Skip to main content

rudb_bind/
statement.rs

1//! From an `Ast` to a `Bound`, which is a statement rather than a query.
2//!
3//! A `SELECT` binds to a [`Plan`] and nothing else, and that is why [`bind`](crate::bind) can hand
4//! one back. `CREATE TABLE`, `DROP TABLE` and `INSERT` are not plans and are deliberately not being
5//! made into plans. A `Node::CreateTable` would be a node with no columns, no rows, no cost and no
6//! reason to be pushed past anything, which is to say a node the optimizer has to be told to leave
7//! alone and the executor has to special case at the root. `spec/09-optimizer.md` section 9.1 says
8//! every node in a plan produces rows, and a DDL statement does not, so it goes beside the plan and
9//! not inside it.
10//!
11//! What each variant carries is the statement with every name and type already resolved, so the
12//! thing that runs it does catalog calls and nothing else. An `INSERT` in particular arrives with
13//! a plan whose output is exactly the target's columns in the target's order and the target's
14//! types, with the casts and the nulls for unmentioned columns already in it, so appending is a
15//! loop over chunks.
16
17use rudb_catalog::{Catalog, Entry, QualifiedName, duplicate_check, same_name};
18use rudb_common::{Error, Field, LogicalType, Result, Value};
19use rudb_parse::ast::{self, Ast};
20use rudb_parse::{NONE, parse_ast};
21use rudb_plan::{Expr, ExprRef, Node, Plan};
22
23use crate::binder::Binder;
24use crate::parameters::Parameters;
25
26/// One statement, bound.
27///
28/// Not `#[non_exhaustive]`. A new variant here is a new kind of statement, and the compiler
29/// pointing at every place that has to decide what to do with it is the whole value of the enum.
30#[derive(Debug)]
31pub enum Bound {
32    /// A query, which is the only one of these that produces rows.
33    Query(Plan),
34    /// `CREATE TABLE`.
35    CreateTable(CreateTable),
36    /// `CREATE VIEW`.
37    CreateView(CreateView),
38    /// `DROP TABLE` or `DROP VIEW`.
39    DropTable(DropTable),
40    /// `INSERT INTO`.
41    Insert(Insert),
42    /// `SET name = value`, or `RESET name`, which is the same thing with no value.
43    Setting(Setting),
44    /// `EXPLAIN` over a query, holding the plan of the query rather than the query.
45    ///
46    /// The same `Plan` a [`Bound::Query`] would have carried, bound the same way and by the same
47    /// code. What makes it an explain is that the layer above optimizes it and prints it instead
48    /// of running it, which is the point: a plan that was built differently because somebody asked
49    /// to see it is not the plan that runs.
50    ///
51    /// With `analyze` set the layer above runs it as well and prints what happened on it. Still the
52    /// same plan, for the same reason.
53    Explain { plan: Plan, analyze: bool },
54}
55
56/// A bound `SET` or `RESET`.
57///
58/// The value is a [`Value`] rather than an expression, because every setting there is takes a
59/// string or a number and nothing that runs one wants a plan. What a setting does with the value it
60/// gets is the setting's own business and is decided a layer up, since the binder has no idea what
61/// settings exist.
62///
63/// The narrow part of that is that the value has to already be a constant. `SET threads = 2 + 2` is
64/// four in DuckDB and is refused here, because folding it needs the expression rewriter and the
65/// rewriter is two layers above the binder. Nothing writes arithmetic in a `SET` and the refusal
66/// says what it is, so this waits for a reason to move.
67#[derive(Debug)]
68pub struct Setting {
69    /// The setting name, as written.
70    pub name: String,
71    /// The scope word, if one was written.
72    pub scope: ast::Scope,
73    /// The value, or `None` for a `RESET`.
74    pub value: Option<Value>,
75}
76
77/// A bound `CREATE TABLE`.
78#[derive(Debug)]
79pub struct CreateTable {
80    /// The full name the table gets.
