`]
3388    pub fn action(&self) -> &EntityUid {
3389        &self.action
3390    }
3391
3392    /// Get the resource type name
3393    pub fn resource(&self) -> &EntityTypeName {
3394        &self.resource
3395    }
3396
3397    /// Get the principal slot type name
3398    pub fn principal_slot(&self) -> Option<&EntityTypeName> {
3399        self.principal_slot.as_ref()
3400    }
3401
3402    /// Get the resource slot type name
3403    pub fn resource_slot(&self) -> Option<&EntityTypeName> {
3404        self.resource_slot.as_ref()
3405    }
3406}
3407
3408#[doc(hidden)]
3409impl From<cedar_policy_core::validator::types::RequestEnv<'_>> for RequestEnv {
3410    fn from(renv: cedar_policy_core::validator::types::RequestEnv<'_>) -> Self {
3411        match renv {
3412            cedar_policy_core::validator::types::RequestEnv::DeclaredAction {
3413                principal,
3414                action,
3415                resource,
3416                principal_slot,
3417                resource_slot,
3418                ..
3419            } => Self {
3420                principal: principal.clone().into(),
3421                action: action.clone().into(),
3422                resource: resource.clone().into(),
3423                principal_slot: principal_slot.map(EntityTypeName::from),
3424                resource_slot: resource_slot.map(EntityTypeName::from),
3425            },
3426            #[expect(
3427                clippy::unreachable,
3428                reason = "partial validation is not enabled and hence `RequestEnv::UndeclaredAction` should not show up"
3429            )]
3430            cedar_policy_core::validator::types::RequestEnv::UndeclaredAction => {
3431                unreachable!("used unsupported feature")
3432            }
3433        }
3434    }
3435}
3436
3437/// Get valid request envs for an `ast::Template`
3438///
3439/// This function is called by [`Template::get_valid_request_envs`] and
3440/// [`Policy::get_valid_request_envs`]
3441fn get_valid_request_envs(ast: &ast::Template, s: &Schema) -> impl Iterator<Item = RequestEnv> {
3442    let tc = Typechecker::new(
3443        &s.0,
3444        cedar_policy_core::validator::ValidationMode::default(),
3445    );
3446    tc.typecheck_by_request_env(ast)
3447        .filter_map(|(env, pc)| {
3448            if matches!(pc, PolicyCheck::Success(_)) {
3449                Some(env.into())
3450            } else {
3451                None
3452            }
3453        })
3454        .collect::<BTreeSet<_>>()
3455        .into_iter()
3456}
3457
3458/// Policy template datatype
3459//
3460// NOTE: Unlike the internal type [`ast::Template`], this type only supports
3461// templates. The `Template` constructors will return an error if provided with
3462// a static policy.
3463#[derive(Debug, Clone)]
3464pub struct Template {
3465    /// AST representation of the template, used for most operations.
3466    /// In particular, the `ast` contains the authoritative `PolicyId` for the template.
3467    pub(crate) ast: ast::Template,
3468
3469    /// Some "lossless" representation of the template, whichever is most
3470    /// convenient to provide (and can be provided with the least overhead).
3471    /// This is used just for `to_json()`.
3472    /// We can't just derive this on-demand from `ast`, because the AST is lossy:
3473    /// we can't reconstruct an accurate CST/EST/policy-text from the AST, but
3474    /// we can from the EST (modulo whitespace and a few other things like the
3475    /// order of annotations).
3476    pub(crate) lossless: LosslessTemplate,
3477}
3478
3479impl PartialEq for Template {
3480    fn eq(&self, other: &Self) -> bool {
3481        // eq is based on just the `ast`
3482        self.ast.eq(&other.ast)
3483    }
3484}
3485impl Eq for Template {}
3486
3487#[doc(hidden)] // because this converts to a private/internal type
3488impl AsRef<ast::Template> for Template {
3489    fn as_ref(&self) -> &ast::Template {
3490        &self.ast
3491    }
3492}
3493
3494#[doc(hidden)]
3495impl From<ast::Template> for Template {
3496    fn from(template: ast::Template) -> Self {
3497        Self::from_ast(template)
3498    }
3499}
3500
3501impl Template {
3502    /// Construct a [`Template`] from a PST template.
3503    /// Returns an error if the PST template has no template slots.
3504    pub fn from_pst(pst_template: pst::Template) -> Result<Self, pst::PstConstructionError> {
3505        let ast: ast::Template = pst_template.clone().try_into()?;
3506        if ast.slots().count() == 0 {
3507            return Err(error_body::ExpectedTemplateWithSlotsError.into());
3508        }
3509        Ok(Self {
3510            ast,
3511            lossless: LosslessTemplate::Pst(pst_template),
3512        })
3513    }
3514
3515    /// Get the PST representation of this template.
3516    pub fn to_pst(&self) -> Result<pst::Template, pst::PstConstructionError> {
3517        self.lossless
3518            .pst(|| pst::Template::try_from(self.ast.clone()))
3519            .map(|t| t.with_id(self.ast.id().clone().into()))
3520    }
3521
3522    /// Get an owned PST representation of this template.
3523    /// Can return an error if the template was built from a non-PST representation that
3524    /// is not a valid Cedar template.
3525    pub fn try_into_pst(self) -> Result<pst::Template, pst::PstConstructionError> {
3526        self.lossless
3527            .try_into_pst(|| pst::Template::try_from(self.ast))
3528    }
3529
3530    /// Attempt to parse a [`Template`] from source.
3531    /// Returns an error if the input is a static policy (i.e., has no slots).
3532    /// If `id` is Some, then the resulting template will have that `id`.
3533    /// If the `id` is None, the parser will use the default "policy0".
3534    /// The behavior around None may change in the future.
3535    pub fn parse(id: Option<PolicyId>, src: impl AsRef<str>) -> Result<Self, ParseErrors> {
3536        let ast = parser::parse_template(id.map(Into::into), src.as_ref())?;
3537        Ok(Self {
3538            ast,
3539            lossless: LosslessTemplate::from_text(Some(src.as_ref())),
3540        })
3541    }
3542
3543    /// Get the `PolicyId` of this `Template`
3544    pub fn id(&self) -> &PolicyId {
3545        PolicyId::ref_cast(self.ast.id())
3546    }
3547
3548    /// Clone this `Template` with a new `PolicyId`
3549    #[must_use]
3550    pub fn new_id(&self, id: PolicyId) -> Self {
3551        Self {
3552            ast: self.ast.new_id(id.clone().into()),
3553            lossless: self.lossless.new_id(id),
3554        }
3555    }
3556
3557    /// Get the `Effect` (`Forbid` or `Permit`) of this `Template`
3558    pub fn effect(&self) -> Effect {
3559        self.ast.effect()
3560    }
3561
3562    /// Returns `true` if this template has a `when` or `unless` clause.
3563    pub fn has_non_scope_constraint(&self) -> bool {
3564        self.ast.non_scope_constraints().is_some()
3565    }
3566
3567    /// Get an annotation value of this `Template`.
3568    /// If the annotation is present without an explicit value (e.g., `@annotation`),
3569    /// then this function returns `Some("")`. Returns `None` when the
3570    /// annotation is not present or when `key` is not a valid annotation identifier.
3571    pub fn annotation(&self, key: impl AsRef<str>) -> Option<&str> {
3572        self.ast
3573            .annotation(&key.as_ref().parse().ok()?)
3574            .map(AsRef::as_ref)
3575    }
3576
3577    /// Iterate through annotation data of this `Template` as key-value pairs.
3578    /// Annotations which do not have an explicit value (e.g., `@annotation`),
3579    /// are included in the iterator with the value `""`.
3580    pub fn annotations(&self) -> impl Iterator<Item = (&str, &str)> {
3581        self.ast
3582            .annotations()
3583            .map(|(k, v)| (k.as_ref(), v.as_ref()))
3584    }
3585
3586    /// Iterate over the open slots in this `Template`
3587    pub fn slots(&self) -> impl Iterator<Item = &SlotId> {
3588        self.ast.slots().map(|slot| SlotId::ref_cast(&slot.id))
3589    }
3590
3591    /// Get the scope constraint on this policy's principal
3592    pub fn principal_constraint(&self) -> TemplatePrincipalConstraint {
3593        match self.ast.principal_constraint().as_inner() {
3594            ast::PrincipalOrResourceConstraint::Any => TemplatePrincipalConstraint::Any,
3595            ast::PrincipalOrResourceConstraint::In(eref) => {
3596                TemplatePrincipalConstraint::In(match eref {
3597                    ast::EntityReference::EUID(e) => Some(e.as_ref().clone().into()),
3598                    ast::EntityReference::Slot(_) => None,
3599                })
3600            }
3601            ast::PrincipalOrResourceConstraint::Eq(eref) => {
3602                TemplatePrincipalConstraint::Eq(match eref {
3603                    ast::EntityReference::EUID(e) => Some(e.as_ref().clone().into()),
3604                    ast::EntityReference::Slot(_) => None,
3605                })
3606            }
3607            ast::PrincipalOrResourceConstraint::Is(entity_type) => {
3608                TemplatePrincipalConstraint::Is(entity_type.as_ref().clone().into())
3609            }
3610            ast::PrincipalOrResourceConstraint::IsIn(entity_type, eref) => {
3611                TemplatePrincipalConstraint::IsIn(
3612                    entity_type.as_ref().clone().into(),
3613                    match eref {
3614                        ast::EntityReference::EUID(e) => Some(e.as_ref().clone().into()),
3615                        ast::EntityReference::Slot(_) => None,
3616                    },
3617                )
3618            }
3619        }
3620    }
3621
3622    /// Get the scope constraint on this policy's action
3623    pub fn action_constraint(&self) -> ActionConstraint {
3624        // Clone the data from Core to be consistent with the other constraints
3625        match self.ast.action_constraint() {
3626            ast::ActionConstraint::Any => ActionConstraint::Any,
3627            ast::ActionConstraint::In(ids) => {
3628                ActionConstraint::In(ids.iter().map(|id| id.as_ref().clone().into()).collect())
3629            }
3630            ast::ActionConstraint::Eq(id) => ActionConstraint::Eq(id.as_ref().clone().into()),
3631            #[cfg(feature = "tolerant-ast")]
3632            #[expect(clippy::unimplemented, reason = "experimental feature")]
3633            ast::ActionConstraint::ErrorConstraint => {
3634                unimplemented!("internal ErrorConstraint cannot be represented in the public API")
3635            }
3636        }
3637    }
3638
3639    /// Get the scope constraint on this policy's resource
3640    pub fn resource_constraint(&self) -> TemplateResourceConstraint {
3641        match self.ast.resource_constraint().as_inner() {
3642            ast::PrincipalOrResourceConstraint::Any => TemplateResourceConstraint::Any,
3643            ast::PrincipalOrResourceConstraint::In(eref) => {
3644                TemplateResourceConstraint::In(match eref {
3645                    ast::EntityReference::EUID(e) => Some(e.as_ref().clone().into()),
3646                    ast::EntityReference::Slot(_) => None,
3647                })
3648            }
3649            ast::PrincipalOrResourceConstraint::Eq(eref) => {
3650                TemplateResourceConstraint::Eq(match eref {
3651                    ast::EntityReference::EUID(e) => Some(e.as_ref().clone().into()),
3652                    ast::EntityReference::Slot(_) => None,
3653                })
3654            }
3655            ast::PrincipalOrResourceConstraint::Is(entity_type) => {
3656                TemplateResourceConstraint::Is(entity_type.as_ref().clone().into())
3657            }
3658            ast::PrincipalOrResourceConstraint::IsIn(entity_type, eref) => {
3659                TemplateResourceConstraint::IsIn(
3660                    entity_type.as_ref().clone().into(),
3661                    match eref {
3662                        ast::EntityReference::EUID(e) => Some(e.as_ref().clone().into()),
3663                        ast::EntityReference::Slot(_) => None,
3664                    },
3665                )
3666            }
3667        }
3668    }
3669
3670    /// Create a [`Template`] from its JSON representation.
3671    /// Returns an error if the input is a static policy (i.e., has no slots).
3672    /// If `id` is Some, the policy will be given that Policy Id.
3673    /// If `id` is None, then "JSON policy" will be used.
3674    /// The behavior around None may change in the future.
3675    pub fn from_json(
3676        id: Option<PolicyId>,
3677        json: serde_json::Value,
3678    ) -> Result<Self, PolicyFromJsonError> {
3679        let est: est::Policy = serde_json::from_value(json)
3680            .map_err(|e| entities_json_errors::JsonDeserializationError::Serde(e.into()))
3681            .map_err(cedar_policy_core::est::FromJsonError::from)?;
3682        Self::from_est(id, est)
3683    }
3684
3685    fn from_est(id: Option<PolicyId>, est: est::Policy) -> Result<Self, PolicyFromJsonError> {
3686        Ok(Self {
3687            ast: est.clone().try_into_ast_template(id.map(PolicyId::into))?,
3688            lossless: LosslessTemplate::Est(est),
3689        })
3690    }
3691
3692    pub(crate) fn from_ast(ast: ast::Template) -> Self {
3693        Self {
3694            lossless: LosslessTemplate::Est(ast.clone().into()),
3695            ast,
3696        }
3697    }
3698
3699    /// Get the JSON representation of this `Template`.
3700    pub fn to_json(&self) -> Result<serde_json::Value, PolicyToJsonError> {
3701        let est = self.lossless.est(|| self.ast.clone().into())?;
3702        serde_json::to_value(est).map_err(Into::into)
3703    }
3704
3705    /// Get the human-readable Cedar syntax representation of this template.
3706    /// This function is primarily intended for rendering JSON policies in the
3707    /// human-readable syntax, but it will also return the original policy text
3708    /// when given a policy parsed from the human-readable syntax.
3709    ///
3710    /// It also does not format the policy according to any particular rules.
3711    /// Policy formatting can be done through the Cedar policy CLI or
3712    /// the `cedar-policy-formatter` crate.
3713    pub fn to_cedar(&self) -> String {
3714        match &self.lossless {
3715            LosslessTemplate::Empty | LosslessTemplate::Est(_) | LosslessTemplate::Pst(_) => {
3716                self.ast.to_string()
3717            }
3718            LosslessTemplate::Text(text) => text.clone(),
3719        }
3720    }
3721
3722    /// Get the valid [`RequestEnv`]s for this template, according to the schema.
3723    ///
3724    /// That is, all the [`RequestEnv`]s in the schema for which this template is
3725    /// not trivially false.
3726    pub fn get_valid_request_envs(&self, s: &Schema) -> impl Iterator<Item = RequestEnv> {
3727        get_valid_request_envs(&self.ast, s)
3728    }
3729}
3730
3731impl std::fmt::Display for Template {
3732    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
3733        // prefer to display the lossless format
3734        self.lossless.fmt(|| self.ast.clone().into(), f)
3735    }
3736}
3737
3738impl FromStr for Template {
3739    type Err = ParseErrors;
3740
3741    fn from_str(src: &str) -> Result<Self, Self::Err> {
3742        Self::parse(None, src)
3743    }
3744}
3745
3746/// Scope constraint on policy principals.
