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yo_resp/dispatch/
blocking.rs

1//! The six list commands that wait, and the machinery that lets a client wait.
2//!
3//! `BLPOP` is `LPOP` with one difference: when there is nothing to pop, the
4//! client waits instead of being told no. Everything here is about that wait,
5//! and nothing here knows anything about lists that [`super::lists`] does not
6//! already know.
7//!
8//! # The command is kept, not the client
9//!
10//! A parked client is a [`Waiter`]: the keys it named, what it wanted to do with
11//! them, and when to give up. It is not a suspended stack and it is not a task.
12//! Answering it later is running the same attempt again against a database that
13//! has changed since, which is why [`Want::attempt`] is the whole of both paths.
14//! The command handler calls it once to see whether the client has to wait at
15//! all, and the retry calls it again each time something might have arrived.
16//!
17//! That is also why the six commands cost nothing when they do not block. A
18//! `BLPOP` on a list with something in it runs the same three lines `LPOP` runs
19//! and never touches the waiter list.
20//!
21//! # A slot is reused and a client id is not
22//!
23//! A waiter remembers both. The slot is where that connection's reply buffer
24//! is, and the client id is what says the connection sitting on that slot is
25//! still the one that blocked. The engine takes a waiter off the list when its
26//! connection closes, so the check should never fail, and it is there because
27//! the cost of being wrong about it is a reply written into somebody else's
28//! socket.
29//!
30//! # What wakes a waiter
31//!
32//! Any command at all, which is more than is needed and is not the cost it
33//! sounds like: the engine looks at whether anybody is parked before it looks at
34//! anything else, so a server with no blocked clients pays one load and one
35//! branch per command and nothing more. Narrowing it to writes would save
36//! nothing measurable and would need a rule about which commands can put a list
37//! under a key, which `RENAME`, `COPY` and `RESTORE` all make longer than it
38//! looks.
39//!
40//! What is left is that the waiter list is walked rather than indexed by key, so
41//! a server with a thousand parked workers walks a thousand entries per command.
42//! The fix when that matters is an index from key to waiter, not a different
43//! rule about when to look.
44
45use std::sync::atomic::Ordering::Relaxed;
46use yo_common::lock::Held;
47use yo_common::{Code, Error, Result, num};
48use yo_kv::{Db, End, Entry, Member, Movem, ZEnd};
49
50use super::args::{self, Args, NOT_AN_INT};
51use super::lists::{self, BAD_MPOP_COUNT, BAD_NUMKEYS, end_of, movem_options};
52use super::notify::{self, class};
53use super::streams;
54use super::table::Spec;
55use super::zsets;
56use super::{Flow, Server, Session};
57use crate::reply::Out;
58
59/// What Redis says about a timeout it cannot read as a number.
60const NOT_A_FLOAT: &str = "timeout is not a float or out of range";
61/// What it says about one it can read and will not take.
62const NEGATIVE: &str = "timeout is negative";
63/// And about one so far away that milliseconds do not fit in an `i64`.
64const OUT_OF_RANGE: &str = "timeout is out of range";
65/// `WAIT` and `WAITAOF` take their timeout in whole milliseconds rather than in
66/// seconds, so a timeout they cannot read is a different complaint again.
67const TIMEOUT_NOT_AN_INT: &str = "timeout is not an integer or out of range";
68/// What `WAITAOF` says about a `numlocal` that is neither of the two it takes.
69const NOT_ZERO_OR_ONE: &str = "value is out of range, value must between 0 and 1";
70/// And about a negative `numreplicas`.
71const NOT_POSITIVE: &str = "value is out of range, must be positive";
72/// And what it says when asked to wait for a file the server does not keep. The
73/// full stop at the end is Redis's and is the one message in the group that has
74/// one, which is why it is worth writing down rather than tidying up.
75const NO_AOF: &str = "WAITAOF cannot be used when numlocal is set but appendonly is disabled.";
76
77/// Run one blocking command.
78///
79/// `Flow::Block` means nothing was written and the client is on the waiter
80/// list. The engine is what knows which socket that client is on, so it is the
81/// engine that finishes the registration and the engine that stops reading
82/// commands from a connection that is now waiting for one.
83///
84/// # Errors
85///
86/// A timeout that is not a timeout, a direction that is not a direction, and a
87/// key holding something that is not a list.
88pub(super) fn execute(
89    server: &Server,
90    session: &Session,
91    spec: &Spec,
92    args: Args<'_>,
93    out: &mut Out,
94) -> Result<Flow> {
95    // The two that wait on replication rather than on a key. They are here
96    // because they carry the blocking flag and that flag is what routes a
97    // command to this file, and they leave immediately because there is nothing
98    // for them to wait for yet. See [`replication`] for what they answer.
