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rudb_opt/
lib.rs

1//! The rewrite passes, cardinality estimation, join ordering, predicate transfer and layout adaptation.
2//!
3//! Rank 11 in the layer rule. See `xtask/layers.toml` and `spec/18-package-layout.md`.
4//!
5//! Six passes so far. `spec/09-optimizer.md` section 9.1 describes a sequence and [`PASSES`] is
6//! the start of it. Column pruning came first, because it is the pass whose absence is measured in
7//! gigabytes: a scan that reads 105 columns to answer a question about three is the whole of the
8//! difference on ClickBench, and the Parquet reader has been able to read a subset since M1 with
9//! nothing able to tell it which subset.
10
11#![forbid(unsafe_code)]
12
13pub mod columns;
14pub mod empty;
15pub mod estimate;
16pub mod explain;
17pub mod filter;
18pub mod fold;
19pub mod limit;
20pub mod nulls;
21pub mod pass;
22pub mod tables;
23pub mod topn;
24mod transitive;
25mod walk;
26
27use rudb_common::{Error, Result};
28use rudb_plan::{Node, NodeRef, Plan};
29
30use crate::pass::{Context, Pass};
31
32/// The crate this rank belongs to, so that the layer check has something to read.
33pub const RANK: u8 = 11;
34
35/// The passes, in the order they run.
36///
37/// A fixed sequence rather than a loop to a fixed point, which is what `spec/09-optimizer.md`
38/// section 9.1 asks for and what DuckDB does. A fixed point is easy to write and hard to bound: a
39/// pair of passes that undo each other runs forever, and the version that stops after a few rounds
40/// has a plan that depends on how many rounds it was given.
41///
42/// Folding is before pruning because folding removes column references and pruning drops the columns
43/// nothing refers to, so a `CASE WHEN false THEN t.a ELSE 1 END` costs a column read when the two run
44/// the other way around. Nothing in the other direction is given up: pruning drops columns and
45/// renumbers bindings, and neither of those makes anything foldable.
46///
47/// Filter pushdown goes between them. After folding, because a predicate that folds to a constant is
48/// a predicate with nothing to push and the pass that moves it should not be the one that finds out.
49/// Before pruning, because moving a filter below a projection rewrites it in terms of columns the
50/// projection reads, and pruning has to see the plan after the move or it drops a column that
51/// something now refers to.
52///
53/// Empty result pullup is after filter pushdown, because pushdown is what moves an unsatisfiable
54/// predicate down to the scan it should stop and what drops the conjuncts that were always true, so
55/// the pass that looks for a predicate nothing can satisfy should look after that has happened. It
56/// is before pruning for the same reason folding is: the subtrees it removes are subtrees pruning
57/// would otherwise walk and work out column lists for.
58///
59/// Limit pushdown is second to last, which is to say it is immediately before top N. A limit that
60/// has moved below the projections above it is a limit that may now be sitting directly on a sort,
61/// and that pair is what top N fuses, so running the two the other way around would leave the fusion
62/// with a plan it cannot see the shape of.
63///
64/// Top N is last, because it is the one pass that fuses two operators into one rather than moving
65/// something around. Everything before it is written against a sort and a limit, and a pass that had
66/// to know about both spellings of the same plan is a pass with two of every rule in it.
67pub static PASSES: [&(dyn Pass + Sync); 6] = [
68    &fold::ExpressionRewriter,
69    &filter::FilterPushdown,
70    &empty::EmptyResultPullup,
71    &columns::UnusedColumns,
72    &limit::LimitPushdown,
73    &topn::TopN,
74];
75
76/// Rewrites a bound plan into the plan that runs, with every pass on.
77///
78/// # Errors
79///
80/// If a pass left the plan malformed or narrowed what it returns, which is a bug in the pass and
81/// not in the query.
82pub fn optimize(plan: &mut Plan) -> Result<()> {
83    optimize_with(plan, &Context::new())
84}
85
86/// Rewrites a bound plan into the plan that runs, skipping the passes the context turned off.
87///
88/// Every pass preserves the plan invariant, which is what [`Plan::validate`] checks, so this checks
89/// it once at the end rather than each pass checking itself. In a release build it does not, because
90/// a pass that breaks the invariant breaks it the same way in both builds and the debug build is
91/// where that gets found.
92///
93/// It also checks that the plan still returns as many columns as it did on the way in. A malformed
94/// plan is found by whatever runs next, but a rewrite that quietly changes what a query returns is
95/// the one failure that running the query afterwards would not notice, and column pruning in
96/// particular is a pass whose only way of being wrong is exactly that.
97///
98/// It also checks, in a debug build, that running the whole sequence a second time changes nothing.
99/// That is the property that makes a fixed sequence the right shape: a pass that keeps finding work
100/// on a plan it has already rewritten is a pass whose output depends on how many times it happened
101/// to run, and in a fixed sequence it runs once, so the plan that reaches the executor is whatever
102/// the first pass left behind. Each pass has its own test for this and the assertion is here anyway,
103/// because the pair that is not idempotent together is usually a pair that is idempotent apart.