3747#[derive(Debug, Clone, PartialEq, Eq)]
3748pub enum PrincipalConstraint {
3749    /// Un-constrained
3750    Any,
3751    /// Must be In the given [`EntityUid`]
3752    In(EntityUid),
3753    /// Must be equal to the given [`EntityUid`]
3754    Eq(EntityUid),
3755    /// Must be the given [`EntityTypeName`]
3756    Is(EntityTypeName),
3757    /// Must be the given [`EntityTypeName`], and `in` the [`EntityUid`]
3758    IsIn(EntityTypeName, EntityUid),
3759}
3760
3761/// Scope constraint on policy principals for templates.
3762#[derive(Debug, Clone, PartialEq, Eq)]
3763pub enum TemplatePrincipalConstraint {
3764    /// Un-constrained
3765    Any,
3766    /// Must be In the given [`EntityUid`].
3767    /// If [`None`], then it is a template slot.
3768    In(Option<EntityUid>),
3769    /// Must be equal to the given [`EntityUid`].
3770    /// If [`None`], then it is a template slot.
3771    Eq(Option<EntityUid>),
3772    /// Must be the given [`EntityTypeName`].
3773    Is(EntityTypeName),
3774    /// Must be the given [`EntityTypeName`], and `in` the [`EntityUid`].
3775    /// If the [`EntityUid`] is [`Option::None`], then it is a template slot.
3776    IsIn(EntityTypeName, Option<EntityUid>),
3777}
3778
3779impl TemplatePrincipalConstraint {
3780    /// Does this constraint contain a slot?
3781    pub fn has_slot(&self) -> bool {
3782        match self {
3783            Self::Any | Self::Is(_) => false,
3784            Self::In(o) | Self::Eq(o) | Self::IsIn(_, o) => o.is_none(),
3785        }
3786    }
3787}
3788
3789/// Scope constraint on policy actions.
3790#[derive(Debug, Clone, PartialEq, Eq)]
3791pub enum ActionConstraint {
3792    /// Un-constrained
3793    Any,
3794    /// Must be In the given [`EntityUid`]
3795    In(Vec<EntityUid>),
3796    /// Must be equal to the given [`EntityUid]`
3797    Eq(EntityUid),
3798}
3799
3800/// Scope constraint on policy resources.
3801#[derive(Debug, Clone, PartialEq, Eq)]
3802pub enum ResourceConstraint {
3803    /// Un-constrained
3804    Any,
3805    /// Must be In the given [`EntityUid`]
3806    In(EntityUid),
3807    /// Must be equal to the given [`EntityUid`]
3808    Eq(EntityUid),
3809    /// Must be the given [`EntityTypeName`]
3810    Is(EntityTypeName),
3811    /// Must be the given [`EntityTypeName`], and `in` the [`EntityUid`]
3812    IsIn(EntityTypeName, EntityUid),
3813}
3814
3815/// Scope constraint on policy resources for templates.
3816#[derive(Debug, Clone, PartialEq, Eq)]
3817pub enum TemplateResourceConstraint {
3818    /// Un-constrained
3819    Any,
3820    /// Must be In the given [`EntityUid`].
3821    /// If [`None`], then it is a template slot.
3822    In(Option<EntityUid>),
3823    /// Must be equal to the given [`EntityUid`].
3824    /// If [`None`], then it is a template slot.
3825    Eq(Option<EntityUid>),
3826    /// Must be the given [`EntityTypeName`].
3827    Is(EntityTypeName),
3828    /// Must be the given [`EntityTypeName`], and `in` the [`EntityUid`].
3829    /// If the [`EntityUid`] is [`Option::None`], then it is a template slot.
3830    IsIn(EntityTypeName, Option<EntityUid>),
3831}
3832
3833impl TemplateResourceConstraint {
3834    /// Does this constraint contain a slot?
3835    pub fn has_slot(&self) -> bool {
3836        match self {
3837            Self::Any | Self::Is(_) => false,
3838            Self::In(o) | Self::Eq(o) | Self::IsIn(_, o) => o.is_none(),
3839        }
3840    }
3841}
3842
3843/// Structure for a `Policy`. Includes both static policies and template-linked policies.
3844#[derive(Debug, Clone)]
3845pub struct Policy {
3846    /// AST representation of the policy, used for most operations.
3847    /// In particular, the `ast` contains the authoritative `PolicyId` for the policy.
3848    pub(crate) ast: ast::Policy,
3849    /// Some "lossless" representation of the policy, whichever is most
3850    /// convenient to provide (and can be provided with the least overhead).
3851    /// This is for `to_json()` and `to_pst()`.
3852    /// We can't just derive this on-demand from `ast`, because the AST is lossy:
3853    /// we can't reconstruct an accurate CST/EST/policy-text from the AST, but
3854    /// we can from the EST (modulo whitespace and a few other things like the
3855    /// we can from the EST or PST (modulo whitespace and a few other things like the
3856    /// order of annotations).
3857    pub(crate) lossless: LosslessPolicy,
3858}
3859
3860impl PartialEq for Policy {
3861    fn eq(&self, other: &Self) -> bool {
3862        // eq is based on just the `ast`
3863        self.ast.eq(&other.ast)
3864    }
3865}
3866impl Eq for Policy {}
3867
3868#[doc(hidden)] // because this converts to a private/internal type
3869impl AsRef<ast::Policy> for Policy {
3870    fn as_ref(&self) -> &ast::Policy {
3871        &self.ast
3872    }
3873}
3874
3875#[doc(hidden)]
3876impl From<ast::Policy> for Policy {
3877    fn from(policy: ast::Policy) -> Self {
3878        Self::from_ast(policy)
3879    }
3880}
3881
3882#[doc(hidden)]
3883impl From<ast::StaticPolicy> for Policy {
3884    fn from(policy: ast::StaticPolicy) -> Self {
3885        ast::Policy::from(policy).into()
3886    }
3887}
3888
3889impl Policy {
3890    /// Construct a [`Policy`] from a PST policy.
3891    /// Accepts both static and linked PST policies.
3892    pub fn from_pst(pst_policy: pst::Policy) -> Result<Self, pst::PstConstructionError> {
3893        let ast = ast::Policy::try_from(pst_policy.clone())?;
3894        Ok(Self {
3895            ast,
3896            lossless: LosslessPolicy::Pst(pst_policy),
3897        })
3898    }
3899
3900    /// Get the `PolicyId` of the `Template` this is linked to.
3901    /// If this is a static policy, this will return `None`.
3902    pub fn template_id(&self) -> Option<&PolicyId> {
3903        if self.is_static() {
3904            None
3905        } else {
3906            Some(PolicyId::ref_cast(self.ast.template().id()))
3907        }
3908    }
3909
3910    /// Get the values this `Template` is linked to, expressed as a map from `SlotId` to `EntityUid`.
3911    /// If this is a static policy, this will return `None`.
3912    pub fn template_links(&self) -> Option<HashMap<SlotId, EntityUid>> {
3913        if self.is_static() {
3914            None
3915        } else {
3916            let wrapped_vals: HashMap<SlotId, EntityUid> = self
3917                .ast
3918                .env()
3919                .iter()
3920                .map(|(key, value)| ((*key).into(), value.clone().into()))
3921                .collect();
3922            Some(wrapped_vals)
3923        }
3924    }
3925
3926    /// Get the `Effect` (`Permit` or `Forbid`) for this instance
3927    pub fn effect(&self) -> Effect {
3928        self.ast.effect()
3929    }
3930
3931    /// Returns `true` if this policy has a `when` or `unless` clause.
3932    pub fn has_non_scope_constraint(&self) -> bool {
3933        self.ast.non_scope_constraints().is_some()
3934    }
3935
3936    /// Get an annotation value of this template-linked or static policy.
3937    /// If the annotation is present without an explicit value (e.g., `@annotation`),
3938    /// then this function returns `Some("")`. Returns `None` when the
3939    /// annotation is not present or when `key` is not a valid annotations identifier.
3940    pub fn annotation(&self, key: impl AsRef<str>) -> Option<&str> {
3941        self.ast
3942            .annotation(&key.as_ref().parse().ok()?)
3943            .map(AsRef::as_ref)
3944    }
3945
3946    /// Iterate through annotation data of this template-linked or static policy.
3947    /// Annotations which do not have an explicit value (e.g., `@annotation`),
3948    /// are included in the iterator with the value `""`.
3949    pub fn annotations(&self) -> impl Iterator<Item = (&str, &str)> {
3950        self.ast
3951            .annotations()
3952            .map(|(k, v)| (k.as_ref(), v.as_ref()))
3953    }
3954
3955    /// Get the `PolicyId` for this template-linked or static policy
3956    pub fn id(&self) -> &PolicyId {
3957        PolicyId::ref_cast(self.ast.id())
3958    }
3959
3960    /// Clone this `Policy` with a new `PolicyId`
3961    #[must_use]
3962    pub fn new_id(&self, id: PolicyId) -> Self {
3963        Self {
3964            ast: self.ast.new_id(id.clone().into()),
3965            lossless: self.lossless.new_id(id),
3966        }
3967    }
3968
3969    /// Returns `true` if this is a static policy, `false` otherwise.
3970    pub fn is_static(&self) -> bool {
3971        self.ast.is_static()
3972    }
3973
3974    /// Get the scope constraint on this policy's principal
3975    pub fn principal_constraint(&self) -> PrincipalConstraint {
3976        let slot_id = ast::SlotId::principal();
3977        match self.ast.template().principal_constraint().as_inner() {
3978            ast::PrincipalOrResourceConstraint::Any => PrincipalConstraint::Any,
3979            ast::PrincipalOrResourceConstraint::In(eref) => {
3980                PrincipalConstraint::In(self.convert_entity_reference(eref, slot_id).clone())
3981            }
3982            ast::PrincipalOrResourceConstraint::Eq(eref) => {
3983                PrincipalConstraint::Eq(self.convert_entity_reference(eref, slot_id).clone())
3984            }
3985            ast::PrincipalOrResourceConstraint::Is(entity_type) => {
3986                PrincipalConstraint::Is(entity_type.as_ref().clone().into())
3987            }
3988            ast::PrincipalOrResourceConstraint::IsIn(entity_type, eref) => {
3989                PrincipalConstraint::IsIn(
3990                    entity_type.as_ref().clone().into(),
3991                    self.convert_entity_reference(eref, slot_id).clone(),
3992                )
3993            }
3994        }
3995    }
3996
3997    /// Get the scope constraint on this policy's action
3998    pub fn action_constraint(&self) -> ActionConstraint {
3999        // Clone the data from Core to be consistant with the other constraints
4000        match self.ast.template().action_constraint() {
4001            ast::ActionConstraint::Any => ActionConstraint::Any,
4002            ast::ActionConstraint::In(ids) => ActionConstraint::In(
4003                ids.iter()
4004                    .map(|euid| EntityUid::ref_cast(euid.as_ref()))
4005                    .cloned()
4006                    .collect(),
4007            ),
4008            ast::ActionConstraint::Eq(id) => ActionConstraint::Eq(EntityUid::ref_cast(id).clone()),
4009            #[cfg(feature = "tolerant-ast")]
4010            #[expect(clippy::unimplemented, reason = "experimental feature")]
4011            ast::ActionConstraint::ErrorConstraint => {
4012                unimplemented!("internal ErrorConstraint cannot be represented in the public API")
4013            }
4014        }
4015    }
4016
4017    /// Get the scope constraint on this policy's resource
4018    pub fn resource_constraint(&self) -> ResourceConstraint {
4019        let slot_id = ast::SlotId::resource();
4020        match self.ast.template().resource_constraint().as_inner() {
4021            ast::PrincipalOrResourceConstraint::Any => ResourceConstraint::Any,
4022            ast::PrincipalOrResourceConstraint::In(eref) => {
4023                ResourceConstraint::In(self.convert_entity_reference(eref, slot_id).clone())
4024            }
4025            ast::PrincipalOrResourceConstraint::Eq(eref) => {
4026                ResourceConstraint::Eq(self.convert_entity_reference(eref, slot_id).clone())
4027            }
4028            ast::PrincipalOrResourceConstraint::Is(entity_type) => {
4029                ResourceConstraint::Is(entity_type.as_ref().clone().into())
4030            }
4031            ast::PrincipalOrResourceConstraint::IsIn(entity_type, eref) => {
4032                ResourceConstraint::IsIn(
4033                    entity_type.as_ref().clone().into(),
4034                    self.convert_entity_reference(eref, slot_id).clone(),
4035                )
4036            }
4037        }
4038    }
4039
4040    /// To avoid panicking, this function may only be called when `slot` is the
4041    /// `SlotId` corresponding to the scope constraint from which the entity
4042    /// reference `r` was extracted. I.e., If `r` is taken from the principal
4043    /// scope constraint, `slot` must be `?principal`. This ensures that the
4044    /// `SlotId` exists in the policy (and therefore the slot environment map)
4045    /// whenever the `EntityReference` `r` is the Slot variant.
4046    fn convert_entity_reference<'a>(
4047        &'a self,
4048        r: &'a ast::EntityReference,
4049        slot: ast::SlotId,
4050    ) -> &'a EntityUid {
4051        match r {
4052            ast::EntityReference::EUID(euid) => EntityUid::ref_cast(euid),
4053            #[expect(
4054                clippy::unwrap_used,
4055                reason = "This `unwrap` here is safe due the invariant (values total map) on policies"
4056            )]
4057            ast::EntityReference::Slot(_) => {
4058                EntityUid::ref_cast(self.ast.env().get(&slot).unwrap())
4059            }
4060        }
4061    }
4062
4063    /// Parse a single policy.
4064    /// If `id` is Some, the policy will be given that Policy Id.
4065    /// If `id` is None, then "policy0" will be used.
4066    /// The behavior around None may change in the future.
4067    ///
4068    /// This can fail if the policy fails to parse.
4069    /// It can also fail if a template was passed in, as this function only accepts static
4070    /// policies
4071    pub fn parse(id: Option<PolicyId>, policy_src: impl AsRef<str>) -> Result<Self, ParseErrors> {
4072        let inline_ast = parser::parse_policy(id.map(Into::into), policy_src.as_ref())?;
4073        let (_, ast) = ast::Template::link_static_policy(inline_ast);
4074        Ok(Self {
4075            ast,
4076            lossless: LosslessPolicy::policy_or_template_text(Some(policy_src.as_ref())),
4077        })
4078    }
4079
4080    /// Create a `Policy` from its JSON representation.
4081    /// If `id` is Some, the policy will be given that Policy Id.
4082    /// If `id` is None, then "JSON policy" will be used.
4083    /// The behavior around None may change in the future.
