kevy_bytes/lib.rs
1//! `SmallBytes` — a 24-byte small-byte-string with inline-SSO optimization.
2//!
3//! ```
4//! use kevy_bytes::SmallBytes;
5//!
6//! // Up to 22 bytes live in the value itself — no allocation, and the
7//! // whole string fits in one 24-byte slot.
8//! let short = SmallBytes::from_slice(b"user:1");
9//! assert_eq!(short.as_slice(), b"user:1");
10//! assert_eq!(short.heap_bytes(), 0);
11//!
12//! // Past the inline capacity it spills to the heap, and says so.
13//! let long = SmallBytes::from_slice(&[b'x'; 64]);
14//! assert_eq!(long.len(), 64);
15//! assert!(long.heap_bytes() >= 64);
16//! ```
17//!
18//! Layout (**little-endian only**): a union of two 24-byte variants, distinguished
19//! by the byte at offset 23:
20//!
21//! - **Inline**: `[u8; 23]` data, then `u8` tag holding the inline length
22//! (0..=22). The whole string lives in the value, no allocation.
23//! - **Heap (64-bit)**: `NonNull<u8>` ptr (8) + `usize` len (8) + `usize`
24//! cap_and_tag (8). The high byte of `cap_and_tag` overlaps byte 23 of
25//! the union and is fixed at `0xFF` (> 22) as the heap discriminator. The
26//! low 56 bits hold the heap capacity (up to 72 PB).
27//! - **Heap (32-bit)**: `NonNull<u8>` ptr (4) + `u32` len (4) + `u32`
28//! cap (4) + 11-byte pad, then `u8` tag fixed at `0xFF`. Same 24-byte
29//! total, same discriminator byte at offset 23 — pointer / len fields
30//! are 32-bit-native so a `wasm32-unknown-unknown` build picks up the
31//! right size without shifting a `usize` past its bit width.
32//!
33//! The 64-bit layout is the one the kevy server runs on, and is locked
34//! against perf-affecting changes (cfg-gated 32-bit alternative lives
35//! alongside it without touching any 64-bit code path).
36//!
37//! This lets us store every byte string up to 22 bytes — covering the vast
38//! majority of Redis-style values — without any pointer-chase, while keeping
39//! `size_of::<SmallBytes>() == 24` (same as `Vec<u8>`). Used by `kevy-store`
40//! to make `Value::Str(SmallBytes)` fit alongside the boxed collection
41//! variants and keep `Entry` at 48 B.
42
43#![warn(missing_docs)]
44#![cfg_attr(not(feature = "std"), no_std)]
45
46extern crate alloc;
47
48#[cfg(target_endian = "big")]
49compile_error!("kevy-bytes requires little-endian: heap-tag byte overlaps inline length byte");
50
51mod eq;
52mod find_crlf;
53mod traits;
54
55mod heap;
56pub(crate) use heap::{Heap, INLINE_CAP, INLINE_LEN_MAX, Inline};
57
58pub use find_crlf::find_crlf;
59
60use alloc::alloc::{Layout, alloc, dealloc, handle_alloc_error};
61use alloc::vec::Vec;
62use core::mem::{self, ManuallyDrop};
63use core::ptr::NonNull;
64use core::slice;
65
66/// A 24-byte owned byte string with inline small-string optimization.
67///
68/// Strings of up to 22 bytes live entirely inside the value (no allocation,
69/// no pointer chase); larger strings spill to a heap buffer. The
70/// discriminator is a single byte at offset 23 (the tag, which doubles as
71/// the inline length 0..=22 OR equals 0xFF when the heap variant is active).
72///
73/// See the crate root for layout details.
74#[repr(C)]
75/// # Examples
76///
77/// Short values live inline; longer ones move to the heap. The API does not
78/// change, but `heap_bytes` reports which happened, which is what the
79/// keyspace's memory accounting reads.
