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rudb_plan/
node.rs

1//! Logical operators.
2//!
3//! One variant per operator, covering what the M0 binder can produce out of what the transformer
4//! in `rudb-parse` can produce. That is a smaller set than DuckDB's and it is smaller on purpose:
5//! an operator here that nothing constructs is an operator whose textual form, whose validation
6//! and whose rewrite rules have never been run, and the first thing that happens when the binder
7//! finally emits one is that all three turn out to be wrong.
8//!
9//! Every operator that introduces new columns carries a table index, which is the left half of a
10//! [`ColumnBinding`](crate::ColumnBinding). [`Node::Filter`], [`Node::Sort`], [`Node::Limit`],
11//! [`Node::TopN`], [`Node::Distinct`] and [`Node::Join`] do not have one, because they pass their
12//! input's columns through unchanged and a binding that survives a filter should not have to be
13//! rewritten by it.
14
15use crate::{ExprRef, NodeRef, Slice, StrRef};
16
17/// How a window frame measures its bounds.
18#[derive(Debug, Clone, Copy, PartialEq, Eq)]
19pub enum WindowUnit {
20    Rows,
21    Range,
22    Groups,
23}
24
25/// One end of a window frame.
26#[derive(Debug, Clone, Copy, PartialEq, Eq)]
27pub enum WindowBound {
28    UnboundedPreceding,
29    Preceding(ExprRef),
30    CurrentRow,
31    Following(ExprRef),
32    UnboundedFollowing,
33}
34
35/// Which peers a window frame removes after its bounds are applied.
36#[derive(Debug, Clone, Copy, PartialEq, Eq)]
37pub enum WindowExclude {
38    NoOthers,
39    CurrentRow,
40    Group,
41    Ties,
42}
43
44/// The complete frame shared by a compatible run of window expressions.
45#[derive(Debug, Clone, Copy, PartialEq, Eq)]
46pub struct WindowFrame {
47    pub unit: WindowUnit,
48    pub start: WindowBound,
49    pub end: WindowBound,
50    pub exclude: WindowExclude,
51}
52
53/// One end of a [`Node::Limit`], which is a row count or an offset.
54///
55/// Nearly every limit written is a number, and a number is what the binder writes down when it can
56/// work one out. What it cannot work out is a subquery, which has to run before there is a value,
57/// and a call that answers differently every time it is made, such as `RANDOM()` or `nextval`. The
58/// pin takes both of those and so does this, by evaluating the expression while the query runs
59/// rather than while it is planned.
60///
61/// [`Bound::Read`] is how. The binder joins the query or the call in underneath as a single row,
62/// which puts its one value in a column of every row the limit sees, and the limit reads that
63/// column off the first chunk that reaches it and uses the number for the rest of the query. The
64/// column is a column the query did not ask for, so the binder puts a projection over the limit
65/// that drops it again.
66///
67/// A [`Bound::Read`] count is why the rewrites that need a number have to check: a limit over a
68/// sort only becomes a [`Node::TopN`] when the count is known while the plan is built, and a limit
69/// cannot move below the projection that produces the column it reads.
70#[derive(Debug, Clone, Copy, PartialEq, Eq)]
71pub enum Bound {
72    /// Every row, which is what leaving a `LIMIT` off means. Never an offset.
73    All,
74    /// A number the binder worked out.
75    Rows(u64),
76    /// A column of the input holding the number, the same in every row.
77    Read(ExprRef),
78}
79
80impl Bound {
81    /// The number, when it is one already.
82    #[must_use]
83    pub fn rows(self) -> Option<u64> {
84        match self {
85            Self::Rows(rows) => Some(rows),
86            Self::All | Self::Read(_) => None,
87        }
88    }
89
90    /// The column this reads, when it reads one.
91    #[must_use]
92    pub fn read(self) -> Option<ExprRef> {
93        match self {
94            Self::Read(expr) => Some(expr),
95            Self::All | Self::Rows(_) => None,
96        }
97    }
98}
99
100/// The share a `LIMIT` written as a percentage names.
101///
102/// The two arms are the two things somebody can write. `LIMIT 30 PERCENT` and `LIMIT 30%` are a
103/// number the binder works out, and the check that it is between nought and a hundred happens while
104/// the query is bound. `LIMIT (SELECT 30)%` is a number nobody has before the query runs, so it
105/// arrives as a column of the input exactly the way a [`Bound::Read`] count does, and the range
106/// check moves to where the value turns up.
107///
108/// A share the query wrote as a subquery is always written with the sign rather than the word,
109/// because the grammar refuses `PERCENT` after a closing bracket, in both engines. That is a rule
110/// about spelling and not about what the node can hold.
111#[derive(Debug, Clone, Copy, PartialEq)]
112pub enum Share {
113    /// A percentage the binder worked out, from nought to a hundred.
114    Percent(f64),
115    /// A column of the input holding the percentage, the same in every row.