4084    ///
4085    /// ```
4086    /// # use cedar_policy::{Policy, PolicyId};
4087    ///
4088    /// let json: serde_json::Value = serde_json::json!(
4089    ///        {
4090    ///            "effect":"permit",
4091    ///            "principal":{
4092    ///            "op":"==",
4093    ///            "entity":{
4094    ///                "type":"User",
4095    ///                "id":"bob"
4096    ///            }
4097    ///            },
4098    ///            "action":{
4099    ///            "op":"==",
4100    ///            "entity":{
4101    ///                "type":"Action",
4102    ///                "id":"view"
4103    ///            }
4104    ///            },
4105    ///            "resource":{
4106    ///            "op":"==",
4107    ///            "entity":{
4108    ///                "type":"Album",
4109    ///                "id":"trip"
4110    ///            }
4111    ///            },
4112    ///            "conditions":[
4113    ///            {
4114    ///                "kind":"when",
4115    ///                "body":{
4116    ///                   ">":{
4117    ///                        "left":{
4118    ///                        ".":{
4119    ///                            "left":{
4120    ///                                "Var":"principal"
4121    ///                            },
4122    ///                            "attr":"age"
4123    ///                        }
4124    ///                        },
4125    ///                        "right":{
4126    ///                        "Value":18
4127    ///                        }
4128    ///                    }
4129    ///                }
4130    ///            }
4131    ///            ]
4132    ///        }
4133    /// );
4134    /// let json_policy = Policy::from_json(None, json).unwrap();
4135    /// let src = r#"
4136    ///   permit(
4137    ///     principal == User::"bob",
4138    ///     action == Action::"view",
4139    ///     resource == Album::"trip"
4140    ///   )
4141    ///   when { principal.age > 18 };"#;
4142    /// let text_policy = Policy::parse(None, src).unwrap();
4143    /// assert_eq!(json_policy.to_json().unwrap(), text_policy.to_json().unwrap());
4144    /// ```
4145    pub fn from_json(
4146        id: Option<PolicyId>,
4147        json: serde_json::Value,
4148    ) -> Result<Self, PolicyFromJsonError> {
4149        let est: est::Policy = serde_json::from_value(json)
4150            .map_err(|e| entities_json_errors::JsonDeserializationError::Serde(e.into()))
4151            .map_err(cedar_policy_core::est::FromJsonError::from)?;
4152        Self::from_est(id, est)
4153    }
4154
4155    /// Get the valid [`RequestEnv`]s for this policy, according to the schema.
4156    ///
4157    /// That is, all the [`RequestEnv`]s in the schema for which this policy is
4158    /// not trivially false.
4159    pub fn get_valid_request_envs(&self, s: &Schema) -> impl Iterator<Item = RequestEnv> {
4160        get_valid_request_envs(self.ast.template(), s)
4161    }
4162
4163    /// Get all entity literals occuring in a `Policy`
4164    pub fn entity_literals(&self) -> Vec<EntityUid> {
4165        self.ast
4166            .condition()
4167            .subexpressions()
4168            .filter_map(|e| match e.expr_kind() {
4169                cedar_policy_core::ast::ExprKind::Lit(
4170                    cedar_policy_core::ast::Literal::EntityUID(euid),
4171                ) => Some(EntityUid((*euid).as_ref().clone())),
4172                _ => None,
4173            })
4174            .collect()
4175    }
4176
4177    /// Return a new policy where all occurrences of key `EntityUid`s are replaced by value `EntityUid`
4178    /// (as a single, non-sequential substitution).
4179    pub fn sub_entity_literals(
4180        &self,
4181        mapping: BTreeMap<EntityUid, EntityUid>,
4182    ) -> Result<Self, PolicyFromJsonError> {
4183        #[expect(
4184            clippy::expect_used,
4185            reason = "This can't fail for a policy that was already constructed"
4186        )]
4187        let cloned_est = self
4188            .lossless
4189            .est(|| self.ast.clone().into())
4190            .expect("Internal error, failed to construct est.");
4191
4192        let mapping = mapping.into_iter().map(|(k, v)| (k.0, v.0)).collect();
4193
4194        #[expect(
4195            clippy::expect_used,
4196            reason = "This can't fail for a policy that was already constructed"
4197        )]
4198        let est = cloned_est
4199            .sub_entity_literals(&mapping)
4200            .expect("Internal error, failed to sub entity literals.");
4201
4202        let ast = est
4203            .clone()
4204            .try_into_ast_policy(Some(self.ast.id().clone()))?;
4205
4206        Ok(Self {
4207            ast,
4208            lossless: LosslessPolicy::Est(est),
4209        })
4210    }
4211
4212    fn from_est(id: Option<PolicyId>, est: est::Policy) -> Result<Self, PolicyFromJsonError> {
4213        Ok(Self {
4214            ast: est.clone().try_into_ast_policy(id.map(PolicyId::into))?,
4215            lossless: LosslessPolicy::Est(est),
4216        })
4217    }
4218
4219    /// Get the JSON representation of this `Policy`.
4220    ///  ```
4221    /// # use cedar_policy::Policy;
4222    /// let src = r#"
4223    ///   permit(
4224    ///     principal == User::"bob",
4225    ///     action == Action::"view",
4226    ///     resource == Album::"trip"
4227    ///   )
4228    ///   when { principal.age > 18 };"#;
4229    ///
4230    /// let policy = Policy::parse(None, src).unwrap();
4231    /// println!("{}", policy);
4232    /// // convert the policy to JSON
4233    /// let json = policy.to_json().unwrap();
4234    /// println!("{}", json);
4235    /// assert_eq!(json, Policy::from_json(None, json.clone()).unwrap().to_json().unwrap());
4236    /// ```
4237    pub fn to_json(&self) -> Result<serde_json::Value, PolicyToJsonError> {
4238        let est = self.lossless.est(|| self.ast.clone().into())?;
4239        serde_json::to_value(est).map_err(Into::into)
4240    }
4241
4242    /// Get the human-readable Cedar syntax representation of this policy. This
4243    /// function is primarily intended for rendering JSON policies in the
4244    /// human-readable syntax, but it will also return the original policy text
4245    /// when given a policy parsed from the human-readable syntax.
4246    ///
4247    /// It will return `None` for linked policies because they cannot be
4248    /// directly rendered in Cedar syntax. You can instead render the unlinked
4249    /// template if you do not need to preserve links. If serializing links is
4250    /// important, then you will need to serialize the whole policy set
4251    /// containing the template and link to JSON (or protobuf).
4252    ///
4253    /// It also does not format the policy according to any particular rules.
4254    /// Policy formatting can be done through the Cedar policy CLI or
4255    /// the `cedar-policy-formatter` crate.
4256    pub fn to_cedar(&self) -> Option<String> {
4257        match &self.lossless {
4258            LosslessPolicy::Empty | LosslessPolicy::Est(_) | LosslessPolicy::Pst(_) => {
4259                Some(self.ast.to_string())
4260            }
4261            LosslessPolicy::Text { text, slots } => {
4262                if slots.is_empty() {
4263                    Some(text.clone())
4264                } else {
4265                    None
4266                }
4267            }
4268        }
4269    }
4270
4271    /// Get the PST representation of this policy.
4272    pub fn to_pst(&self) -> Result<pst::Policy, pst::PstConstructionError> {
4273        self.lossless
4274            .pst(|| pst::Policy::try_from(self.ast.clone()))
4275            .map(|p| p.new_id(self.ast.id().clone().into()))
4276    }
4277
4278    /// Get an owned PST representation of this policy. May return an error when the policy
4279    /// has been constructed from a different representation that is not a valid Cedar policy.
4280    pub fn try_into_pst(self) -> Result<pst::Policy, pst::PstConstructionError> {
4281        self.lossless
4282            .try_into_pst(|| pst::Policy::try_from(self.ast.clone()))
4283    }
4284
4285    /// Get all the unknown entities from the policy
4286    #[doc = include_str!("../experimental_warning.md")]
4287    #[cfg(feature = "partial-eval")]
4288    pub fn unknown_entities(&self) -> HashSet<EntityUid> {
4289        self.ast
4290            .unknown_entities()
4291            .into_iter()
4292            .map(Into::into)
4293            .collect()
4294    }
4295
4296    /// Create a `Policy` from its AST representation only. The `LosslessPolicy`
4297    /// will reflect the AST structure. When possible, don't use this method and
4298    /// create the `Policy` from the policy text, CST, or EST instead, as the
4299    /// conversion to AST is lossy. ESTs for policies generated by this method
4300    /// will reflect the AST and not the original policy syntax.
4301    pub(crate) fn from_ast(ast: ast::Policy) -> Self {
4302        // In from_ast we have choices in the LosslessPolicy representation:
4303        // - eagerly choose one representation and store it. If the consumer actually
4304        //.  wants that representation, we saved time.
4305        // - do not pick a representation, and trigger the conversion from AST every time
4306        //.  the consumer needs a particular representation (test, EST or PST).
4307        //
4308        // A previous implementation stored the text printed to the ast, but this creates
4309        // some overhead when calling `from_ast` (printing). Converting to any non-text
4310        // representation is also expensive compared to AST to other syntax tree conversions.
4311        //
4312        // This implementation now picks LosslessPolicy::Empty, the cost of printing/converting
4313        // is only paid when the consumer actually needs the representation.
4314        //
4315        // Benchmarked some choices in `benches/from_ast.rs`: the new path is ~22–190×
4316        // faster than the old to_string + re-parse path on the sample of 4 policies.
4317        Self {
4318            ast,
4319            lossless: LosslessPolicy::Empty,
4320        }
4321    }
4322}
4323
4324impl std::fmt::Display for Policy {
4325    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
4326        // prefer to display the lossless format
4327        self.lossless.fmt(|| self.ast.clone().into(), f)
4328    }
4329}
4330
4331impl FromStr for Policy {
4332    type Err = ParseErrors;
4333    /// Create a policy
4334    ///
4335    /// Important note: Policies have ids, but this interface does not
4336    /// allow them to be set. It will use the default "policy0", which
4337    /// may cause id conflicts if not handled. Use `Policy::parse` to set
4338    /// the id when parsing, or `Policy::new_id` to clone a policy with
4339    /// a new id.
4340    fn from_str(policy: &str) -> Result<Self, Self::Err> {
4341        Self::parse(None, policy)
4342    }
4343}
4344
4345/// Lossless representation of a template (no slot values).
4346/// See comments on [`Template`].
4347#[derive(Debug, Clone)]
4348pub(crate) enum LosslessTemplate {
4349    /// An empty representation
4350    Empty,
4351    /// EST representation
4352    Est(est::Policy),
4353    /// PST representation
4354    Pst(pst::Template),
4355    /// Text representation (templates never carry slot values)
4356    Text(String),
4357}
4358
4359impl LosslessTemplate {
4360    /// Create a new `LosslessTemplate` from the text of a template.
4361    fn from_text(text: Option<impl Into<String>>) -> Self {
4362        text.map_or(Self::Empty, |text| Self::Text(text.into()))
4363    }
4364
4365    /// Clone this `LosslessTemplate` with a new policy ID.
4366    /// Only the PST variant embeds the ID; other variants are unaffected.
4367    fn new_id(&self, id: PolicyId) -> Self {
4368        match self {
4369            Self::Pst(pst) => {
4370                let mut pst = pst.clone();
4371                pst.id = id.into();
4372                Self::Pst(pst)
4373            }
4374            other => other.clone(),
4375        }
4376    }
4377
4378    /// Get the EST representation of this template.
4379    fn est(
4380        &self,
4381        fallback_est: impl FnOnce() -> est::Policy,
4382    ) -> Result<est::Policy, PolicyToJsonError> {
4383        match self {
4384            Self::Empty => Ok(fallback_est()),
4385            Self::Est(est) => Ok(est.clone()),
4386            Self::Pst(pst) => Ok(pst.clone().try_into()?),
4387            Self::Text(text) => {
4388                Ok(parser::parse_policy_or_template_to_est(text).map_err(ParseErrors::from)?)
4389            }
4390        }
4391    }
4392
4393    /// Get the PST representation of this template.
4394    fn pst(
4395        &self,
4396        fallback_pst: impl FnOnce() -> Result<pst::Template, pst::PstConstructionError>,
4397    ) -> Result<pst::Template, pst::PstConstructionError> {
4398        match self {
4399            Self::Empty => fallback_pst(),
4400            Self::Est(est) => Ok(est.clone().try_into()?),
4401            Self::Pst(pst) => Ok(pst.clone()),
4402            Self::Text(text) => Ok(parser::parse_policy_or_template_to_est(text)?.try_into()?),
4403        }
4404    }
4405
4406    /// Get an owned PST representation of this template.
4407    fn try_into_pst(
4408        self,
4409        fallback_pst: impl FnOnce() -> Result<pst::Template, pst::PstConstructionError>,
4410    ) -> Result<pst::Template, pst::PstConstructionError> {
4411        match self {
4412            Self::Empty => fallback_pst(),
4413            Self::Est(est) => Ok(est.try_into()?),
4414            Self::Pst(pst) => Ok(pst),
4415            Self::Text(text) => Ok(parser::parse_policy_or_template_to_est(&text)?.try_into()?),
4416        }
4417    }
4418
4419    /// Link this template with slot values, producing a [`LosslessPolicy`].
4420    fn link<'a>(
4421        self,
4422        link_id: ast::PolicyID,
4423        vals: impl IntoIterator<Item = (ast::SlotId, &'a ast::EntityUID)>,
4424    ) -> Result<LosslessPolicy, est::LinkingError> {
4425        match self {
4426            Self::Empty => Ok(LosslessPolicy::Empty),
4427            Self::Est(est) => {
4428                let unwrapped_vals: HashMap<
4429                    ast::SlotId,
4430                    cedar_policy_core::entities::EntityUidJson,
4431                > = vals.into_iter().map(|(k, v)| (k, v.into())).collect();
4432                Ok(LosslessPolicy::Est(est.link(&unwrapped_vals)?))
4433            }
4434            Self::Pst(template) => {
4435                let values: HashMap<pst::SlotId, pst::EntityUID> = vals
4436                    .into_iter()
4437                    .map(|(k, v)| (k.into(), v.clone().into()))
4438                    .collect();
4439                let pst_policy = pst::LinkedPolicy::new(Arc::new(template), values, link_id.into())
4440                    .map_err(est::LinkingError::from)?;
4441                Ok(LosslessPolicy::Pst(pst::Policy::Linked(pst_policy)))
4442            }
4443            Self::Text(text) => {
4444                let slots = vals.into_iter().map(|(k, v)| (k, v.clone())).collect();
4445                Ok(LosslessPolicy::Text { text, slots })
4446            }
4447        }
4448    }
4449
4450    fn fmt(
4451        &self,
4452        fallback_est: impl FnOnce() -> est::Policy,
4453        f: &mut std::fmt::Formatter<'_>,
4454    ) -> std::fmt::Result {
4455        match self {
4456            Self::Empty => match self.est(fallback_est) {
4457                Ok(est) => write!(f, "{est}"),
4458                Err(e) => write!(f, "<invalid policy: {e}>"),
4459            },
4460            Self::Pst(pst) => write!(f, "{pst}"), // PST -> EST conversion in display
4461            Self::Est(est) => write!(f, "{est}"),
4462            Self::Text(text) => write!(f, "{text}"),
4463        }
4464    }
4465}
4466
4467/// Lossless representation of a static or linked policy.