81    pub name: QualifiedName,
82    /// The columns, in order, with the types already resolved. For a `CREATE TABLE AS` these are
83    /// the query's output types under whatever names the statement or the query gave them.
84    pub columns: Vec<Field>,
85    /// The query to fill it from, for a `CREATE TABLE AS`.
86    pub source: Option<Plan>,
87    /// Whether an existing table of that name is left alone rather than being an error.
88    pub if_not_exists: bool,
89    /// Whether an existing table of that name is dropped first.
90    pub or_replace: bool,
91}
92
93/// A bound `CREATE VIEW`.
94///
95/// The body is the text that was written rather than the plan it bound to. It was bound once on the
96/// way through here, which is what refuses a view over a table that is not there, and the plan that
97/// came out of that is then thrown away, because a view follows the tables underneath it and a plan
98/// cannot. See [`rudb_catalog::View`].
99#[derive(Debug)]
100pub struct CreateView {
101    /// The full name the view gets.
102    pub name: QualifiedName,
103    /// The body, as written.
104    pub sql: String,
105    /// The column names the statement gave, which rename a prefix of what the body produces.
106    pub aliases: Vec<String>,
107    /// Whether an existing entry of that name is left alone rather than being an error.
108    pub if_not_exists: bool,
109    /// Whether an existing entry of that name is dropped first.
110    pub or_replace: bool,
111}
112
113/// A bound `DROP TABLE` or `DROP VIEW`.
114#[derive(Debug)]
115pub struct DropTable {
116    /// The tables or views to drop, already resolved. With `IF EXISTS` a name that does not resolve
117    /// is not in here at all, which is what makes running this a sequence of drops that cannot
118    /// fail for being missing. Dropping one of these as the wrong type still can, because `DROP
119    /// TABLE IF EXISTS v` where `v` is a view is an error in DuckDB and was measured to be one.
120    pub names: Vec<QualifiedName>,
121    /// Which of the two the statement said it was dropping.
122    pub kind: Entry,
123}
124
125/// A bound `INSERT`.
126#[derive(Debug)]
127pub struct Insert {
128    /// The table to append to.
129    pub name: QualifiedName,
130    /// The rows to append. The output is the table's columns, in the table's order, with the
131    /// table's types, so nothing between here and the append has a decision left to make.
132    pub source: Plan,
133}
134
135/// Binds one parsed statement against a catalog.
136///
137/// # Errors
138///
139/// If the script does not hold exactly one statement, if a name does not resolve, if a type does
140/// not work out, or if the statement uses something that is not bound yet.
141pub fn bind_statement(ast: &Ast, catalog: &Catalog) -> Result<Bound> {
142    bind_statement_with(ast, catalog, &Parameters::new())
143}
144
145/// Binds one parsed statement against a catalog, with values for its parameters.
146///
147/// This is the prepared statement path. The statement is parsed once and bound once per set of
148/// values, so a parameter is a constant by the time the plan exists and everything after the binder
149/// sees an ordinary query. That is why there is no parameter in `rudb_plan::Expr`.
150///
151/// # Errors
152///
153/// Everything [`bind_statement`] reports, plus an error for a parameter that was given no value.
154pub fn bind_statement_with(ast: &Ast, catalog: &Catalog, parameters: &Parameters) -> Result<Bound> {
155    let statement = match ast.statements.as_slice() {
156        [statement] => *statement,
157        [] => return Err(Error::binder("no statement to bind")),
158        _ => return Err(Error::not_implemented("a script of more than one statement")),
159    };
160    match statement {
161        ast::Statement::Query(query) => {
162            let mut binder = Binder::with(catalog, parameters);
163            let (root, _) = binder.bind_query(ast, query)?;
164            Ok(Bound::Query(finish(binder, root)?))
165        }
166        ast::Statement::CreateTable(index) => create_table(ast, catalog, parameters, index),
167        ast::Statement::CreateView(index) => create_view(ast, catalog, parameters, index),
168        ast::Statement::DropTable(index) => drop_table(ast, catalog, index),
169        ast::Statement::Insert(index) => insert(ast, catalog, parameters, index),
170        ast::Statement::Set(index) | ast::Statement::Reset(index) => {
171            setting(ast, catalog, parameters, index)
172        }
173        ast::Statement::Explain { query, analyze } => {
174            let mut binder = Binder::with(catalog, parameters);
175            let (root, _) = binder.bind_query(ast, query)?;
176            Ok(Bound::Explain { plan: finish(binder, root)?, analyze })
177        }
178    }
179}
180
181/// Parses and binds one statement, which is the whole front end in one call.
