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rudb_vector/
fsst.rs

1//! FSST, the string encoding.
2//!
3//! Fast Static Symbol Table, from the 2020 paper by Boncz, Neumann and Leis. A table of at most 255
4//! symbols of one to eight bytes each, and compression is replacing the longest matching symbol at
5//! each position with its one byte code. A byte that no symbol covers is escaped, which costs two
6//! bytes, so the table has to be good or the output is larger than the input.
7//!
8//! ## Why this and not a general compressor
9//!
10//! `spec/06-compression.md` section 6.2 is blunt about it. FSST compresses text about 2x, which is
11//! worse than what zstd does to the same bytes, and the ratio is not why it is here. Two other
12//! properties are.
13//!
14//! The first is random access. Every string in a column is compressed independently against a
15//! shared table, so reading row 4,000,000 does not mean decompressing the four million before it. A
16//! block compressor gives up that property and gets it back by cutting the data into blocks, which
17//! means reading one string decompresses a block.
18//!
19//! The second is that a substring search can run against the compressed bytes. Compress the needle
20//! with the same symbol table and look for the compressed needle in the compressed haystack. That is
21//! what turns `URL LIKE '%google%'` from a decompress and scan into a scan, and section 6.7 says it
22//! is worth more on the ClickBench workload than any ratio improvement. It needs care, because the
23//! greedy match that compresses a needle standing alone can segment it differently from the way the
24//! same bytes were segmented inside a longer string, so a hit is a candidate and a miss is not a
25//! proof. The scan that uses it is M3 work and lives with the rest of encoded execution.
26//!
27//! ## Training
28//!
29//! The table is built from a sample rather than from the whole column, and the algorithm is the
30//! paper's: start with nothing, so every byte escapes, then repeat five times. Compress the sample
31//! with the table you have, count how often each symbol is used and how often each pair of adjacent
32//! symbols occurs, and build the next table from the best 255 of the symbols and the concatenations
33//! by gain, where gain is how many bytes of input the symbol accounts for. Five generations is what
34//! the paper found, and the shape of the thing is that the first generation learns single bytes, the
35//! second learns pairs, and the fifth is finding eight byte symbols like `https://`.
36//!
37//! ## Matching
38//!
39//! Three lookups in a fixed order, longest first. A hash table on the first three bytes for symbols
40//! of three bytes and up, a flat table indexed by the first two bytes, and a flat table indexed by
41//! the first one. The hash table probes eight slots and keeps the longest symbol that matches rather
42//! than the first, because several symbols share a three byte prefix and taking the first would make
43//! the ratio depend on insertion order.
44
45use std::cell::RefCell;
46
47use rudb_common::{Error, Result};
48
49/// The code that means the next byte is a literal. 255 rather than 0 so that the 255 real codes are
50/// a contiguous range starting at zero and a code is its own index into the symbol table.
51pub const ESCAPE: u8 = 255;
52
53/// How many real symbols a table can hold.
54pub const MAX_SYMBOLS: usize = 255;
55
56/// The longest a symbol can be. Eight, so that a symbol is a `u64` and a match is a mask and a
57/// compare rather than a loop over bytes.
58pub const MAX_SYMBOL_LEN: usize = 8;
59
60/// How many generations the trainer runs. The paper's number.
61const GENERATIONS: usize = 5;
62
63/// Slots in the prefix hash table. A power of two, and four times the largest number of symbols that
64/// can be in it, which keeps the eight slot probe from filling up on a full table.
65const HASH_SLOTS: usize = 1024;
66
67/// How far a lookup probes before giving up. A miss here costs ratio and not correctness.
68const PROBE: usize = 8;
69
70/// One symbol. The bytes are in the low end of `value` in the order they appear, so that a match
71/// against the next eight bytes of input is one mask and one compare.
72#[derive(Debug, Clone, Copy, PartialEq, Eq, PartialOrd, Ord, Hash)]
73struct Symbol {
74    value: u64,
75    len: u8,
76}
77
78impl Symbol {
79    fn new(bytes: &[u8]) -> Self {
80        let len = bytes.len().min(MAX_SYMBOL_LEN);
81        let mut value = 0u64;
82        for (index, byte) in bytes[..len].iter().enumerate() {
83            value |= u64::from(*byte) << (8 * index);
84        }
85        Self { value, len: len as u8 }
86    }
87
88    fn single(byte: u8) -> Self {
89        Self { value: u64::from(byte), len: 1 }
90    }
91
92    fn len(self) -> usize {
93        self.len as usize
94    }
95
96    fn mask(self) -> u64 {
97        mask_of(self.len())
98    }
99
100    fn bytes(self) -> Vec<u8> {
101        (0..self.len()).map(|index| (self.value >> (8 * index)) as u8).collect()
102    }
103
104    /// The two symbols end to end, cut off at eight bytes.