116    Read(ExprRef),
117}
118
119impl Share {
120    /// The percentage, when it is one already.
121    #[must_use]
122    pub fn percent(self) -> Option<f64> {
123        match self {
124            Self::Percent(percent) => Some(percent),
125            Self::Read(_) => None,
126        }
127    }
128
129    /// The column this reads, when it reads one.
130    #[must_use]
131    pub fn read(self) -> Option<ExprRef> {
132        match self {
133            Self::Read(expr) => Some(expr),
134            Self::Percent(_) => None,
135        }
136    }
137}
138
139/// One logical operator.
140///
141/// Children are the inputs, in the order [`Node::children`] returns them, which is the order they
142/// print in and the order the reader expects.
143///
144/// `PartialEq` and not `Eq`, because [`Node::LimitPercent`] holds a percentage as a `f64`.
145/// [`Value`](rudb_common::Value) is the same shape for the same reason.
146#[derive(Debug, Clone, PartialEq)]
147pub enum Node {
148    /// A base table scan.
149    ///
150    /// The projection is in `columns`, so a scan of two columns of a 105-column table is a two
151    /// column scan in the plan and not a filter over a wide one. `spec/09-optimizer.md` section
152    /// 9.2 calls projection pushdown the difference between 20 GB and 200 MB on ClickBench, and
153    /// this is the field it pushes into.
154    Get {
155        /// The catalog name.
156        catalog: StrRef,
157        /// The schema name.
158        schema: StrRef,
159        /// The table name.
160        table: StrRef,
161        /// The alias the query used, which is what an error message should say.
162        alias: StrRef,
163        /// The table index that this scan's columns bind against.
164        index: u32,
165        /// The projected columns with their types, into the field pool.
166        columns: Slice,
167    },
168    /// One row and no columns.
169    ///
170    /// What `SELECT 1` sits on top of. Not an empty result: an empty result produces no rows and
171    /// `SELECT 1` produces one, and conflating them is how a scalar subquery starts returning
172    /// nothing instead of null.
173    Dummy,
174    /// Literal rows.
175    ///
176    /// Every row has the same length as `columns`, which [`Plan::validate`](crate::Plan::validate)
177    /// checks, because a ragged `VALUES` is a wrong answer rather than a crash.
178    Values {
179        /// The table index that these columns bind against.
180        index: u32,
181        /// The output columns with their types, into the field pool.
182        columns: Slice,
183        /// The rows, into the row pool, each row a slice of the expression list pool.
184        rows: Slice,
185    },
186    /// A function call where a table goes, such as `range(10)`.
187    ///
188    /// The arguments are expressions rather than numbers, because `range(2 + 3)` is a legal call
189    /// and folding it here would mean the plan could not be printed back as what was written. They
190    /// cannot refer to a column: a table function that sees the row on its left is `LATERAL`, and
191    /// that is [`Node::LateralFunction`].
192    ///
193    /// A separate node from [`Node::Values`] even though `range(3)` and `VALUES (0), (1), (2)`
194    /// produce the same rows, because the one that produces three million rows should be three
195    /// numbers in the plan rather than three million expressions in it.
196    TableFunction {
197        /// The table index that this call's columns bind against.
198        index: u32,
199        /// Which function, as its own canonical name.
200        function: StrRef,
201        /// The arguments, into the expression list pool.
202        args: Slice,
203        /// The names of the named parameters the call was written with, into the name pool.
204        ///
205        /// `read_csv('f.csv', delim=';')` keeps the `delim` here rather than only in whatever the
206        /// binder made of it, because the executor opens the file a second time and has to open it
207        /// the same way. A parameter the binder answers on its own, such as `binary_as_string`,
208        /// is here too, so that a plan prints back as the call that was written.
209        options: Slice,
210        /// What each of those names was given, into the expression list pool and the same length.
211        ///
212        /// Constants, every one of them. The binder refuses anything else, because a parameter can
213        /// decide what the columns are and the columns are settled there.
214        settings: Slice,
215        /// The produced columns with their types, into the field pool.
216        columns: Slice,
217    },
218    /// A table function evaluated once per row of its input, which is what `LATERAL` means.
219    ///
220    /// `FROM t, range(t.n)` is this. A table function's arguments are what produce its rows rather
221    /// than something read over rows that already exist, so there is nothing underneath one for a
222    /// domain to be pushed into and nothing the rules in the unnesting pass can rewrite it into.
223    /// This is the operator those rules stop at: the domain goes in on the left, the arguments read
224    /// it, and the call is made once per row of it.
225    ///
226    /// The output is the input's columns followed by the function's, which is a cross product whose
227    /// right side is allowed to change per left row. That is what lets the join putting the rows
228    /// back beside their outer row sit above this and read the domain columns where it reads them
229    /// everywhere else.
230    ///
231    /// Only the series family reaches here. A reader takes a file name, the binder settles the
232    /// columns by opening the file, and a name that is not a constant is refused there, so a
233    /// correlated `read_csv` never gets this far.