99    if spec.name == "wait" || spec.name == "waitaof" {
100        return replication(spec.name, args, out).map(|()| Flow::Continue);
101    }
102    let now = server.now_ms();
103    // The two stream reads, which are here for the same reason the list six
104    // are and leave through a different door. `BLOCK` is optional on both, so
105    // where `BLPOP` always has a timeout to read, `XREAD` may have been told to
106    // answer now and take nothing for an answer. That is the difference between
107    // parking and writing the null, and it cannot be said with a deadline of
108    // `None`, which already means wait for as long as it takes.
109    if spec.name == "xread" || spec.name == "xreadgroup" {
110        let db = session.db();
111        let want = streams::parse_read(spec.name, args, server.striped(db), now)?;
112        let block = Block::xread(want.keys, want.reads);
113        if block.now(server.striped(db), db, now, out)? {
114            return Ok(Flow::Continue);
115        }
116        // A script is the other way there is nothing to wait for. It cannot
117        // park, because the thing it would be waiting for is a command from
118        // another client and the script is what that client is queued behind,
119        // so the wait would never end. Timing out at once is what a real server
120        // does and it answers the same null a full timeout would have.
121        let Some(deadline) = want.wait.filter(|_| !session.scripted()) else {
122            // No `BLOCK` at all, so nothing arriving is the answer and not a
123            // reason to wait for it. A null array on both protocols, which is
124            // also what a `BLOCK` that runs out sends.
125            out.nil_array();
126            return Ok(Flow::Continue);
127        };
128        server.park(session.id(), db, deadline, block);
129        return Ok(Flow::Block);
130    }
131    let last = args.len() - 1;
132    let (deadline, block) = match spec.name {
133        // The keys are everything between the name and the timeout, so `BLPOP a
134        // b c 0` waits on three keys and answers with whichever one arrives
135        // first rather than with the first one named.
136        "blpop" | "brpop" => {
137            let end = if spec.name == "blpop" {
138                End::Left
139            } else {
140                End::Right
141            };
142            let deadline = timeout(args.get(last), now)?;
143            (deadline, Block::pop((1..last).map(|i| args.get(i)), end))
144        }
145        // The directions before the timeout, which is the order Redis checks
146        // them in, so `BLMOVE a b UP DOWN nonsense` is a syntax error and not a
147        // complaint about the timeout.
148        "blmove" => {
149            let (from, to) = (end_of(args.get(3))?, end_of(args.get(4))?);
150            let deadline = timeout(args.get(5), now)?;
151            (deadline, Block::moved(args.get(1), args.get(2), from, to))
152        }
153        // The same order again with one more thing to read: ends, then timeout,
154        // then the options behind it. `BLMOVEM s d UP DOWN abc` complains about
155        // the directions and `BLMOVEM s d LEFT RIGHT abc COUNT abc BULK` about
156        // the timeout, both measured against 8.10.1 rather than assumed, because
157        // a line wrong in two places has exactly one right answer.
158        "blmovem" => {
159            let (from, to) = (end_of(args.get(3))?, end_of(args.get(4))?);
160            let deadline = timeout(args.get(5), now)?;
161            let mv = movem_options(args, 6, from, to)?;
162            (deadline, Block::movem(args.get(1), args.get(2), mv))
163        }
164        "brpoplpush" => {
165            let deadline = timeout(args.get(3), now)?;
166            (
167                deadline,
168                Block::moved(args.get(1), args.get(2), End::Right, End::Left),
169            )
170        }
171        "blmpop" => mpop(args, now)?,
172        // The sorted set three, which are the same three shapes again with a
173        // different collection under them. `BZPOPMIN` reads its keys up to the
174        // timeout the way `BLPOP` does, and `BZMPOP` counts them the way
175        // `BLMPOP` does.
176        "bzpopmin" | "bzpopmax" => {
177            let end = zsets::end_of_name(spec.name);
178            let deadline = timeout(args.get(last), now)?;
179            (deadline, Block::zpop((1..last).map(|i| args.get(i)), end))
180        }
181        "bzmpop" => {
182            let deadline = timeout(args.get(1), now)?;
183            let (end, from, to, count) = zsets::parse_mpop(args, 2)?;
184            (
185                deadline,
186                Block::zmpop((from..to).map(|i| args.get(i)), end, count),
187            )
188        }
189        // The table and this match are checked against each other by
190        // `cargo xtask check`, so a name reaching here is a table row without a
191        // handler and there is nothing sensible to answer.
192        _ => return Err(args::syntax()),
193    };
194
195    let db = session.db();
196    if block.now(server.striped(db), db, now, out)? {
197        return Ok(Flow::Continue);
198    }
199    // Called from a script, so there is nobody left to deliver what it is
200    // waiting for. The same null a timeout writes, for the reason the stream
201    // reads above give.
202    if session.scripted() {
203        out.nil_array();
204        return Ok(Flow::Continue);
205    }
206    server.park(session.id(), db, deadline, block);
207    Ok(Flow::Block)
208}
209
210/// `BLMPOP timeout numkeys key [key ...] LEFT|RIGHT [COUNT count]`.
