yo_kv/bitmaps.rs
1//! The bitmap commands, which are string commands wearing a different hat.
2//!
3//! A bitmap in Redis is a string, and that is not an implementation detail a
4//! caller can ignore: `SET k "A"` then `GETBIT k 1` answers 1, because `A` is
5//! `0x41` and the second bit from the top of that byte is set. So there is no
6//! bitmap type here either, and everything in this file works on the same
7//! string records [`strings`](crate::strings) writes. The kernels are in
8//! [`bits`]; this is where a key turns into bytes, where a write
9//! is allowed to grow a value and where Redis's edges live.
10//!
11//! Three of those edges are worth stating up front, because all three have been
12//! measured on a real server rather than reasoned about.
13//!
14//! A write always leaves the value `raw`. `SET n 12345` reports `int` and a
15//! `SETBIT n 0 0` that changes nothing at all still reports `raw` afterwards,
16//! because Redis unshares the object before it looks at a bit. A read does not:
17//! `GETBIT n 3` on the same key leaves it `int`. That is why the in place fast
18//! path below only takes a record that is already raw.
19//!
20//! A write creates the key and pads it with zero bytes, even when the bit being
21//! written is zero and the byte is past the end. `SETBIT nokey 0 0` on an empty
22//! database leaves a one byte string behind.
23//!
24//! A `BITFIELD` is checked all the way through before any of it runs, so a bad
25//! field type in the last subcommand leaves the key untouched and, if it was not
26//! there, uncreated. That ordering is the wire layer's to keep, and it is why
27//! [`Keyspace::bitfield`] takes a list of already parsed subcommands rather than
28//! words to parse.
29
30use crate::bits::{self, Field, Op, Overflow};
31use crate::db::Db;
32use crate::keyspace::Keyspace;
33use crate::strings::{STRING_MAX, check_len};
34use crate::value::{self, Kind, Str};
35use yo_common::num::{self, DIGITS_MAX};
36use yo_common::{Code, Error, Result};
37use yo_index::RawMap;
38
39/// What Redis says about an offset that is not a number or is off the end.
40const BAD_BIT_OFFSET: &str = "bit offset is not an integer or out of range";
41/// What Redis says when a write would make a string too long.
42const TOO_LONG: &str = "string exceeds maximum allowed size (proto-max-bulk-len)";
43
44/// The highest bit `SETBIT` and `GETBIT` take.
45///
46/// It is 4 Gi bits, which is 512 MiB, which is Redis's string ceiling. Ours is a
47/// segment and smaller than that, so a write between the two limits is refused
48/// by the length check with the "string exceeds maximum allowed size" sentence
49/// rather than by this one. Both are Redis's own sentences and the boundary
50/// between them is where we diverge.
51pub const BIT_OFFSET_MAX: u64 = 4 * 1024 * 1024 * 1024 - 1;
52
53/// Whether a range's two ends count bytes or bits.
54///
55/// `BITCOUNT` and `BITPOS` both take an optional `BYTE` or `BIT` word after
56/// their two indexes, and both default to `BYTE`. The word is only allowed once
57/// both indexes are there: `BITPOS k 0 5 BIT` is not a bit ranged search from
58/// bit five, it is an error, because `BIT` is read as the end index.
59#[derive(Debug, Clone, Copy, PartialEq, Eq, Default)]
60pub enum Unit {
61 /// Indexes count bytes. The default.
62 #[default]
63 Byte,
64 /// Indexes count bits.
65 Bit,
66}
67
68/// One `BITFIELD` subcommand.
69#[derive(Debug, Clone, Copy, PartialEq, Eq)]
70pub struct Sub {
71 /// Which of the three it is, and what it carries.
72 pub op: SubOp,
73 /// The width and signedness of the field.
74 pub field: Field,
75 /// Where the field starts, in bits.
76 ///
77 /// The `#n` form a client can send is `n` times the width, and multiplying
78 /// it out is the wire layer's job.
79 pub at: u64,
80 /// What to do if the value will not fit. Ignored by `GET`.
81 pub on: Overflow,
82}
83
84/// The three things a `BITFIELD` subcommand does.
85#[derive(Debug, Clone, Copy, PartialEq, Eq)]
86pub enum SubOp {
87 /// `GET`, which never writes and never creates the key.
88 Get,
89 /// `SET`, answering the value that was there before.
90 Set(i64),
91 /// `INCRBY`, answering the value afterwards.
92 Incr(i64),
93}
94
95impl SubOp {
96 /// Whether this one writes, which is what decides how far the value grows.
97 const fn writes(self) -> bool {
98 !matches!(self, SubOp::Get)
99 }
100}
101
102impl Keyspace {
103 /// `GETBIT key offset`.