234    LateralFunction {
235        /// The rows the call is made against, one call per row.
236        input: NodeRef,
237        /// The table index that this call's columns bind against.
238        index: u32,
239        /// Which function, as its own canonical name.
240        function: StrRef,
241        /// The arguments, into the expression list pool, read against a row of `input`.
242        args: Slice,
243        /// The names of the named parameters the call was written with, into the name pool.
244        options: Slice,
245        /// What each of those names was given, into the expression list pool and the same length.
246        settings: Slice,
247        /// The produced columns with their types, into the field pool, not counting the input's.
248        columns: Slice,
249    },
250    /// A predicate over the input, keeping the rows where it is true.
251    ///
252    /// True, not "not false". A null predicate drops the row, which is SQL's rule and is the
253    /// difference between `WHERE` and `CHECK`.
254    Filter {
255        /// The input.
256        input: NodeRef,
257        /// The predicate, which has to be `BOOLEAN`.
258        predicate: ExprRef,
259    },
260    /// A projection, producing a new set of columns from the input's.
261    Project {
262        /// The input.
263        input: NodeRef,
264        /// The table index the produced columns bind against.
265        index: u32,
266        /// The expressions, into the expression list pool.
267        exprs: Slice,
268        /// One output name per expression, into the name list pool.
269        ///
270        /// Names are carried through the whole plan rather than attached at the root, because the
271        /// thing a person reads a plan dump to answer is usually which column this is, and a dump
272        /// with the names stripped out answers that with a number.
273        names: Slice,
274    },
275    /// A grouped or ungrouped aggregation.
276    ///
277    /// The output is the group expressions followed by the aggregates, in that order, and that is
278    /// what a binding into `index` means. An ungrouped aggregate has an empty `groups` and still
279    /// produces exactly one row, including over an empty input.
280    Aggregate {
281        /// The input.
282        input: NodeRef,
283        /// The table index the produced columns bind against.
284        index: u32,
285        /// The group expressions, into the expression list pool.
286        groups: Slice,
287        /// The aggregate expressions, into the expression list pool. Every element is an
288        /// [`Expr::Aggregate`](crate::Expr::Aggregate) and this is the only place one may appear.
289        aggregates: Slice,
290    },
291    /// Window expressions that share one partition, ordering, and frame.
292    Window {
293        /// Rows over which the windows are evaluated.
294        input: NodeRef,
295        /// The table index of the appended window result columns.
296        index: u32,
297        /// Expressions that divide the input into independent partitions.
298        partition: Slice,
299        /// The ordering within each partition.
300        order: Slice,
301        /// The complete frame shared by this compatible expression run.
302        frame: WindowFrame,
303        /// Direct [`Expr::Window`](crate::Expr::Window) expressions appended to the input columns.
304        expressions: Slice,
305    },
306    /// An ordering.
307    Sort {
308        /// The input.
309        input: NodeRef,
310        /// The keys in priority order, into the sort key pool.
311        keys: Slice,
312    },
313    /// A row count limit and an offset.
314    ///
315    /// Both are a [`Bound`], which is a number when the query said one and a column of the input
316    /// when it wrote something the binder could not settle. See [`Bound`] for what puts the value
317    /// in that column and who reads it.
318    Limit {
319        /// The input.
320        input: NodeRef,
321        /// How many rows to emit, or all of them.
322        count: Bound,
323        /// How many rows to skip first.
324        offset: Bound,
325    },
326    /// A limit written as a share of the input rather than as a row count.
327    ///
328    /// `LIMIT 30 PERCENT` over ten rows is three rows, and it is a node of its own rather than a
329    /// [`Node::Limit`] with another field for three reasons. The share is of the whole input, so
330    /// this cannot emit anything until it has counted every row, where a plain limit hands each
331    /// chunk on as it arrives and stops the scan early. The rewrites that fire on a plain limit are
332    /// wrong here: a filter pushed under this one changes how many rows there are to take a share
333    /// of, and the sort underneath it cannot become a top n because the count is not known until
334    /// the sort has finished. And the pin builds a separate `Limit Percent` operator for it, which
335    /// is the same split one layer down.
336    ///
337    /// A share the binder worked out is between nought and a hundred inclusive, checked while the
338    /// query is bound, because that is where the pin refuses `LIMIT 101 PERCENT` too. The offset is
339    /// applied after the share has been worked out, so `LIMIT 30 PERCENT OFFSET 2` over ten rows is
340    /// three rows starting at the third.
341    ///
342    /// Both fields can be read off the rows instead of being a number written down here, for the
343    /// same reason a plain limit's count can. `LIMIT (SELECT 30)% OFFSET (SELECT 2)` holds two
344    /// numbers nobody has before the query runs, so each arrives as a column of the input and is
345    /// read off the first chunk. See [`Share`] and [`Bound`].
346    LimitPercent {
347        /// The input.
348        input: NodeRef,
349        /// The share of the input to emit, from nought to a hundred.