4468/// See comments on [`Policy`].
4469#[derive(Debug, Clone)]
4470pub(crate) enum LosslessPolicy {
4471    /// An empty representation
4472    Empty,
4473    /// EST representation
4474    Est(est::Policy),
4475    /// PST representation
4476    Pst(pst::Policy),
4477    /// Text representation
4478    Text {
4479        /// actual policy text
4480        text: String,
4481        /// For linked policies, map of slot to UID. Static policies have an
4482        /// empty map here.
4483        slots: HashMap<ast::SlotId, ast::EntityUID>,
4484    },
4485}
4486
4487impl LosslessPolicy {
4488    /// Create a new `LosslessPolicy` from the text of a policy.
4489    fn policy_or_template_text(text: Option<impl Into<String>>) -> Self {
4490        text.map_or(Self::Empty, |text| Self::Text {
4491            text: text.into(),
4492            slots: HashMap::new(),
4493        })
4494    }
4495
4496    /// Clone this `LosslessPolicy` with a new policy ID.
4497    /// Only the PST variant embeds the ID; other variants are unaffected.
4498    fn new_id(&self, id: PolicyId) -> Self {
4499        match self {
4500            Self::Pst(pst) => Self::Pst(pst.new_id(id.into())),
4501            other => other.clone(),
4502        }
4503    }
4504
4505    /// Get the EST representation of this policy.
4506    fn est(
4507        &self,
4508        fallback_est: impl FnOnce() -> est::Policy,
4509    ) -> Result<est::Policy, PolicyToJsonError> {
4510        match self {
4511            Self::Empty => Ok(fallback_est()),
4512            Self::Est(est) => Ok(est.clone()),
4513            Self::Pst(pst) => {
4514                // Convert the effective body (with slots resolved for linked policies) to EST
4515                // (same behavior as policies from text)
4516                match pst {
4517                    pst::Policy::Static(sp) => Ok(sp.body().clone().try_into()?),
4518                    pst::Policy::Linked(lp) => {
4519                        let static_policy = lp.into_static_policy()?;
4520                        Ok(static_policy.body().clone().try_into()?)
4521                    }
4522                }
4523            }
4524            Self::Text { text, slots } => {
4525                let est =
4526                    parser::parse_policy_or_template_to_est(text).map_err(ParseErrors::from)?;
4527                if slots.is_empty() {
4528                    Ok(est)
4529                } else {
4530                    let unwrapped_vals = slots.iter().map(|(k, v)| (*k, v.into())).collect();
4531                    Ok(est.link(&unwrapped_vals)?)
4532                }
4533            }
4534        }
4535    }
4536
4537    /// Get the PST representation of this policy.
4538    fn pst(
4539        &self,
4540        fallback_pst: impl FnOnce() -> Result<pst::Policy, pst::PstConstructionError>,
4541    ) -> Result<pst::Policy, pst::PstConstructionError> {
4542        match self {
4543            Self::Empty => fallback_pst(),
4544            Self::Est(est) => {
4545                let template: pst::Template = est.clone().try_into()?;
4546                Ok(pst::Policy::Static(pst::StaticPolicy::try_from(template)?))
4547            }
4548            Self::Pst(pst) => Ok(pst.clone()),
4549            Self::Text { text, slots } => {
4550                let template: pst::Template =
4551                    parser::parse_policy_or_template_to_est(text)?.try_into()?;
4552                if slots.is_empty() {
4553                    Ok(pst::Policy::Static(pst::StaticPolicy::try_from(template)?))
4554                } else {
4555                    let pst_vals: HashMap<pst::SlotId, pst::EntityUID> = slots
4556                        .iter()
4557                        .map(|(k, v)| ((*k).into(), v.clone().into()))
4558                        .collect();
4559                    let static_policy = template.link(&pst_vals)?;
4560                    Ok(pst::Policy::Static(static_policy))
4561                }
4562            }
4563        }
4564    }
4565
4566    /// Get an owned PST representation of this policy.
4567    fn try_into_pst(
4568        self,
4569        fallback_pst: impl FnOnce() -> Result<pst::Policy, pst::PstConstructionError>,
4570    ) -> Result<pst::Policy, pst::PstConstructionError> {
4571        match self {
4572            Self::Empty => fallback_pst(),
4573            Self::Est(est) => {
4574                let template: pst::Template = est.try_into()?;
4575                Ok(pst::Policy::Static(pst::StaticPolicy::try_from(template)?))
4576            }
4577            Self::Pst(pst) => Ok(pst),
4578            Self::Text { text, slots } => {
4579                let template: pst::Template =
4580                    parser::parse_policy_or_template_to_est(&text)?.try_into()?;
4581                if slots.is_empty() {
4582                    Ok(pst::Policy::Static(pst::StaticPolicy::try_from(template)?))
4583                } else {
4584                    let pst_vals: HashMap<pst::SlotId, pst::EntityUID> = slots
4585                        .into_iter()
4586                        .map(|(k, v)| (pst::SlotId::from(k), v.into()))
4587                        .collect();
4588                    let static_policy = template.link(&pst_vals)?;
4589                    Ok(pst::Policy::Static(static_policy))
4590                }
4591            }
4592        }
4593    }
4594
4595    fn fmt(
4596        &self,
4597        fallback_est: impl FnOnce() -> est::Policy,
4598        f: &mut std::fmt::Formatter<'_>,
4599    ) -> std::fmt::Result {
4600        match self {
4601            Self::Empty => match self.est(fallback_est) {
4602                Ok(est) => write!(f, "{est}"),
4603                Err(e) => write!(f, "<invalid policy: {e}>"),
4604            },
4605            Self::Pst(pst) => write!(f, "{pst}"), // Does PST -> EST
4606            Self::Est(est) => write!(f, "{est}"),
4607            Self::Text { text, slots } => {
4608                if slots.is_empty() {
4609                    write!(f, "{text}")
4610                } else {
4611                    match self.est(fallback_est) {
4612                        Ok(est) => write!(f, "{est}"),
4613                        Err(e) => write!(f, "<invalid linked policy: {e}>"),
4614                    }
4615                }
4616            }
4617        }
4618    }
4619}
4620
4621/// Expressions to be evaluated
4622#[repr(transparent)]
4623#[derive(Debug, Clone, RefCast)]
4624pub struct Expression(pub(crate) ast::Expr);
4625
4626#[doc(hidden)] // because this converts to a private/internal type
4627impl AsRef<ast::Expr> for Expression {
4628    fn as_ref(&self) -> &ast::Expr {
4629        &self.0
4630    }
4631}
4632
4633#[doc(hidden)]
4634impl From<ast::Expr> for Expression {
4635    fn from(expr: ast::Expr) -> Self {
4636        Self(expr)
4637    }
4638}
4639
4640impl Expression {
4641    /// Create an expression representing a literal string.
4642    pub fn new_string(value: String) -> Self {
4643        Self(ast::Expr::val(value))
4644    }
4645
4646    /// Create an expression representing a literal bool.
4647    pub fn new_bool(value: bool) -> Self {
4648        Self(ast::Expr::val(value))
4649    }
4650
4651    /// Create an expression representing a literal long.
4652    pub fn new_long(value: ast::Integer) -> Self {
4653        Self(ast::Expr::val(value))
4654    }
4655
4656    /// Create an expression representing a record.
4657    ///
4658    /// Error if any key appears two or more times in `fields`.
4659    pub fn new_record(
4660        fields: impl IntoIterator<Item = (String, Self)>,
4661    ) -> Result<Self, ExpressionConstructionError> {
4662        Ok(Self(ast::Expr::record(
4663            fields.into_iter().map(|(k, v)| (SmolStr::from(k), v.0)),
4664        )?))
4665    }
4666
4667    /// Create an expression representing a Set.
4668    pub fn new_set(values: impl IntoIterator<Item = Self>) -> Self {
4669        Self(ast::Expr::set(values.into_iter().map(|v| v.0)))
4670    }
4671
4672    /// Create an expression representing an ip address.
4673    /// This function does not perform error checking on the source string,
4674    /// it creates an expression that calls the `ip` constructor.
4675    pub fn new_ip(src: impl AsRef<str>) -> Self {
4676        let src_expr = ast::Expr::val(src.as_ref());
4677        Self(ast::Expr::call_extension_fn(
4678            ip_extension_name(),
4679            vec![src_expr],
4680        ))
4681    }
4682
4683    /// Create an expression representing a fixed precision decimal number.
4684    /// This function does not perform error checking on the source string,
4685    /// it creates an expression that calls the `decimal` constructor.
4686    pub fn new_decimal(src: impl AsRef<str>) -> Self {
4687        let src_expr = ast::Expr::val(src.as_ref());
4688        Self(ast::Expr::call_extension_fn(
4689            decimal_extension_name(),
4690            vec![src_expr],
4691        ))
4692    }
4693
4694    /// Create an expression representing a particular instant of time.
4695    /// This function does not perform error checking on the source string,
4696    /// it creates an expression that calls the `datetime` constructor.
4697    pub fn new_datetime(src: impl AsRef<str>) -> Self {
4698        let src_expr = ast::Expr::val(src.as_ref());
4699        Self(ast::Expr::call_extension_fn(
4700            datetime_extension_name(),
4701            vec![src_expr],
4702        ))
4703    }
4704
4705    /// Create an expression representing a duration of time.
4706    /// This function does not perform error checking on the source string,
4707    /// it creates an expression that calls the `datetime` constructor.
4708    pub fn new_duration(src: impl AsRef<str>) -> Self {
4709        let src_expr = ast::Expr::val(src.as_ref());
4710        Self(ast::Expr::call_extension_fn(
4711            duration_extension_name(),
4712            vec![src_expr],
4713        ))
4714    }
4715}
4716
4717#[cfg(test)]
4718impl Expression {
4719    /// Deconstruct an [`Expression`] to get the internal type.
4720    /// This function is only intended to be used internally.
4721    pub(crate) fn into_inner(self) -> ast::Expr {
4722        self.0
4723    }
4724}
4725
4726impl FromStr for Expression {
4727    type Err = ParseErrors;
4728
4729    /// create an Expression using Cedar syntax
4730    fn from_str(expression: &str) -> Result<Self, Self::Err> {
4731        ast::Expr::from_str(expression)
4732            .map(Expression)
4733            .map_err(Into::into)
4734    }
4735}
4736
4737impl std::fmt::Display for Expression {
4738    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
4739        write!(f, "{}", &self.0)
4740    }
4741}
4742
4743/// "Restricted" expressions are used for attribute values and `context`.
4744///
4745/// Restricted expressions can contain only the following:
4746///   - bool, int, and string literals
4747///   - literal `EntityUid`s such as `User::"alice"`
4748///   - extension function calls, where the arguments must be other things
4749///     on this list
4750///   - set and record literals, where the values must be other things on
4751///     this list
4752///
4753/// That means the following are not allowed in restricted expressions:
4754///   - `principal`, `action`, `resource`, `context`
4755///   - builtin operators and functions, including `.`, `in`, `has`, `like`,
4756///     `.contains()`
4757///   - if-then-else expressions
4758#[repr(transparent)]
4759#[derive(Debug, Clone, RefCast, PartialEq, Eq)]
4760pub struct RestrictedExpression(pub(crate) ast::RestrictedExpr);
4761
4762#[doc(hidden)] // because this converts to a private/internal type
4763impl AsRef<ast::RestrictedExpr> for RestrictedExpression {
4764    fn as_ref(&self) -> &ast::RestrictedExpr {
4765        &self.0
4766    }
4767}
4768
4769#[doc(hidden)]
4770impl From<ast::RestrictedExpr> for RestrictedExpression {
4771    fn from(expr: ast::RestrictedExpr) -> Self {
4772        Self(expr)
4773    }
4774}
4775
4776impl RestrictedExpression {
4777    /// Create an expression representing a literal string.
4778    pub fn new_string(value: String) -> Self {
4779        Self(ast::RestrictedExpr::val(value))
4780    }
4781
4782    /// Create an expression representing a literal bool.
4783    pub fn new_bool(value: bool) -> Self {
4784        Self(ast::RestrictedExpr::val(value))
4785    }
4786
4787    /// Create an expression representing a literal long.
4788    pub fn new_long(value: ast::Integer) -> Self {
4789        Self(ast::RestrictedExpr::val(value))
4790    }
4791
4792    /// Create an expression representing a literal `EntityUid`.
4793    pub fn new_entity_uid(value: EntityUid) -> Self {
4794        Self(ast::RestrictedExpr::val(ast::EntityUID::from(value)))
4795    }
4796
4797    /// Create an expression representing a record.
4798    ///
4799    /// Error if any key appears two or more times in `fields`.
4800    pub fn new_record(
4801        fields: impl IntoIterator<Item = (String, Self)>,
4802    ) -> Result<Self, ExpressionConstructionError> {
4803        Ok(Self(ast::RestrictedExpr::record(
4804            fields.into_iter().map(|(k, v)| (SmolStr::from(k), v.0)),
4805        )?))
4806    }
4807
4808    /// Create an expression representing a Set.
4809    pub fn new_set(values: impl IntoIterator<Item = Self>) -> Self {
4810        Self(ast::RestrictedExpr::set(values.into_iter().map(|v| v.0)))
4811    }
4812
4813    /// Create an expression representing an ip address.
4814    /// This function does not perform error checking on the source string,
4815    /// it creates an expression that calls the `ip` constructor.
4816    pub fn new_ip(src: impl AsRef<str>) -> Self {
4817        let src_expr = ast::RestrictedExpr::val(src.as_ref());
4818        Self(ast::RestrictedExpr::call_extension_fn(
4819            ip_extension_name(),
4820            [src_expr],
4821        ))
4822    }
4823
4824    /// Create an expression representing a fixed precision decimal number.
4825    /// This function does not perform error checking on the source string,
4826    /// it creates an expression that calls the `decimal` constructor.
4827    pub fn new_decimal(src: impl AsRef<str>) -> Self {
4828        let src_expr = ast::RestrictedExpr::val(src.as_ref());
4829        Self(ast::RestrictedExpr::call_extension_fn(
4830            decimal_extension_name(),
4831            [src_expr],
4832        ))
4833    }
4834
4835    /// Create an expression representing a particular instant of time.
4836    /// This function does not perform error checking on the source string,
4837    /// it creates an expression that calls the `datetime` constructor.