105    fn concat(self, other: Self) -> Self {
106        if self.len() >= MAX_SYMBOL_LEN {
107            return self;
108        }
109        let len = (self.len() + other.len()).min(MAX_SYMBOL_LEN);
110        let value = self.value | (other.value << (8 * self.len()));
111        Self { value: value & mask_of(len), len: len as u8 }
112    }
113}
114
115fn mask_of(len: usize) -> u64 {
116    if len >= 8 { u64::MAX } else { (1u64 << (8 * len)) - 1 }
117}
118
119/// A trained symbol table, and everything needed to compress and decompress against it.
120pub struct SymbolTable {
121    /// Code to symbol. At most [`MAX_SYMBOLS`] long.
122    symbols: Vec<Symbol>,
123    /// First byte to code, or [`ESCAPE`] when no one byte symbol covers it.
124    single: Vec<u8>,
125    /// First two bytes to code, or `u16::MAX` when there is no two byte symbol for them.
126    pair: Vec<u16>,
127    /// Open addressed, keyed on the first three bytes, holding every symbol of three bytes or more.
128    hash: Vec<Option<(Symbol, u8)>>,
129}
130
131impl std::fmt::Debug for SymbolTable {
132    fn fmt(&self, formatter: &mut std::fmt::Formatter<'_>) -> std::fmt::Result {
133        // The lookup tables are 64k entries and printing them is never what anybody wanted.
134        formatter
135            .debug_struct("SymbolTable")
136            .field("symbols", &self.symbols.len())
137            .field("bytes", &self.serialized_len())
138            .finish()
139    }
140}
141
142/// Two tables are equal when they hold the same symbols in the same order.
143///
144/// The three lookup tables are built from the symbols when a table is built and hold nothing the
145/// symbols do not, so comparing them would be comparing the same information a second time over
146/// sixty five thousand entries. A vector in FSST form carries a table, and a vector is compared for
147/// equality all over the tests, so this is on a path that gets walked.
148impl PartialEq for SymbolTable {
149    fn eq(&self, other: &Self) -> bool {
150        self.symbols == other.symbols
151    }
152}
153
154impl Eq for SymbolTable {}
155
156impl SymbolTable {
157    /// How many bytes of memory this table is holding.
158    ///
159    /// Mostly the hash table, which is sixty five thousand slots however few symbols are in it. That
160    /// is the number a vector in FSST form reports, and it is why the form is a decision about a
161    /// page rather than about a chunk: one table over a hundred chunks is nothing per chunk and one
162    /// table per chunk is a megabyte.
163    #[must_use]
164    pub fn footprint(&self) -> usize {
165        size_of::<Self>()
166            + self.symbols.capacity() * size_of::<Symbol>()
167            + self.single.capacity()
168            + self.pair.capacity() * size_of::<u16>()
169            + self.hash.capacity() * size_of::<Option<(Symbol, u8)>>()
170    }
171
172    /// A table with no symbols, which escapes everything and doubles its input. The starting point
173    /// of training, and what a column of nothing but unique bytes ends up with.
174    #[must_use]
175    pub fn empty() -> Self {
176        Self::build(Vec::new())
177    }
178
179    /// Trains a table on a sample.
180    ///
181    /// The caller picks the sample. Section 6.3 says a systematic sample across the chunk rather
182    /// than the first N rows, because column data is frequently clustered, and that decision belongs
183    /// to whoever knows what the chunk is rather than to this function.
184    #[must_use]
185    pub fn train(samples: &[&[u8]]) -> Self {
186        // The counts are a megabyte of pair slots, and a load trains a table for every block of
187        // every text column it writes. So each thread keeps one and clears the slots it used, rather
188        // than asking for a fresh megabyte of zeroes and faulting it in on every block.
189        thread_local! {
190            static COUNTS: RefCell<Option<Counts>> = const { RefCell::new(None) };
191        }
192        COUNTS.with(|held| match held.try_borrow_mut() {
193            Ok(mut held) => Self::train_with(samples, held.get_or_insert_with(Counts::new)),
194            Err(_) => Self::train_with(samples, &mut Counts::new()),
195        })
196    }
197
198    fn train_with(samples: &[&[u8]], counts: &mut Counts) -> Self {
199        let mut table = Self::empty();
200        for _ in 0..GENERATIONS {
201            counts.clear();
202            for sample in samples {
203                table.count(sample, counts);
204            }
205            let next = counts.best(&table);
206            if next.is_empty() {
207                break;
208            }
209            table = Self::build(next);
210        }
211        table
212    }
213
214    /// How many symbols are in the table.
215    #[must_use]
216    pub fn len(&self) -> usize {
217        self.symbols.len()
218    }
219
220    /// Whether the table has no symbols, in which case every byte of every string escapes.
221    #[must_use]
222    pub fn is_empty(&self) -> bool {
223        self.symbols.is_empty()
224    }
225
226    /// How many bytes [`serialize`](Self::serialize) writes. At most 2049 for a full table, and
227    /// that is the number section 6.4 is weighing when it says a shared symbol table is cheaper
228    /// than a shared dictionary.
