rudb_vector/string.rs
1//! The string representation.
2//!
3//! `spec/07-execution.md` section 7.1: a string is a 16 byte structure, 4 bytes of length, 4 bytes
4//! of prefix, and 8 bytes that are either the rest of a short string or a way to find a long one.
5//! Strings of 12 bytes or fewer live entirely inside the structure. The prefix means most
6//! comparisons and most equality tests answer without dereferencing anything, which on the string
7//! heavy queries in ClickBench is the difference between a cache hit and a cache miss per row.
8//!
9//! **Where this differs from the specification, and why.** The document says the last 8 bytes are
10//! a pointer, which is what DuckDB and Umbra do. Here they are a block index and an offset, which
11//! is what Arrow's `StringView` does. The sizes are identical, the prefix trick is identical, and
12//! the prefix trick is the part that makes it fast. The difference is one predictable load against
13//! one pointer chase on the slow path only, and in exchange the whole representation is safe code
14//! with no pinning machinery, which does not exist until the buffer manager arrives at M2. This is
15//! the kind of decision that gets remeasured rather than argued about, and it is tracked as an
16//! issue so that M3 measures it instead of inheriting it.
17
18use rudb_common::{Error, Result};
19
20use crate::buffer::Buffer;
21
22/// The longest string that fits entirely inside a view.
23pub const INLINE_LIMIT: usize = 12;
24
25/// A 16 byte handle on a string.
26///
27/// The layout is a `u32` length and 12 bytes of payload. For a string of 12 bytes or fewer the
28/// payload is the string, zero padded. For a longer one the first 4 bytes are the prefix and the
29/// last 8 are the offset into the column's arena.
30///
31/// Arrow spends 4 of those 8 bytes on a buffer index and 4 on an offset within the buffer, because
32/// an Arrow array is a list of buffers. This column is one arena, so there is no buffer to name and
33/// the whole 8 bytes are the offset, which reads as one load rather than two and takes the reachable
34/// size of a column from 4 GiB to more than anything will ever put in one.
35///
36/// A view on its own cannot produce a long string, only a short one. That is deliberate: the arena
37/// lives in the [`StringColumn`] and the borrow checker is what stops a view from outliving it,
38/// rather than a rule somebody has to remember.
39#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash)]
40pub struct StringView {
41 length: u32,
42 payload: [u8; 12],
43}
44
45impl StringView {
46 /// The view on the empty string.
47 ///
48 /// What a copy loop writes for a position that resolved to nowhere, for the same reason a fixed
49 /// width copy writes a zero there. The views are a parallel array to a validity mask, so a row
50 /// that got skipped rather than filled would put every row after it at the wrong index.
51 #[must_use]
52 pub const fn empty() -> Self {
53 Self { length: 0, payload: [0; 12] }
54 }
55
56 /// A view on a string that fits inline.
57 ///
58 /// # Panics
59 ///
60 /// If the string is longer than [`INLINE_LIMIT`]. Callers that do not know the length go
61 /// through [`StringColumn::push`], which decides.
62 #[must_use]
63 pub fn inline(text: &str) -> Self {
64 assert!(text.len() <= INLINE_LIMIT, "a string of {} bytes is not inline", text.len());
65 let mut payload = [0u8; 12];
66 payload[..text.len()].copy_from_slice(text.as_bytes());
67 Self { length: text.len() as u32, payload }
68 }
69
70 /// A view on a string that lives in the arena.
71 fn indirect(text: &str, offset: u64) -> Self {
72 let mut payload = [0u8; 12];
73 payload[..4].copy_from_slice(&text.as_bytes()[..4]);
74 payload[4..].copy_from_slice(&offset.to_le_bytes());
75 Self { length: text.len() as u32, payload }
76 }
77
78 /// A view on bytes, whatever they are, wherever they turn out to live.
79 ///
80 /// The one constructor that takes bytes rather than a `&str`, and the two callers want it for
81 /// different reasons. A copy between two columns has bytes that were validated on the way into
82 /// the first one and validating again would be work for nothing. A `BLOB` has bytes that were
83 /// never text and are not going to become it. `offset` is where they are in the destination
84 /// arena and is ignored for a string short enough to sit in the view.
85 ///
86 /// It is public because the string view form of a vector is built from views a caller made, and
87 /// a scan laying chunks over a page of strings is exactly the caller that has bytes and an
88 /// offset into somebody else's arena rather than a column to push into.