104///
105/// # Errors
106///
107/// Whatever a pass reported, and then, in a debug build, if a pass left the plan malformed, narrowed
108/// what it returns or did not settle, all three of which are a bug in the pass and not in the query.
109pub fn optimize_with(plan: &mut Plan, context: &Context) -> Result<()> {
110    run(plan, context, &PASSES)
111}
112
113/// The sequence, over a list of passes the tests can choose.
114fn run(plan: &mut Plan, context: &Context, passes: &[&(dyn Pass + Sync)]) -> Result<()> {
115    let before = output_columns(plan, plan.root());
116    once(plan, context, passes)?;
117    if cfg!(debug_assertions) {
118        plan.validate()?;
119        let after = output_columns(plan, plan.root());
120        if after != before {
121            return Err(Error::internal(format!(
122                "a pass turned a query of {before} columns into one of {after}"
123            )));
124        }
125        let settled = plan.to_string();
126        once(plan, context, passes)?;
127        let again = plan.to_string();
128        if again != settled {
129            return Err(Error::internal(format!(
130                "the passes did not settle, since running them again gave a different plan\n\n{settled}\n{again}"
131            )));
132        }
133    }
134    Ok(())
135}
136
137/// One run of every pass that is turned on.
138fn once(plan: &mut Plan, context: &Context, passes: &[&(dyn Pass + Sync)]) -> Result<()> {
139    for pass in passes {
140        if context.is_disabled(pass.name()) {
141            continue;
142        }
143        pass.run(plan, context)?;
144    }
145    Ok(())
146}
147
148/// How many columns a node produces, which no pass is allowed to change at the root.
149///
150/// The count rather than the names and types, because the root of a plan the binder builds is a
151/// projection and what has to hold is that a pass did not add or drop one of its expressions. The
152/// recursion is over the operators that pass their input's width through, so its depth is the
153/// nesting the binder already walked to build the plan.
154fn output_columns(plan: &Plan, reference: NodeRef) -> usize {
155    match *plan.node(reference) {
156        Node::Get { columns, .. }
157        | Node::Values { columns, .. }
158        | Node::TableFunction { columns, .. } => plan.field_list(columns).len(),
159        Node::Project { exprs, .. } => plan.expr_list(exprs).len(),
160        Node::Aggregate { groups, aggregates, .. } => {
161            plan.expr_list(groups).len() + plan.expr_list(aggregates).len()
162        }
163        Node::Dummy => 0,
164        Node::Filter { input, .. }
165        | Node::Sort { input, .. }
166        | Node::Limit { input, .. }
167        | Node::TopN { input, .. }
168        | Node::Distinct { input, .. } => output_columns(plan, input),
169        // A set operation is as wide as either side, since the binder already required the two to
170        // agree. A join and a cross product are as wide as the two together.
171        Node::SetOp { left, .. } => output_columns(plan, left),
172        Node::Join { left, right, .. } | Node::CrossProduct { left, right } => {
173            output_columns(plan, left) + output_columns(plan, right)
174        }
175    }
176}
177
178#[cfg(test)]
179mod tests {
180    use super::*;
181
182    /// How wide the plan a text prints is, before anything has run over it.
183    fn width(text: &str) -> usize {
184        let plan =
185            Plan::parse(text).unwrap_or_else(|error| panic!("{text} did not parse: {error}"));
186        output_columns(&plan, plan.root())
187    }
188
189    /// Optimize the plan a text prints and hand back what it printed afterwards.
190    fn optimized(text: &str) -> String {
191        let mut plan =
192            Plan::parse(text).unwrap_or_else(|error| panic!("{text} did not parse: {error}"));
193        optimize(&mut plan).unwrap_or_else(|error| panic!("{text} did not optimize: {error}"));
194        plan.to_string()
195    }
196
197    #[test]
198    fn the_width_of_a_plan_is_the_width_of_whatever_produces_its_columns() {
199        assert_eq!(
200            width(
201                "Project #1 [#0.0::INTEGER AS a]\n  Get memory.main.t AS t #0 [a::INTEGER, b::VARCHAR]\n"
202            ),
203            1
204        );
205        assert_eq!(width("Get memory.main.t AS t #0 [a::INTEGER, b::VARCHAR]\n"), 2);
206        assert_eq!(width("Dummy\n"), 0);
207        assert_eq!(
208            width(
209                "Aggregate #1 groups=[#0.0::INTEGER] aggregates=[count_star()::BIGINT]\n  Get memory.main.t AS t #0 [a::INTEGER]\n"
210            ),
211            2
212        );
213    }
214
215    /// A `LIMIT` or a `SORT` is as wide as what is under it, which is the recursion this function
216    /// exists for and the part a single level check would get wrong.