350        percent: Share,
351        /// How many rows to skip first. Never [`Bound::All`], which is not an offset.
352        offset: Bound,
353    },
354    /// A sort with a limit over it, which never holds more rows than the limit can emit.
355    ///
356    /// The same answer as a [`Node::Limit`] over a [`Node::Sort`] and a different amount of work.
357    /// A sort has to see every row before it can emit the first one, so it holds the whole input;
358    /// this holds the rows that could still come out and throws the rest away as it goes, which on
359    /// `ORDER BY x LIMIT 10` over a hundred million rows is ten rows rather than a hundred million.
360    ///
361    /// `count` is not optional, because `LIMIT ALL` over a sort is a sort and there would be nothing
362    /// to bound. The offset is part of the node rather than left above it, since the rows that are
363    /// skipped still have to be found to be skipped, so what this has to keep is `count + offset`.
364    TopN {
365        /// The input.
366        input: NodeRef,
367        /// The keys in priority order, into the sort key pool.
368        keys: Slice,
369        /// How many rows to emit.
370        count: u64,
371        /// How many rows to skip first.
372        offset: u64,
373    },
374    /// The columns of rows something below already picked out, read back from the file by ordinal.
375    ///
376    /// This is the top half of late materialisation. A `SELECT * FROM hits ORDER BY EventTime LIMIT
377    /// 10` over a hundred and five columns needs one column to decide which ten rows win and all
378    /// hundred and five of those ten rows afterwards, and a plan that carries the wide rows through
379    /// the top N reads the whole file to throw almost all of it away. The rewrite in
380    /// `rudb-opt`'s `late` module narrows the scan under the top N to the ordering columns plus the
381    /// row's ordinal inside its file, and puts this above it to read the rest for the rows that
382    /// survived.
383    ///
384    /// The ordinals come out of the input rather than being counted here, because the operator that
385    /// counted them is the scan and everything between the scan and here may have dropped rows. The
386    /// column that holds them is [`Self::Fetch::row`], and the scan produced it because the rewrite
387    /// turned `file_row_number` on.
388    ///
389    /// The produced columns are the whole row and not only the deferred part, so the answer is one
390    /// read of the file at the ordinals rather than a stitch of what was carried with what was
391    /// fetched. That costs the ordering column a second read of a few pages and saves the plan above
392    /// this from having any idea the rewrite happened.
393    Fetch {
394        /// The input, which carries each row's ordinal inside the file.
395        input: NodeRef,
396        /// The table index the produced columns bind against, which is the one the node this
397        /// replaced produced, so that nothing above has to be rebound.
398        index: u32,
399        /// The file, into the expression list pool. One constant path, because a row ordinal only
400        /// says which row when there is one file it could be in.
401        args: Slice,
402        /// The produced columns with their types, into the field pool.
403        columns: Slice,
404        /// The input column holding the ordinal, which has to be `BIGINT`.
405        row: ExprRef,
406    },
407    /// Rows of a catalog table read back by their table-wide ordinal.
408    TableFetch {
409        input: NodeRef,
410        index: u32,
411        catalog: StrRef,
412        schema: StrRef,
413        table: StrRef,
414        columns: Slice,
415        row: ExprRef,
416    },
417    /// Duplicate elimination, over the whole row or over named expressions.
418    Distinct {
419        /// The input.
420        input: NodeRef,
421        /// The `DISTINCT ON` expressions, into the expression list pool. Empty means the whole
422        /// row, which is plain `DISTINCT`.
423        on: Slice,
424    },
425    /// A join with a condition.
426    Join {
427        /// The left input.
428        left: NodeRef,
429        /// The right input.
430        right: NodeRef,
431        /// Which join.
432        kind: JoinKind,
433        /// The conditions, into the expression list pool, combined with `AND`. Empty is a join
434        /// with no condition, which for an inner join is a cross product and for an outer join
435        /// is not.
436        conditions: Slice,
437        /// Which input is gathered whole before the other one starts.
438        ///
439        /// The binder emits [`BuildSide::Right`] for everything, because at binding time there is
440        /// nothing to choose with. `rudb_opt`'s `sides` pass overwrites it from an estimate, and
441        /// the executor honours whatever it finds here.
442        build: BuildSide,
443    },
444    /// A join answered by reading a stored forward link rather than by building a hash table.
445    ///
446    /// spec/graph/05-execution.md section 5.2. The condition is `child.fk = parent.pk` for a
447    /// declared relationship whose forward link is stored, and the child side reaches the join
448    /// with its row id intact. Where a [`Self::Join`] builds one side and probes it with the
449    /// other, this reads one link value beside the child's own columns and emits the parent's
450    /// projected columns as gathers into the parent's column vectors. There is no build side,
451    /// no hash table, no probe and no materialization of the parent per child row.