89 #[must_use]
90 pub fn over(bytes: &[u8], offset: u64) -> Self {
91 let mut payload = [0u8; 12];
92 if bytes.len() <= INLINE_LIMIT {
93 payload[..bytes.len()].copy_from_slice(bytes);
94 } else {
95 payload[..4].copy_from_slice(&bytes[..4]);
96 payload[4..].copy_from_slice(&offset.to_le_bytes());
97 }
98 Self { length: bytes.len() as u32, payload }
99 }
100
101 /// The length in bytes.
102 #[must_use]
103 pub fn len(&self) -> usize {
104 self.length as usize
105 }
106
107 /// Whether the string is empty.
108 #[must_use]
109 pub fn is_empty(&self) -> bool {
110 self.length == 0
111 }
112
113 /// Whether the whole string is in the view.
114 #[must_use]
115 pub fn is_inline(&self) -> bool {
116 self.len() <= INLINE_LIMIT
117 }
118
119 /// The first four bytes, zero padded.
120 ///
121 /// This is the whole point of the representation. Two strings with different prefixes are
122 /// different, and two strings with the same prefix are usually equal, so a filter on a string
123 /// column resolves without touching the payload on almost every row.
124 #[must_use]
125 pub fn prefix(&self) -> [u8; 4] {
126 [self.payload[0], self.payload[1], self.payload[2], self.payload[3]]
127 }
128
129 /// The bytes, when the whole string is in the view.
130 ///
131 /// A comparison wants bytes rather than a `&str`, because SQL's string order is byte order and
132 /// because [`Self::as_inline_str`] pays for a UTF-8 validation that a comparison has no use
133 /// for. On a filter against a varchar column that validation is the whole cost of the row.
134 #[must_use]
135 pub fn inline_bytes(&self) -> Option<&[u8]> {
136 if self.is_inline() { Some(&self.payload[..self.len()]) } else { None }
137 }
138
139 /// The string, when it is short enough to be in the view.
140 #[must_use]
141 pub fn as_inline_str(&self) -> Option<&str> {
142 if !self.is_inline() {
143 return None;
144 }
145 // `None` rather than a panic for a view that holds a blob, since the payload is whatever
146 // was written and only a column of text can promise that is a string.
147 std::str::from_utf8(&self.payload[..self.len()]).ok()
148 }
149
150 /// The bytes, given the arena the long strings of this column live in.
151 ///
152 /// A short string is in the view and the arena is not read at all, which is why this takes the
153 /// arena rather than requiring one that has the string in it.
154 ///
155 /// This exists because a view and the bytes it points at do not have to be held by the same
156 /// object. [`StringColumn`] owns both, and the string view form of a vector holds the views
157 /// itself and shares the arena with every other cut of the same page, so a cut of a varchar
158 /// column is the views and nothing else. Both of them resolve a row the same way, and this is
159 /// where that one way is written.
160 #[must_use]
161 pub fn bytes_in<'a>(&'a self, arena: &'a [u8]) -> Option<&'a [u8]> {
162 if let Some(inline) = self.inline_bytes() {
163 return Some(inline);
164 }
165 arena.get(self.offset()..self.offset() + self.len())
166 }
167
168 fn offset(&self) -> usize {
169 u64::from_le_bytes([
170 self.payload[4],
171 self.payload[5],
172 self.payload[6],
173 self.payload[7],
174 self.payload[8],
175 self.payload[9],
176 self.payload[10],
177 self.payload[11],
178 ]) as usize
179 }
180
181 /// Whether these two views are definitely different, answered from the view alone.
182 ///
183 /// A `false` here means the payloads have to be compared. A `true` means they do not, which on
184 /// a filter against a selective literal is almost every row.
185 #[must_use]
186 pub fn definitely_differs(&self, other: &Self) -> bool {
187 self.length != other.length || self.prefix() != other.prefix()
188 }
189}
190
191/// A column of strings: the views, and the one arena the long ones live in.
192///
193/// The arena is append only, so an offset recorded in a view stays correct for the life of the
194/// column even though the arena's address does not. That is the property a `Vec<u8>` has and a raw
195/// pointer into it does not, and it is the reason a view holds an offset.
196///
197/// This was a `Vec<Vec<u8>>` of fixed size blocks, which meant reading one long string was two
198/// dependent loads, the outer vector's element to find the block's data pointer and then the bytes.
199/// One arena makes it one, from a base the compiler can keep in a register across a row loop, and it
200/// deletes the case where a string longer than a block needed a block of its own. On server3, over a
201/// chunk of 1024 strings, comparing a column against a literal went from 14.9 nanoseconds a row to
202/// 13.2 at 40 bytes a string and from 14.2 to 12.9 at 120, gathering half the rows from 29.5 to 25.3
203/// and from 36.9 to 29.1, and building the column from 12.0 to 8.9 at 40 bytes.