182///
183/// # Errors
184///
185/// Anything the parser or the binder reports.
186pub fn bind_statement_sql(sql: &str, catalog: &Catalog) -> Result<Bound> {
187    let ast = parse_ast(sql)?;
188    bind_statement(&ast, catalog)
189}
190
191/// Roots a binder's plan and checks it.
192fn finish(binder: Binder<'_>, root: rudb_plan::NodeRef) -> Result<Plan> {
193    let mut plan = binder.into_plan();
194    plan.set_root(root);
195    plan.validate()?;
196    Ok(plan)
197}
198
199fn create_table(
200    ast: &Ast,
201    catalog: &Catalog,
202    parameters: &Parameters,
203    index: ast::CreateTableRef,
204) -> Result<Bound> {
205    let written = ast.create_table(index);
206    if written.temporary {
207        // A temporary table lives in the `temp` catalog and is dropped when the connection goes,
208        // and there is neither a `temp` catalog nor a connection yet. Making one in `memory` that
209        // never goes away would answer a later `SELECT` with rows DuckDB would not have.
210        return Err(Error::not_implemented("CREATE TEMPORARY TABLE"));
211    }
212    let parts: Vec<&str> = ast.name(written.name).collect();
213    let name = catalog.resolve_for_create(&parts)?;
214    let defs = ast.column_defs(written.columns);
215    let (columns, source) = if written.query == NONE {
216        let mut columns = Vec::with_capacity(defs.len());
217        for def in defs {
218            let text = ast.string(def.ty);
219            if text.is_empty() {
220                return Err(Error::binder(format!(
221                    "Column \"{}\" was declared without a type",
222                    ast.string(def.name)
223                )));
224            }
225            let ty = LogicalType::parse(text)?;
226            let column = ast.string(def.name);
227            columns.push(if def.not_null {
228                Field::required(column, ty)
229            } else {
230                Field::new(column, ty)
231            });
232        }
233        (columns, None)
234    } else {
235        let mut binder = Binder::with(catalog, parameters);
236        let (root, scope) = binder.bind_query(ast, written.query)?;
237        if defs.len() > scope.len() {
238            // DuckDB's sentence, typo and all. A column list shorter than the query is fine and
239            // renames a prefix, so only this direction is an error.
240            return Err(Error::binder("Target table has more colum names than query result."));
241        }
242        let mut columns = Vec::with_capacity(scope.len());
243        for (at, column) in scope.columns.iter().enumerate() {
244            let named = match defs.get(at) {
245                Some(def) => ast.string(def.name).to_string(),
246                None => column.name.clone(),
247            };
248            columns.push(Field::new(named, column.ty.clone()));
249        }
250        if defs.is_empty() {
251            deduplicate(&mut columns);
252        }
253        (columns, Some(finish(binder, root)?))
254    };
255    duplicate_check(&columns)?;
256    Ok(Bound::CreateTable(CreateTable {
257        name,
258        columns,
259        source,
260        if_not_exists: written.if_not_exists,
261        or_replace: written.or_replace,
262    }))
263}
264
265/// Renames the columns a query repeated, which is what makes `CREATE TABLE t AS SELECT 1 AS a, 2 AS
266/// a` a table rather than an error.
267///
268/// A query is allowed to produce two columns of one name and `SELECT 1 AS a, 2 AS a` prints two
269/// columns called `a`, so a statement that turns a query into a table has to decide what to do with
270/// that, and DuckDB renames rather than refusing. The suffix is `_1`, then `_2`, counting up until
271/// the name is free, so a query that already has an `a_1` in it pushes the renamed column to `a_2`
272/// rather than colliding with it.