217    #[test]
218    fn an_operator_that_passes_its_input_through_is_as_wide_as_its_input() {
219        assert_eq!(
220            width("Limit 1 offset 0\n  Get memory.main.t AS t #0 [a::INTEGER, b::VARCHAR]\n"),
221            2
222        );
223    }
224
225    /// A join is both sides and a set operation is either one, since the binder already required
226    /// the two sides of a set operation to agree.
227    #[test]
228    fn a_join_is_both_sides_together_and_a_set_operation_is_one_of_them() {
229        assert_eq!(
230            width(
231                "Join INNER on=[]\n  Get memory.main.t AS t #0 [a::INTEGER, b::VARCHAR]\n  Get memory.main.u AS u #1 [x::INTEGER]\n"
232            ),
233            3
234        );
235        assert_eq!(
236            width(
237                "SetOp UNION ALL #2\n  Get memory.main.t AS t #0 [a::INTEGER]\n  Get memory.main.u AS u #1 [x::INTEGER]\n"
238            ),
239            1
240        );
241    }
242
243    /// The check is on the whole of `optimize` and not on one pass, so it keeps holding as passes
244    /// are added. This is the shape it runs over today.
245    #[test]
246    fn optimizing_keeps_a_query_as_wide_as_it_was() {
247        let before = "Project #1 [#0.1::VARCHAR AS b]\n  Get memory.main.t AS t #0 [a::INTEGER, b::VARCHAR]\n";
248        let after = "Project #1 [#0.0::VARCHAR AS b]\n  Get memory.main.t AS t #0 [b::VARCHAR]\n";
249        assert_eq!(optimized(before), after);
250        assert_eq!(width(before), width(after));
251    }
252
253    #[test]
254    fn no_two_passes_answer_to_the_same_name() {
255        // The name is the address, so two passes sharing one would make the toggle turn off
256        // whichever came first in the list and silently leave the other on.
257        let mut names: Vec<&str> = PASSES.iter().map(|pass| pass.name()).collect();
258        names.sort_unstable();
259        let held = names.len();
260        names.dedup();
261        assert_eq!(names.len(), held, "{names:?}");
262    }
263
264    #[test]
265    fn a_pass_that_is_turned_off_does_not_run() {
266        let text = "Project #1 [\"+\"(1::INTEGER, 1::INTEGER)::INTEGER AS n]\n  Get memory.main.t AS t #0 [a::INTEGER]\n";
267        let mut plan = Plan::parse(text).expect("a well formed plan");
268        let context = Context::without("expression_rewriter").expect("a name that is a pass");
269        optimize_with(&mut plan, &context).expect("the other pass still runs");
270        assert_eq!(
271            plan.to_string(),
272            "Project #1 [\"+\"(1::INTEGER, 1::INTEGER)::INTEGER AS n]\n  Get memory.main.t AS t #0 []\n"
273        );
274    }
275
276    /// A pass that finds the same work every time it looks, which is what the assertion is for.
277    #[derive(Debug)]
278    #[cfg(debug_assertions)]
279    struct Restless;
280
281    #[cfg(debug_assertions)]
282    impl Pass for Restless {
283        fn name(&self) -> &'static str {
284            "restless"
285        }
286
287        fn run(&self, plan: &mut Plan, _context: &Context) -> Result<()> {
288            let root = plan.root();
289            if !matches!(*plan.node(root), Node::Limit { .. }) {
290                return Ok(());
291            }
292            let stacked = plan.add_node(Node::Limit { input: root, count: Some(1), offset: 0 });
293            plan.set_root(stacked);
294            Ok(())
295        }
296    }
297
298    /// The settle check is a debug build check, so the test for it is a debug build test. Without
299    /// this the release profile job runs a test that asserts an error nothing was going to report,
300    /// which is what it had been doing since #196, because the per commit gate runs the tests once
301    /// and runs them in debug.
302    #[test]
303    #[cfg(debug_assertions)]
304    fn a_pass_that_never_settles_is_a_reported_error_and_not_a_plan() {
305        let text = "Limit 1 offset 0\n  Get memory.main.t AS t #0 [a::INTEGER]\n";
306        let mut plan = Plan::parse(text).expect("a well formed plan");
307        let error = run(&mut plan, &Context::new(), &[&Restless]).expect_err("it never settles");
308        assert!(error.message().starts_with("the passes did not settle"), "{}", error.message());
309    }
310
311    /// Folding before pruning, which is the reason the order in [`PASSES`] is the order it is. The
312    /// column is read only by a branch that cannot be taken, so one pass has to remove the branch
313    /// before the other can see that nothing reads the column.
314    #[test]
315    fn folding_runs_first_so_that_pruning_sees_the_columns_it_freed() {
316        let text = "Project #1 [CASE WHEN FALSE::BOOLEAN THEN #0.1::INTEGER ELSE #0.0::INTEGER END::INTEGER AS n]\n  Get memory.main.t AS t #0 [a::INTEGER, b::INTEGER]\n";
317        assert_eq!(
318            optimized(text),
319            "Project #1 [#0.0::INTEGER AS n]\n  Get memory.main.t AS t #0 [a::INTEGER]\n"
320        );
321    }
322}