204///
205/// # The one number that got worse, and what it actually is
206///
207/// Building a column whose payload passes 128 KiB, which at 1024 rows means strings averaging more
208/// than 128 bytes, went the other way: 14.6 nanoseconds a row to 41.0. That is not the copy and it
209/// is not the doubling, it is glibc. An allocation that size comes from `mmap` rather than the heap,
210/// so it is handed back to the kernel when the column is dropped and the next chunk faults every
211/// page of it in again, while sixteen KiB blocks come back off a free list already faulted. Run the
212/// same benchmark with `MALLOC_MMAP_THRESHOLD_` raised and the arena builds that column in 9.6
213/// nanoseconds a row against the blocks' 16.2, so the design is not what is slow there.
214///
215/// The fix is that a chunk's payload should come from a pool the engine owns rather than from
216/// `malloc` per chunk, which is the buffer manager at layer three and is where this belongs.
217/// [`Self::reserve_bytes`] is the part that is available now, and it recovers a quarter of it.
218///
219/// # Equality is about the strings and not about the arena
220///
221/// [`Self::over`] means two columns holding exactly the same strings can hold completely different
222/// arenas, because one of them was built by copying the strings in and the other was built over a
223/// page that already had them somewhere in it with other strings in between. Derived equality would
224/// call those two columns different, and every test in the workspace that compares two vectors would
225/// then be asserting on how a column was built rather than on what is in it. So equality is the
226/// strings, position by position, which is the only definition that survives the seam.
227#[derive(Debug, Clone, Default, Eq)]
228pub struct StringColumn {
229 views: Vec<StringView>,
230 arena: Buffer<u8>,
231}
232
233impl StringColumn {
234 /// How many bytes of memory this column is holding.
235 ///
236 /// The views and the arena. A short string lives inside its view and costs nothing beyond it,
237 /// which is the whole reason the representation exists, so a column of short strings costs
238 /// sixteen bytes a string and a column of long ones costs sixteen plus the bytes themselves.
239 #[must_use]
240 pub fn footprint(&self) -> usize {
241 self.views.capacity() * size_of::<StringView>() + self.arena.footprint()
242 }
243
244 /// An empty column.
245 #[must_use]
246 pub fn new() -> Self {
247 Self::default()
248 }
249
250 /// An empty column with room for `capacity` strings.
251 #[must_use]
252 pub fn with_capacity(capacity: usize) -> Self {
253 Self { views: Vec::with_capacity(capacity), arena: Buffer::new() }
254 }
255
256 /// A column with no strings in it yet, over an arena that already holds bytes.
257 ///
258 /// The seam `spec/engine/03-data-plane.md` section 3.5 asks for. Without it the only way in is
259 /// [`Self::push`], which copies, so a scan reading a Parquet page of strings copies every byte of
260 /// the page into an arena and the query then reads the copy. With it the page is the arena: the
261 /// scan hands the bytes over once, records where each string starts with
262 /// [`Self::push_in_place`], and nothing is copied but the views.
263 ///
264 /// It is useful today, because a reader that already has the page in a `Vec<u8>` can move it in
265 /// rather than copy out of it. It matters at layer three, when the [`Buffer`] is the pinned page
266 /// itself and the move is not even that.
267 ///
268 /// Appending with [`Self::push`] afterwards still works and still appends to the arena. That is
269 /// the case to keep away from once a real page is in here, because writing through a borrowed
270 /// buffer copies it, which is [`Buffer::to_mut`] and is the whole page.
271 #[must_use]
272 pub fn over(arena: Buffer<u8>) -> Self {
273 Self { views: Vec::new(), arena }
274 }
275
276 /// How many strings are in the column.
277 #[must_use]
278 pub fn len(&self) -> usize {
279 self.views.len()
280 }
281
282 /// Whether the column has no strings in it.
283 #[must_use]
284 pub fn is_empty(&self) -> bool {
285 self.views.is_empty()
286 }
287
288 /// The views, for a kernel that wants to compare prefixes without reading any payload.
289 #[must_use]
290 pub fn views(&self) -> &[StringView] {
291 &self.views
292 }
293
294 /// Appends a string and returns its index.
295 pub fn push(&mut self, text: &str) -> usize {
296 let view = if text.len() <= INLINE_LIMIT {
297 StringView::inline(text)
298 } else {
299 let offset = self.arena.len() as u64;
300 self.arena.extend_from_slice(text.as_bytes());
301 StringView::indirect(text, offset)
302 };
303 self.views.push(view);
304 self.views.len() - 1
305 }
306
307 /// Appends the string at `index` of another column, and returns its index here.