211///
212/// The same parse as `LMPOP` shifted along by one, including the check that the
213/// key count leaves room for the direction behind it. `BLMPOP 0 2 k LEFT` names
214/// two keys and only gives one, so the word that should have been the direction
215/// is a key and there is no direction left, which Redis calls a syntax error
216/// rather than anything about counts.
217fn mpop(args: Args<'_>, now: u64) -> Result<(Option<u64>, Block)> {
218    let deadline = timeout(args.get(1), now)?;
219    let numkeys = match args.int(2) {
220        Ok(n) if n > 0 => usize::try_from(n).unwrap_or(usize::MAX),
221        _ => return Err(Error::new(Code::Invalid, BAD_NUMKEYS)),
222    };
223    if numkeys >= args.len() - 3 {
224        return Err(args::syntax());
225    }
226    let at = 3 + numkeys;
227    let end = end_of(args.get(at))?;
228    let mut want = 1usize;
229    if at + 1 < args.len() {
230        if args.len() != at + 3 || !args::is(args.get(at + 1), b"count") {
231            return Err(args::syntax());
232        }
233        want = match args.int(at + 2) {
234            Ok(n) if n > 0 => usize::try_from(n).unwrap_or(usize::MAX),
235            _ => return Err(Error::new(Code::Invalid, BAD_MPOP_COUNT)),
236        };
237    }
238    Ok((
239        deadline,
240        Block::mpop((3..at).map(|i| args.get(i)), end, want),
241    ))
242}
243
244/// `WAIT numreplicas timeout` and `WAITAOF numlocal numreplicas timeout`.
245///
246/// Both of them ask the same question, which is whether this connection's writes
247/// have got somewhere durable, and both of them answer zero here. There are no
248/// replicas because there is no replication, and there is no append only file
249/// because `appendonly` is fixed at `no`, so nothing can ever move either count
250/// off zero and there is nothing to wait for. Redis in the same state gives the
251/// same numbers, it just takes the timeout to do it, and that is registered as
252/// D-25.
253///
254/// What is not a formality is the argument checking, because that is what a
255/// client sees when it gets something wrong, and the three numbers are read by
256/// three different Redis helpers with three different complaints. `numlocal` is
257/// a range and says so. `numreplicas` is a positive number for `WAITAOF` and any
258/// number at all for `WAIT`, where a negative one is accepted and satisfied on
259/// the spot because zero replicas is already more than it asked for. The timeout
260/// is milliseconds here and not the seconds the list commands take, so it does
261/// not go through [`timeout`] above, and a negative one is refused with its own
262/// message rather than the range one.
263fn replication(name: &str, args: Args<'_>, out: &mut Out) -> Result<()> {
264    let aof = name == "waitaof";
265    // `WAITAOF` has one number in front of the two `WAIT` has, and everything
266    // after it is in the same place, so the offset is the whole difference.
267    let at = usize::from(aof);
268    let mut wants_local = false;
269    if aof {
270        let local = whole(args.get(1))?;
271        if !(0..=1).contains(&local) {
272            return Err(Error::new(Code::Invalid, NOT_ZERO_OR_ONE));
273        }
274        wants_local = local == 1;
275    }
276    let replicas = whole(args.get(at + 1))?;
277    if aof && replicas < 0 {
278        return Err(Error::new(Code::Invalid, NOT_POSITIVE));
279    }
280    let ms = whole(args.get(at + 2)).map_err(|_| Error::new(Code::Invalid, TIMEOUT_NOT_AN_INT))?;
281    if ms < 0 {
282        return Err(Error::new(Code::Invalid, NEGATIVE));
283    }
284    // The one complaint here that is about the server rather than about the
285    // arguments, and the reason it comes last is that Redis reads all three
286    // arguments before it looks at itself. `appendonly` is `no` here and cannot
287    // be set, so asking to wait for a local copy is asking for something that
288    // cannot happen rather than something that has not happened yet.
289    if wants_local {
290        return Err(Error::new(Code::Invalid, NO_AOF));
291    }
292    if aof {
293        // Two integers and not a map, whichever protocol is in use. The local
294        // count is first and it is zero for the same reason the other one is:
295        // this server has no append only file to be behind.
296        out.array(2);
297        out.int(0);
298        out.int(0);
299    } else {
300        out.int(0);
301    }
302    Ok(())
303}
304
305/// A whole number argument, with the message Redis gives when it is not one.
306fn whole(arg: &[u8]) -> Result<i64> {
307    num::parse_i64(arg).ok_or_else(|| Error::new(Code::Invalid, NOT_AN_INT))
308}
309
310/// The moment to give up at, or `None` for a wait with no end to it.
311///
312/// Seconds as a float on the wire and a millisecond deadline here. Redis reads
313/// it as a long double, refuses a negative one, multiplies by a thousand and
314/// refuses what will not fit in an `i64`, and treats a timeout of exactly zero
315/// as no timeout at all. All four of those are visible from a client:
316///
317/// - `-0.0` is not negative, so it is accepted, and it is zero, so it waits
318///   forever. `-0.1` is refused.