229    #[must_use]
230    pub fn serialized_len(&self) -> usize {
231        1 + self.symbols.iter().map(|symbol| 1 + symbol.len()).sum::<usize>()
232    }
233
234    /// Writes the table itself, which has to travel with the data it compressed.
235    pub fn serialize(&self, out: &mut Vec<u8>) {
236        out.push(self.symbols.len() as u8);
237        for symbol in &self.symbols {
238            out.push(symbol.len);
239            out.extend_from_slice(&symbol.bytes());
240        }
241    }
242
243    /// Reads back what [`serialize`](Self::serialize) wrote, and says how many bytes it consumed.
244    ///
245    /// # Errors
246    ///
247    /// If the bytes are truncated or describe a symbol of zero or more than eight bytes.
248    pub fn deserialize(bytes: &[u8]) -> Result<(Self, usize)> {
249        let count = *bytes.first().ok_or_else(|| truncated("a symbol table header"))? as usize;
250        let mut at = 1;
251        let mut symbols = Vec::with_capacity(count);
252        for _ in 0..count {
253            let len = *bytes.get(at).ok_or_else(|| truncated("a symbol length"))? as usize;
254            if len == 0 || len > MAX_SYMBOL_LEN {
255                return Err(Error::internal(format!("a symbol of {len} bytes is not a symbol")));
256            }
257            at += 1;
258            let end = at + len;
259            if end > bytes.len() {
260                return Err(truncated("a symbol"));
261            }
262            symbols.push(Symbol::new(&bytes[at..end]));
263            at = end;
264        }
265        Ok((Self::build(symbols), at))
266    }
267
268    /// Compresses one string, appending to `out`.
269    ///
270    /// Strings are compressed one at a time against a shared table rather than as one stream,
271    /// because that is what keeps random access, which is the first of the two reasons this encoding
272    /// was chosen at all.
273    pub fn compress(&self, input: &[u8], out: &mut Vec<u8>) {
274        let mut at = 0;
275        while at < input.len() {
276            let (code, len) = self.match_at(input, at);
277            if code == ESCAPE {
278                out.push(ESCAPE);
279                out.push(input[at]);
280            } else {
281                out.push(code);
282            }
283            at += len;
284        }
285    }
286
287    /// Decompresses one string, appending to `out`.
288    ///
289    /// A symbol goes out as all eight of the bytes its `u64` holds, and then the cursor steps back
290    /// over the ones that were not part of it. Eight is a length the compiler knows, so that is one
291    /// store. The length a symbol really has is only known at run time, so copying exactly that
292    /// many bytes is a call into `memcpy` for one to eight of them, and building a `Vec` to copy
293    /// them out of, which is what this used to do, is a heap allocation and a free on top.
294    ///
295    /// That mattered more than anything else in the engine. `SELECT COUNT(*) FROM hits WHERE URL
296    /// LIKE '%google%'` over ClickBench spends almost all of its time here, because the search
297    /// itself runs once per distinct URL and finding those means decompressing the column, and the
298    /// allocation, the free and the copy together were 41% of the query.
299    ///
300    /// # Errors
301    ///
302    /// If the input ends on an escape byte, or holds a code the table does not have.
303    pub fn decompress(&self, input: &[u8], out: &mut Vec<u8>) -> Result<()> {
304        // What the table is trained to reach, plus room for the tail of the last symbol, so the
305        // loop below mostly finds the space already there. Nothing here depends on the guess being
306        // right: too small and the growth happens where it always did.
307        out.reserve(input.len().saturating_mul(2).saturating_add(MAX_SYMBOL_LEN));
308        let mut at = 0;
309        while at < input.len() {
310            let code = input[at];
311            at += 1;
312            if code == ESCAPE {
313                let literal = *input.get(at).ok_or_else(|| truncated("an escaped byte"))?;
314                out.push(literal);
315                at += 1;
316            } else {
317                let symbol = *self
318                    .symbols
319                    .get(code as usize)
320                    .ok_or_else(|| Error::internal(format!("code {code} is not in the table")))?;
321                out.extend_from_slice(&symbol.value.to_le_bytes());
322                out.truncate(out.len() - (MAX_SYMBOL_LEN - symbol.len()));
323            }
324        }
325        Ok(())
326    }
327
328    /// The code and how many input bytes it covers. [`ESCAPE`] and 1 when nothing matches.
329    fn match_at(&self, input: &[u8], at: usize) -> (u8, usize) {
330        let remaining = input.len() - at;
331        let word = load(input, at);
332        // Written as a nested `if` rather than as a chained `if let` because the minimum supported
333        // Rust version is 1.85 and let chains landed in 1.88.
334        if remaining >= 3 {
335            if let Some((symbol, code)) = self.probe(word, remaining) {
336                return (code, symbol.len());
337            }
338        }
339        if remaining >= 2 {
340            let code = self.pair[(word & 0xffff) as usize];
341            if code != u16::MAX {
342                return (code as u8, 2);
343            }
344        }
345        let code = self.single[(word & 0xff) as usize];
346        if code == ESCAPE { (ESCAPE, 1) } else { (code, 1) }
347    }
348
349    /// The longest symbol of three bytes or more matching here, if any.