308 ///
309 /// This is what a gather and a slice over a string column want, and it is worth having next to
310 /// [`Self::push`] because that one takes a `&str` and the only way to get one out of a column
311 /// is [`Self::get`], which validates UTF-8. Validating there is a waste on this path twice
312 /// over: the bytes were validated on the way into the source column, and a copy cannot make
313 /// valid bytes invalid. Reading a ClickBench partition spent eight percent of its cycles on
314 /// that second validation.
315 ///
316 /// A position past the end of the source appends the empty string, which is what the copy loop
317 /// wants for a row that resolved to nowhere.
318 pub fn push_from(&mut self, source: &Self, index: usize) -> usize {
319 self.push_bytes(source.bytes(index).unwrap_or(b""))
320 }
321
322 /// Appends bytes that are not required to be text, and returns their index.
323 ///
324 /// What a `BLOB` is stored through. The column is the same column either way, because a string
325 /// here is already a length and some bytes and text is the reading rather than the storage, so
326 /// a blob costs nothing extra and shares every kernel that works on views. What it does not
327 /// share is [`Self::get`], which answers `None` for bytes that are not a string, so a caller
328 /// holding blobs reads them with [`Self::bytes`].
329 pub fn push_bytes(&mut self, bytes: &[u8]) -> usize {
330 let offset = self.arena.len() as u64;
331 if bytes.len() > INLINE_LIMIT {
332 self.arena.extend_from_slice(bytes);
333 }
334 self.views.push(StringView::over(bytes, offset));
335 self.views.len() - 1
336 }
337
338 /// Records a string that is already in the arena, and returns its index.
339 ///
340 /// The half of the seam that does the work. [`Self::over`] puts the page in, this says where in
341 /// it a string is, and between them a column of long strings is built without the payload being
342 /// touched at all.
343 ///
344 /// A string short enough to sit inside a view is copied into the view, which is at most twelve
345 /// bytes and is what makes it readable without going near the arena at all. Everything longer
346 /// keeps its bytes where they are and the view records the offset.
347 ///
348 /// # Errors
349 ///
350 /// If the range is not inside the arena, or if the bytes are not valid UTF-8. The validation is
351 /// the one cost this seam does not remove, and it is here rather than skipped because
352 /// [`Self::get`] hands back a `&str` and a column that cannot produce one for a string it claims
353 /// to hold is a wrong answer rather than a slow one. Skipping it is not an option a DuckDB
354 /// compatible reader has either: DuckDB reads a Parquet byte array that is not UTF-8 and throws
355 /// `Invalid Input Error`, so a reader that let it through would disagree about which files are
356 /// readable at all.
357 pub fn push_in_place(&mut self, offset: usize, len: usize) -> Result<usize> {
358 let end = offset.checked_add(len).ok_or_else(|| {
359 Error::internal(format!(
360 "a string at {offset} of {len} bytes runs off the end of memory"
361 ))
362 })?;
363 let bytes = self.arena.get(offset..end).ok_or_else(|| {
364 Error::internal(format!(
365 "a string at {offset} of {len} bytes is not inside a {} byte arena",
366 self.arena.len()
367 ))
368 })?;
369 // The ASCII check first and the general validator only for what it does not settle. They
370 // answer the same question for a string of ASCII, which is what a column of this kind holds
371 // nearly all of the time, and they cost very different amounts: `is_ascii` is a compare per
372 // word with nothing in front of it, and `str::from_utf8` is an out of line call that a scan
373 // profile puts at two hundred instructions a URL, most of it prologue rather than bytes.
374 if !bytes.is_ascii() {
375 std::str::from_utf8(bytes).map_err(|_| {
376 Error::internal(format!("the bytes at {offset} are not valid UTF-8"))
377 })?;
378 }
379 self.views.push(StringView::over(bytes, offset as u64));
380 Ok(self.views.len() - 1)
381 }
382
383 /// The bytes the long strings live in.
384 ///
385 /// For a column over a page this is the page, including whatever of it no view points at. The
386 /// offsets in the views are offsets into exactly this, which is what makes them meaningful to a
387 /// reader that put the page here in the first place.
388 #[must_use]
389 pub fn arena(&self) -> &[u8] {
390 &self.arena
391 }
392
393 /// The views and the arena, taken out of the column rather than borrowed from it.
394 ///
395 /// What the string view form of a vector is built from. It takes `self` because the point of
396 /// that form is that the arena moves into an `Arc` and is never copied again, and a method that
397 /// borrowed would have to clone every byte of the arena to hand one over.