4838    pub fn new_datetime(src: impl AsRef<str>) -> Self {
4839        let src_expr = ast::RestrictedExpr::val(src.as_ref());
4840        Self(ast::RestrictedExpr::call_extension_fn(
4841            datetime_extension_name(),
4842            [src_expr],
4843        ))
4844    }
4845
4846    /// Create an expression representing a duration of time.
4847    /// This function does not perform error checking on the source string,
4848    /// it creates an expression that calls the `datetime` constructor.
4849    pub fn new_duration(src: impl AsRef<str>) -> Self {
4850        let src_expr = ast::RestrictedExpr::val(src.as_ref());
4851        Self(ast::RestrictedExpr::call_extension_fn(
4852            duration_extension_name(),
4853            [src_expr],
4854        ))
4855    }
4856
4857    /// Create an unknown expression
4858    #[cfg(feature = "partial-eval")]
4859    pub fn new_unknown(name: impl AsRef<str>) -> Self {
4860        Self(ast::RestrictedExpr::unknown(ast::Unknown::new_untyped(
4861            name.as_ref(),
4862        )))
4863    }
4864}
4865
4866#[cfg(test)]
4867impl RestrictedExpression {
4868    /// Deconstruct an [`RestrictedExpression`] to get the internal type.
4869    /// This function is only intended to be used internally.
4870    pub(crate) fn into_inner(self) -> ast::RestrictedExpr {
4871        self.0
4872    }
4873}
4874
4875fn decimal_extension_name() -> ast::Name {
4876    #[expect(
4877        clippy::unwrap_used,
4878        reason = "This is a constant and is known to be safe, verified by a test"
4879    )]
4880    ast::Name::unqualified_name("decimal".parse().unwrap())
4881}
4882
4883fn ip_extension_name() -> ast::Name {
4884    #[expect(
4885        clippy::unwrap_used,
4886        reason = "This is a constant and is known to be safe, verified by a test"
4887    )]
4888    ast::Name::unqualified_name("ip".parse().unwrap())
4889}
4890
4891fn datetime_extension_name() -> ast::Name {
4892    #[expect(
4893        clippy::unwrap_used,
4894        reason = "This is a constant and is known to be safe, verified by a test"
4895    )]
4896    ast::Name::unqualified_name("datetime".parse().unwrap())
4897}
4898
4899fn duration_extension_name() -> ast::Name {
4900    #[expect(
4901        clippy::unwrap_used,
4902        reason = "This is a constant and is known to be safe, verified by a test"
4903    )]
4904    ast::Name::unqualified_name("duration".parse().unwrap())
4905}
4906
4907impl FromStr for RestrictedExpression {
4908    type Err = RestrictedExpressionParseError;
4909
4910    /// create a `RestrictedExpression` using Cedar syntax
4911    fn from_str(expression: &str) -> Result<Self, Self::Err> {
4912        ast::RestrictedExpr::from_str(expression)
4913            .map(RestrictedExpression)
4914            .map_err(Into::into)
4915    }
4916}
4917
4918/// Builder for a [`Request`]
4919///
4920/// The default for principal, action, resource, and context fields is Unknown
4921/// for partial evaluation.
4922#[doc = include_str!("../experimental_warning.md")]
4923#[cfg(feature = "partial-eval")]
4924#[derive(Debug, Clone)]
4925pub struct RequestBuilder<S> {
4926    principal: ast::EntityUIDEntry,
4927    action: ast::EntityUIDEntry,
4928    resource: ast::EntityUIDEntry,
4929    /// Here, `None` means unknown
4930    context: Option<ast::Context>,
4931    schema: S,
4932}
4933
4934/// A marker type that indicates [`Schema`] is not set for a request
4935#[doc = include_str!("../experimental_warning.md")]
4936#[cfg(feature = "partial-eval")]
4937#[derive(Debug, Clone, Copy)]
4938pub struct UnsetSchema;
4939
4940#[cfg(feature = "partial-eval")]
4941impl Default for RequestBuilder<UnsetSchema> {
4942    fn default() -> Self {
4943        Self {
4944            principal: ast::EntityUIDEntry::unknown(),
4945            action: ast::EntityUIDEntry::unknown(),
4946            resource: ast::EntityUIDEntry::unknown(),
4947            context: None,
4948            schema: UnsetSchema,
4949        }
4950    }
4951}
4952
4953#[cfg(feature = "partial-eval")]
4954impl<S> RequestBuilder<S> {
4955    /// Set the principal.
4956    ///
4957    /// Note that you can create the `EntityUid` using `.parse()` on any
4958    /// string (via the `FromStr` implementation for `EntityUid`).
4959    #[must_use]
4960    pub fn principal(self, principal: EntityUid) -> Self {
4961        Self {
4962            principal: ast::EntityUIDEntry::known(principal.into(), None),
4963            ..self
4964        }
4965    }
4966
4967    /// Set the principal to be unknown, but known to belong to a certain entity type.
4968    ///
4969    /// This information is taken into account when evaluating 'is', '==' and '!=' expressions.
4970    #[must_use]
4971    pub fn unknown_principal_with_type(self, principal_type: EntityTypeName) -> Self {
4972        Self {
4973            principal: ast::EntityUIDEntry::unknown_with_type(principal_type.0, None),
4974            ..self
4975        }
4976    }
4977
4978    /// Set the action.
4979    ///
4980    /// Note that you can create the `EntityUid` using `.parse()` on any
4981    /// string (via the `FromStr` implementation for `EntityUid`).
4982    #[must_use]
4983    pub fn action(self, action: EntityUid) -> Self {
4984        Self {
4985            action: ast::EntityUIDEntry::known(action.into(), None),
4986            ..self
4987        }
4988    }
4989
4990    /// Set the resource.
4991    ///
4992    /// Note that you can create the `EntityUid` using `.parse()` on any
4993    /// string (via the `FromStr` implementation for `EntityUid`).
4994    #[must_use]
4995    pub fn resource(self, resource: EntityUid) -> Self {
4996        Self {
4997            resource: ast::EntityUIDEntry::known(resource.into(), None),
4998            ..self
4999        }
5000    }
5001
5002    /// Set the resource to be unknown, but known to belong to a certain entity type.
5003    ///
5004    /// This information is taken into account when evaluating 'is', '==' and '!=' expressions.
5005    #[must_use]
5006    pub fn unknown_resource_with_type(self, resource_type: EntityTypeName) -> Self {
5007        Self {
5008            resource: ast::EntityUIDEntry::unknown_with_type(resource_type.0, None),
5009            ..self
5010        }
5011    }
5012
5013    /// Set the context.
5014    #[must_use]
5015    pub fn context(self, context: Context) -> Self {
5016        Self {
5017            context: Some(context.0),
5018            ..self
5019        }
5020    }
5021}
5022
5023#[cfg(feature = "partial-eval")]
5024impl RequestBuilder<UnsetSchema> {
5025    /// Set the schema. If present, this will be used for request validation.
5026    #[must_use]
5027    pub fn schema(self, schema: &Schema) -> RequestBuilder<&Schema> {
5028        RequestBuilder {
5029            principal: self.principal,
5030            action: self.action,
5031            resource: self.resource,
5032            context: self.context,
5033            schema,
5034        }
5035    }
5036
5037    /// Create the [`Request`]
5038    pub fn build(self) -> Request {
5039        Request(ast::Request::new_unchecked(
5040            self.principal,
5041            self.action,
5042            self.resource,
5043            self.context,
5044        ))
5045    }
5046}
5047
5048#[cfg(feature = "partial-eval")]
5049impl RequestBuilder<&Schema> {
5050    /// Create the [`Request`]
5051    pub fn build(self) -> Result<Request, RequestValidationError> {
5052        Ok(Request(ast::Request::new_with_unknowns(
5053            self.principal,
5054            self.action,
5055            self.resource,
5056            self.context,
5057            Some(&self.schema.0),
5058            Extensions::all_available(),
5059        )?))
5060    }
5061}
5062
5063/// An authorization request is a tuple `<P, A, R, C>` where
5064/// * P is the principal [`EntityUid`],
5065/// * A is the action [`EntityUid`],
5066/// * R is the resource [`EntityUid`], and
5067/// * C is the request [`Context`] record.
5068///
5069/// It represents an authorization request asking the question, "Can this
5070/// principal take this action on this resource in this context?"
5071#[repr(transparent)]
5072#[derive(Debug, Clone, RefCast)]
5073pub struct Request(pub(crate) ast::Request);
5074
5075#[doc(hidden)] // because this converts to a private/internal type
5076impl AsRef<ast::Request> for Request {
5077    fn as_ref(&self) -> &ast::Request {
5078        &self.0
5079    }
5080}
5081
5082#[doc(hidden)]
5083impl From<ast::Request> for Request {
5084    fn from(req: ast::Request) -> Self {
5085        Self(req)
5086    }
5087}
5088
5089impl PartialEq for Request {
5090    fn eq(&self, other: &Self) -> bool {
5091        self.principal() == other.principal()
5092            && self.action() == other.action()
5093            && self.resource() == other.resource()
5094            && self.context() == other.context()
5095    }
5096}
5097
5098impl Request {
5099    /// Create a [`RequestBuilder`]
5100    #[doc = include_str!("../experimental_warning.md")]
5101    #[cfg(feature = "partial-eval")]
5102    pub fn builder() -> RequestBuilder<UnsetSchema> {
5103        RequestBuilder::default()
5104    }
5105
5106    /// Create a Request.
5107    ///
5108    /// Note that you can create the `EntityUid`s using `.parse()` on any
5109    /// string (via the `FromStr` implementation for `EntityUid`).
5110    /// The principal, action, and resource fields are optional to support
5111    /// the case where these fields do not contribute to authorization
5112    /// decisions (e.g., because they are not used in your policies).
5113    /// If any of the fields are `None`, we will automatically generate
5114    /// a unique entity UID that is not equal to any UID in the store.
5115    ///
5116    /// If `schema` is present, this constructor will validate that the
5117    /// `Request` complies with the given `schema`.
5118    pub fn new(
5119        principal: EntityUid,
5120        action: EntityUid,
5121        resource: EntityUid,
5122        context: Context,
5123        schema: Option<&Schema>,
5124    ) -> Result<Self, RequestValidationError> {
5125        Ok(Self(ast::Request::new(
5126            (principal.into(), None),
5127            (action.into(), None),
5128            (resource.into(), None),
5129            context.0,
5130            schema.map(|schema| &schema.0),
5131            Extensions::all_available(),
5132        )?))
5133    }
5134
5135    /// Get the context component of the request. Returns `None` if the context is
5136    /// "unknown" (i.e., constructed using the partial evaluation APIs).
5137    pub fn context(&self) -> Option<&Context> {
5138        self.0.context().map(Context::ref_cast)
5139    }
5140
5141    /// Get the principal component of the request. Returns `None` if the principal is
5142    /// "unknown" (i.e., constructed using the partial evaluation APIs).
5143    pub fn principal(&self) -> Option<&EntityUid> {
5144        match self.0.principal() {
5145            ast::EntityUIDEntry::Known { euid, .. } => Some(EntityUid::ref_cast(euid.as_ref())),
5146            ast::EntityUIDEntry::Unknown { .. } => None,
5147        }
5148    }
5149
5150    /// Get the action component of the request. Returns `None` if the action is
5151    /// "unknown" (i.e., constructed using the partial evaluation APIs).
5152    pub fn action(&self) -> Option<&EntityUid> {
5153        match self.0.action() {
5154            ast::EntityUIDEntry::Known { euid, .. } => Some(EntityUid::ref_cast(euid.as_ref())),
5155            ast::EntityUIDEntry::Unknown { .. } => None,
5156        }
5157    }
5158
5159    /// Get the resource component of the request. Returns `None` if the resource is
5160    /// "unknown" (i.e., constructed using the partial evaluation APIs).
5161    pub fn resource(&self) -> Option<&EntityUid> {
5162        match self.0.resource() {
5163            ast::EntityUIDEntry::Known { euid, .. } => Some(EntityUid::ref_cast(euid.as_ref())),
5164            ast::EntityUIDEntry::Unknown { .. } => None,
5165        }
5166    }
5167}
5168
5169/// the Context object for an authorization request
5170#[repr(transparent)]
5171#[derive(Debug, Clone, PartialEq, Eq, RefCast)]
5172pub struct Context(ast::Context);
5173
5174#[doc(hidden)] // because this converts to a private/internal type
5175impl AsRef<ast::Context> for Context {
5176    fn as_ref(&self) -> &ast::Context {
5177        &self.0
5178    }
5179}
5180
5181impl Context {
5182    /// Create an empty `Context`
5183    /// ```
5184    /// # use cedar_policy::Context;
5185    /// let context = Context::empty();
5186    /// # assert_eq!(context.into_iter().next(), None);
5187    /// ```
5188    pub fn empty() -> Self {
5189        Self(ast::Context::empty())
5190    }
5191
5192    /// Create a `Context` from a map of key to "restricted expression",
5193    /// or a Vec of `(key, restricted expression)` pairs, or any other iterator
5194    /// of `(key, restricted expression)` pairs.
5195    /// ```
5196    /// # use cedar_policy::{Context, EntityUid, RestrictedExpression, Request};
5197    /// # use std::str::FromStr;
5198    /// let context = Context::from_pairs([
5199    ///   ("key".to_string(), RestrictedExpression::from_str(r#""value""#).unwrap()),
5200    ///   ("age".to_string(), RestrictedExpression::from_str("18").unwrap()),
5201    /// ]).unwrap();
5202    /// # // create a request
5203    /// # let p = EntityUid::from_str(r#"User::"alice""#).unwrap();
5204    /// # let a = EntityUid::from_str(r#"Action::"view""#).unwrap();
5205    /// # let r = EntityUid::from_str(r#"Album::"trip""#).unwrap();
5206    /// # let request: Request = Request::new(p, a, r, context, None).unwrap();
5207    /// ```
5208    pub fn from_pairs(
5209        pairs: impl IntoIterator<Item = (String, RestrictedExpression)>,
5210    ) -> Result<Self, ContextCreationError> {
5211        Ok(Self(ast::Context::from_pairs(
5212            pairs.into_iter().map(|(k, v)| (SmolStr::from(k), v.0)),
5213            Extensions::all_available(),
5214        )?))
5215    }
5216
5217    /// Retrieves a value from the Context by its key.