350    ///
351    /// Longest rather than first, because several symbols share a three byte prefix and taking
352    /// whichever the probe reached first would make the compression ratio depend on the order the
353    /// table was built in.
354    fn probe(&self, word: u64, remaining: usize) -> Option<(Symbol, u8)> {
355        let mut slot = hash_of(word);
356        let mut best: Option<(Symbol, u8)> = None;
357        for _ in 0..PROBE {
358            match self.hash[slot] {
359                None => break,
360                Some((symbol, code)) => {
361                    if symbol.len() <= remaining
362                        && word & symbol.mask() == symbol.value
363                        && best.is_none_or(|(found, _)| symbol.len() > found.len())
364                    {
365                        best = Some((symbol, code));
366                    }
367                }
368            }
369            slot = (slot + 1) & (HASH_SLOTS - 1);
370        }
371        best
372    }
373
374    /// Runs the matcher over a sample without producing output, recording what it used. This is the
375    /// counting half of a training generation.
376    fn count(&self, input: &[u8], counts: &mut Counts) {
377        let mut at = 0;
378        let mut previous: Option<u16> = None;
379        while at < input.len() {
380            let (code, len) = self.match_at(input, at);
381            let id = if code == ESCAPE { 256 + u16::from(input[at]) } else { u16::from(code) };
382            counts.one(id);
383            if let Some(previous) = previous {
384                counts.two(previous, id);
385            }
386            previous = Some(id);
387            at += len;
388        }
389    }
390
391    fn build(symbols: Vec<Symbol>) -> Self {
392        let mut table = Self {
393            symbols,
394            single: vec![ESCAPE; 256],
395            pair: vec![u16::MAX; 65536],
396            hash: vec![None; HASH_SLOTS],
397        };
398        // Longest first, so that a short symbol never displaces a long one out of the probe window
399        // and the flat tables get the lowest code for a duplicate.
400        let mut order: Vec<(Symbol, u8)> =
401            table.symbols.iter().enumerate().map(|(code, symbol)| (*symbol, code as u8)).collect();
402        order.sort_by_key(|(symbol, code)| (std::cmp::Reverse(symbol.len()), *code));
403        for (symbol, code) in order {
404            match symbol.len() {
405                1 => {
406                    let index = (symbol.value & 0xff) as usize;
407                    if table.single[index] == ESCAPE {
408                        table.single[index] = code;
409                    }
410                }
411                2 => {
412                    let index = (symbol.value & 0xffff) as usize;
413                    if table.pair[index] == u16::MAX {
414                        table.pair[index] = u16::from(code);
415                    }
416                }
417                _ => {
418                    let mut slot = hash_of(symbol.value);
419                    for _ in 0..PROBE {
420                        if table.hash[slot].is_none() {
421                            table.hash[slot] = Some((symbol, code));
422                            break;
423                        }
424                        slot = (slot + 1) & (HASH_SLOTS - 1);
425                    }
426                }
427            }
428        }
429        table
430    }
431}
432
433/// The next eight bytes as a little endian word, zero padded at the end of the input.
434///
435/// The padding is why every match checks the remaining length as well as the mask. Without that
436/// check a two byte symbol ending in a zero byte would match the last byte of a string.
437fn load(input: &[u8], at: usize) -> u64 {
438    if at + 8 <= input.len() {
439        let bytes: [u8; 8] = input[at..at + 8].try_into().expect("eight bytes were checked");
440        u64::from_le_bytes(bytes)
441    } else {
442        let mut word = 0u64;
443        for (index, byte) in input[at..].iter().enumerate() {
444            word |= u64::from(*byte) << (8 * index);
445        }
446        word
447    }
448}
449
450/// Hashes the first three bytes. The multiply and shift is the standard Fibonacci hash, which
451/// spreads a three byte key across the whole slot range where a mask of the low bits would put every
452/// symbol starting with the same letter in the same neighbourhood.
453fn hash_of(word: u64) -> usize {
454    let key = word & 0xff_ffff;
455    ((key.wrapping_mul(0x9e37_79b9_7f4a_7c15)) >> (64 - HASH_SLOTS.trailing_zeros())) as usize
456}
457
458/// What one training generation counts. Symbol ids below 256 are codes in the current table and ids
459/// from 256 up are escaped literal bytes, which is how a generation learns single bytes it does not
460/// have yet.
461struct Counts {
462    single: Vec<u32>,
463    /// Indexed by `first * IDS + second`. Flat rather than hashed because every id is under 512, so
464    /// every pair fits in a quarter million slots, and counting pairs is most of what training does.
465    pairs: Vec<u32>,
466    /// The pair slots that are not zero, so that reading and clearing them costs the pairs seen
467    /// rather than the whole array.
468    seen: Vec<u32>,
469    /// The candidates of the generation being ranked, kept so a thread sizes them once.