398 #[must_use]
399 pub fn into_parts(self) -> (Vec<StringView>, Buffer<u8>) {
400 (self.views, self.arena)
401 }
402
403 /// The bytes at `index`, or `None` past the end.
404 ///
405 /// This is what a comparison, a hash and an equality check all actually want, and it is worth
406 /// having separately from [`Self::get`] because that one validates UTF-8 and they do not need
407 /// it. Everything in a column arrived through [`Self::push`], which takes a `&str`, so the
408 /// bytes are valid either way and the validation is a scan of the payload that changes no
409 /// answer. On a varchar filter it was measured at most of the per row cost.
410 #[must_use]
411 pub fn bytes(&self, index: usize) -> Option<&[u8]> {
412 self.views.get(index)?.bytes_in(&self.arena)
413 }
414
415 /// The string at `index`, or `None` past the end.
416 #[must_use]
417 pub fn get(&self, index: usize) -> Option<&str> {
418 // Written from a `&str` into a block that is append only, so the bytes are the same bytes.
419 std::str::from_utf8(self.bytes(index)?).ok()
420 }
421
422 /// Every string in order.
423 pub fn iter(&self) -> impl Iterator<Item = &str> {
424 (0..self.len()).filter_map(|index| self.get(index))
425 }
426
427 /// Total bytes of payload held in the arena, which is what the memory accounting wants.
428 ///
429 /// For a column over a page it is the page and not the part of it any view points at, which is
430 /// the right answer for accounting, because the page is what is resident.
431 #[must_use]
432 pub fn heap_bytes(&self) -> usize {
433 self.arena.len()
434 }
435
436 /// Room for `bytes` of payload, taken in one allocation rather than as the strings arrive.
437 ///
438 /// A builder that knows the total byte count, which a scan reading a page and a gather copying a
439 /// column both do, saves the doubling entirely. Nothing is wrong without it, which is why it is
440 /// a hint and not a constructor argument.
441 ///
442 /// Not for a column built by [`Self::over`] on a page it shares, because reserving writes and a
443 /// write through a shared buffer copies the whole page out first. Such a column is not appended
444 /// to anyway: its strings are already in its arena and [`Self::push_in_place`] records where.
445 pub fn reserve_bytes(&mut self, bytes: usize) {
446 self.arena.reserve(bytes);
447 }
448
449 /// Room for `count` more strings, taken in one allocation rather than as they arrive.
450 ///
451 /// The views and not the payload, which is the half [`Self::reserve_bytes`] does not cover and
452 /// is the only half that matters to a column built by [`Self::over`], whose payload is already
453 /// there. A Parquet page of a hundred thousand strings is one and three quarter megabytes of
454 /// views, and growing that from nothing is twenty allocations and a copy of everything written
455 /// so far each time.
456 pub fn reserve_views(&mut self, count: usize) {
457 self.views.reserve(count);
458 }
459}
460
461/// Two columns are equal when they hold the same strings in the same order, whatever their arenas
462/// look like.
463///
464/// See the note on [`StringColumn`]. Comparing the views is not enough on its own either, because
465/// two views of the same long string at different offsets in different arenas are different views,
466/// so the comparison is length, then view by view with the payload read for the ones that are not
467/// inline. The prefix inside the view is what makes that cheap: a pair that differs in the first
468/// four bytes or in the length is settled without either arena being touched.
469impl PartialEq for StringColumn {
470 fn eq(&self, other: &Self) -> bool {
471 self.views.len() == other.views.len()
472 && (0..self.views.len()).all(|index| {
473 let mine = self.views[index];
474 let theirs = other.views[index];
475 if mine.definitely_differs(&theirs) {
476 return false;
477 }
478 if mine.is_inline() {
479 return mine == theirs;
480 }
481 self.bytes(index) == other.bytes(index)
482 })
483 }
484}
485
486impl<'a> Extend<&'a str> for StringColumn {
487 fn extend<T: IntoIterator<Item = &'a str>>(&mut self, iter: T) {
488 for text in iter {
489 self.push(text);
490 }
491 }
492}
493
494impl<'a> FromIterator<&'a str> for StringColumn {
495 fn from_iter<T: IntoIterator<Item = &'a str>>(iter: T) -> Self {
496 let mut column = Self::new();
497 column.extend(iter);
498 column
499 }
500}
501
502#[cfg(test)]
503mod tests {
504 use super::{INLINE_LIMIT, StringColumn, StringView};
505 use crate::buffer::Buffer;
506
507 /// The seam, used the way layer three will use it. The page arrives whole, each string is
508 /// recorded where it already is, and the arena at the end is the page byte for byte, including
509 /// the header this page has in front of the strings and the bytes between them that belong to
510 /// nothing. A column that had copied would have an arena the size of the strings instead.