104 ///
105 /// A missing key, and any offset past the end of a key that is there, read
106 /// as zero. Nothing is created and nothing is re-encoded.
107 pub fn getbit(&mut self, key: &[u8], offset: u64) -> Result<bool> {
108 if offset > BIT_OFFSET_MAX {
109 return Err(Error::new(Code::Invalid, BAD_BIT_OFFSET));
110 }
111 self.reap(key);
112 self.string_only(key)?;
113 // A bitmap is a string, so it can have been demoted like any other, and
114 // the bit being asked about is somewhere in it. Warmed rather than
115 // thawed: reading a bit out of a cold bitmap is a read like any other
116 // and the doorkeeper decides whether it earns its way back.
117 self.warm(key)?;
118 let mut digits = [0u8; DIGITS_MAX];
119 let bytes = self.bitmap(key, &mut digits);
120 let byte = (offset / 8) as usize;
121 Ok(bytes.get(byte).is_some_and(|b| b & mask(offset) != 0))
122 }
123
124 /// `SETBIT key offset value`, answering the bit that was there before.
125 ///
126 /// The value grows to hold the offset, padded with zero bytes, and keeps
127 /// whatever deadline it had. A key that was not there is created, even when
128 /// the bit being written is zero.
129 pub fn setbit(&mut self, key: &[u8], offset: u64, bit: bool) -> Result<bool> {
130 if offset > BIT_OFFSET_MAX {
131 return Err(Error::new(Code::Invalid, BAD_BIT_OFFSET));
132 }
133 let byte = (offset / 8) as usize;
134 check_len(key, byte + 1)?;
135 self.thaw(key)?;
136 let now = self.clock.now_ms();
137 let hash = RawMap::hash_of(key);
138
139 // The fast path: the key is there, it is raw already, and the byte is
140 // inside it, so the write is one probe and one byte. This is the shape a
141 // bitmap is used in, a fixed size map of ids that was sized once and is
142 // written to for the rest of its life, and it is the only path that does
143 // not touch the arena. The kind check sits inside the probe for the
144 // reason `INCR`'s does: the byte holding it is already loaded here.
145 let mut dead = false;
146 if let Some(rec) = self.map.value_mut_hashed(hash, key) {
147 if value::kind(rec) != Kind::String {
148 return Err(crate::keyspace::wrong_type());
149 }
150 if value::is_expired(rec, now) {
151 dead = true;
152 } else if let Some(b) = value::raw_in_place(rec).and_then(|it| it.get_mut(byte)) {
153 let had = *b & mask(offset) != 0;
154 if bit {
155 *b |= mask(offset);
156 } else {
157 *b &= !mask(offset);
158 }
159 return Ok(had);
160 }
161 }
162 if dead {
163 self.drop_key(key);
164 self.expired += 1;
165 }
166
167 // The slow path, which is every first write to a key and every write
168 // that makes it longer. Through the one scratch buffer, the way `APPEND`
169 // and `SETRANGE` go, since the old bytes are needed in hand while
170 // `store_raw` wants the database.
171 let mut bytes = std::mem::take(&mut self.scratch);
172 bytes.clear();
173 let deadline = match self.map.get(key) {
174 Some(rec) => {
175 value::read(rec).write_to(&mut bytes);
176 value::expire_at(rec)
177 }
178 None => None,
179 };
180 if bytes.len() <= byte {
181 bytes.resize(byte + 1, 0);
182 }
183 let had = bytes[byte] & mask(offset) != 0;
184 if bit {
185 bytes[byte] |= mask(offset);
186 } else {
187 bytes[byte] &= !mask(offset);
188 }
189 self.store_raw(key, &bytes, deadline);
190 self.scratch = bytes;
191 Ok(had)
192 }
193
194 /// `BITCOUNT key [start end [BYTE | BIT]]`.
195 ///
196 /// A missing key, an empty string and a range that ends before it starts all
197 /// answer zero. The two indexes may be negative, counting from the end, and
198 /// both are clamped rather than refused.
199 pub fn bitcount(&mut self, key: &[u8], range: Option<(i64, i64, Unit)>) -> Result<u64> {
200 self.reap(key);
201 self.string_only(key)?;
202 self.warm(key)?;
203 let mut digits = [0u8; DIGITS_MAX];
204 let bytes = self.bitmap(key, &mut digits);
205 let Some((start, end, unit)) = range else {
206 return Ok(bits::count(bytes));
207 };
208 match window(bytes.len(), start, end, unit) {
209 Some((from, to)) => Ok(bits::count_range(bytes, from, to)),
210 None => Ok(0),
211 }
212 }
213
214 /// `BITPOS key bit [start [end [BYTE | BIT]]]`.