273///
274/// This only runs when the statement wrote no column list. With a list, even a short one, duckdb
275/// v1.4.1 takes the names as they come and a repeat is an error, so `CREATE TABLE t (z) AS SELECT 1
276/// AS a, 2 AS a` is a table of `z` and `a` and adding a third `a` to that query is a refusal.
277fn deduplicate(columns: &mut [Field]) {
278    for at in 0..columns.len() {
279        let taken = |name: &str, upto: usize, columns: &[Field]| {
280            columns[..upto].iter().any(|held| same_name(&held.name, name))
281        };
282        if !taken(&columns[at].name, at, columns) {
283            continue;
284        }
285        let mut suffix = 1;
286        let mut candidate = format!("{}_{suffix}", columns[at].name);
287        while taken(&candidate, at, columns) {
288            suffix += 1;
289            candidate = format!("{}_{suffix}", columns[at].name);
290        }
291        columns[at].name = candidate;
292    }
293}
294
295/// Binds a `CREATE VIEW`, which means binding the body and then throwing the plan away.
296///
297/// Throwing it away is the point. The body is bound here so that a view over a table that is not
298/// there is refused now rather than at the first select, and so that the column list can be checked
299/// against what the body actually produces. What the catalog keeps is the text, because a view
300/// follows the tables underneath it and a plan is a photograph of the day it was built.
301fn create_view(
302    ast: &Ast,
303    catalog: &Catalog,
304    parameters: &Parameters,
305    index: ast::CreateViewRef,
306) -> Result<Bound> {
307    let written = ast.create_view(index);
308    if written.temporary {
309        // Same reason as a temporary table: there is no `temp` catalog and no connection for one to
310        // belong to, and a view in `memory` that never goes away is not the thing that was asked
311        // for.
312        return Err(Error::not_implemented("CREATE TEMPORARY VIEW"));
313    }
314    let parts: Vec<&str> = ast.name(written.name).collect();
315    let name = catalog.resolve_for_create(&parts)?;
316    let aliases: Vec<String> = ast.name(written.columns).map(str::to_string).collect();
317
318    let mut binder = Binder::with(catalog, parameters);
319    let (_, scope) = binder.bind_query(ast, written.query)?;
320    if aliases.len() > scope.len() {
321        return Err(Error::binder("More VIEW aliases than columns in query result"));
322    }
323
324    Ok(Bound::CreateView(CreateView {
325        name,
326        sql: ast.string(written.sql).to_string(),
327        aliases,
328        if_not_exists: written.if_not_exists,
329        or_replace: written.or_replace,
330    }))
331}
332
333fn drop_table(ast: &Ast, catalog: &Catalog, index: ast::DropTableRef) -> Result<Bound> {
334    let written = ast.drop_table(index);
335    let kind = if written.view { Entry::View } else { Entry::Table };
336    let mut names = Vec::new();
337    for &name in ast.name_list(written.names) {
338        let parts: Vec<&str> = ast.name(name).collect();
339        // The statement said which of the two it meant, so a name that is not there is a missing
340        // one of those and not a missing table.
341        match catalog.resolve_as(&parts, kind) {
342            Ok(resolved) => names.push(resolved),
343            Err(error) if written.if_exists => drop(error),
344            Err(error) => return Err(error),
345        }
346    }
347    Ok(Bound::DropTable(DropTable { names, kind }))
348}
349
350/// Binds a `SET` or a `RESET`, which is resolving its value and nothing else.
351///
352/// The name is not checked here. The binder knows what tables exist and has no idea what settings
353/// exist, since a setting is a knob on the engine rather than an entry in a catalog, and a version
354/// of this that held the list would be the binder holding a copy of something it cannot enforce.