319/// - `1e400` and `inf` parse, so they are not the not-a-float error, and both
320///   are further away than an `i64` of milliseconds reaches, so they are the out
321///   of range one.
322/// - `0.0000001` is a real timeout however small, so it expires on the next turn
323///   of the loop rather than waiting for anything.
324fn timeout(arg: &[u8], now: u64) -> Result<Option<u64>> {
325    let Some(secs) = num::parse_f64(arg) else {
326        return Err(Error::new(Code::Invalid, NOT_A_FLOAT));
327    };
328    if secs < 0.0 {
329        return Err(Error::new(Code::Invalid, NEGATIVE));
330    }
331    let ms = secs * 1000.0;
332    // `>` rather than a negated `<=`, and the two are not the same: an infinite
333    // timeout is greater than the bound and lands here, while a NaN would be
334    // neither, which is why the parse refuses one before this line is reached.
335    if ms > i64::MAX as f64 {
336        return Err(Error::new(Code::Invalid, OUT_OF_RANGE));
337    }
338    if ms <= 0.0 {
339        return Ok(None);
340    }
341    Ok(Some(now.saturating_add(ms as u64)))
342}
343
344/// What a parked client is still trying to do.
345enum Want {
346    /// `BLPOP` and `BRPOP`: one element off the first key that has one, with the
347    /// reply saying which key that turned out to be.
348    Pop { end: End },
349    /// `BLMOVE` and `BRPOPLPUSH`: one element, onto an end of another list.
350    Move { dst: Vec<u8>, from: End, to: End },
351    /// `BLMOVEM`: a block of them, onto an end of another list.
352    ///
353    /// The only want in this file where how many elements are there decides
354    /// whether the client is ready, rather than just whether any are. `COUNT`
355    /// takes what has arrived and so wakes on the first push, and `EXACTLY`
356    /// waits until the source actually holds the whole block.
357    MoveM { dst: Vec<u8>, mv: Movem },
358    /// `BLMPOP`: up to `count` elements off the first key that has any.
359    Mpop { end: End, count: usize },
360    /// `BZPOPMIN` and `BZPOPMAX`: one member and its score off the first sorted
361    /// set that has one, with the reply saying which key that turned out to be.
362    ZPop { end: ZEnd },
363    /// `BZMPOP`: up to `count` members off the first sorted set that has any.
364    ZMpop { end: ZEnd, count: usize },
365    /// `XREAD BLOCK` and `XREADGROUP BLOCK`: whatever has arrived on any of the
366    /// streams since the ID this asked from.
367    ///
368    /// Unlike the other six this takes nothing away, so several clients parked
369    /// on one stream all get the same entry rather than one of them getting it.
370    /// That is the whole point of a stream over a list, and it costs nothing
371    /// here because the attempt is a read.
372    XRead(streams::Reads),
373}
374
375impl Want {
376    /// Try to do it now.
377    ///
378    /// `Ok(true)` means a reply was written and the client is finished with.
379    /// `Ok(false)` means there was nothing to take and nothing was written.
380    ///
381    /// `strict` is the difference between the two callers. The command handler
382    /// passes `true`, so `BLPOP string 0` is a `WRONGTYPE` on the spot the way
383    /// `LPOP string` is. The retry passes `false`, so a key somebody has since
384    /// made into a set is skipped rather than turned into an error on a command
385    /// that was accepted seconds ago. That is what a running Redis does: a
386    /// `SADD` to a key a client is blocked on leaves it blocked, and it times
387    /// out in its own time.
388    ///
389    /// # Errors
390    ///
391    /// Whatever the keyspace says, which under `strict` includes a key of
392    /// another type.
393    fn attempt(
394        &self,
395        keys: &[Vec<u8>],
396        db: &Db,
397        on: usize,
398        now: u64,
399        out: &mut Out,
400        strict: bool,
401    ) -> Result<bool> {
402        match self {
403            // The one arm that needs to know what time it is, because a group
404            // read records when each entry was handed out. The other six take
405            // an element off a collection and the clock does not come into it.
406            Want::XRead(r) => streams::read(streams::On { db, at: on }, keys, r, now, strict, out),
407            Want::Pop { end } => {
408                for key in keys {
409                    if !ready(db, key, strict)? {
410                        continue;
411                    }
412                    out.array(2);
413                    out.bulk(key);
414                    db.hold(key).pop_into(key, *end, 1, |e| element(out, e))?;
415                    notify::fire(on, class::LIST, lists::popped(*end), key);
416                    notify::emptied(db, on, key);
417                    return Ok(true);
418                }
419                Ok(false)
420            }
421            Want::Mpop { end, count } => {
422                for key in keys {
423                    if !ready(db, key, strict)? {
424                        continue;
425                    }
426                    out.array(2);
427                    out.bulk(key);
428                    let mark = out.len();
429                    let n = db
430                        .hold(key)
431                        .pop_into(key, *end, *count, |e| element(out, e))?;
432                    out.close_array(mark, n);
433                    notify::fire(on, class::LIST, lists::popped(*end), key);
434                    notify::emptied(db, on, key);
435                    return Ok(true);
436                }
437                Ok(false)
438            }
439            // Three elements and not two, because `BZPOPMIN` puts the key, the
440            // member and the score side by side rather than pairing the last
441            // two. That is Redis's shape and it is not the shape `ZPOPMIN` has.