215 ///
216 /// Answers minus one when there is no such bit, with the one exception Redis
217 /// carved out: looking for a zero with no end index given, over a range that
218 /// is all ones, answers the first bit past the end of the string. The idea is
219 /// that a string is followed by an infinity of zeros unless the caller said
220 /// where to stop. Giving an explicit end turns that back into minus one, and
221 /// so does asking about a range that is empty once it has been clamped.
222 pub fn bitpos(
223 &mut self,
224 key: &[u8],
225 bit: bool,
226 start: Option<i64>,
227 end: Option<i64>,
228 unit: Unit,
229 ) -> Result<i64> {
230 self.reap(key);
231 self.string_only(key)?;
232 self.warm(key)?;
233 let here = self.map.get(key).is_some();
234 let mut digits = [0u8; DIGITS_MAX];
235 let bytes = self.bitmap(key, &mut digits);
236 if bytes.is_empty() {
237 // A missing key is all zeros, so a zero is at bit nought and a one is
238 // nowhere. An empty string that is really there answers minus one
239 // either way, since there is no bit nought to point at.
240 return Ok(if !bit && !here { 0 } else { -1 });
241 }
242 let all = bytes.len() as u64 * 8;
243 let (from, to) = match (start, end) {
244 (None, _) => (0, all),
245 (Some(s), None) => match window(bytes.len(), s, -1, unit) {
246 Some(r) => r,
247 None => return Ok(-1),
248 },
249 (Some(s), Some(e)) => match window(bytes.len(), s, e, unit) {
250 Some(r) => r,
251 None => return Ok(-1),
252 },
253 };
254 match bits::find(bytes, bit, from, to) {
255 Some(at) => Ok(at as i64),
256 None if !bit && end.is_none() => Ok(all as i64),
257 None => Ok(-1),
258 }
259 }
260
261 /// `BITOP op dest src [src ...]`, answering the length of the result.
262 ///
263 /// A result with no bytes in it deletes the destination, and any other
264 /// result creates it whatever it holds, so a `BITOP AND` over sources that
265 /// share nothing leaves a destination full of zero bytes rather than no
266 /// destination at all. Sources that are shorter than the longest read as
267 /// zeros past their end, and a source that is not there reads as empty.
268 ///
269 /// # Panics
270 ///
271 /// If `srcs` is empty, or holds more than one key for [`Op::Not`]. Both are
272 /// refused with a message on the wire before this is called.
273 pub fn bitop<'k, I>(&mut self, op: Op, dest: &[u8], srcs: I) -> Result<usize>
274 where
275 I: Iterator<Item = &'k [u8]> + Clone,
276 {
277 for src in srcs.clone() {
278 self.reap(src);
279 self.string_only(src)?;
280 // Every source at once, so every one of them has to be in memory
281 // rather than in the one buffer a fault serves out of. `BITOP` over
282 // demoted sources brings them back, which is also what a client
283 // running it in a loop wants.
284 self.thaw(src)?;
285 }
286 // The sources have to be copied out before the destination can be
287 // written, since they are borrowed from the map and the write wants the
288 // database back. They go end to end into the scratch buffer with their
289 // boundaries in `rows`, and the result goes on the end of the same
290 // buffer, so a `BITOP` over any number of sources is one buffer and no
291 // allocation past whatever growing that buffer costs.
292 let mut flat = std::mem::take(&mut self.scratch);
293 let mut ends = std::mem::take(&mut self.rows);
294 flat.clear();
295 ends.clear();
296 let mut digits = [0u8; DIGITS_MAX];
297 for src in srcs.clone() {
298 let bytes = self.bitmap(src, &mut digits);
299 flat.extend_from_slice(bytes);
300 ends.push(flat.len());
301 }
302 // As long as the longest source, `NOT` included: complementing a source
303 // cannot make it longer, and there is only ever the one of them.
304 let len = bits::width(parts(&flat, &ends));
305 if len > STRING_MAX {
306 self.scratch = flat;
307 self.rows = ends;
308 return Err(Error::new(Code::Invalid, TOO_LONG));
309 }
310
311 let split = flat.len();
312 flat.resize(split + len, 0);
313 // The sources and the destination are in the same buffer, so they have
314 // to be split apart before one can be read while the other is written.
315 let (read, write) = flat.split_at_mut(split);
316 bits::combine(op, parts(read, &ends), write);
317
318 let outcome = if len == 0 {
319 self.del(dest);
320 Ok(0)
321 } else {
322 self.reap(dest);
323 match self.string_only(dest) {
324 Ok(()) => {
325 self.store_raw(dest, &flat[split..], None);
326 Ok(len)
327 }
328 Err(e) => Err(e),
329 }
330 };
331 self.scratch = flat;
332 self.rows = ends;
333 outcome
334 }
335
336 /// `BITFIELD key [subcommand ...]`, answering one reply per subcommand.