511 #[test]
512 fn a_column_over_a_page_records_the_strings_without_moving_them() {
513 let page =
514 b"HEADER..a string well past the inline limit!!a second one past the limit".to_vec();
515 let mut column = StringColumn::over(Buffer::from_vec(page.clone()));
516 assert_eq!(column.push_in_place(8, 37).expect("inside the page"), 0);
517 assert_eq!(column.push_in_place(45, 27).expect("inside the page"), 1);
518 assert_eq!(column.get(0), Some("a string well past the inline limit!!"));
519 assert_eq!(column.get(1), Some("a second one past the limit"));
520 assert_eq!(column.arena(), page.as_slice());
521 assert_eq!(column.heap_bytes(), page.len());
522 assert_eq!(column.len(), 2);
523 }
524
525 /// Copying between two columns, which is what a gather and a slice over a string column are.
526 /// A column built over a page has an arena full of bytes no view points at, and the copy has to
527 /// take the strings rather than the arena, so the destination holds the strings and nothing
528 /// else. The last case is the row that resolved to nowhere, which is an empty string here and a
529 /// null in the validity mask beside it.
530 #[test]
531 fn copying_from_another_column_takes_the_strings_and_not_the_page_they_were_in() {
532 let page = b"HEADER..a string well past the inline limit!!short".to_vec();
533 let mut source = StringColumn::over(Buffer::from_vec(page.clone()));
534 source.push_in_place(8, 37).expect("inside the page");
535 source.push_in_place(45, 5).expect("inside the page");
536
537 let mut out = StringColumn::new();
538 assert_eq!(out.push_from(&source, 1), 0);
539 assert_eq!(out.push_from(&source, 0), 1);
540 assert_eq!(out.push_from(&source, 9), 2, "a position that is not there");
541
542 assert_eq!(out.get(0), Some("short"));
543 assert_eq!(out.get(1), Some("a string well past the inline limit!!"));
544 assert_eq!(out.get(2), Some(""));
545 assert!(out.views()[0].is_inline(), "a short string stays in its view");
546 assert!(!out.views()[1].is_inline());
547 assert_eq!(out.views()[1].prefix(), *b"a st", "the prefix is the string's own");
548 assert_eq!(
549 out.arena(),
550 b"a string well past the inline limit!!",
551 "the arena is the long strings and not the page"
552 );
553 }
554
555 /// Bytes that are not text, which is what a `BLOB` holds. Both sides of the inline limit,
556 /// because a short one lives in its view and a long one lives in the arena and the byte that is
557 /// not a character has to survive either way. Reading them back as text is `None` and reading
558 /// them back as bytes is what went in.
559 #[test]
560 fn a_column_holds_bytes_that_are_not_a_string() {
561 let long = b"\xff\xfe and a good deal more than twelve bytes of it";
562 let mut column = StringColumn::new();
563 assert_eq!(column.push_bytes(b"a\xffb"), 0);
564 assert_eq!(column.push_bytes(long), 1);
565 assert_eq!(column.push_bytes(b""), 2);
566
567 assert_eq!(column.bytes(0), Some(b"a\xffb".as_slice()));
568 assert_eq!(column.bytes(1), Some(long.as_slice()));
569 assert_eq!(column.bytes(2), Some(b"".as_slice()));
570 assert_eq!(column.get(0), None, "a stray 0xff is not a character");
571 assert_eq!(column.get(1), None);
572 assert!(column.views()[0].is_inline());
573 assert!(!column.views()[1].is_inline());
574 assert_eq!(column.arena(), long, "only the long one needed the arena");
575 }
576
577 /// A copy of a copy, because the second one reads its bytes out of an arena the first one wrote
578 /// rather than out of a page, and an offset written in one and read in the other is the way
579 /// this goes wrong.
580 #[test]
581 fn copying_from_a_column_that_was_itself_copied_reads_the_same_strings() {
582 let mut first = StringColumn::new();
583 for text in ["a string well past the inline limit", "short", "another long one past it"] {
584 first.push(text);
585 }
586 let mut second = StringColumn::new();
587 for index in (0..first.len()).rev() {
588 second.push_from(&first, index);
589 }
590 let mut third = StringColumn::new();
591 for index in 0..second.len() {
592 third.push_from(&second, index);
593 }
594 assert_eq!(
595 third.iter().collect::<Vec<_>>(),
596 ["another long one past it", "short", "a string well past the inline limit"]
597 );
598 }
599
600 /// A string short enough to live inside its view is copied into the view, which is twelve bytes
601 /// and is what lets it be read without the arena. The page is still the arena and is still
602 /// untouched, so a page of short strings costs the views and nothing else.