470    gains: Gains,
471}
472
473/// Every candidate symbol once with its summed gain, which [`Counts::best`] ranks.
474#[derive(Default)]
475struct Gains {
476    gains: Vec<(Symbol, u64)>,
477    /// Where each symbol sits in `gains`, open addressed on the symbol, `u32::MAX` where empty.
478    places: Vec<u32>,
479    /// The slots of `places` in use, so that emptying it costs the symbols rather than the table.
480    taken: Vec<u32>,
481}
482
483impl Gains {
484    /// Empties the candidates, with room for `most` of them.
485    fn clear(&mut self, most: usize) {
486        for place in self.taken.drain(..) {
487            self.places[place as usize] = u32::MAX;
488        }
489        let wanted = (most * 2).next_power_of_two();
490        if self.places.len() < wanted {
491            self.places = vec![u32::MAX; wanted];
492        }
493        self.gains.clear();
494    }
495
496    /// Adds `count` uses of `symbol` to its gain, making it a candidate if it is not one yet.
497    fn add(&mut self, symbol: Symbol, count: u64) {
498        let gain = count * symbol.len() as u64;
499        let mask = self.places.len() - 1;
500        let mut place = gain_hash(symbol) & mask;
501        loop {
502            let at = self.places[place];
503            if at == u32::MAX {
504                self.places[place] = self.gains.len() as u32;
505                self.taken.push(place as u32);
506                self.gains.push((symbol, gain));
507                return;
508            }
509            if self.gains[at as usize].0 == symbol {
510                self.gains[at as usize].1 += gain;
511                return;
512            }
513            place = (place + 1) & mask;
514        }
515    }
516}
517
518/// How many symbol ids there are: 256 codes and 256 escaped bytes.
519const IDS: usize = 512;
520
521impl Counts {
522    fn new() -> Self {
523        Self {
524            single: vec![0; IDS],
525            pairs: vec![0; IDS * IDS],
526            seen: Vec::new(),
527            gains: Gains::default(),
528        }
529    }
530
531    fn clear(&mut self) {
532        self.single.fill(0);
533        for slot in self.seen.drain(..) {
534            self.pairs[slot as usize] = 0;
535        }
536    }
537
538    fn one(&mut self, id: u16) {
539        self.single[id as usize] += 1;
540    }
541
542    fn two(&mut self, first: u16, second: u16) {
543        let slot = first as usize * IDS + second as usize;
544        if self.pairs[slot] == 0 {
545            self.seen.push(slot as u32);
546        }
547        self.pairs[slot] += 1;
548    }
549
550    /// The 255 best symbols for the next generation.
551    ///
552    /// Gain is how many bytes of input a symbol accounts for, which is its length times how often it
553    /// was used. A concatenation is scored on the length it would have, so a pair of four byte
554    /// symbols scores as eight and a pair of six byte ones also scores as eight, because that is
555    /// what it would be cut down to.
556    fn best(&mut self, table: &SymbolTable) -> Vec<Symbol> {
557        // Different ids can spell the same symbol, a code and the pair it was learned from for one,
558        // and two pairs whose concatenation runs past eight bytes for another, so the gains are
559        // summed per symbol before anything is ranked. This was a sort of every candidate by symbol
560        // followed by a dedup, and on a ClickBench load that sort was a quarter of training.
561        self.gains.clear(IDS + self.seen.len());
562        for (id, count) in self.single.iter().enumerate() {
563            if *count == 0 {
564                continue;
565            }
566            let symbol = symbol_of(table, id as u16);
567            self.gains.add(symbol, u64::from(*count));
568        }
569        for slot in &self.seen {
570            let slot = *slot as usize;
571            let (first, second) = ((slot / IDS) as u16, (slot % IDS) as u16);
572            let symbol = symbol_of(table, first).concat(symbol_of(table, second));
573            self.gains.add(symbol, u64::from(self.pairs[slot]));
574        }
575        let gains = &mut self.gains.gains;
576        // Gain first, then the symbol itself, so that two symbols with the same gain come out in the
577        // same order on every host and the table is a function of the sample and nothing else. The
578        // symbols are distinct by now, so the order is total and an unstable sort gives one answer.
579        let order = |left: &(Symbol, u64), right: &(Symbol, u64)| {
580            right.1.cmp(&left.1).then(left.0.cmp(&right.0))
581        };
582        if gains.len() > MAX_SYMBOLS {
583            gains.select_nth_unstable_by(MAX_SYMBOLS - 1, order);
584            gains.truncate(MAX_SYMBOLS);
585        }
586        gains.sort_unstable_by(order);
587        gains.iter().map(|(symbol, _)| *symbol).collect()
588    }
589}
590
591/// Where a symbol's search for its place in [`Gains::places`] starts.
