tor_netdoc/parse2.rs
1//! New netdoc parsing arrangements, with `derive`
2//!
3//! # Parsing principles
4//!
5//! A parseable network document is a type implementing [`NetdocParseable`].
6//! usually via the
7//! [`NetdocParseable` derive=deftly macro`](crate::derive_deftly_template_NetdocParseable).
8//!
9//! A document type is responsible for recognising its own heading item.
10//! Its parser will also be told other of structural items that it should not consume.
11//! The structural lines can then be used to pass control to the appropriate parser.
12//!
13//! A "structural item" is a netdoc item that is defines the structure of the document.
14//! This includes the intro items for whole documents,
15//! the items that introduce document sections
16//! (which we model by treating the section as a sub-document)
17//! and signature items (which introduce the signatures at the end of the document,
18//! and after which no non-signature items may appear).
19//!
20//! # Ordering
21//!
22//! We don't always parse things into a sorted order.
23//! Sorting will be done when assembling documents, before outputting.
24//!
25//! # Types, and signature handling
26//!
27//! Most top-level network documents are signed somehow.
28//! In this case there are three types:
29//!
30//! * **`FooUnverified`**: a signed `Foo`, with its signatures, not yet verified.
31//! Implements [`NetdocParseableUnverified`],
32//! typically by invoking the
33//! [`NetdocUParseablenverified` derive macro](crate::derive_deftly_template_NetdocParseableUnverified)
34//! on `Foo`.
35//!
36//! Type-specific methods are provided for verification,
37//! to obtain a `Foo`.
38//!
39//! * **`Foo`**: the body data for the document.
40//! This doesn't contain any signatures.
41//! Having one of these to play with means signatures have already been validated.
42//! Can be parsed as part of the signed document,
43//! via the `NetdocParseable` implementation on `FooUnverified`,
44//! and then obtained via `.verify_...` method(s) on `FooUnverified`,
45//!
46//! * **`FooSignatures`**: the signatures for a `Foo`.
47//! Implements `NetdocParseableSignatures`, via
48//! [derive](crate::derive_deftly_template_NetdocParseableSignatures),
49//! with `#[deftly(netdoc(signatures))]`.
50//!
51//! # Relationship to tor_netdoc::parse
52//!
53//! This is a completely new parsing approach, based on different principles.
54//! The key principle is the recognition of "structural keywords",
55//! recursively within a parsing stack, via the p`NetdocParseable`] trait.
56//!
57//! This allows the parser to be derived. We have type-driven parsing
58//! of whole Documents, Items, and their Arguments and Objects,
59//! including of their multiplicity.
60//!
61//! The different keyword handling means we can't use most of the existing lexer,
62//! and need new item parsing API:
63//!
64//! * [`NetdocParseable`] trait.
65//! * [`KeywordRef`] type.
66//! * [`ItemStream`], [`UnparsedItem`], [`ArgumentStream`], [`UnparsedObject`].
67//!
68//! The different error handling means we have our own error types.
69//! (The crate's existing parse errors have information that we don't track,
70//! and is also a portmanteau error for parsing, writing, and other functions.)
71//!
72//! Document signing is handled in a more abstract way.
73//!
74//! Some old netdoc constructs are not supported.
75//! For example, the obsolete `opt` prefix on safe-to-ignore Items.
76//! The parser may make different decisions about netdocs with anomalous item ordering.
77
78#[doc(hidden)]
79#[macro_use]
80pub mod internal_prelude;
81
82#[macro_use]
83mod structural;
84
85#[macro_use]
86mod derive;
87
88mod error;
89mod impls;
90pub mod keyword;
91mod lex;
92mod lines;
93pub mod multiplicity;
94mod signatures;
95mod traits;
96
97use internal_prelude::*;
98
99pub use error::{ArgumentError, ErrorProblem, ParseError, UnexpectedArgument, VerifyFailed};
100pub use impls::times::NdaSystemTimeDeprecatedSyntax;
101pub use keyword::KeywordRef;
102pub use lex::{ArgumentStream, ItemStream, NoFurtherArguments, UnparsedItem, UnparsedObject};
103pub use lines::{Lines, Peeked, StrExt};
104pub use signatures::{
105 HasUnverifiedParsedBody, NetdocParseableSignatures, NetdocParseableUnverified,
106 SignatureHashInputs, SignatureHashesAccumulator, SignatureItemParseable, SignaturesData,
107 sig_hashes,
108};
109#[allow(deprecated)]
110#[deprecated]
111pub use signatures::{check_validity_time, check_validity_time_tolerance};
112pub use structural::{StopAt, StopPredicate};
113pub use traits::{
114 IsStructural, ItemArgumentParseable, ItemObjectParseable, ItemValueParseable, NetdocParseable,
115 NetdocParseableFields,
116};
117
118#[doc(hidden)]
119pub use derive::netdoc_parseable_derive_debug;
120
121pub(crate) use internal_prelude::EP;
122
123//---------- input ----------
124
125/// Options for parsing
126///
127/// Specific document and type parsing methods may use these parameters
128/// to control their parsing behaviour at run-time.
129#[derive(educe::Educe, Debug, Clone)]
130#[allow(clippy::manual_non_exhaustive)]
131#[educe(Default)]
132pub struct ParseOptions {
133 /// Retain unknown values?