5218    ///
5219    /// # Arguments
5220    ///
5221    /// * `key` - The key to look up in the context
5222    ///
5223    /// # Returns
5224    ///
5225    /// * `Some(EvalResult)` - If the key exists in the context, returns its value
5226    /// * `None` - If the key doesn't exist or if the context is not a Value type
5227    ///
5228    /// # Examples
5229    ///
5230    /// ```
5231    /// # use cedar_policy::{Context, Request, EntityUid};
5232    /// # use std::str::FromStr;
5233    /// let context = Context::from_json_str(r#"{"rayId": "abc123"}"#, None).unwrap();
5234    /// if let Some(value) = context.get("rayId") {
5235    ///     // value here is an EvalResult, convertible from the internal Value type
5236    ///     println!("Found value: {:?}", value);
5237    /// }
5238    /// assert_eq!(context.get("nonexistent"), None);
5239    /// ```
5240    pub fn get(&self, key: &str) -> Option<EvalResult> {
5241        match &self.0 {
5242            ast::Context::Value(map) => map.get(key).map(|v| EvalResult::from(v.clone())),
5243            ast::Context::RestrictedResidual(_) => None,
5244        }
5245    }
5246
5247    /// Create a `Context` from a string containing JSON (which must be a JSON
5248    /// object, not any other JSON type, or you will get an error here).
5249    /// JSON here must use the `__entity` and `__extn` escapes for entity
5250    /// references, extension values, etc.
5251    ///
5252    /// If a `schema` is provided, this will inform the parsing: for instance, it
5253    /// will allow `__entity` and `__extn` escapes to be implicit, and it will error
5254    /// if attributes have the wrong types (e.g., string instead of integer).
5255    /// Since different Actions have different schemas for `Context`, you also
5256    /// must specify the `Action` for schema-based parsing.
5257    /// ```
5258    /// # use cedar_policy::{Context, EntityUid, RestrictedExpression, Request};
5259    /// # use std::str::FromStr;
5260    /// let json_data = r#"{
5261    ///     "sub": "1234",
5262    ///     "groups": {
5263    ///         "1234": {
5264    ///             "group_id": "abcd",
5265    ///             "group_name": "test-group"
5266    ///         }
5267    ///     }
5268    /// }"#;
5269    /// let context = Context::from_json_str(json_data, None).unwrap();
5270    /// # // create a request
5271    /// # let p = EntityUid::from_str(r#"User::"alice""#).unwrap();
5272    /// # let a = EntityUid::from_str(r#"Action::"view""#).unwrap();
5273    /// # let r = EntityUid::from_str(r#"Album::"trip""#).unwrap();
5274    /// # let request: Request = Request::new(p, a, r, context, None).unwrap();
5275    /// ```
5276    pub fn from_json_str(
5277        json: &str,
5278        schema: Option<(&Schema, &EntityUid)>,
5279    ) -> Result<Self, ContextJsonError> {
5280        let schema = schema
5281            .map(|(s, uid)| Self::get_context_schema(s, uid))
5282            .transpose()?;
5283        let context = cedar_policy_core::entities::ContextJsonParser::new(
5284            schema.as_ref(),
5285            Extensions::all_available(),
5286        )
5287        .from_json_str(json)?;
5288        Ok(Self(context))
5289    }
5290
5291    /// Create a `Context` from a `serde_json::Value` (which must be a JSON object,
5292    /// not any other JSON type, or you will get an error here).
5293    /// JSON here must use the `__entity` and `__extn` escapes for entity
5294    /// references, extension values, etc.
5295    ///
5296    /// If a `schema` is provided, this will inform the parsing: for instance, it
5297    /// will allow `__entity` and `__extn` escapes to be implicit, and it will error
5298    /// if attributes have the wrong types (e.g., string instead of integer).
5299    /// Since different Actions have different schemas for `Context`, you also
5300    /// must specify the `Action` for schema-based parsing.
5301    /// ```
5302    /// # use cedar_policy::{Context, EntityUid, EntityId, EntityTypeName, RestrictedExpression, Request, Schema};
5303    /// # use std::str::FromStr;
5304    /// let schema_json = serde_json::json!(
5305    ///     {
5306    ///       "": {
5307    ///         "entityTypes": {
5308    ///           "User": {},
5309    ///           "Album": {},
5310    ///         },
5311    ///         "actions": {
5312    ///           "view": {
5313    ///              "appliesTo": {
5314    ///                "principalTypes": ["User"],
5315    ///                "resourceTypes": ["Album"],
5316    ///                "context": {
5317    ///                  "type": "Record",
5318    ///                  "attributes": {
5319    ///                    "sub": { "type": "Long" }
5320    ///                  }
5321    ///                }
5322    ///              }
5323    ///           }
5324    ///         }
5325    ///       }
5326    ///     });
5327    /// let schema = Schema::from_json_value(schema_json).unwrap();
5328    ///
5329    /// let a_eid = EntityId::from_str("view").unwrap();
5330    /// let a_name: EntityTypeName = EntityTypeName::from_str("Action").unwrap();
5331    /// let action = EntityUid::from_type_name_and_id(a_name, a_eid);
5332    /// let data = serde_json::json!({
5333    ///     "sub": 1234
5334    /// });
5335    /// let context = Context::from_json_value(data, Some((&schema, &action))).unwrap();
5336    /// # let p = EntityUid::from_str(r#"User::"alice""#).unwrap();
5337    /// # let r = EntityUid::from_str(r#"Album::"trip""#).unwrap();
5338    /// # let request: Request = Request::new(p, action, r, context, Some(&schema)).unwrap();
5339    /// ```
5340    pub fn from_json_value(
5341        json: serde_json::Value,
5342        schema: Option<(&Schema, &EntityUid)>,
5343    ) -> Result<Self, ContextJsonError> {
5344        let schema = schema
5345            .map(|(s, uid)| Self::get_context_schema(s, uid))
5346            .transpose()?;
5347        let context = cedar_policy_core::entities::ContextJsonParser::new(
5348            schema.as_ref(),
5349            Extensions::all_available(),
5350        )
5351        .from_json_value(json)?;
5352        Ok(Self(context))
5353    }
5354
5355    /// Create a `Context` from a JSON file.  The JSON file must contain a JSON
5356    /// object, not any other JSON type, or you will get an error here.
5357    /// JSON here must use the `__entity` and `__extn` escapes for entity
5358    /// references, extension values, etc.
5359    ///
5360    /// If a `schema` is provided, this will inform the parsing: for instance, it
5361    /// will allow `__entity` and `__extn` escapes to be implicit, and it will error
5362    /// if attributes have the wrong types (e.g., string instead of integer).
5363    /// Since different Actions have different schemas for `Context`, you also
5364    /// must specify the `Action` for schema-based parsing.
5365    /// ```no_run
5366    /// # use cedar_policy::{Context, RestrictedExpression};
5367    /// # use cedar_policy::{Entities, EntityId, EntityTypeName, EntityUid, Request,PolicySet};
5368    /// # use std::collections::HashMap;
5369    /// # use std::str::FromStr;
5370    /// # use std::fs::File;
5371    /// let mut json = File::open("json_file.json").unwrap();
5372    /// let context = Context::from_json_file(&json, None).unwrap();
5373    /// # // create a request
5374    /// # let p_eid = EntityId::from_str("alice").unwrap();
5375    /// # let p_name: EntityTypeName = EntityTypeName::from_str("User").unwrap();
5376    /// # let p = EntityUid::from_type_name_and_id(p_name, p_eid);
5377    /// #
5378    /// # let a_eid = EntityId::from_str("view").unwrap();
5379    /// # let a_name: EntityTypeName = EntityTypeName::from_str("Action").unwrap();
5380    /// # let a = EntityUid::from_type_name_and_id(a_name, a_eid);
5381    /// # let r_eid = EntityId::from_str("trip").unwrap();
5382    /// # let r_name: EntityTypeName = EntityTypeName::from_str("Album").unwrap();
5383    /// # let r = EntityUid::from_type_name_and_id(r_name, r_eid);
5384    /// # let request: Request = Request::new(p, a, r, context, None).unwrap();
5385    /// ```
5386    pub fn from_json_file(
5387        json: impl std::io::Read,
5388        schema: Option<(&Schema, &EntityUid)>,
5389    ) -> Result<Self, ContextJsonError> {
5390        let schema = schema
5391            .map(|(s, uid)| Self::get_context_schema(s, uid))
5392            .transpose()?;
5393        let context = cedar_policy_core::entities::ContextJsonParser::new(
5394            schema.as_ref(),
5395            Extensions::all_available(),
5396        )
5397        .from_json_file(json)?;
5398        Ok(Self(context))
5399    }
5400
5401    /// Convert this `Context` into a JSON value
5402    pub fn to_json_value(
5403        &self,
5404    ) -> Result<serde_json::Value, entities_json_errors::JsonSerializationError> {
5405        self.0.to_json_value()
5406    }
5407
5408    /// Internal helper function to convert `(&Schema, &EntityUid)` to `impl ContextSchema`
5409    fn get_context_schema(
5410        schema: &Schema,
5411        action: &EntityUid,
5412    ) -> Result<impl ContextSchema, ContextJsonError> {
5413        cedar_policy_core::validator::context_schema_for_action(&schema.0, action.as_ref())
5414            .ok_or_else(|| ContextJsonError::missing_action(action.clone()))
5415    }
5416
5417    /// Merge this [`Context`] with another context (or iterator over
5418    /// `(String, RestrictedExpression)` pairs), returning an error if the two
5419    /// contain overlapping keys
5420    pub fn merge(
5421        self,
5422        other_context: impl IntoIterator<Item = (String, RestrictedExpression)>,
5423    ) -> Result<Self, ContextCreationError> {
5424        Self::from_pairs(self.into_iter().chain(other_context))
5425    }
5426
5427    /// Validates this context against the provided schema
5428    ///
5429    /// Returns Ok(()) if the context is valid according to the schema, or an error otherwise
5430    ///
5431    /// This validation is already handled by `Request::new`, so there is no need to separately call
5432    /// if you are validating the whole request
5433    pub fn validate(
5434        &self,
5435        schema: &crate::Schema,
5436        action: &EntityUid,
5437    ) -> std::result::Result<(), RequestValidationError> {
5438        // Call the validate_context function from coreschema.rs
5439        Ok(RequestSchema::validate_context(
5440            &schema.0,
5441            &self.0,
5442            action.as_ref(),
5443            Extensions::all_available(),
5444        )?)
5445    }
5446}
5447
5448/// Utilities for implementing `IntoIterator` for `Context`
5449mod context {
5450    use super::{ast, RestrictedExpression};
5451
5452    /// `IntoIter` iterator for `Context`
5453    #[derive(Debug)]
5454    pub struct IntoIter {
5455        pub(super) inner: <ast::Context as IntoIterator>::IntoIter,
5456    }
5457
5458    impl Iterator for IntoIter {
5459        type Item = (String, RestrictedExpression);
5460
5461        fn next(&mut self) -> Option<Self::Item> {
5462            self.inner
5463                .next()
5464                .map(|(k, v)| (k.to_string(), RestrictedExpression(v)))
5465        }
5466    }
5467}
5468
5469impl IntoIterator for Context {
5470    type Item = (String, RestrictedExpression);
5471
5472    type IntoIter = context::IntoIter;
5473
5474    fn into_iter(self) -> Self::IntoIter {
5475        Self::IntoIter {
5476            inner: self.0.into_iter(),
5477        }
5478    }
5479}
5480
5481#[doc(hidden)]
5482impl From<ast::Context> for Context {
5483    fn from(c: ast::Context) -> Self {
5484        Self(c)
5485    }
5486}
5487
5488impl std::fmt::Display for Request {
5489    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
5490        write!(f, "{}", self.0)
5491    }
5492}
5493
5494impl std::fmt::Display for Context {
5495    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
5496        write!(f, "{}", self.0)
5497    }
5498}
5499
5500/// Result of Evaluation
5501#[derive(Debug, Clone, PartialEq, Eq, PartialOrd, Ord)]
5502pub enum EvalResult {
5503    /// Boolean value
5504    Bool(bool),
5505    /// Signed integer value
5506    Long(ast::Integer),
5507    /// String value
5508    String(String),
5509    /// Entity Uid
5510    EntityUid(EntityUid),
5511    /// A first-class set
5512    Set(Set),
5513    /// A first-class anonymous record
5514    Record(Record),
5515    /// An extension value, currently limited to String results
5516    ExtensionValue(String),
5517    // ExtensionValue(std::sync::Arc<dyn InternalExtensionValue>),
5518}
5519
5520/// Sets of Cedar values
5521#[derive(Debug, Clone, Eq, PartialEq, PartialOrd, Ord)]
5522pub struct Set(BTreeSet<EvalResult>);
5523
5524impl Set {
5525    /// Iterate over the members of the set
5526    pub fn iter(&self) -> impl Iterator<Item = &EvalResult> {
5527        self.0.iter()
5528    }
5529
5530    /// Is a given element in the set
5531    pub fn contains(&self, elem: &EvalResult) -> bool {
5532        self.0.contains(elem)
5533    }
5534
5535    /// Get the number of members of the set
5536    pub fn len(&self) -> usize {
5537        self.0.len()
5538    }
5539
5540    /// Test if the set is empty
5541    pub fn is_empty(&self) -> bool {
5542        self.0.is_empty()
5543    }
5544}
5545
5546/// A record of Cedar values
5547#[derive(Debug, Clone, Eq, PartialEq, PartialOrd, Ord)]
5548pub struct Record(BTreeMap<String, EvalResult>);
5549
5550impl Record {
5551    /// Iterate over the attribute/value pairs in the record
5552    pub fn iter(&self) -> impl Iterator<Item = (&String, &EvalResult)> {
5553        self.0.iter()
5554    }
5555
5556    /// Check if a given attribute is in the record
5557    pub fn contains_attribute(&self, key: impl AsRef<str>) -> bool {
5558        self.0.contains_key(key.as_ref())
5559    }
5560
5561    /// Get a given attribute from the record
5562    pub fn get(&self, key: impl AsRef<str>) -> Option<&EvalResult> {
5563        self.0.get(key.as_ref())
5564    }
5565
5566    /// Get the number of attributes in the record
5567    pub fn len(&self) -> usize {
5568        self.0.len()
5569    }
5570
5571    /// Test if the record is empty
5572    pub fn is_empty(&self) -> bool {
5573        self.0.is_empty()
5574    }
5575}
5576
5577#[doc(hidden)]
5578impl From<ast::Value> for EvalResult {
5579    fn from(v: ast::Value) -> Self {
5580        match v.value {
5581            ast::ValueKind::Lit(ast::Literal::Bool(b)) => Self::Bool(b),
5582            ast::ValueKind::Lit(ast::Literal::Long(i)) => Self::Long(i),
5583            ast::ValueKind::Lit(ast::Literal::String(s)) => Self::String(s.to_string()),
5584            ast::ValueKind::Lit(ast::Literal::EntityUID(e)) => {
5585                Self::EntityUid(ast::EntityUID::clone(&e).into())
5586            }
5587            ast::ValueKind::Set(set) => Self::Set(Set(set
5588                .authoritative
5589                .iter()
5590                .map(|v| v.clone().into())
5591                .collect())),
5592            ast::ValueKind::Record(record) => Self::Record(Record(
5593                record
5594                    .iter()
5595                    .map(|(k, v)| (k.to_string(), v.clone().into()))
5596                    .collect(),
5597            )),
5598            ast::ValueKind::ExtensionValue(ev) => {
5599                Self::ExtensionValue(RestrictedExpr::from(ev.as_ref().clone()).to_string())
5600            }
5601        }
5602    }
5603}
5604
5605#[doc(hidden)]
5606#[expect(
5607    clippy::fallible_impl_from,
5608    reason = "see the panic safety comments below"
5609)]
5610impl From<EvalResult> for Expression {
5611    fn from(res: EvalResult) -> Self {
5612        match res {
5613            EvalResult::Bool(b) => Self::new_bool(b),
5614            EvalResult::Long(l) => Self::new_long(l),
5615            EvalResult::String(s) => Self::new_string(s),
5616            EvalResult::EntityUid(eid) => {
5617                Self::from(ast::Expr::from(ast::Value::from(ast::EntityUID::from(eid))))
5618            }
5619            EvalResult::Set(set) => Self::new_set(set.iter().cloned().map(Self::from)),
5620            EvalResult::Record(r) =>
5621            {
5622                #[expect(
5623                    clippy::unwrap_used,
5624                    reason = "record originates from EvalResult so should not panic when reconstructing as an Expression"
5625                )]
5626                Self::new_record(r.iter().map(|(k, v)| (k.clone(), Self::from(v.clone())))).unwrap()
5627            }
5628            EvalResult::ExtensionValue(s) => {
5629                #[expect(
5630                    clippy::unwrap_used,
5631                    reason = "the string s is constructed using RestrictedExpr::to_string() so should not panic when being parsed back into a RestrictedExpr"
5632                )]
5633                let expr: ast::Expr = ast::RestrictedExpr::from_str(&s).unwrap().into();
5634                Self::from(expr)
5635            }
5636        }
5637    }
5638}
5639
5640impl std::fmt::Display for EvalResult {
5641    fn fmt(&self, f: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
5642        match self {
5643            Self::Bool(b) => write!(f, "{b}"),
5644            Self::Long(l) => write!(f, "{l}"),
5645            Self::String(s) => write!(f, "\"{}\"", s.escape_debug()),
5646            Self::EntityUid(uid) => write!(f, "{uid}"),
5647            Self::Set(s) => {
5648                write!(f, "[")?;
5649                for (i, ev) in s.iter().enumerate() {
5650                    write!(f, "{ev}")?;
5651                    if (i + 1) < s.len() {
5652                        write!(f, ", ")?;
5653                    }
5654                }
5655                write!(f, "]")?;
5656                Ok(())
5657            }
5658            Self::Record(r) => {
5659                write!(f, "{{")?;
5660                for (i, (k, v)) in r.iter().enumerate() {
5661                    write!(f, "\"{}\": {v}", k.escape_debug())?;
5662                    if (i + 1) < r.len() {
5663                        write!(f, ", ")?;
5664                    }
5665                }
5666                write!(f, "}}")?;
5667                Ok(())
5668            }
5669            Self::ExtensionValue(s) => write!(f, "{s}"),
5670        }
5671    }
5672}
5673
5674/// Evaluates an expression.