442            Want::ZPop { end } => {
443                for key in keys {
444                    if !zready(db, key, strict)? {
445                        continue;
446                    }
447                    out.array(3);
448                    out.bulk(key);
449                    db.hold(key).zpop(key, *end, 1, |m, sc| {
450                        member(out, m);
451                        out.double(sc);
452                    })?;
453                    notify::fire(on, class::ZSET, zsets::popped(*end), key);
454                    notify::emptied(db, on, key);
455                    return Ok(true);
456                }
457                Ok(false)
458            }
459            Want::ZMpop { end, count } => {
460                for key in keys {
461                    if !zready(db, key, strict)? {
462                        continue;
463                    }
464                    out.array(2);
465                    out.bulk(key);
466                    let mark = out.len();
467                    let n = db.hold(key).zpop(key, *end, *count, |m, sc| {
468                        out.array(2);
469                        member(out, m);
470                        out.double(sc);
471                    })?;
472                    out.close_array(mark, n);
473                    notify::fire(on, class::ZSET, zsets::popped(*end), key);
474                    notify::emptied(db, on, key);
475                    return Ok(true);
476                }
477                Ok(false)
478            }
479            // The source's length first, so that an empty source never reaches
480            // the destination's type check. `BLMOVE empty string LEFT RIGHT 0.1`
481            // times out on a running Redis rather than answering `WRONGTYPE`,
482            // because the destination is only looked at once there is something
483            // to put in it, and this order gives that answer.
484            Want::Move { dst, from, to } => {
485                let src = &keys[0];
486                if !ready(db, src, strict)? {
487                    return Ok(false);
488                }
489                match db.lmove(src, dst, *from, *to, |v| out.bulk(v)) {
490                    Ok(true) => {
491                        // The same two events `LMOVE` says, in the same order,
492                        // because this is `LMOVE` arriving late.
493                        notify::fire(on, class::LIST, lists::pushed(*to), dst);
494                        notify::fire(on, class::LIST, lists::popped(*from), src);
495                        if src != dst {
496                            notify::emptied(db, on, src);
497                        }
498                        Ok(true)
499                    }
500                    // The source had something in it a line ago and this is the
501                    // only thread that could have taken it.
502                    Ok(false) => Ok(false),
503                    Err(e) if strict => Err(e),
504                    // The destination is not a list any more. Nothing was taken,
505                    // because `lmove` checks the destination before it pops, so
506                    // the client goes back to waiting with the queue as it was.
507                    Err(_) => Ok(false),
508                }
509            }
510            // The same shape as `Move` with a different question about the
511            // source. `ready` asks whether there is anything and that is not
512            // enough here, because an `EXACTLY` client is not ready until the
513            // whole block has arrived, and asking it any earlier would take
514            // nothing and answer nothing while looking like it had tried.
515            Want::MoveM { dst, mv } => {
516                let src = &keys[0];
517                let have = match db.hold(src).llen(src) {
518                    Ok(n) => n,
519                    Err(e) if strict => return Err(e),
520                    Err(_) => return Ok(false),
521                };
522                // Not ready is not the same as nothing to do, so the
523                // destination is never looked at from here. `BLMOVEM empty
524                // string LEFT RIGHT 0.1` times out on a running 8.10.1 rather
525                // than answering `WRONGTYPE`, and so does an `EXACTLY` whose
526                // source is short, both of which were measured.
527                if have == 0 || (mv.exactly && have < mv.count) {
528                    return Ok(false);
529                }
530                let mark = out.len();
531                let mut n = 0;
532                match db.lmovem(src, dst, *mv, |v| {
533                    out.bulk(v);
534                    n += 1;
535                }) {
536                    Ok(_) => {}
537                    Err(e) if strict => return Err(e),
538                    // As `Move`: the destination stopped being a list while
539                    // this client waited, and nothing was taken.
540                    Err(_) => {
541                        out.truncate(mark);
542                        return Ok(false);
543                    }
544                }
545                out.close_array(mark, n);
546                if src == dst {
547                    notify::fire(on, class::LIST, lists::popped(mv.from), src);
548                    notify::fire(on, class::LIST, lists::pushed(mv.to), src);
549                } else {
550                    notify::fire(on, class::LIST, lists::pushed(mv.to), dst);
551                    notify::fire(on, class::LIST, lists::popped(mv.from), src);
552                    notify::emptied(db, on, src);
553                }
554                Ok(true)
555            }
556        }
557    }
558}
559
560/// Whether this key is a list with something in it.
561///
562/// A key of the wrong type is an error to the command handler and not one to the
563/// retry, which is the whole of what `strict` decides.