337 ///
338 /// A `None` in the answers is the nil an `OVERFLOW FAIL` subcommand gives
339 /// when its value would not fit; that one does not write and the ones around
340 /// it still do. The subcommands are expected to have been checked already,
341 /// which is what makes it safe for this to be the point of no return.
342 ///
343 /// The value grows once, before anything runs, to hold the last bit any
344 /// writing subcommand touches. That happens even if every one of those
345 /// writes then fails its overflow check, which is Redis's behaviour and
346 /// falls out of it growing the string before it looks at the values.
347 pub fn bitfield(&mut self, key: &[u8], ops: &[Sub]) -> Result<Vec<Option<i64>>> {
348 let grow = ops.iter().filter(|s| s.op.writes()).map(reach).max();
349 self.bitfield_with(key, grow, |bytes| {
350 ops.iter().map(|&sub| apply(bytes, sub)).collect()
351 })
352 }
353
354 /// `BITFIELD`, with the subcommands run against the value in place.
355 ///
356 /// This is the form the wire uses. It hands over the bytes and lets the
357 /// caller walk its own arguments a second time, calling [`apply`] on each,
358 /// which is what lets a `BITFIELD` with two hundred subcommands write two
359 /// hundred replies without a list of them existing anywhere.
360 ///
361 /// `grow` is how many bytes the value has to reach, which is the last byte
362 /// any writing subcommand touches, and `None` for a call that only reads.
363 /// The growing happens once and before anything runs, even if every one of
364 /// those writes then fails its overflow check, because that is what Redis
365 /// does: it makes the string long enough while it is looking up the key and
366 /// only then starts on the values. A call that only reads stores nothing,
367 /// which is what keeps `BITFIELD k GET u8 0` from turning an `embstr` into a
368 /// `raw`.
369 pub fn bitfield_with<T>(
370 &mut self,
371 key: &[u8],
372 grow: Option<usize>,
373 run: impl FnOnce(&mut [u8]) -> T,
374 ) -> Result<T> {
375 self.reap(key);
376 self.string_only(key)?;
377 // Every path here materialises the value and most of them write it
378 // back, so this thaws rather than asking the doorkeeper about a value
379 // that is going to be resident when the command ends anyway.
380 self.thaw(key)?;
381 let need = grow.unwrap_or(0);
382 check_len(key, need)?;
383
384 // Every path materialises the value, including the read only one, so
385 // that an int encoded key reads as the digits it prints as.
386 let mut bytes = std::mem::take(&mut self.scratch);
387 bytes.clear();
388 let deadline = match self.map.get(key) {
389 Some(rec) => {
390 value::read(rec).write_to(&mut bytes);
391 value::expire_at(rec)
392 }
393 None => None,
394 };
395 if bytes.len() < need {
396 bytes.resize(need, 0);
397 }
398 let out = run(&mut bytes);
399 if grow.is_some() {
400 self.store_raw(key, &bytes, deadline);
401 }
402 self.scratch = bytes;
403 Ok(out)
404 }
405
406 /// The bytes of a string key, as the bit commands want to see them.
407 ///
408 /// A missing key is empty, which is what every one of these commands treats
409 /// it as. An int encoded key is the digits it would print as, because that
410 /// is the string it is: `SET n 65` then `GETBIT n 1` is asking about the
411 /// character `6`. The digits are written into the caller's buffer so that the
412 /// ordinary case, a raw string, is still a borrow and not a copy.
413 fn bitmap<'a>(&'a self, key: &[u8], digits: &'a mut [u8; DIGITS_MAX]) -> &'a [u8] {
414 match self.peek(key) {
415 None => &[],
416 Some(Str::Bytes(b)) => b,
417 Some(Str::Int(n)) => num::i64_digits(digits, n),
418 }
419 }
420}
421
422impl Db {
423 /// `BITOP op dest src [src ...]` over a database of any width.
424 ///
425 /// Every key on one stripe is that one stripe's `BITOP`, which is every
426 /// `BITOP` on a database of one stripe and every `BITOP` whose keys were
427 /// hash tagged into the same place. That path is the old one, byte for byte.
428 ///
429 /// The rest is the same work with the reads spread out. Every stripe the
430 /// command names is held for the whole of it, the sources are copied into a
431 /// buffer this database owns rather than one a stripe owns, and they are
432 /// combined there and written to whichever stripe the destination is on.
433 /// Held together rather than one after the other, because an operand that
434 /// was written to after it had been read would leave a result that no
435 /// arrangement of these keys ever had.
436 ///
437 /// # Panics
438 ///
439 /// As [`Keyspace::bitop`].