452    ///
453    /// It is a node of its own rather than a flag on [`Self::Join`] because the two are different
454    /// operators with different shapes: this one has a driving side and no gathered side, so the
455    /// pipeline under it is one pipeline rather than two, and a reader of an explain output that
456    /// saw `Join` with a flag would have to know the flag to know what ran.
457    ///
458    /// Nothing produces this unless the graph sections are on. Section 3.1 says deleting every
459    /// graph section from a file must change no answer, only the time, so every plan holding one
460    /// of these is a plan the optimizer could have written as a [`Self::Join`] over the same two
461    /// inputs, and the rule that rewrites it says so by construction.
462    LinkJoin {
463        /// The child input, whose rows carry the row id the link is indexed by.
464        child: NodeRef,
465        /// The parent input.
466        ///
467        /// Never scanned as a pipeline. It is here so that the column bindings above this node
468        /// keep naming the scan they named, so that the projection pushdown pass can still see
469        /// which of the parent's columns are wanted, and so that dropping back to a hash join is
470        /// a change of node rather than a re-plan.
471        parent: NodeRef,
472        /// Inner, left, semi or anti. Section 5.2 handles no others: right and full need the
473        /// parent rows nothing pointed at, which is the backward direction.
474        kind: JoinKind,
475        /// The join condition, into the expression list pool. One equality per key column, which
476        /// is one or two, and is what makes this shape recognizable at all.
477        conditions: Slice,
478        /// The child column holding the row id the link is indexed by, which has to be `BIGINT`.
479        ///
480        /// Named here rather than looked for by the builder, the same way [`Self::Fetch`] names
481        /// its ordinal. The rule that writes this node is the one thing that has proved the row id
482        /// survives to here, by way of [`crate::rids_of`], and a builder that went looking for the
483        /// column by name afterwards would be trusting a name where the rule trusted an analysis.
484        rid: ExprRef,
485    },
486    /// A join whose right input can refer to columns produced by its left input.
487    ///
488    /// Binding emits this for a correlated subquery. The unnesting pass has to replace every one
489    /// before execution, so the executor never evaluates the right input once per left row.
490    DependentJoin {
491        /// The outer input whose columns the right side may reference.
492        left: NodeRef,
493        /// The correlated input.
494        right: NodeRef,
495        /// Which result shape the subquery needs.
496        kind: JoinKind,
497        /// Conditions introduced while binding the subquery.
498        conditions: Slice,
499    },
500    /// An unconditional cross product.
501    ///
502    /// Separate from a [`Node::Join`] with no conditions because join ordering treats them
503    /// differently: a cross product has no edge in the join graph and section 9.4's dynamic
504    /// program enumerates connected subgraphs.
505    CrossProduct {
506        /// The left input.
507        left: NodeRef,
508        /// The right input.
509        right: NodeRef,
510    },
511    /// A `WITH name AS MATERIALIZED (...)`, which is run once and read wherever it is named.
512    ///
513    /// The left input is the definition and the right input is the query that reads it. They are
514    /// in that order because that is the order they run in: the definition is a pipeline breaker
515    /// whichever operators are in it, since nothing above may start until the rows are all there.
516    ///
517    /// A plain `WITH` is not this. The reference binary inlines one at every use whatever its
518    /// shape and however many times it is named, and the only decision left is whether the rows
519    /// are needed at all, which is why an unused one is dropped rather than run for nothing.
520    MaterializedCte {
521        /// The query whose rows are held.
522        definition: NodeRef,
523        /// The query that reads them, which is where every [`Node::CteScan`] for this one is.
524        body: NodeRef,
525        /// The name it was written with, which is what the printer and an error message say.
526        name: StrRef,
527        /// Which materialisation this is, matching the `cte` of the scans that read it.
528        ///
529        /// A number of its own rather than the table index, because a scan binds against its own
530        /// index and two scans of one materialisation have two of those.
531        cte: u32,
532        /// The held columns with their types, into the field pool.
533        columns: Slice,
534    },
535    /// A read of a [`Node::MaterializedCte`] that has already run.
536    ///
537    /// A leaf, the same way a table scan is. What it reads was computed by a node above it rather
538    /// than by a node under it, which is the one place in the plan where that is true, and it is
539    /// why the materialisation holds its body as an input rather than sitting beside it.
540    CteScan {
541        /// The table index that this read's columns bind against.
542        index: u32,
543        /// Which materialisation it reads.
544        cte: u32,
545        /// The name it was written with.
546        name: StrRef,
547        /// The produced columns with their types, into the field pool.
548        columns: Slice,
549    },
550    /// A MIN or MAX over an acyclic chain of inner equi-joins, answered without running the join.
551    ///
552    /// What it replaces is an ungrouped aggregate whose every call is a MIN or a MAX of one
553    /// relation's column. Neither answer changes when a row is repeated, so the extreme over the
554    /// joined rows is the extreme over the rows of that one relation that take part in at least one
555    /// joined row, and on an acyclic join those rows are found with two sweeps of semijoins over a
556    /// join tree and no join at all. That is Yannakakis's full reducer, and the relations, the
557    /// classes of columns the equalities made equal and the tree are all in the
558    /// [`Reducer`](crate::Reducer) this points at.