355fn setting(
356    ast: &Ast,
357    catalog: &Catalog,
358    parameters: &Parameters,
359    index: ast::SettingRef,
360) -> Result<Bound> {
361    let written = ast.setting(index);
362    let name = ast.string(written.name).to_string();
363    let value = if written.value == NONE {
364        None
365    } else {
366        let mut binder = Binder::with(catalog, parameters);
367        let bound = binder.bind_setting_value(ast, written.value)?;
368        let Expr::Constant(value) = *binder.plan().expr(bound) else {
369            return Err(Error::not_implemented(format!(
370                "a value for {name} that is not a constant"
371            )));
372        };
373        Some(binder.plan().value(value).clone())
374    };
375    Ok(Bound::Setting(Setting { name, scope: written.scope, value }))
376}
377
378fn insert(
379    ast: &Ast,
380    catalog: &Catalog,
381    parameters: &Parameters,
382    index: ast::InsertRef,
383) -> Result<Bound> {
384    let written = ast.insert(index);
385    let parts: Vec<&str> = ast.name(written.name).collect();
386    let name = catalog.resolve(&parts)?;
387    if catalog.entry(&name)? == Entry::View {
388        // The binary's sentence, article and all. A view has no rows of its own to append to, and
389        // an updatable view is a rule about rewriting the insert that neither database has.
390        return Err(Error::catalog(format!("{} is not an table", name.table)));
391    }
392    let fields: Vec<Field> = catalog.table(&name)?.columns().to_vec();
393
394    // Which table column each source column lands in. Without a column list that is the first n
395    // columns in order, and with one it is whatever the list says, which is also the check that
396    // the list names columns the table has and names none of them twice.
397    let targets: Vec<usize> = if written.columns.is_empty() {
398        (0..fields.len()).collect()
399    } else {
400        let mut targets = Vec::new();
401        for column in ast.name(written.columns) {
402            let at = fields.iter().position(|field| same_name(&field.name, column)).ok_or_else(
403                || {
404                    Error::binder(format!(
405                        "Table \"{}\" does not have a column named \"{column}\"",
406                        name.table
407                    ))
408                },
409            )?;
410            if targets.contains(&at) {
411                return Err(Error::binder(format!(
412                    "Column \"{column}\" is named twice in the same INSERT"
413                )));
414            }
415            targets.push(at);
416        }
417        targets
418    };
419
420    let mut binder = Binder::with(catalog, parameters);
421    let (root, scope) = binder.bind_query(ast, written.source)?;
422    if scope.len() != targets.len() {
423        return Err(Error::binder(format!(
424            "Table \"{}\" has {} columns but {} values were supplied",
425            name.table,
426            targets.len(),
427            scope.len()
428        )));
429    }
430
431    // The projection that makes the source look exactly like the table. Every column the statement
432    // did not name becomes a null of the column's own type, so the append never has to know that a
433    // column list was written at all.
434    let mut exprs: Vec<ExprRef> = Vec::with_capacity(fields.len());
435    let mut names = Vec::with_capacity(fields.len());
436    for (at, field) in fields.iter().enumerate() {
437        let expr = match targets.iter().position(|&target| target == at) {
438            Some(from) => {
439                let column = &scope.columns[from];
440                let expr =
441                    binder.plan_mut().add_expr(Expr::Column(column.binding), column.ty.clone());
442                binder.cast_to(expr, &field.ty)
443            }
444            None => {
445                // A typed null rather than `add_constant`, which would give it the null type and
446                // make the column's type depend on whether a row happened to be inserted into it.
447                let value = binder.plan_mut().add_value(Value::Null);
448                binder.plan_mut().add_expr(Expr::Constant(value), field.ty.clone())
449            }
450        };
451        exprs.push(expr);
452        let interned = binder.plan_mut().intern(&field.name);
453        names.push(interned);
454    }
455    let exprs = binder.plan_mut().add_expr_list(&exprs);
456    let names = binder.plan_mut().add_name_list(&names);
457    let index = binder.fresh_index();
458    let root = binder.plan_mut().add_node(Node::Project { input: root, index, exprs, names });
459    Ok(Bound::Insert(Insert { name, source: finish(binder, root)? }))
460}