440 pub fn bitop<'k, I>(&self, op: Op, dest: &'k [u8], srcs: I) -> Result<usize>
441 where
442 I: Iterator<Item = &'k [u8]> + Clone,
443 {
444 if let Some(home) = self.one_stripe(std::iter::once(dest).chain(srcs.clone())) {
445 return self.hold_stripe(home).bitop(op, dest, srcs);
446 }
447 // The buffers before the stripes, which is the order every command that
448 // wants both takes them in.
449 let mut spare = self.spare();
450 let spare = &mut *spare;
451 let (flat, ends) = (&mut spare.bytes, &mut spare.rows);
452 flat.clear();
453 ends.clear();
454 let onto = self.stripe_of(dest);
455 let mut held = self
456 .hold_many(std::iter::once(onto).chain(srcs.clone().map(|src| self.stripe_of(src))));
457 for src in srcs.clone() {
458 let stripe = held.stripe_mut(self.stripe_of(src));
459 stripe.reap(src);
460 stripe.string_only(src)?;
461 stripe.thaw(src)?;
462 }
463 let mut digits = [0u8; DIGITS_MAX];
464 for src in srcs.clone() {
465 let bytes = held.stripe(self.stripe_of(src)).bitmap(src, &mut digits);
466 flat.extend_from_slice(bytes);
467 ends.push(flat.len());
468 }
469 let len = bits::width(parts(flat, ends));
470 if len > STRING_MAX {
471 return Err(Error::new(Code::Invalid, TOO_LONG));
472 }
473
474 let split = flat.len();
475 flat.resize(split + len, 0);
476 let (read, write) = flat.split_at_mut(split);
477 bits::combine(op, parts(read, ends), write);
478
479 if len == 0 {
480 held.stripe_mut(onto).del(dest);
481 return Ok(0);
482 }
483 let stripe = held.stripe_mut(onto);
484 stripe.reap(dest);
485 stripe.string_only(dest)?;
486 stripe.store_raw(dest, &flat[split..], None);
487 Ok(len)
488 }
489}
490
491/// The sources of a `BITOP`, out of the buffer they were copied into.
492///
493/// The boundaries are the end of each source, so the first one starts at nought
494/// and each of the others starts where the one before it ended. Written as a
495/// zip over two views of the same list rather than as a running offset, because
496/// the iterator has to be cloneable and a clone of a running offset would carry
497/// whatever the original had reached.
498fn parts<'a>(flat: &'a [u8], ends: &'a [usize]) -> impl Iterator<Item = &'a [u8]> + Clone {
499 std::iter::once(0)
500 .chain(ends.iter().copied())
501 .zip(ends.iter().copied())
502 .map(|(from, to)| &flat[from..to])
503}
504
505/// Run one subcommand against a value, answering what the client is owed.
506///
507/// `None` is the nil an `OVERFLOW FAIL` subcommand gives when its value would
508/// not fit; that one writes nothing and the ones around it still do. A `SET`
509/// answers what was there before and an `INCRBY` answers what is there now,
510/// which is not symmetry anybody would have chosen but is what Redis does.
511///
512/// The bytes have to be long enough already, which is [`reach`]'s job.
513#[must_use]
514pub fn apply(bytes: &mut [u8], sub: Sub) -> Option<i64> {
515 let had = bits::get(bytes, sub.at, sub.field);
516 match sub.op {
517 SubOp::Get => Some(had),
518 SubOp::Set(val) => bits::setting(sub.field, val, sub.on).map(|next| {
519 bits::set(bytes, sub.at, sub.field, next);
520 had
521 }),
522 SubOp::Incr(by) => bits::adding(sub.field, had, by, sub.on).inspect(|&next| {
523 bits::set(bytes, sub.at, sub.field, next);
524 }),
525 }
526}
527
528/// How many bytes a value needs before `sub` can be written into it.
529#[must_use]
530pub const fn reach(sub: &Sub) -> usize {
531 (sub.field.last_bit(sub.at) / 8 + 1) as usize
532}
533
534/// The bit `offset` names inside its byte.
535///
536/// Bit zero is the top bit, which is the convention all of these commands use.
537#[inline]
538const fn mask(offset: u64) -> u8 {
539 0x80 >> (offset % 8)
540}
541
542/// A start and end index turned into a half open range of bits.
543///
544/// `None` for a range that holds nothing, which is what an empty value, an
545/// out of range start or a backwards range all come to. Negative indexes count
546/// from the end and both ends are clamped, so `BITCOUNT k -100 100` over a three
547/// byte string is the whole string rather than an error.
548fn window(len: usize, start: i64, end: i64, unit: Unit) -> Option<(u64, u64)> {
549 let items = match unit {
550 Unit::Byte => len as i64,
551 Unit::Bit => (len as i64).checked_mul(8)?,
552 };
553 if items == 0 {
554 return None;
555 }
556 // The two ends are not clamped the same way, and the difference is what
557 // makes `BITCOUNT k 10 20` over a three byte string answer zero rather than
558 // counting its last byte. A negative index counts back from the end and
559 // stops at the front, the end index is pulled back to the last item, and a
560 // start past the last item is left where it is so that the range comes out
561 // backwards and is thrown away below.