592fn gain_hash(symbol: Symbol) -> usize {
593    ((symbol.value ^ u64::from(symbol.len)).wrapping_mul(0x9e37_79b9_7f4a_7c15) >> 32) as usize
594}
595
596fn symbol_of(table: &SymbolTable, id: u16) -> Symbol {
597    if (id as usize) < table.symbols.len() {
598        table.symbols[id as usize]
599    } else {
600        Symbol::single((id.saturating_sub(256)) as u8)
601    }
602}
603
604fn truncated(what: &str) -> Error {
605    Error::internal(format!("the input ended in the middle of {what}"))
606}
607
608#[cfg(test)]
609mod tests {
610    use super::*;
611
612    /// A few hundred URLs in the shape ClickBench `hits` has them, which is the workload this
613    /// encoding was chosen for. Repetitive in the way real URLs are: a handful of hosts, a handful
614    /// of path shapes, and query strings that differ in a number.
615    fn urls() -> Vec<Vec<u8>> {
616        let hosts = ["www.example.com", "shop.example.com", "news.other.example.org"];
617        let paths = ["/index.html", "/catalog/item", "/search", "/user/profile/settings"];
618        let mut out = Vec::new();
619        for index in 0..600 {
620            let host = hosts[index % hosts.len()];
621            let path = paths[(index / 3) % paths.len()];
622            out.push(
623                format!("http://{host}{path}?session={}&ref=google&page={}", index * 7, index % 20)
624                    .into_bytes(),
625            );
626        }
627        out
628    }
629
630    fn borrow(strings: &[Vec<u8>]) -> Vec<&[u8]> {
631        strings.iter().map(Vec::as_slice).collect()
632    }
633
634    fn round_trip(table: &SymbolTable, strings: &[Vec<u8>]) -> (usize, usize) {
635        let mut raw = 0;
636        let mut compressed = 0;
637        for string in strings {
638            let mut bytes = Vec::new();
639            table.compress(string, &mut bytes);
640            let mut back = Vec::new();
641            table.decompress(&bytes, &mut back).unwrap();
642            assert_eq!(back, *string, "{}", String::from_utf8_lossy(string));
643            raw += string.len();
644            compressed += bytes.len();
645        }
646        (raw, compressed)
647    }
648
649    #[test]
650    fn urls_compress_by_more_than_half_and_come_back_unchanged() {
651        // The number the paper reports on text is around 2x, and URLs are more repetitive than
652        // text. Anything under 2x here means the trainer is not finding the long symbols.
653        let strings = urls();
654        let table = SymbolTable::train(&borrow(&strings));
655        let (raw, compressed) = round_trip(&table, &strings);
656        let ratio = raw as f64 / compressed as f64;
657        assert!(ratio > 2.5, "{ratio:.2}x, {raw} to {compressed}");
658        assert!(table.len() > 100, "{} symbols", table.len());
659    }
660
661    #[test]
662    fn the_trainer_finds_the_long_repeated_pieces() {
663        let strings = urls();
664        let table = SymbolTable::train(&borrow(&strings));
665        let found: Vec<String> = (0..table.len())
666            .map(|code| String::from_utf8_lossy(&table.symbols[code].bytes()).into_owned())
667            .collect();
668        // Not a specific symbol, since which eight bytes win is a property of the sample, but the
669        // table has to be mostly long symbols or it has not learned anything.
670        let long = found.iter().filter(|symbol| symbol.len() >= 6).count();
671        assert!(long > 60, "only {long} symbols of six bytes or more: {found:?}");
672    }
673
674    #[test]
675    fn english_text_round_trips_and_shrinks() {
676        let text: Vec<Vec<u8>> = "the quick brown fox jumps over the lazy dog while the other dog \
677             watches the fox and the dog and the fox go over the hill together"
678            .split(' ')
679            .map(|word| word.as_bytes().to_vec())
680            .collect();
681        let table = SymbolTable::train(&borrow(&text));
682        let (raw, compressed) = round_trip(&table, &text);
683        assert!(compressed < raw, "{raw} to {compressed}");
684    }
685
686    #[test]
687    fn incompressible_bytes_round_trip_and_cost_what_escaping_costs() {
688        // The worst case, and it has to be a correct worst case. Every byte escapes at two bytes
689        // each unless the trainer finds single byte symbols, which it will for the 255 most common
690        // of the 256 values.
691        let mut state = 0x1234_5678_9abc_def0u64;
692        let strings: Vec<Vec<u8>> = (0..100)
693            .map(|_| {
694                (0..64)
695                    .map(|_| {
696                        state ^= state << 13;
697                        state ^= state >> 7;
698                        state ^= state << 17;
699                        state as u8
700                    })
701                    .collect()
702            })
703            .collect();
704        let table = SymbolTable::train(&borrow(&strings));
705        let (raw, compressed) = round_trip(&table, &strings);
706        assert!(compressed < raw * 2, "{raw} to {compressed}");
707    }
708
709    #[test]
710    fn an_empty_table_escapes_everything_and_still_round_trips() {
711        let table = SymbolTable::empty();
712        let strings = vec![b"hello".to_vec(), Vec::new(), b"x".to_vec()];
713        let (raw, compressed) = round_trip(&table, &strings);
714        assert_eq!(compressed, raw * 2);
715    }
716
717    #[test]
718    fn an_empty_string_compresses_to_nothing() {
719        let table = SymbolTable::train(&[b"abcabcabc"]);
720        let mut out = Vec::new();
721        table.compress(b"", &mut out);
722        assert!(out.is_empty());
723        let mut back = Vec::new();
724        table.decompress(&out, &mut back).unwrap();
725        assert!(back.is_empty());
726    }
727
728    #[test]
729    fn a_string_shorter_than_the_symbols_does_not_read_past_its_end() {
730        // The load pads with zeros, so without the length check a two byte symbol whose second byte
731        // is zero would match the last byte of a string and swallow a byte that is not there.