603 #[test]
604 fn a_short_string_in_a_page_is_copied_into_its_view() {
605 let mut column = StringColumn::over(Buffer::from_vec(b"one.two".to_vec()));
606 column.push_in_place(0, 3).expect("inside the page");
607 column.push_in_place(4, 3).expect("inside the page");
608 assert!(column.views()[0].is_inline());
609 assert_eq!(column.get(0), Some("one"));
610 assert_eq!(column.get(1), Some("two"));
611 assert_eq!(column.arena(), b"one.two");
612 }
613
614 /// The two ways a caller can be wrong about a page, both of them answered before anything is
615 /// recorded rather than at the point somebody reads the string back and finds nothing there.
616 #[test]
617 fn a_range_outside_the_page_or_bytes_that_are_not_text_are_refused() {
618 let mut column = StringColumn::over(Buffer::from_vec(vec![0xff, 0xfe, 0xfd]));
619 assert!(column.push_in_place(2, 4).is_err());
620 assert!(column.push_in_place(usize::MAX, 1).is_err());
621 assert!(column.push_in_place(0, 3).is_err());
622 assert_eq!(column.len(), 0);
623
624 // The ASCII check in front of the validator answers whole words at a time, so the bad byte
625 // is put past the first word and past the inline limit as well, where a check that only
626 // looked at the head or only at the payload in the view would miss it.
627 let mut page = b"aaaaaaaaaaaaaaaaaaaaaaaaaaaaaaaa".to_vec();
628 page.push(0x80);
629 let len = page.len();
630 let mut column = StringColumn::over(Buffer::from_vec(page));
631 assert!(column.push_in_place(0, len).is_err());
632 assert!(column.push_in_place(0, len - 1).is_ok());
633
634 // Text that is not ASCII and is valid goes through, which is the other half of the check:
635 // the fast path decides nothing on its own, it only decides who has to look.
636 let page = "søk på nettet".as_bytes().to_vec();
637 let len = page.len();
638 let mut column = StringColumn::over(Buffer::from_vec(page));
639 column.push_in_place(0, len).expect("valid text that is not ASCII");
640 assert_eq!(column.get(0), Some("søk på nettet"));
641 }
642
643 /// What the seam does to equality. The same two strings, one column built by copying them in
644 /// and one built over a page that has them in the other order with a gap in the middle, and the
645 /// two arenas have nothing in common. Equality is the strings, so the columns are equal.
646 #[test]
647 fn the_same_strings_over_different_arenas_are_the_same_column() {
648 let copied: StringColumn =
649 ["the first string past the limit", "the second string past the limit"]
650 .into_iter()
651 .collect();
652 let page =
653 b"gap!the second string past the limit....the first string past the limit".to_vec();
654 let mut over = StringColumn::over(Buffer::from_vec(page));
655 over.push_in_place(40, 31).expect("inside the page");
656 over.push_in_place(4, 32).expect("inside the page");
657 assert_ne!(copied.arena(), over.arena());
658 assert_eq!(copied, over);
659
660 let mut different: StringColumn = copied.clone();
661 different.push("a third one past the inline limit");
662 assert_ne!(copied, different);
663 }
664
665 #[test]
666 fn a_view_is_sixteen_bytes_and_stays_sixteen_bytes() {
667 // The number the whole design is built around. A vector of 1024 strings is 16 KiB of
668 // views, which is the budget spec/07-execution.md section 7.1 spends on purpose.
669 assert_eq!(size_of::<StringView>(), 16);
670 assert_eq!(align_of::<StringView>(), 4);
671 }
672
673 #[test]
674 fn twelve_bytes_is_inline_and_thirteen_is_not() {
675 let mut column = StringColumn::new();
676 column.push("123456789012");
677 column.push("1234567890123");
678 assert!(column.views()[0].is_inline());
679 assert!(!column.views()[1].is_inline());
680 assert_eq!(column.get(0), Some("123456789012"));
681 assert_eq!(column.get(1), Some("1234567890123"));
682 assert_eq!(INLINE_LIMIT, 12);
683 }
684
685 #[test]
686 fn a_prefix_answers_the_comparison_without_reading_the_payload() {
687 let mut column = StringColumn::new();
688 column.push("https://example.com/a");
689 column.push("https://example.com/b");
690 column.push("mailto:someone@example.com");
691 let views = column.views();
692 // Same prefix, same length: the payloads have to be read. This is the case the prefix
693 // cannot help with, and on a URL column it is the common case, which is why the
694 // dictionary work at M3 matters more than this does.