562 let back = |i: i64| if i < 0 { (items + i).max(0) } else { i };
563 let (from, to) = (back(start), back(end).min(items - 1));
564 if from > to {
565 return None;
566 }
567 let scale = match unit {
568 Unit::Byte => 8,
569 Unit::Bit => 1,
570 };
571 Some(((from * scale) as u64, ((to + 1) * scale) as u64))
572}
573
574/// The largest value a bit range can name, for a caller checking its own limit.
575///
576/// Nothing here uses it; it is the ceiling [`STRING_MAX`] imposes expressed in
577/// bits, which is what a client asking "how big can this bitmap be" wants.
578#[must_use]
579pub const fn max_bits() -> u64 {
580 STRING_MAX as u64 * 8
581}
582
583#[cfg(test)]
584mod tests {
585 use super::*;
586 use crate::keyspace::Keyspace;
587
588 fn db() -> Keyspace {
589 Keyspace::new()
590 }
591
592 /// The source list `bitop` takes, out of the keys a test wants to name.
593 fn keys<'k>(names: &'k [&'k [u8]]) -> impl Iterator<Item = &'k [u8]> + Clone {
594 names.iter().copied()
595 }
596
597 #[test]
598 fn a_bit_is_set_and_read_back() {
599 let mut db = db();
600 assert!(!db.setbit(b"k", 7, true).expect("a bit"));
601 assert!(db.getbit(b"k", 7).expect("a bit"));
602 assert!(!db.getbit(b"k", 6).expect("a bit"));
603 assert_eq!(db.strlen(b"k").expect("a length"), 1);
604 assert_eq!(
605 db.get(b"k").expect("a value").expect("bytes").to_vec(),
606 b"\x01"
607 );
608 // The answer is what was there, not what is there now.
609 assert!(db.setbit(b"k", 7, false).expect("a bit"));
610 assert!(!db.setbit(b"k", 7, false).expect("a bit"));
611 }
612
613 #[test]
614 fn a_write_creates_and_pads_even_when_the_bit_is_zero() {
615 let mut db = db();
616 assert!(!db.setbit(b"k", 0, false).expect("a bit"));
617 assert!(db.exists(b"k"));
618 assert_eq!(db.strlen(b"k").expect("a length"), 1);
619 db.setbit(b"k", 40, true).expect("a bit");
620 assert_eq!(db.strlen(b"k").expect("a length"), 6);
621 }
622
623 #[test]
624 fn a_write_leaves_the_value_raw_and_a_read_does_not() {
625 let mut db = db();
626 db.set_plain(b"n", b"12345").expect("a set");
627 assert_eq!(db.encoding(b"n"), Some(value::Encoding::Int));
628 // Reading a bit out of an int is reading a bit out of its digits.
629 assert!(db.getbit(b"n", 3).expect("a bit"));
630 assert_eq!(db.encoding(b"n"), Some(value::Encoding::Int));
631 // Writing one, even a write that changes nothing, does not leave an int.
632 assert!(!db.setbit(b"n", 0, false).expect("a bit"));
633 assert_eq!(db.encoding(b"n"), Some(value::Encoding::Raw));
634 assert_eq!(
635 db.get(b"n").expect("a value").expect("bytes").to_vec(),
636 b"12345"
637 );
638 }
639
640 #[test]
641 fn a_write_keeps_the_deadline() {
642 let mut db = db();
643 db.setex(b"k", 100, b"abc").expect("a set");
644 db.setbit(b"k", 40, true).expect("a bit");
645 assert_eq!(db.strlen(b"k").expect("a length"), 6);
646 assert!(db.expire_at(b"k").is_some());
647 // And so does the fast path, which does not go near the deadline.
648 db.setbit(b"k", 1, true).expect("a bit");
649 assert!(db.expire_at(b"k").is_some());
650 }
651
652 #[test]
653 fn counting_takes_the_ranges_a_real_server_takes() {
654 let mut db = db();
655 db.set_plain(b"k", b"foobar").expect("a set");
656 let count = |db: &mut Keyspace, r| db.bitcount(b"k", r).expect("a count");
657 assert_eq!(count(&mut db, None), 26);
658 assert_eq!(count(&mut db, Some((0, 0, Unit::Byte))), 4);
659 assert_eq!(count(&mut db, Some((1, 1, Unit::Byte))), 6);
660 assert_eq!(count(&mut db, Some((0, -5, Unit::Byte))), 10);
661 assert_eq!(count(&mut db, Some((5, 30, Unit::Bit))), 17);
662 // Redis's own documentation says 22 for this one. A real 8.10.1 says 25,
663 // and 25 is what counting the first 44 bits of `foobar` by hand gives,
664 // so the documentation is wrong and this is not a divergence.