564fn ready(db: &Db, key: &[u8], strict: bool) -> Result<bool> {
565    match db.hold(key).llen(key) {
566        Ok(n) => Ok(n > 0),
567        Err(e) if strict => Err(e),
568        Err(_) => Ok(false),
569    }
570}
571
572/// The same for a sorted set, which has its own emptiness to ask about.
573fn zready(db: &Db, key: &[u8], strict: bool) -> Result<bool> {
574    match db.hold(key).zcard(key) {
575        Ok(n) => Ok(n > 0),
576        Err(e) if strict => Err(e),
577        Err(_) => Ok(false),
578    }
579}
580
581/// One element as the client sees it, the same as [`super::lists`] writes it.
582#[inline]
583fn element(out: &mut Out, e: Entry<'_>) {
584    match e {
585        Entry::Int(n) => out.bulk_int(n),
586        Entry::Str(s) => out.bulk(s),
587    }
588}
589
590/// One member as the client sees it, the same as [`super::zsets`] writes it.
591#[inline]
592fn member(out: &mut Out, m: Member<'_>) {
593    match m {
594        Member::Int(n) => out.bulk_int(n),
595        Member::Str(s) => out.bulk(s),
596    }
597}
598
599/// A parsed blocking command, ready to be tried or to be parked.
600pub struct Block {
601    /// The keys, already copied out of the connection's read buffer.
602    ///
603    /// This is the allocation blocking costs and it is once per block rather
604    /// than once per attempt. The arguments are slices of a buffer that is
605    /// reused as soon as the batch is over, and a waiter outlives the batch.
606    keys: Vec<Vec<u8>>,
607    want: Want,
608}
609
610impl Block {
611    /// `BLPOP` and `BRPOP`.
612    fn pop<'a>(keys: impl Iterator<Item = &'a [u8]>, end: End) -> Block {
613        Block {
614            keys: owned(keys),
615            want: Want::Pop { end },
616        }
617    }
618
619    /// `BLMPOP`.
620    fn mpop<'a>(keys: impl Iterator<Item = &'a [u8]>, end: End, count: usize) -> Block {
621        Block {
622            keys: owned(keys),
623            want: Want::Mpop { end, count },
624        }
625    }
626
627    /// `BZPOPMIN` and `BZPOPMAX`.
628    fn zpop<'a>(keys: impl Iterator<Item = &'a [u8]>, end: ZEnd) -> Block {
629        Block {
630            keys: owned(keys),
631            want: Want::ZPop { end },
632        }
633    }
634
635    /// `BZMPOP`.
636    fn zmpop<'a>(keys: impl Iterator<Item = &'a [u8]>, end: ZEnd, count: usize) -> Block {
637        Block {
638            keys: owned(keys),
639            want: Want::ZMpop { end, count },
640        }
641    }
642
643    /// `BLMOVE` and `BRPOPLPUSH`.
644    fn moved(src: &[u8], dst: &[u8], from: End, to: End) -> Block {
645        yo_alloc::allow(|| Block {
646            keys: vec![src.to_vec()],
647            want: Want::Move {
648                dst: dst.to_vec(),
649                from,
650                to,
651            },
652        })
653    }
654
655    /// `BLMOVEM`.
656    fn movem(src: &[u8], dst: &[u8], mv: Movem) -> Block {
657        yo_alloc::allow(|| Block {
658            keys: vec![src.to_vec()],
659            want: Want::MoveM {
660                dst: dst.to_vec(),
661                mv,
662            },
663        })
664    }
665
666    /// Do it now if it can be done now.
667    ///
668    /// # Errors
669    ///
670    /// A key of another type, which is an error rather than a wait.
671    fn now(&self, db: &Db, on: usize, now: u64, out: &mut Out) -> Result<bool> {
672        self.want.attempt(&self.keys, db, on, now, out, true)
673    }
674
675    /// `XREAD BLOCK` and `XREADGROUP BLOCK`, whose keys and IDs were read
676    /// together by [`streams::parse_read`] because neither makes sense alone.
677    fn xread(keys: Vec<Vec<u8>>, reads: streams::Reads) -> Block {
678        Block {
679            keys,
680            want: Want::XRead(reads),
681        }
682    }
683}
684
685/// The keys a blocking command named, copied so they outlive the read buffer.
686fn owned<'a>(keys: impl Iterator<Item = &'a [u8]>) -> Vec<Vec<u8>> {
687    yo_alloc::allow(|| keys.map(<[u8]>::to_vec).collect())
688}
689
690/// One parked client.
691struct Waiter {
692    /// The client id, which is never reused.
693    client: u64,
694    /// The slot its reply buffer is on, which is.
695    conn: u32,
696    /// The thread holding that slot.
697    ///
698    /// A reply goes into a buffer the accepting thread owns, so a waiter can
699    /// only be answered by the thread it blocked on, and a list every thread
700    /// walks has to say which entries are whose. The slot number alone will not
701    /// do it: two threads number their connections from zero.
702    thread: usize,
703    /// The database it was on when it blocked. A push into another database is
704    /// not this client's push, even when the key has the same name.