5675///
5676/// If evaluation results in an error (e.g., attempting to access a non-existent Entity or Record,
5677/// passing the wrong number of arguments to a function etc.), that error is returned as a String
5678pub fn eval_expression(
5679    request: &Request,
5680    entities: &Entities,
5681    expr: &Expression,
5682) -> Result<EvalResult, EvaluationError> {
5683    let all_ext = Extensions::all_available();
5684    let eval = Evaluator::new(request.0.clone(), &entities.0, all_ext);
5685    Ok(EvalResult::from(
5686        // Evaluate under the empty slot map, as an expression should not have slots
5687        eval.interpret(&expr.0, &ast::SlotEnv::new())?,
5688    ))
5689}
5690
5691// These are the same tests in validator, just ensuring all the plumbing is done correctly
5692#[cfg(test)]
5693mod test_access {
5694    use cedar_policy_core::ast;
5695
5696    use super::*;
5697
5698    fn schema() -> Schema {
5699        let src = r#"
5700        type Task = {
5701    "id": Long,
5702    "name": String,
5703    "state": String,
5704};
5705
5706type T = String;
5707
5708type Tasks = Set<Task>;
5709entity List in [Application] = {
5710  "editors": Team,
5711  "name": String,
5712  "owner": User,
5713  "readers": Team,
5714  "tasks": Tasks,
5715};
5716entity Application;
5717entity User in [Team, Application] = {
5718  "joblevel": Long,
5719  "location": String,
5720};
5721
5722entity CoolList;
5723
5724entity Team in [Team, Application];
5725
5726action Read, Write, Create;
5727
5728action DeleteList, EditShare, UpdateList, CreateTask, UpdateTask, DeleteTask in Write appliesTo {
5729    principal: [User],
5730    resource : [List]
5731};
5732
5733action GetList in Read appliesTo {
5734    principal : [User],
5735    resource : [List, CoolList]
5736};
5737
5738action GetLists in Read appliesTo {
5739    principal : [User],
5740    resource : [Application]
5741};
5742
5743action CreateList in Create appliesTo {
5744    principal : [User],
5745    resource : [Application]
5746};
5747
5748        "#;
5749
5750        src.parse().unwrap()
5751    }
5752
5753    #[test]
5754    fn principals() {
5755        let schema = schema();
5756        let principals = schema.principals().collect::<HashSet<_>>();
5757        assert_eq!(principals.len(), 1);
5758        let user: EntityTypeName = "User".parse().unwrap();
5759        assert!(principals.contains(&user));
5760        let principals = schema.principals().collect::<Vec<_>>();
5761        assert!(principals.len() > 1);
5762        assert!(principals.iter().all(|ety| **ety == user));
5763        assert!(principals.iter().all(|ety| ety.0.loc().is_some()));
5764
5765        let et = ast::EntityType::EntityType(ast::Name::from_normalized_str("User").unwrap());
5766        let et = schema.0.get_entity_type(&et).unwrap();
5767        assert!(et.loc.is_some());
5768    }
5769
5770    #[cfg(feature = "extended-schema")]
5771    #[test]
5772    fn common_types_extended() {
5773        use cool_asserts::assert_matches;
5774
5775        use cedar_policy_core::validator::{types::Type, LocatedCommonType};
5776
5777        let schema = schema();
5778        assert_eq!(schema.0.common_types().collect::<HashSet<_>>().len(), 3);
5779        let task_type = LocatedCommonType {
5780            name: "Task".into(),
5781            name_loc: None,
5782            type_loc: None,
5783        };
5784        assert!(schema.0.common_types().contains(&task_type));
5785
5786        let tasks_type = LocatedCommonType {
5787            name: "Tasks".into(),
5788            name_loc: None,
5789            type_loc: None,
5790        };
5791        assert!(schema.0.common_types().contains(&tasks_type));
5792        assert!(schema.0.common_types().all(|ct| ct.name_loc.is_some()));
5793        assert!(schema.0.common_types().all(|ct| ct.type_loc.is_some()));
5794
5795        let tasks_type = LocatedCommonType {
5796            name: "T".into(),
5797            name_loc: None,
5798            type_loc: None,
5799        };
5800        assert!(schema.0.common_types().contains(&tasks_type));
5801
5802        let et = ast::EntityType::EntityType(ast::Name::from_normalized_str("List").unwrap());
5803        let et = schema.0.get_entity_type(&et).unwrap();
5804        let attrs = et.attributes();
5805
5806        // Assert that attributes that are resolved from common types still get source locations
5807        let t = attrs.get_attr("tasks").unwrap();
5808        assert!(t.loc.is_some());
5809        assert_matches!(t.attr_type.as_ref(), cedar_policy_core::validator::types::Type::Set { ref element_type } => {
5810            let el = element_type.as_ref().unwrap();
5811            assert_matches!(el.as_ref(), Type::Record{ attrs, .. } => {
5812                assert!(attrs.get_attr("name").unwrap().loc.is_some());
5813                assert!(attrs.get_attr("id").unwrap().loc.is_some());
5814                assert!(attrs.get_attr("state").unwrap().loc.is_some());
5815            });
5816        });
5817    }
5818
5819    #[cfg(feature = "extended-schema")]
5820    #[test]
5821    fn namespace_extended() {
5822        let schema = schema();
5823        assert_eq!(schema.0.namespaces().collect::<HashSet<_>>().len(), 1);
5824        let default_namespace = schema.0.namespaces().last().unwrap();
5825        assert_eq!(default_namespace.name, SmolStr::from("__cedar"));
5826        assert!(default_namespace.name_loc.is_none());
5827        assert!(default_namespace.def_loc.is_none());
5828    }
5829
5830    #[test]
5831    fn empty_schema_principals_and_resources() {
5832        let empty: Schema = "".parse().unwrap();
5833        assert!(empty.principals().next().is_none());
5834        assert!(empty.resources().next().is_none());
5835    }
5836
5837    #[test]
5838    fn resources() {
5839        let schema = schema();
5840        let resources = schema.resources().cloned().collect::<HashSet<_>>();
5841        let expected: HashSet<EntityTypeName> = HashSet::from([
5842            "List".parse().unwrap(),
5843            "Application".parse().unwrap(),
5844            "CoolList".parse().unwrap(),
5845        ]);
5846        assert_eq!(resources, expected);
5847        assert!(resources.iter().all(|ety| ety.0.loc().is_some()));
5848    }
5849
5850    #[test]
5851    fn principals_for_action() {
5852        let schema = schema();
5853        let delete_list: EntityUid = r#"Action::"DeleteList""#.parse().unwrap();
5854        let delete_user: EntityUid = r#"Action::"DeleteUser""#.parse().unwrap();
5855        let got = schema
5856            .principals_for_action(&delete_list)
5857            .unwrap()
5858            .cloned()
5859            .collect::<Vec<_>>();
5860        assert_eq!(got, vec!["User".parse().unwrap()]);
5861        assert!(got.iter().all(|ety| ety.0.loc().is_some()));
5862        assert!(schema.principals_for_action(&delete_user).is_none());
5863    }
5864
5865    #[test]
5866    fn resources_for_action() {
5867        let schema = schema();
5868        let delete_list: EntityUid = r#"Action::"DeleteList""#.parse().unwrap();
5869        let delete_user: EntityUid = r#"Action::"DeleteUser""#.parse().unwrap();
5870        let create_list: EntityUid = r#"Action::"CreateList""#.parse().unwrap();
5871        let get_list: EntityUid = r#"Action::"GetList""#.parse().unwrap();
5872        let got = schema
5873            .resources_for_action(&delete_list)
5874            .unwrap()
5875            .cloned()
5876            .collect::<Vec<_>>();
5877        assert_eq!(got, vec!["List".parse().unwrap()]);
5878        assert!(got.iter().all(|ety| ety.0.loc().is_some()));
5879        let got = schema
5880            .resources_for_action(&create_list)
5881            .unwrap()
5882            .cloned()
5883            .collect::<Vec<_>>();
5884        assert_eq!(got, vec!["Application".parse().unwrap()]);
5885        assert!(got.iter().all(|ety| ety.0.loc().is_some()));
5886        let got = schema
5887            .resources_for_action(&get_list)
5888            .unwrap()
5889            .cloned()
5890            .collect::<HashSet<_>>();
5891        assert_eq!(
5892            got,
5893            HashSet::from(["List".parse().unwrap(), "CoolList".parse().unwrap()])
5894        );
5895        assert!(got.iter().all(|ety| ety.0.loc().is_some()));
5896        assert!(schema.principals_for_action(&delete_user).is_none());
5897    }
5898
5899    #[test]
5900    fn principal_parents() {
5901        let schema = schema();
5902        let user: EntityTypeName = "User".parse().unwrap();
5903        let parents = schema
5904            .ancestors(&user)
5905            .unwrap()
5906            .cloned()
5907            .collect::<HashSet<_>>();
5908        assert!(parents.iter().all(|ety| ety.0.loc().is_some()));
5909        let expected = HashSet::from(["Team".parse().unwrap(), "Application".parse().unwrap()]);
5910        assert_eq!(parents, expected);
5911        let parents = schema
5912            .ancestors(&"List".parse().unwrap())
5913            .unwrap()
5914            .cloned()
5915            .collect::<HashSet<_>>();
5916        assert!(parents.iter().all(|ety| ety.0.loc().is_some()));
5917        let expected = HashSet::from(["Application".parse().unwrap()]);
5918        assert_eq!(parents, expected);
5919        assert!(schema.ancestors(&"Foo".parse().unwrap()).is_none());
5920        let parents = schema
5921            .ancestors(&"CoolList".parse().unwrap())
5922            .unwrap()
5923            .cloned()
5924            .collect::<HashSet<_>>();
5925        assert!(parents.iter().all(|ety| ety.0.loc().is_some()));
5926        let expected = HashSet::from([]);
5927        assert_eq!(parents, expected);
5928    }
5929
5930    #[test]
5931    fn action_groups() {
5932        let schema = schema();
5933        let groups = schema.action_groups().cloned().collect::<HashSet<_>>();
5934        let expected = ["Read", "Write", "Create"]
5935            .into_iter()
5936            .map(|ty| format!("Action::\"{ty}\"").parse().unwrap())
5937            .collect::<HashSet<EntityUid>>();
5938        #[cfg(feature = "extended-schema")]
5939        assert!(groups.iter().all(|ety| ety.0.loc().is_some()));
5940        assert_eq!(groups, expected);
5941    }
5942
5943    #[test]
5944    fn actions() {
5945        let schema = schema();
5946        let actions = schema.actions().cloned().collect::<HashSet<_>>();
5947        let expected = [
5948            "Read",
5949            "Write",
5950            "Create",
5951            "DeleteList",
5952            "EditShare",
5953            "UpdateList",
5954            "CreateTask",
5955            "UpdateTask",
5956            "DeleteTask",
5957            "GetList",
5958            "GetLists",
5959            "CreateList",
5960        ]
5961        .into_iter()
5962        .map(|ty| format!("Action::\"{ty}\"").parse().unwrap())
5963        .collect::<HashSet<EntityUid>>();
5964        assert_eq!(actions, expected);
5965        #[cfg(feature = "extended-schema")]
5966        assert!(actions.iter().all(|ety| ety.0.loc().is_some()));
5967    }
5968
5969    #[test]
5970    fn actions_for_principal_and_resource() {
5971        let schema = schema();
5972        let pty: EntityTypeName = "User".parse().unwrap();
5973        let rty: EntityTypeName = "Application".parse().unwrap();
5974        let actions = schema
5975            .actions_for_principal_and_resource(&pty, &rty)
5976            .cloned()
5977            .collect::<HashSet<EntityUid>>();
5978        let expected = ["GetLists", "CreateList"]
5979            .into_iter()
5980            .map(|ty| format!("Action::\"{ty}\"").parse().unwrap())
5981            .collect::<HashSet<EntityUid>>();
5982        assert_eq!(actions, expected);
5983    }
5984
5985    #[test]
5986    fn entities() {
5987        let schema = schema();
5988        let entities = schema.entity_types().cloned().collect::<HashSet<_>>();
5989        let expected = ["List", "Application", "User", "CoolList", "Team"]
5990            .into_iter()
5991            .map(|ty| ty.parse().unwrap())
5992            .collect::<HashSet<EntityTypeName>>();
5993        assert_eq!(entities, expected);
5994    }
5995}
5996
5997#[cfg(test)]
5998mod test_access_namespace {
5999    use super::*;
6000
6001    fn schema() -> Schema {
6002        let src = r#"
6003        namespace Foo {
6004        type Task = {
6005    "id": Long,
6006    "name": String,
6007    "state": String,
6008};
6009
6010type Tasks = Set<Task>;
6011entity List in [Application] = {
6012  "editors": Team,
6013  "name": String,
6014  "owner": User,
6015  "readers": Team,
6016  "tasks": Tasks,
6017};
6018entity Application;
6019entity User in [Team, Application] = {
6020  "joblevel": Long,
6021  "location": String,
6022};
6023
6024entity CoolList;
6025
6026entity Team in [Team, Application];
6027
6028action Read, Write, Create;
6029
6030action DeleteList, EditShare, UpdateList, CreateTask, UpdateTask, DeleteTask in Write appliesTo {
6031    principal: [User],
6032    resource : [List]
6033};
6034
6035action GetList in Read appliesTo {
6036    principal : [User],
6037    resource : [List, CoolList]
6038};
6039
6040action GetLists in Read appliesTo {
6041    principal : [User],
6042    resource : [Application]
6043};
6044
6045action CreateList in Create appliesTo {