665 assert_eq!(count(&mut db, Some((0, -5, Unit::Bit))), 25);
666 // Clamped at both ends, empty when it is backwards.
667 assert_eq!(count(&mut db, Some((-100, 100, Unit::Byte))), 26);
668 assert_eq!(count(&mut db, Some((2, 1, Unit::Byte))), 0);
669 assert_eq!(count(&mut db, Some((5, 3, Unit::Bit))), 0);
670 // A start past the end is nothing, not the whole string.
671 assert_eq!(count(&mut db, Some((10, 20, Unit::Byte))), 0);
672 assert_eq!(db.bitcount(b"gone", None).expect("a count"), 0);
673 }
674
675 #[test]
676 fn searching_takes_the_ranges_a_real_server_takes() {
677 let mut db = db();
678 db.set_plain(b"ones", b"\xff\xff\xff").expect("a set");
679 db.set_plain(b"mix", b"\x00\xff\x00").expect("a set");
680 let pos = |db: &mut Keyspace, k: &[u8], bit, s, e| {
681 db.bitpos(k, bit, s, e, Unit::Byte).expect("a position")
682 };
683 assert_eq!(pos(&mut db, b"mix", true, None, None), 8);
684 assert_eq!(pos(&mut db, b"mix", false, None, None), 0);
685 assert_eq!(pos(&mut db, b"mix", true, Some(2), None), -1);
686 assert_eq!(pos(&mut db, b"mix", true, Some(-1), Some(-1)), -1);
687 assert_eq!(pos(&mut db, b"mix", false, Some(-100), None), 0);
688 // The one exception: no end given, all ones, so the answer is the first
689 // bit past the end of the string.
690 assert_eq!(pos(&mut db, b"ones", false, None, None), 24);
691 assert_eq!(pos(&mut db, b"ones", false, Some(-1), None), 24);
692 // An explicit end takes that away again.
693 assert_eq!(pos(&mut db, b"ones", false, Some(0), Some(-1)), -1);
694 assert_eq!(pos(&mut db, b"ones", false, Some(0), Some(100)), -1);
695 // And so does a range that is empty once it has been clamped.
696 assert_eq!(pos(&mut db, b"ones", false, Some(10), None), -1);
697 assert_eq!(pos(&mut db, b"ones", false, Some(3), None), -1);
698 assert_eq!(pos(&mut db, b"ones", true, Some(10), None), -1);
699 assert_eq!(pos(&mut db, b"ones", false, Some(2), Some(1)), -1);
700 assert_eq!(
701 db.bitpos(b"ones", false, Some(5), Some(20), Unit::Bit)
702 .expect("a position"),
703 -1
704 );
705 }
706
707 #[test]
708 fn searching_an_absent_or_empty_key() {
709 let mut db = db();
710 let pos = |db: &mut Keyspace, k: &[u8], bit| {
711 db.bitpos(k, bit, None, None, Unit::Byte)
712 .expect("a position")
713 };
714 // A key that is not there is all zeros, so a zero is at the front.
715 assert_eq!(pos(&mut db, b"gone", false), 0);
716 assert_eq!(pos(&mut db, b"gone", true), -1);
717 // A key that is there and empty has no bits at all.
718 db.set_plain(b"empty", b"").expect("a set");
719 assert_eq!(pos(&mut db, b"empty", false), -1);
720 assert_eq!(pos(&mut db, b"empty", true), -1);
721 assert_eq!(
722 db.bitcount(b"empty", Some((0, -1, Unit::Byte)))
723 .expect("a count"),
724 0
725 );
726 }
727
728 #[test]
729 fn combining_writes_a_destination_and_deletes_an_empty_one() {
730 let mut db = db();
731 db.set_plain(b"a", b"\xf0\x0f\xff").expect("a set");
732 db.set_plain(b"b", b"\xff\x00").expect("a set");
733 let n = db
734 .bitop(Op::And, b"d", keys(&[b"a", b"b"]))
735 .expect("a length");
736 assert_eq!(n, 3);
737 assert_eq!(
738 db.get(b"d").expect("a value").expect("bytes").to_vec(),
739 b"\xf0\x00\x00"
740 );
741 // A destination full of nothing is still a destination.
742 db.set_plain(b"z", b"\x00\x00").expect("a set");
743 let n = db
744 .bitop(Op::And, b"d", keys(&[b"a", b"z"]))
745 .expect("a length");
746 assert_eq!(n, 3);
747 assert!(db.exists(b"d"));
748 // Sources that are all missing take the destination with them.