559    ///
560    /// A leaf here, and the relations it reads are not its children. A node has two input slots and
561    /// a join of seventeen relations has seventeen inputs, and the passes that run after this one
562    /// have nothing to do inside it anyway: each relation is a scan with its own filter, already as
563    /// narrow as it is going to get. The two walks that do have to reach them, the pipeline shape
564    /// and the printer, read the reducer.
565    Consistent {
566        /// The table index the produced columns bind against, which is the index of the aggregate
567        /// this replaced, so nothing above it had to be rebound.
568        index: u32,
569        /// The produced columns with their types, into the field pool, one per extreme.
570        columns: Slice,
571        /// Which reducer in the plan's pool describes the relations and the tree.
572        reducer: u32,
573    },
574    /// `UNION`, `EXCEPT` or `INTERSECT`.
575    SetOp {
576        /// The left input.
577        left: NodeRef,
578        /// The right input.
579        right: NodeRef,
580        /// Which operation.
581        kind: SetOpKind,
582        /// Whether duplicates are kept.
583        all: bool,
584        /// The table index the produced columns bind against, since the output is neither side's
585        /// columns.
586        index: u32,
587    },
588}
589
590impl Node {
591    /// The keyword this operator prints as, which is also what the reader dispatches on.
592    #[must_use]
593    pub fn keyword(&self) -> &'static str {
594        match self {
595            Self::Get { .. } => "Get",
596            Self::Dummy => "Dummy",
597            Self::Values { .. } => "Values",
598            Self::TableFunction { .. } => "TableFunction",
599            Self::LateralFunction { .. } => "LateralFunction",
600            Self::Filter { .. } => "Filter",
601            Self::Project { .. } => "Project",
602            Self::Aggregate { .. } => "Aggregate",
603            Self::Window { .. } => "Window",
604            Self::Sort { .. } => "Sort",
605            Self::Limit { .. } => "Limit",
606            Self::LimitPercent { .. } => "LimitPercent",
607            Self::TopN { .. } => "TopN",
608            Self::Fetch { .. } => "Fetch",
609            Self::TableFetch { .. } => "TableFetch",
610            Self::Distinct { .. } => "Distinct",
611            Self::Join { .. } => "Join",
612            Self::LinkJoin { .. } => "LinkJoin",
613            Self::DependentJoin { .. } => "DependentJoin",
614            Self::CrossProduct { .. } => "CrossProduct",
615            Self::MaterializedCte { .. } => "MaterializedCte",
616            Self::CteScan { .. } => "CteScan",
617            Self::Consistent { .. } => "Consistent",
618            Self::SetOp { .. } => "SetOp",
619        }
620    }
621
622    /// The inputs, in printing order.
623    ///
624    /// Two slots rather than a `Vec`, because no logical operator in this set has three inputs and
625    /// the printer walks this on every node of every dump. A caller wants
626    /// `node.children().into_iter().flatten()`.
627    #[must_use]
628    pub fn children(&self) -> [Option<NodeRef>; 2] {
629        match *self {
630            Self::Get { .. }
631            | Self::Dummy
632            | Self::Values { .. }
633            | Self::TableFunction { .. }
634            | Self::CteScan { .. }
635            | Self::Consistent { .. } => [None, None],
636            Self::Filter { input, .. }
637            | Self::Project { input, .. }
638            | Self::Aggregate { input, .. }
639            | Self::Window { input, .. }
640            | Self::Sort { input, .. }
641            | Self::Limit { input, .. }
642            | Self::LimitPercent { input, .. }
643            | Self::TopN { input, .. }
644            | Self::Fetch { input, .. }
645            | Self::TableFetch { input, .. }
646            | Self::Distinct { input, .. }
647            | Self::LateralFunction { input, .. } => [Some(input), None],
648            Self::LinkJoin { child: left, parent: right, .. }
649            | Self::Join { left, right, .. }
650            | Self::DependentJoin { left, right, .. }
651            | Self::CrossProduct { left, right }
652            | Self::SetOp { left, right, .. } => [Some(left), Some(right)],
653            Self::MaterializedCte { definition, body, .. } => [Some(definition), Some(body)],
654        }
655    }
656
657    /// How many inputs this operator takes.
658    #[must_use]
659    pub fn arity(&self) -> usize {
660        self.children().into_iter().flatten().count()
661    }
662
663    /// The table index this operator introduces, if it introduces one.
664    #[must_use]
665    pub fn table_index(&self) -> Option<u32> {
666        match *self {
667            Self::Get { index, .. }
668            | Self::Values { index, .. }
669            | Self::TableFunction { index, .. }
670            | Self::LateralFunction { index, .. }
671            | Self::Project { index, .. }
672            | Self::Fetch { index, .. }
673            | Self::TableFetch { index, .. }
674            | Self::Aggregate { index, .. }
675            | Self::Window { index, .. }
676            | Self::CteScan { index, .. }
677            | Self::Consistent { index, .. }
678            | Self::SetOp { index, .. } => Some(index),
679            _ => None,
680        }
681    }
682}
683
684/// Which join.