732        let table = SymbolTable::train(&[b"ab\0ab\0ab\0ab\0", b"abcdefgh"]);
733        for string in [b"a".to_vec(), b"ab".to_vec(), b"abc".to_vec()] {
734            let mut bytes = Vec::new();
735            table.compress(&string, &mut bytes);
736            let mut back = Vec::new();
737            table.decompress(&bytes, &mut back).unwrap();
738            assert_eq!(back, string);
739        }
740    }
741
742    #[test]
743    fn a_table_survives_being_written_and_read_back() {
744        let strings = urls();
745        let table = SymbolTable::train(&borrow(&strings));
746        let mut bytes = Vec::new();
747        table.serialize(&mut bytes);
748        assert_eq!(bytes.len(), table.serialized_len());
749        let (read, consumed) = SymbolTable::deserialize(&bytes).unwrap();
750        assert_eq!(consumed, bytes.len());
751        assert_eq!(read.symbols, table.symbols);
752
753        // And the read back table compresses to the same bytes, which is the property that matters,
754        // since the lookup structures are rebuilt rather than stored.
755        let mut first = Vec::new();
756        let mut second = Vec::new();
757        table.compress(&strings[7], &mut first);
758        read.compress(&strings[7], &mut second);
759        assert_eq!(first, second);
760    }
761
762    #[test]
763    fn a_full_table_is_two_kilobytes_at_the_very_most() {
764        let strings = urls();
765        let table = SymbolTable::train(&borrow(&strings));
766        assert!(table.serialized_len() <= 1 + MAX_SYMBOLS * (1 + MAX_SYMBOL_LEN));
767        assert!(table.serialized_len() <= 2049);
768    }
769
770    #[test]
771    fn a_truncated_symbol_table_is_an_error() {
772        let strings = urls();
773        let table = SymbolTable::train(&borrow(&strings));
774        let mut bytes = Vec::new();
775        table.serialize(&mut bytes);
776        for len in 1..bytes.len().min(40) {
777            let error = SymbolTable::deserialize(&bytes[..len]).unwrap_err();
778            assert!(error.message().contains("ended in the middle"), "{error}");
779        }
780    }
781
782    #[test]
783    fn a_symbol_of_zero_bytes_is_an_error() {
784        let error = SymbolTable::deserialize(&[1, 0]).unwrap_err();
785        assert!(error.message().contains("is not a symbol"), "{error}");
786    }
787
788    #[test]
789    fn a_short_symbol_does_not_drag_the_rest_of_its_word_out_with_it() {
790        // Decompression writes all eight bytes of a symbol and steps back over the ones that were
791        // not part of it, so a table of short symbols is where that would show. `ab` and `cd` are
792        // two bytes each and sit in a `u64` with six zero bytes above them, and if the step back
793        // were wrong those zeros would be in the answer. Appending twice checks it again at an
794        // offset, since the second write lands where the first one left the cursor.
795        let table = SymbolTable::train(&[b"abcdabcdabcdabcd"]);
796        let mut compressed = Vec::new();
797        table.compress(b"abcdabcd", &mut compressed);
798        let mut out = Vec::new();
799        table.decompress(&compressed, &mut out).expect("decompresses");
800        table.decompress(&compressed, &mut out).expect("decompresses");
801        assert_eq!(out, b"abcdabcdabcdabcd");
802    }
803
804    #[test]
805    fn a_dangling_escape_is_an_error_and_not_a_panic() {
806        let table = SymbolTable::train(&[b"abcabcabc"]);
807        let error = table.decompress(&[ESCAPE], &mut Vec::new()).unwrap_err();
808        assert!(error.message().contains("escaped byte"), "{error}");
809    }
810
811    #[test]
812    fn a_code_the_table_does_not_have_is_an_error() {
813        let table = SymbolTable::train(&[b"abcabcabc"]);
814        let code = table.len() as u8;
815        let error = table.decompress(&[code], &mut Vec::new()).unwrap_err();
816        assert!(error.message().contains("not in the table"), "{error}");
817    }
818
819    #[test]
820    fn training_twice_on_the_same_sample_gives_the_same_table() {
821        // A table that differs run to run would make every size in the M1 report unreproducible.