6046    principal : [User],
6047    resource : [Application]
6048};
6049    }
6050
6051        "#;
6052
6053        src.parse().unwrap()
6054    }
6055
6056    #[test]
6057    fn principals() {
6058        let schema = schema();
6059        let principals = schema.principals().collect::<HashSet<_>>();
6060        assert_eq!(principals.len(), 1);
6061        let user: EntityTypeName = "Foo::User".parse().unwrap();
6062        assert!(principals.contains(&user));
6063        let principals = schema.principals().collect::<Vec<_>>();
6064        assert!(principals.len() > 1);
6065        assert!(principals.iter().all(|ety| **ety == user));
6066        assert!(principals.iter().all(|ety| ety.0.loc().is_some()));
6067    }
6068
6069    #[test]
6070    fn empty_schema_principals_and_resources() {
6071        let empty: Schema = "".parse().unwrap();
6072        assert!(empty.principals().next().is_none());
6073        assert!(empty.resources().next().is_none());
6074    }
6075
6076    #[test]
6077    fn resources() {
6078        let schema = schema();
6079        let resources = schema.resources().cloned().collect::<HashSet<_>>();
6080        let expected: HashSet<EntityTypeName> = HashSet::from([
6081            "Foo::List".parse().unwrap(),
6082            "Foo::Application".parse().unwrap(),
6083            "Foo::CoolList".parse().unwrap(),
6084        ]);
6085        assert_eq!(resources, expected);
6086        assert!(resources.iter().all(|ety| ety.0.loc().is_some()));
6087    }
6088
6089    #[test]
6090    fn principals_for_action() {
6091        let schema = schema();
6092        let delete_list: EntityUid = r#"Foo::Action::"DeleteList""#.parse().unwrap();
6093        let delete_user: EntityUid = r#"Foo::Action::"DeleteUser""#.parse().unwrap();
6094        let got = schema
6095            .principals_for_action(&delete_list)
6096            .unwrap()
6097            .cloned()
6098            .collect::<Vec<_>>();
6099        assert_eq!(got, vec!["Foo::User".parse().unwrap()]);
6100        assert!(schema.principals_for_action(&delete_user).is_none());
6101    }
6102
6103    #[test]
6104    fn resources_for_action() {
6105        let schema = schema();
6106        let delete_list: EntityUid = r#"Foo::Action::"DeleteList""#.parse().unwrap();
6107        let delete_user: EntityUid = r#"Foo::Action::"DeleteUser""#.parse().unwrap();
6108        let create_list: EntityUid = r#"Foo::Action::"CreateList""#.parse().unwrap();
6109        let get_list: EntityUid = r#"Foo::Action::"GetList""#.parse().unwrap();
6110        let got = schema
6111            .resources_for_action(&delete_list)
6112            .unwrap()
6113            .cloned()
6114            .collect::<Vec<_>>();
6115        assert!(got.iter().all(|ety| ety.0.loc().is_some()));
6116
6117        assert_eq!(got, vec!["Foo::List".parse().unwrap()]);
6118        let got = schema
6119            .resources_for_action(&create_list)
6120            .unwrap()
6121            .cloned()
6122            .collect::<Vec<_>>();
6123        assert_eq!(got, vec!["Foo::Application".parse().unwrap()]);
6124        assert!(got.iter().all(|ety| ety.0.loc().is_some()));
6125
6126        let got = schema
6127            .resources_for_action(&get_list)
6128            .unwrap()
6129            .cloned()
6130            .collect::<HashSet<_>>();
6131        assert_eq!(
6132            got,
6133            HashSet::from([
6134                "Foo::List".parse().unwrap(),
6135                "Foo::CoolList".parse().unwrap()
6136            ])
6137        );
6138        assert!(schema.principals_for_action(&delete_user).is_none());
6139    }
6140
6141    #[test]
6142    fn principal_parents() {
6143        let schema = schema();
6144        let user: EntityTypeName = "Foo::User".parse().unwrap();
6145        let parents = schema
6146            .ancestors(&user)
6147            .unwrap()
6148            .cloned()
6149            .collect::<HashSet<_>>();
6150        let expected = HashSet::from([
6151            "Foo::Team".parse().unwrap(),
6152            "Foo::Application".parse().unwrap(),
6153        ]);
6154        assert_eq!(parents, expected);
6155        let parents = schema
6156            .ancestors(&"Foo::List".parse().unwrap())
6157            .unwrap()
6158            .cloned()
6159            .collect::<HashSet<_>>();
6160        let expected = HashSet::from(["Foo::Application".parse().unwrap()]);
6161        assert_eq!(parents, expected);
6162        assert!(schema.ancestors(&"Foo::Foo".parse().unwrap()).is_none());
6163        let parents = schema
6164            .ancestors(&"Foo::CoolList".parse().unwrap())
6165            .unwrap()
6166            .cloned()
6167            .collect::<HashSet<_>>();
6168        let expected = HashSet::from([]);
6169        assert_eq!(parents, expected);
6170    }
6171
6172    #[test]
6173    fn action_groups() {
6174        let schema = schema();
6175        let groups = schema.action_groups().cloned().collect::<HashSet<_>>();
6176        let expected = ["Read", "Write", "Create"]
6177            .into_iter()
6178            .map(|ty| format!("Foo::Action::\"{ty}\"").parse().unwrap())
6179            .collect::<HashSet<EntityUid>>();
6180        assert_eq!(groups, expected);
6181    }
6182
6183    #[test]
6184    fn actions() {
6185        let schema = schema();
6186        let actions = schema.actions().cloned().collect::<HashSet<_>>();
6187        let expected = [
6188            "Read",
6189            "Write",
6190            "Create",
6191            "DeleteList",
6192            "EditShare",
6193            "UpdateList",
6194            "CreateTask",
6195            "UpdateTask",
6196            "DeleteTask",
6197            "GetList",
6198            "GetLists",
6199            "CreateList",
6200        ]
6201        .into_iter()
6202        .map(|ty| format!("Foo::Action::\"{ty}\"").parse().unwrap())
6203        .collect::<HashSet<EntityUid>>();
6204        assert_eq!(actions, expected);
6205    }
6206
6207    #[test]
6208    fn entities() {
6209        let schema = schema();
6210        let entities = schema.entity_types().cloned().collect::<HashSet<_>>();
6211        let expected = [
6212            "Foo::List",
6213            "Foo::Application",
6214            "Foo::User",
6215            "Foo::CoolList",
6216            "Foo::Team",
6217        ]
6218        .into_iter()
6219        .map(|ty| ty.parse().unwrap())
6220        .collect::<HashSet<EntityTypeName>>();
6221        assert_eq!(entities, expected);
6222    }
6223
6224    #[test]
6225    fn test_request_context() {
6226        // Create a context with some test data
6227        let context =
6228            Context::from_json_str(r#"{"testKey": "testValue", "numKey": 42}"#, None).unwrap();
6229
6230        // Create entity UIDs for the request
6231        let principal: EntityUid = "User::\"alice\"".parse().unwrap();
6232        let action: EntityUid = "Action::\"view\"".parse().unwrap();
6233        let resource: EntityUid = "Resource::\"doc123\"".parse().unwrap();
6234
6235        // Create the request
6236        let request = Request::new(
6237            principal, action, resource, context, None, // no schema validation for this test
6238        )
6239        .unwrap();
6240
6241        // Test context() method
6242        let retrieved_context = request.context().expect("Context should be present");
6243
6244        // Test get() method on the retrieved context
6245        assert!(retrieved_context.get("testKey").is_some());
6246        assert!(retrieved_context.get("numKey").is_some());
6247        assert!(retrieved_context.get("nonexistent").is_none());
6248    }
6249
6250    #[cfg(feature = "extended-schema")]
6251    #[test]
6252    fn namespace_extended() {
6253        let schema = schema();
6254        assert_eq!(schema.0.namespaces().collect::<HashSet<_>>().len(), 2);
6255        let default_namespace = schema
6256            .0
6257            .namespaces()
6258            .filter(|n| n.name == *"__cedar")
6259            .last()
6260            .unwrap();
6261        assert!(default_namespace.name_loc.is_none());
6262        assert!(default_namespace.def_loc.is_none());
6263
6264        let default_namespace = schema
6265            .0
6266            .namespaces()
6267            .filter(|n| n.name == *"Foo")
6268            .last()
6269            .unwrap();
6270        assert!(default_namespace.name_loc.is_some());
6271        assert!(default_namespace.def_loc.is_some());
6272    }
6273}
6274
6275#[cfg(test)]
6276mod test_lossless_empty {
6277    use super::{LosslessPolicy, LosslessTemplate, Policy, PolicyId, Template};
6278    use cedar_policy_core::pst;
6279    use cool_asserts::assert_matches;
6280
6281    #[test]
6282    fn test_lossless_empty_policy() {
6283        const STATIC_POLICY_TEXT: &str = "permit(principal,action,resource);";
6284        let policy0 = Policy::parse(Some(PolicyId::new("policy0")), STATIC_POLICY_TEXT)
6285            .expect("Failed to parse");
6286        let lossy_policy0 = Policy {
6287            ast: policy0.ast.clone(),
6288            lossless: LosslessPolicy::policy_or_template_text(None::<&str>),
6289        };
6290        // The `to_cedar` representation becomes lossy since we didn't provide text
6291        assert_eq!(
6292            lossy_policy0.to_cedar(),
6293            Some(String::from(
6294                "permit(\n  principal,\n  action,\n  resource\n);"
6295            ))
6296        );
6297        // The EST representation is obtained from the AST
6298        let lossy_policy0_est = lossy_policy0
6299            .lossless
6300            .est(|| policy0.ast.clone().into())
6301            .unwrap();
6302        assert_eq!(lossy_policy0_est, policy0.ast.into());
6303    }
6304
6305    #[test]
6306    fn test_lossless_empty_template() {
6307        const TEMPLATE_TEXT: &str = "permit(principal == ?principal,action,resource);";
6308        let template0 = Template::parse(Some(PolicyId::new("template0")), TEMPLATE_TEXT)
6309            .expect("Failed to parse");
6310        let lossy_template0 = Template {
6311            ast: template0.ast.clone(),
6312            lossless: LosslessTemplate::from_text(None::<&str>),
6313        };
6314        // The `to_cedar` representation becomes lossy since we didn't provide text
6315        assert_eq!(
6316            lossy_template0.to_cedar(),
6317            String::from("permit(\n  principal == ?principal,\n  action,\n  resource\n);")
6318        );
6319        // The EST representation is obtained from the AST
6320        let lossy_template0_est = lossy_template0
6321            .lossless
6322            .est(|| template0.ast.clone().into())
6323            .unwrap();
6324        assert_eq!(lossy_template0_est, template0.ast.into());
6325    }
6326
6327    #[test]
6328    fn try_into_pst_empty_policy() {
6329        let p = Policy::parse(
6330            Some(PolicyId::new("p")),
6331            "permit(principal,action,resource);",
6332        )
6333        .expect("parse");
6334        let empty = Policy {
6335            ast: p.ast,
6336            lossless: LosslessPolicy::policy_or_template_text(None::<&str>),
6337        };
6338        assert_matches!(
6339            empty.try_into_pst().unwrap().body(),
6340            pst::Template {
6341                effect: pst::Effect::Permit,
6342                principal: pst::PrincipalConstraint::Any,
6343                resource: pst::ResourceConstraint::Any,
6344                action: pst::ActionConstraint::Any,
6345                ..
6346            },
6347        );
6348    }
6349
6350    #[test]
6351    fn try_into_pst_empty_template() {
6352        let t = Template::parse(
6353            Some(PolicyId::new("t")),
6354            "permit(principal == ?principal,action,resource);",
6355        )
6356        .expect("parse");
6357        let empty = Template {
6358            ast: t.ast,
6359            lossless: LosslessTemplate::from_text(None::<&str>),
6360        };
6361        assert_matches!(
6362            empty.try_into_pst().unwrap(),
6363            pst::Template {
6364                effect: pst::Effect::Permit,
6365                principal: pst::PrincipalConstraint::Eq(pst::EntityOrSlot::Slot(
6366                    pst::SlotId::Principal
6367                )),
6368                resource: pst::ResourceConstraint::Any,
6369                action: pst::ActionConstraint::Any,
6370                ..
6371            },
6372        );
6373    }
6374}
6375
6376/// Given a schema and policy set, compute an entity manifest.
6377///
6378/// The policies must validate against the schema in strict mode,
6379/// otherwise an error is returned.
6380/// The manifest describes the data required to answer requests
6381/// for each action.
6382#[doc = include_str!("../experimental_warning.md")]
6383#[deprecated = "The `entity-manifest` experimental feature and all associated functions are deprecated. Migrate to `PolicySet::is_authorized_batch` for efficient authorization with on-demand entity loading."]
6384#[cfg(feature = "entity-manifest")]
6385pub fn compute_entity_manifest(
6386    validator: &Validator,
6387    pset: &PolicySet,
6388) -> Result<EntityManifest, EntityManifestError> {
6389    entity_manifest::compute_entity_manifest(&validator.0, &pset.ast).map_err(Into::into)
6390}