685///
686/// `Semi` and `Anti` are here because subquery unnesting produces them directly, per section 9.2,
687/// and a semi join expressed as a join plus a distinct is a semi join the executor cannot
688/// recognise.
689#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
690pub enum JoinKind {
691    /// Rows that match on both sides.
692    Inner,
693    /// Every left row, padded with nulls where the right does not match.
694    Left,
695    /// Every right row, padded with nulls where the left does not match.
696    Right,
697    /// Both of the above at once.
698    Full,
699    /// Left rows that have at least one match, each emitted once.
700    Semi,
701    /// Left rows that have no match.
702    Anti,
703    /// Left rows paired with their match, or with nulls, at most one right row each. What a
704    /// correlated scalar subquery unnests to.
705    Single,
706    /// Every left row plus a nullable boolean saying whether its condition matched the right side.
707    /// A null means no row matched and at least one comparison was unknown.
708    Mark,
709    /// The nth left row with the nth right row, which is DuckDB's `POSITIONAL JOIN`.
710    Positional,
711}
712
713impl JoinKind {
714    /// The spelling used in the textual form.
715    #[must_use]
716    pub fn keyword(self) -> &'static str {
717        match self {
718            Self::Inner => "INNER",
719            Self::Left => "LEFT",
720            Self::Right => "RIGHT",
721            Self::Full => "FULL",
722            Self::Semi => "SEMI",
723            Self::Anti => "ANTI",
724            Self::Single => "SINGLE",
725            Self::Mark => "MARK",
726            Self::Positional => "POSITIONAL",
727        }
728    }
729
730    /// Every join kind, which is what the reader searches.
731    pub(crate) const ALL: [Self; 9] = [
732        Self::Inner,
733        Self::Left,
734        Self::Right,
735        Self::Full,
736        Self::Semi,
737        Self::Anti,
738        Self::Single,
739        Self::Mark,
740        Self::Positional,
741    ];
742
743    /// The same join with its two inputs the other way round, for the kinds where there is one.
744    ///
745    /// Swapping the inputs of a `LEFT` join makes a `RIGHT` join and the other way round, because
746    /// the kind names a side. `INNER` and `FULL` name neither and are their own mirror. The rest
747    /// return `None`: `SEMI`, `ANTI`, `SINGLE` and `MARK` produce the left side's rows, or a
748    /// column about them, so their left input is not a side but the subject, and `POSITIONAL`
749    /// pairs the nth with the nth, which no reordering of one input preserves.
750    #[must_use]
751    pub fn mirrored(self) -> Option<Self> {
752        match self {
753            Self::Inner => Some(Self::Inner),
754            Self::Left => Some(Self::Right),
755            Self::Right => Some(Self::Left),
756            Self::Full => Some(Self::Full),
757            Self::Semi | Self::Anti | Self::Single | Self::Mark | Self::Positional => None,
758        }
759    }
760}
761
762/// Which input of a join is gathered whole before the other one starts.
763///
764/// A join is two inputs and a dependency edge between them: one side is finished and held, and then
765/// the other side's rows are matched against what was held. This says which side that is. It is
766/// where the hash table goes when the hash join in #62 lands, and it is the side today's nested
767/// loop turns into chunks and rescans once per row of the other one.
768///
769/// Which side that should be is not a property of the join and is not decided here. It is decided
770/// by [`sides`](../../rudb_opt/sides/index.html) from a cardinality estimate, and the rule it uses
771/// belongs to whichever operator is reading this, not to the flag.
772#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, Default)]
773pub enum BuildSide {
774    /// The right input, which is what the binder emits and what every join did before this existed.
775    #[default]
776    Right,
777    /// The left input, which means the executor swaps the two and puts the answer back in order.
778    Left,
779}
780
781impl BuildSide {
782    /// The spelling used in the textual form.
783    #[must_use]
784    pub fn keyword(self) -> &'static str {
785        match self {
786            Self::Right => "right",
787            Self::Left => "left",
788        }
789    }
790
791    /// Both sides, which is what the reader searches.
792    pub(crate) const ALL: [Self; 2] = [Self::Right, Self::Left];
793}
794
795/// Which set operation.
796#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
797pub enum SetOpKind {
798    /// Rows from either side.
799    Union,
800    /// Rows from the left that are not on the right.
801    Except,
802    /// Rows on both sides.
803    Intersect,
804}
805
806impl SetOpKind {
807    /// The spelling used in the textual form.
808    #[must_use]
809    pub fn keyword(self) -> &'static str {
810        match self {
811            Self::Union => "UNION",
812            Self::Except => "EXCEPT",
813            Self::Intersect => "INTERSECT",
814        }
815    }
816
817    /// Every set operation, which is what the reader searches.