822        let strings = urls();
823        let first = SymbolTable::train(&borrow(&strings));
824        let second = SymbolTable::train(&borrow(&strings));
825        assert_eq!(first.symbols, second.symbols);
826    }
827
828    #[test]
829    fn the_longest_match_wins_rather_than_the_first_one_found() {
830        let table = SymbolTable::build(vec![
831            Symbol::new(b"abc"),
832            Symbol::new(b"abcdef"),
833            Symbol::new(b"abcd"),
834        ]);
835        let mut out = Vec::new();
836        table.compress(b"abcdef", &mut out);
837        assert_eq!(out, vec![1]);
838    }
839
840    #[test]
841    fn a_symbol_longer_than_what_is_left_is_not_used() {
842        let table = SymbolTable::build(vec![Symbol::new(b"abcdef"), Symbol::new(b"ab")]);
843        let mut out = Vec::new();
844        table.compress(b"abcd", &mut out);
845        // "ab" then two escapes, rather than a six byte symbol over four bytes of input.
846        assert_eq!(out, vec![1, ESCAPE, b'c', ESCAPE, b'd']);
847    }
848
849    #[test]
850    fn concatenation_stops_at_eight_bytes() {
851        let long = Symbol::new(b"abcdef");
852        assert_eq!(long.concat(Symbol::new(b"ghijkl")).bytes(), b"abcdefgh");
853        assert_eq!(Symbol::new(b"ab").concat(Symbol::new(b"cd")).bytes(), b"abcd");
854    }
855
856    /// The trainer the way it was written first, with the pairs and the gains in hash maps and one
857    /// stable sort over everything, kept here to check the flat counts pick the same symbols.
858    fn train_with_maps(samples: &[&[u8]]) -> SymbolTable {
859        use std::collections::HashMap;
860        let mut table = SymbolTable::empty();
861        for _ in 0..GENERATIONS {
862            let mut single = [0u32; IDS];
863            let mut pairs: HashMap<(u16, u16), u32> = HashMap::new();
864            for sample in samples {
865                let mut at = 0;
866                let mut previous: Option<u16> = None;
867                while at < sample.len() {
868                    let (code, len) = table.match_at(sample, at);
869                    let id =
870                        if code == ESCAPE { 256 + u16::from(sample[at]) } else { u16::from(code) };
871                    single[id as usize] += 1;
872                    if let Some(previous) = previous {
873                        *pairs.entry((previous, id)).or_insert(0) += 1;
874                    }
875                    previous = Some(id);
876                    at += len;
877                }
878            }
879            let mut gains: HashMap<Symbol, u64> = HashMap::new();
880            for (id, count) in single.iter().enumerate().filter(|(_, count)| **count > 0) {
881                let symbol = symbol_of(&table, id as u16);
882                *gains.entry(symbol).or_insert(0) += u64::from(*count) * symbol.len() as u64;
883            }
884            for ((first, second), count) in &pairs {
885                let symbol = symbol_of(&table, *first).concat(symbol_of(&table, *second));
886                *gains.entry(symbol).or_insert(0) += u64::from(*count) * symbol.len() as u64;
887            }
888            let mut ranked: Vec<(Symbol, u64)> = gains.into_iter().collect();
889            ranked.sort_by(|left, right| right.1.cmp(&left.1).then(left.0.cmp(&right.0)));
890            ranked.truncate(MAX_SYMBOLS);
891            if ranked.is_empty() {
892                break;
893            }
894            table = SymbolTable::build(ranked.into_iter().map(|(symbol, _)| symbol).collect());
895        }
896        table
897    }
898
899    #[test]
900    fn flat_counts_train_the_same_table_as_hash_maps() {
901        let mut state = 0x9e37_79b9_7f4a_7c15u64;
902        let mut next = move || {
903            state ^= state << 13;
904            state ^= state >> 7;
905            state ^= state << 17;
906            state
907        };
908        let mut shapes: Vec<Vec<Vec<u8>>> = vec![urls(), Vec::new(), vec![Vec::new(); 3]];
909        // Few letters, so that many pairs tie on gain and the tie break decides the table.
910        shapes.push(
911            (0..400).map(|_| (0..12).map(|_| b"abc"[(next() % 3) as usize]).collect()).collect(),
912        );
913        // Every byte value, so that escapes of all 256 bytes are counted.
914        shapes.push((0..300).map(|_| (0..40).map(|_| next() as u8).collect()).collect());
915        // Long repeats, so that concatenations reach eight bytes and get cut.
916        shapes.push(
917            (0..200)
918                .map(|index| format!("prefix-{}-suffix-{}", index % 7, index % 5).into_bytes())
919                .collect(),
920        );
921        // One after another on one thread, so every table after the first is trained on the counts
922        // the one before it left behind, which is what a load does block after block.
923        for strings in &shapes {
924            let samples = borrow(strings);
925            assert_eq!(SymbolTable::train(&samples).symbols, train_with_maps(&samples).symbols);
926        }
927    }
928}