705    db: usize,
706    /// The millisecond to give up at, or `None` for `BLPOP key 0`, which waits
707    /// for as long as the connection is open.
708    deadline: Option<u64>,
709    keys: Vec<Vec<u8>>,
710    want: Want,
711}
712
713/// Every parked client, oldest first.
714///
715/// The order is the order they blocked in and it is the order they are served
716/// in, which is what makes a queue with several workers on it fair: two clients
717/// blocked on the same key take the two elements a `RPUSH q first second` adds
718/// in the order they arrived. A `Vec` is the right structure for that while the
719/// list is short, and it is short, because a waiter is a client doing nothing.
720#[derive(Default)]
721pub struct Waiters {
722    list: Vec<Waiter>,
723}
724
725/// Where the reply to a parked client has to go.
726#[derive(Debug, Clone, Copy)]
727pub struct Parked {
728    /// The slot holding its reply buffer.
729    pub conn: u32,
730    /// The client that was on that slot when it blocked.
731    pub client: u64,
732}
733
734impl Waiters {
735    /// Whether anybody is waiting.
736    #[must_use]
737    #[inline]
738    pub fn is_empty(&self) -> bool {
739        self.list.is_empty()
740    }
741
742    /// How many clients are parked, which is what `INFO clients` calls
743    /// `blocked_clients`.
744    #[must_use]
745    #[inline]
746    pub fn len(&self) -> usize {
747        self.list.len()
748    }
749
750    /// Copy out the waiters `thread` has to answer, oldest first.
751    ///
752    /// The caller works from the copy rather than from the list, because
753    /// answering a waiter needs a connection's reply buffer and the list is
754    /// behind a lock that another thread is waiting on. It brings its own
755    /// vector, which after the first parked client is a vector it already has
756    /// the room in.
757    pub fn mine(&self, thread: usize, into: &mut Vec<Parked>) {
758        into.clear();
759        yo_alloc::allow(|| {
760            for w in self.list.iter().filter(|w| w.thread == thread) {
761                into.push(Parked {
762                    conn: w.conn,
763                    client: w.client,
764                });
765            }
766        });
767    }
768
769    /// Where a parked client sits in the list.
770    fn find(&self, client: u64) -> Option<usize> {
771        self.list.iter().position(|w| w.client == client)
772    }
773
774    /// The database the waiter at `at` blocked on.
775    fn db_of(&self, at: usize) -> usize {
776        self.list[at].db
777    }
778
779    /// Take off every waiter belonging to a client that has gone, and say how
780    /// many that was.
781    ///
782    /// Called when a connection closes rather than left for the deadline sweep
783    /// to find, because a `BLPOP key 0` on a connection nobody will ever write
784    /// to again has no deadline to be found by. The count goes back because the
785    /// caller keeps its own tally of what its thread has waiting, and a client
786    /// that was never parked has to leave that tally alone.
787    fn forget(&mut self, client: u64) -> usize {
788        let before = self.list.len();
789        self.list.retain(|w| w.client != client);
790        before - self.list.len()
791    }
792
793    /// Say which slot the waiter this client just registered is answered on.
794    ///
795    /// The command layer knows which client blocked and the engine knows which
796    /// slot that client is on, so the slot is filled in afterwards by the half
797    /// that has it. A client can only be parked once, since it is not reading
798    /// commands while it waits, so the search finds the one that was just added.
799    fn bind(&mut self, client: u64, conn: u32) {
800        if let Some(w) = self.list.iter_mut().rev().find(|w| w.client == client) {
801            w.conn = conn;
802        }
803    }
804
805    /// Park a client that could not be answered.
806    ///
807    /// The slot is filled in by [`Waiters::bind`] once the engine has it, so
808    /// this leaves it at zero rather than pretending to know.
809    fn park(&mut self, client: u64, thread: usize, db: usize, deadline: Option<u64>, block: Block) {
810        yo_alloc::allow(|| {
811            self.list.push(Waiter {
812                client,
813                conn: 0,
814                thread,
815                db,
816                deadline,
817                keys: block.keys,
818                want: block.want,
819            });
820        });
821    }
822
823    /// Try to answer the waiter at `at`, and say whether it is finished with.
824    ///
825    /// `true` means a reply is in `out` and the caller should take the waiter
826    /// off the list, which covers both a client that got what it asked for and
827    /// one that ran out of time.
828    ///
829    /// The attempt comes before the deadline, so a push that landed in the same
830    /// millisecond the client gave up in serves it rather than racing it.
831    fn try_serve(&self, at: usize, dbs: &[Db], now: u64, out: &mut Out) -> bool {
832        let w = &self.list[at];
833        let mark = out.len();
834        match w.want.attempt(&w.keys, &dbs[w.db], w.db, now, out, false) {
835            Ok(true) => return true,
836            Ok(false) => {}
837            // `strict` is off, so nothing in there returns an error today.
838            // Putting the buffer back is what makes it safe to be wrong about
839            // that later.