695 assert!(!views[0].definitely_differs(&views[1]));
696 // Different prefix: answered from the view.
697 assert!(views[0].definitely_differs(&views[2]));
698 }
699
700 /// A string of any size goes in whole, with the short ones on either side of it still reading
701 /// back. The old layout had a size at which a string stopped fitting a block and got one of its
702 /// own, and one arena has no such size, so the case worth keeping is the one that used to be
703 /// special rather than the branch that used to handle it.
704 #[test]
705 fn a_string_far_larger_than_any_block_would_have_been_goes_in_whole() {
706 let long = "x".repeat(40 * 1024);
707 let mut column = StringColumn::new();
708 column.push("short");
709 column.push(&long);
710 column.push("also short");
711 assert_eq!(column.get(1), Some(long.as_str()));
712 assert_eq!(column.get(2), Some("also short"));
713 assert_eq!(column.heap_bytes(), long.len());
714 }
715
716 /// The property the whole arena rests on. Two thousand strings is tens of reallocations, and
717 /// every one of them moves the bytes to a new address while the offsets recorded in the views
718 /// before it stay exactly as they were. A view holding a pointer would be reading freed memory
719 /// by the end of this test.
720 #[test]
721 fn the_arena_moving_underneath_does_not_move_what_the_views_point_at() {
722 let mut column = StringColumn::new();
723 let strings: Vec<String> =
724 (0..2000).map(|i| format!("value number {i} padded out")).collect();
725 for text in &strings {
726 column.push(text);
727 }
728 for (index, text) in strings.iter().enumerate() {
729 assert_eq!(column.get(index), Some(text.as_str()), "at {index}");
730 }
731 assert_eq!(column.len(), 2000);
732 assert_eq!(column.iter().count(), 2000);
733 }
734
735 #[test]
736 fn reserving_bytes_changes_nothing_but_where_the_allocation_happens() {
737 let mut column = StringColumn::with_capacity(3);
738 column.reserve_bytes(128);
739 for text in ["a string past the limit", "another one past it", "short"] {
740 column.push(text);
741 }
742 assert_eq!(column.get(0), Some("a string past the limit"));
743 assert_eq!(column.get(1), Some("another one past it"));
744 assert_eq!(column.get(2), Some("short"));
745 assert_eq!(column.heap_bytes(), 42);
746 }
747
748 #[test]
749 fn the_empty_string_is_inline_and_reads_back_empty() {
750 let mut column = StringColumn::new();
751 column.push("");
752 assert_eq!(column.get(0), Some(""));
753 assert!(column.views()[0].is_empty());
754 assert_eq!(column.heap_bytes(), 0);
755 }
756
757 #[test]
758 fn multibyte_text_survives_the_inline_boundary() {
759 // The boundary is bytes and not characters, so a four byte emoji is what decides whether
760 // a three character string is inline.
761 let mut column = StringColumn::new();
762 column.push("héllo wörld");
763 column.push("🦀🦀🦀🦀");
764 assert_eq!(column.get(0), Some("héllo wörld"));
765 assert_eq!(column.get(1), Some("🦀🦀🦀🦀"));
766 assert!(!column.views()[1].is_inline());
767 }
768
769 #[test]
770 fn reading_past_the_end_is_none_rather_than_a_panic() {
771 let column: StringColumn = ["a", "b"].into_iter().collect();
772 assert_eq!(column.get(2), None);
773 assert_eq!(column.len(), 2);
774 }
775
776 /// The bytes and the string have to be the same string on both sides of the inline boundary
777 /// and on multibyte text, because the comparison kernels read the bytes and everything else
778 /// reads the string, and a disagreement between them would be a filter that matched a row the
779 /// projection then printed differently.
780 #[test]
781 fn the_bytes_and_the_string_are_the_same_string() {
782 let long = "x".repeat(9000);
783 let words = ["", "a", "twelve bytes", "thirteen bytes", "π is two bytes", &long];
784 let column: StringColumn = words.into_iter().collect();
785 for (index, text) in words.iter().enumerate() {
786 assert_eq!(column.bytes(index), Some(text.as_bytes()), "at {index}");
787 assert_eq!(column.get(index), Some(*text), "at {index}");
788 }
789 assert_eq!(column.bytes(words.len()), None);
790 }
791}