749 let n = db
750 .bitop(Op::Or, b"d", keys(&[b"no1", b"no2"]))
751 .expect("a length");
752 assert_eq!(n, 0);
753 assert!(!db.exists(b"d"));
754 }
755
756 #[test]
757 fn combining_reads_an_int_key_as_its_digits() {
758 let mut db = db();
759 db.set_plain(b"n", b"12345").expect("a set");
760 db.bitop(Op::Or, b"d", keys(&[b"n"])).expect("a length");
761 assert_eq!(
762 db.get(b"d").expect("a value").expect("bytes").to_vec(),
763 b"12345"
764 );
765 }
766
767 #[test]
768 fn a_field_is_read_written_and_incremented() {
769 let mut db = db();
770 let u8f = Field::new(false, 8).expect("a width");
771 let sub = |op, at| Sub {
772 op,
773 field: u8f,
774 at,
775 on: Overflow::Wrap,
776 };
777 let out = db
778 .bitfield(b"k", &[sub(SubOp::Set(255), 0), sub(SubOp::Get, 0)])
779 .expect("replies");
780 assert_eq!(out, vec![Some(0), Some(255)]);
781 assert_eq!(db.strlen(b"k").expect("a length"), 1);
782
783 let out = db
784 .bitfield(b"k", &[sub(SubOp::Incr(10), 0)])
785 .expect("replies");
786 assert_eq!(out, vec![Some(9)], "wrapped round");
787
788 // A failing write answers nothing and leaves the field alone, and the
789 // subcommands around it still run.
790 let fail = Sub {
791 on: Overflow::Fail,
792 ..sub(SubOp::Incr(250), 0)
793 };
794 let out = db
795 .bitfield(b"k", &[fail, sub(SubOp::Get, 0)])
796 .expect("replies");
797 assert_eq!(out, vec![None, Some(9)]);
798 }
799
800 #[test]
801 fn a_read_only_bitfield_creates_nothing_and_re_encodes_nothing() {
802 let mut db = db();
803 let f = Field::new(true, 16).expect("a width");
804 let get = Sub {
805 op: SubOp::Get,
806 field: f,
807 at: 0,
808 on: Overflow::Wrap,
809 };
810 assert_eq!(
811 db.bitfield(b"gone", &[get]).expect("replies"),
812 vec![Some(0)]
813 );
814 assert!(!db.exists(b"gone"));
815
816 db.set_plain(b"s", b"hello").expect("a set");
817 assert_eq!(db.encoding(b"s"), Some(value::Encoding::Embstr));
818 db.bitfield(b"s", &[get]).expect("replies");
819 assert_eq!(
820 db.encoding(b"s"),
821 Some(value::Encoding::Embstr),
822 "still short"
823 );
824 }
825
826 #[test]
827 fn a_write_grows_the_value_even_when_every_write_fails() {
828 let mut db = db();
829 let f = Field::new(false, 8).expect("a width");
830 let sub = Sub {
831 op: SubOp::Set(300),
832 field: f,
833 at: 64,
834 on: Overflow::Fail,
835 };
836 assert_eq!(db.bitfield(b"k", &[sub]).expect("replies"), vec![None]);
837 assert_eq!(db.strlen(b"k").expect("a length"), 9);
838 }
839
840 #[test]
841 fn a_bit_command_on_the_wrong_type_says_so() {
842 let mut db = db();
843 let member: &[u8] = b"x";
844 db.sadd(b"s", std::iter::once(member)).expect("a member");
845 assert!(db.getbit(b"s", 0).is_err());
846 assert!(db.setbit(b"s", 0, true).is_err());
847 assert!(db.bitcount(b"s", None).is_err());
848 assert!(db.bitpos(b"s", true, None, None, Unit::Byte).is_err());
849 assert!(db.bitop(Op::Or, b"d", keys(&[b"s"])).is_err());
850 let f = Field::new(false, 8).expect("a width");
851 let sub = Sub {
852 op: SubOp::Get,
853 field: f,
854 at: 0,
855 on: Overflow::Wrap,
856 };
857 assert!(db.bitfield(b"s", &[sub]).is_err());
858 }
859
860 #[test]
861 fn an_offset_past_the_end_of_the_world_is_refused() {
862 let mut db = db();
863 assert!(db.setbit(b"k", BIT_OFFSET_MAX + 1, true).is_err());
864 assert!(db.getbit(b"k", BIT_OFFSET_MAX + 1).is_err());
865 // And one inside Redis's limit but outside ours is refused too, with the
866 // other sentence. This is the divergence [`STRING_MAX`] is about.
867 assert!(db.setbit(b"k", BIT_OFFSET_MAX, true).is_err());
868 assert!(max_bits() < BIT_OFFSET_MAX);
869 }
870}