818    pub(crate) const ALL: [Self; 3] = [Self::Union, Self::Except, Self::Intersect];
819}
820
821#[cfg(test)]
822mod tests {
823    use super::*;
824    use crate::Slice;
825
826    /// Every node in one list, so that a variant added without a keyword, without a child slot or
827    /// without an entry in the reader's dispatch table fails here rather than at the first dump
828    /// that happens to contain one.
829    fn one_of_each() -> Vec<Node> {
830        vec![
831            Node::Get {
832                catalog: 0,
833                schema: 0,
834                table: 0,
835                alias: 0,
836                index: 0,
837                columns: Slice::EMPTY,
838            },
839            Node::Dummy,
840            Node::Values { index: 0, columns: Slice::EMPTY, rows: Slice::EMPTY },
841            Node::TableFunction {
842                index: 0,
843                function: 0,
844                args: Slice::EMPTY,
845                options: Slice::EMPTY,
846                settings: Slice::EMPTY,
847                columns: Slice::EMPTY,
848            },
849            Node::LateralFunction {
850                input: 0,
851                index: 0,
852                function: 0,
853                args: Slice::EMPTY,
854                options: Slice::EMPTY,
855                settings: Slice::EMPTY,
856                columns: Slice::EMPTY,
857            },
858            Node::Filter { input: 0, predicate: 0 },
859            Node::Project { input: 0, index: 0, exprs: Slice::EMPTY, names: Slice::EMPTY },
860            Node::Aggregate { input: 0, index: 0, groups: Slice::EMPTY, aggregates: Slice::EMPTY },
861            Node::Sort { input: 0, keys: Slice::EMPTY },
862            Node::Limit { input: 0, count: Bound::All, offset: Bound::Rows(0) },
863            Node::LimitPercent { input: 0, percent: Share::Percent(50.0), offset: Bound::Rows(0) },
864            Node::Distinct { input: 0, on: Slice::EMPTY },
865            Node::Join {
866                left: 0,
867                right: 1,
868                kind: JoinKind::Inner,
869                conditions: Slice::EMPTY,
870                build: BuildSide::default(),
871            },
872            Node::DependentJoin {
873                left: 0,
874                right: 1,
875                kind: JoinKind::Single,
876                conditions: Slice::EMPTY,
877            },
878            Node::CrossProduct { left: 0, right: 1 },
879            Node::SetOp { left: 0, right: 1, kind: SetOpKind::Union, all: true, index: 0 },
880            Node::Consistent { index: 0, columns: Slice::EMPTY, reducer: 0 },
881        ]
882    }
883
884    #[test]
885    fn every_operator_has_its_own_keyword() {
886        let mut keywords: Vec<&str> = one_of_each().iter().map(Node::keyword).collect();
887        let count = keywords.len();
888        keywords.sort_unstable();
889        keywords.dedup();
890        assert_eq!(keywords.len(), count, "two operators print the same keyword");
891    }
892
893    #[test]
894    fn arity_agrees_with_the_child_slots() {
895        for node in one_of_each() {
896            let counted = node.children().into_iter().flatten().count();
897            assert_eq!(node.arity(), counted, "{} disagrees with itself", node.keyword());
898        }
899    }
900
901    /// A child slot that is `None` before a slot that is `Some` would make the printer emit the
902    /// right input as the left one, and the reader would accept it.
903    #[test]
904    fn the_child_slots_are_filled_from_the_front() {
905        for node in one_of_each() {
906            let slots = node.children();
907            assert!(
908                !(slots[0].is_none() && slots[1].is_some()),
909                "{} has a right input and no left one",
910                node.keyword()
911            );
912        }
913    }
914
915    #[test]
916    fn only_the_operators_that_introduce_columns_have_a_table_index() {
917        for node in one_of_each() {
918            let expected = matches!(
919                node,
920                Node::Get { .. }
921                    | Node::Values { .. }
922                    | Node::TableFunction { .. }
923                    | Node::LateralFunction { .. }
924                    | Node::Project { .. }
925                    | Node::Aggregate { .. }
926                    | Node::SetOp { .. }
927                    | Node::Consistent { .. }
928            );
929            assert_eq!(
930                node.table_index().is_some(),
931                expected,
932                "{} is on the wrong side of the table index rule",
933                node.keyword()
934            );
935        }
936    }
937
938    #[test]
939    fn every_join_kind_and_set_operation_is_in_the_list_the_reader_searches() {
940        assert_eq!(JoinKind::ALL.len(), 9);
941        assert_eq!(SetOpKind::ALL.len(), 3);
942        let mut names: Vec<&str> = JoinKind::ALL.iter().map(|k| k.keyword()).collect();
943        names.sort_unstable();
944        names.dedup();
945        assert_eq!(names.len(), JoinKind::ALL.len(), "two join kinds print the same keyword");
946    }
947}