134 ///
135 /// Some field types, especially for flags fields, have the capability to retain
136 /// unknown flags. But, whereas known flags can be represented as single bits,
137 /// representing unknown flags involves allocating and copying strings.
138 /// Unless the document is to be reproduced, this is a waste of effort.
139 ///
140 /// Each document field type affected by this option should store the unknowns
141 /// as `Unknown<HashSet<String>>` or similar.
142 ///
143 /// This feature should only be used where performance is important.
144 /// For example, it is useful for types that appear in md consensus routerdescs,
145 /// but less useful for types that appear only in a netstatus preamble.
146 ///
147 /// This is currently used for router flags.
148 #[educe(Default(expression = "Unknown::new_discard()"))]
149 pub retain_unknown_values: Unknown<()>,
150
151 // Like `#[non_exhaustive]`, but doesn't prevent use of struct display syntax with `..`
152 #[doc(hidden)]
153 _private_non_exhaustive: (),
154}
155
156/// Input to a network document top-level parsing operation
157#[derive(Debug, Clone, amplify::Getters)]
158pub struct ParseInput<'s> {
159 /// The actual document text
160 #[getter(as_copy)]
161 input: &'s str,
162
163 /// Filename (for error reporting)
164 #[getter(as_copy)]
165 file: &'s str,
166
167 /// Parsing options
168 #[getter(as_ref, as_mut)]
169 options: ParseOptions,
170}
171
172impl<'s> ParseInput<'s> {
173 /// Prepare to parse an input string
174 pub fn new(input: &'s str, file: &'s str) -> Self {
175 ParseInput {
176 input,
177 file,
178 options: ParseOptions::default(),
179 }
180 }
181
182 /// Enable retention of unknown values during parsing
183 ///
184 /// Convenience method to set
185 /// [`.options_mut().retain_unknown_values`](ParseOptions::retain_unknown_values)
186 /// to [`Unknown::Retained`].
187 #[cfg(feature = "retain-unknown")]
188 pub fn retain_unknown_values(&mut self) {
189 self.options_mut().retain_unknown_values = Unknown::Retained(());
190 }
191}
192
193//---------- parser ----------
194
195/// Common code for `parse_netdoc` and `parse_netdoc_multiple`
196///
197/// Creates the `ItemStream`, calls `parse_completely`, and handles errors.
198fn parse_internal<T, D: NetdocParseable>(
199 input: &ParseInput<'_>,
200 parse_completely: impl FnOnce(&mut ItemStream) -> Result<T, ErrorProblem>,
201) -> Result<T, ParseError> {
202 let mut items = ItemStream::new(input)?;
203 parse_completely(&mut items).map_err(|problem| ParseError {
204 problem,
205 doctype: D::doctype_for_error(),
206 file: input.file.to_owned(),
207 lno: items.lno_for_error(),
208 column: problem.column(),
209 })
210}
211
212/// Parse a network document - **toplevel entrypoint**
213pub fn parse_netdoc<D: NetdocParseable>(input: &ParseInput<'_>) -> Result<D, ParseError> {
214 parse_internal::<_, D>(input, |items| {
215 let doc = D::from_items(items, StopAt(false))?;
216 if let Some(_kw) = items.peek_keyword()? {
217 return Err(EP::MultipleDocuments);
218 }
219 Ok(doc)
220 })
221}
222
223/// Parse multiple concatenated network documents - **toplevel entrypoint**
224pub fn parse_netdoc_multiple<D: NetdocParseable>(
225 input: &ParseInput<'_>,
226) -> Result<Vec<D>, ParseError> {
227 parse_internal::<_, D>(input, |items| {
228 let mut docs = vec![];
229 while items.peek_keyword()?.is_some() {
230 let doc = D::from_items(items, StopAt(false))?;
231 docs.push(doc);
232 }
233 Ok(docs)
234 })
235}
236
237/// Parse multiple network documents, also returning their offsets - **toplevel entrypoint**
238///
239/// Each returned document is accompanied by the byte offsets of its start and end.
240///
241/// (The netdoc metaformat does not allow anything in between subsequent documents in a file,
242/// so the end of one document is the start of the next.)
243///
244/// This returns byte offsets rather than string slices,
245/// because the caller can always convert the offsets into string slices,
246/// but it is not straightforward to convert string slices borrowed from some input string
247/// into offsets, in a way that is obviously correct without nightly `str::substr_range`.
248///
249/// Interfacing code can assume that slicing the input string with the returned
250/// [`usize`] values will not cause an out-of-bounds error, meaning runtime
251/// checks are not necessary there.
252pub fn parse_netdoc_multiple_with_offsets<D: NetdocParseable>(
253 input: &ParseInput<'_>,
254) -> Result<Vec<(D, usize, usize)>, ParseError> {
255 parse_internal::<_, D>(input, |items| {
256 let mut docs = vec![];
257 while items.peek_keyword()?.is_some() {
258 let start_pos = items.byte_position();
259 let doc = D::from_items(items, StopAt(false))?;
260 let end_pos = items.byte_position();
261
262 // Check start_pos and end_pos are in range.
263 if input.input.get(start_pos..end_pos).is_none() {
264 return Err(ErrorProblem::Internal("out-of-bounds bug?"));
265 }
266
267 docs.push((doc, start_pos, end_pos));
268 }
269 Ok(docs)
270 })
271}