840            Err(_) => out.truncate(mark),
841        }
842        if w.deadline.is_some_and(|d| now >= d) {
843            // A null array for all six, `BLMOVE` and `BRPOPLPUSH` included,
844            // even though what they send when they succeed is a single element.
845            // That is Redis's and it is not what reading the reply schema would
846            // suggest: a RESP2 client sees `*-1` and not `$-1`.
847            out.nil_array();
848            return true;
849        }
850        false
851    }
852}
853
854impl Server {
855    /// The clock reading this batch is working against.
856    #[must_use]
857    pub fn now_ms(&self) -> u64 {
858        self.clock.now_ms()
859    }
860
861    /// Who is parked, for the engine walking the list.
862    ///
863    /// Takes the lock for as long as the answer is held, so a caller that only
864    /// wants to know whether anybody is waiting asks [`Server::parked`] instead
865    /// and does not take it at all.
866    #[must_use]
867    pub fn waiters(&self) -> Held<'_, Waiters> {
868        self.waiters.lock()
869    }
870
871    /// How many clients are parked, without taking the lock.
872    ///
873    /// What `INFO clients` calls `blocked_clients`, and what every command asks
874    /// before it goes looking for somebody to wake.
875    #[must_use]
876    #[inline]
877    pub fn parked(&self) -> usize {
878        self.parked.load(Relaxed)
879    }
880
881    /// How many of the calling thread's clients are parked.
882    ///
883    /// The number to branch on before reaching for the waiter list, because a
884    /// thread can only answer the waiters it parked itself. [`Server::parked`]
885    /// counts the whole server, so branching on that puts every thread through
886    /// the shared lock as soon as one client blocks anywhere.
887    #[must_use]
888    #[inline]
889    pub fn parked_here(&self) -> usize {
890        self.mine().parked.load(Relaxed)
891    }
892
893    /// Park a client on a command that could not be answered yet.
894    ///
895    /// Filed under the calling thread, which is the thread that will answer it,
896    /// because a command runs on the thread that read it and a reply goes back
897    /// into that thread's buffer for the connection.
898    pub(super) fn park(&self, client: u64, db: usize, deadline: Option<u64>, block: Block) {
899        let thread = self.my_slot();
900        let mut list = self.waiters.lock();
901        list.park(client, thread, db, deadline, block);
902        self.note(&list);
903        self.mine().blocked(1);
904    }
905
906    /// Take off every waiter belonging to a client that has gone.
907    ///
908    /// Called on the thread that parked it, which is the only thread that can
909    /// have parked it, so the count of what this thread has waiting comes down
910    /// by however many the list actually held. A thread with nothing waiting
911    /// does not take the lock, which is what keeps a server with one blocked
912    /// client from paying for it on every disconnect on every other thread.
913    pub fn forget_waiters(&self, client: u64) {
914        if self.parked_here() == 0 {
915            return;
916        }
917        let mut list = self.waiters.lock();
918        let gone = list.forget(client);
919        self.note(&list);
920        self.mine().woke(gone);
921    }
922
923    /// Say which slot the waiter this client just registered is answered on.
924    pub fn bind_waiter(&self, client: u64, conn: u32) {
925        self.waiters.lock().bind(client, conn);
926    }
927
928    /// Publish how long the list is now.
929    ///
930    /// Called with the list held and by whoever changed it, which is what keeps
931    /// the number and the list from disagreeing about anything except a change
932    /// that has not finished.
933    fn note(&self, list: &Waiters) {
934        self.parked.store(list.len(), Relaxed);
935    }
936
937    /// Try to answer a parked client, writing into the buffer the engine found
938    /// for it, and say whether it is finished with.
939    ///
940    /// The engine cannot reach the databases and this cannot reach the
941    /// connections, so the two meet here: the caller hands in one connection's
942    /// reply buffer and gets back whether to unpark the client behind it.
943    ///
944    /// By client and not by position, because the caller let go of the list
945    /// between finding the client and asking about it, and in that gap another
946    /// thread can take one of its own waiters off and move everything behind it
947    /// up one. A client that is no longer parked answers `false`, which is the
948    /// same answer as one that is parked and has nothing waiting for it.
949    pub fn serve_waiter(&self, client: u64, now: u64, out: &mut Out) -> bool {
950        let list = self.waiters.lock();
951        let Some(at) = list.find(client) else {
952            return false;
953        };
954        // Serving a waiter pops an element, which makes garbage, and it happens
955        // outside `execute` so nothing else has marked the database for the
956        // maintenance turn.
957        let db = list.db_of(at);
958        self.mine().mark(1u64 << db);
959        // Armed here for the same reason, and it is the one place outside the
960        // funnel that has to do it. A pop that answers a parked client is a pop
961        // and says so, and the client whose push woke it has long since had its
962        // own events published. The database is the waiter's own, since the
963        // thread running this is not the one the client is on.
964        let armed = notify::arm(self, db);
965        let done = list.try_serve(at, &self.dbs, now, out);
966        drop(list);
967        notify::drain(self, armed);
968        done
969    }
970}