80///
81/// ```
82/// use kevy_bytes::SmallBytes;
83/// let short = SmallBytes::from_slice(b"hello");
84/// assert_eq!(short.as_slice(), b"hello");
85/// assert_eq!(short.len(), 5);
86/// assert_eq!(short.heap_bytes(), 0, "a short value allocates nothing");
87///
88/// let long = SmallBytes::from_slice(&[b'x'; 100]);
89/// assert_eq!(long.len(), 100);
90/// assert!(long.heap_bytes() >= 100, "a long value is on the heap");
91/// ```
92///
93/// ```
94/// use kevy_bytes::SmallBytes;
95/// assert!(SmallBytes::from_slice(b"").is_empty());
96/// ```
97pub union SmallBytes {
98 // pub(crate) so `eq.rs` can branch on the variant directly; the union
99 // itself stays private to this crate's own modules.
100 pub(crate) inline: Inline,
101 pub(crate) heap: Heap,
102}
103
104const _: () = {
105 assert!(mem::size_of::<SmallBytes>() == 24);
106 assert!(mem::align_of::<SmallBytes>() == mem::align_of::<usize>());
107};
108
109unsafe impl Send for SmallBytes {}
110unsafe impl Sync for SmallBytes {}
111
112impl SmallBytes {
113 /// Empty inline `SmallBytes` (zero allocation).
114 ///
115 /// # Examples
116 ///
117 /// `const`, so it can seed a static or an array without a run-time
118 /// initialiser:
119 ///
120 /// ```
121 /// use kevy_bytes::SmallBytes;
122 /// static EMPTY: SmallBytes = SmallBytes::new();
123 /// assert!(EMPTY.is_empty());
124 /// assert_eq!(EMPTY.heap_bytes(), 0);
125 /// ```
126 pub const fn new() -> Self {
127 Self { inline: Inline { data: [0; INLINE_CAP], tag: 0 } }
128 }
129
130 /// Construct from a byte slice — inline if `bytes.len() <= 22`, else heap.
131 ///
132 /// # Examples
133 ///
134 /// Twenty-two is the boundary, and it is exact:
135 ///
136 /// ```
137 /// use kevy_bytes::SmallBytes;
138 /// assert_eq!(SmallBytes::from_slice(&[b'x'; 22]).heap_bytes(), 0);
139 /// assert_eq!(SmallBytes::from_slice(&[b'x'; 23]).heap_bytes(), 23);
140 /// ```
141 pub fn from_slice(bytes: &[u8]) -> Self {
142 if bytes.len() <= INLINE_LEN_MAX as usize {
143 let mut data = [0u8; INLINE_CAP];
144 // SAFETY: bytes.len() ≤ 22 ≤ data.len(); non-overlapping regions.
145 unsafe {
146 core::ptr::copy_nonoverlapping(bytes.as_ptr(), data.as_mut_ptr(), bytes.len());
147 }
148 Self { inline: Inline { data, tag: bytes.len() as u8 } }
149 } else {
150 Self::alloc_heap(bytes)
151 }
152 }
153
154 /// Take ownership of a `Vec<u8>` — inline if `vec.len() <= 22`, else **reuse
155 /// the vec's allocation** (no copy on the heap path).
156 ///
157 /// # Examples
158 ///
159 /// The heap path keeps the vec's own buffer, so a value that arrived as
160 /// a `Vec` is stored without a second copy:
161 ///
162 /// ```
163 /// use kevy_bytes::SmallBytes;
164 /// let v = vec![b'z'; 64];
165 /// let addr = v.as_ptr();
166 /// let b = SmallBytes::from_vec(v);
167 /// assert_eq!(b.as_slice().as_ptr(), addr, "same allocation, not a copy");
168 /// ```
169 ///
170 /// A short vec goes inline instead, and its allocation is released:
171 ///
172 /// ```
173 /// use kevy_bytes::SmallBytes;
174 /// assert_eq!(SmallBytes::from_vec(vec![b'a'; 4]).heap_bytes(), 0);
175 /// ```
176 pub fn from_vec(vec: Vec<u8>) -> Self {
177 if vec.len() <= INLINE_LEN_MAX as usize {
178 Self::from_slice(&vec)
179 } else {
180 let mut v = ManuallyDrop::new(vec);
181 // SAFETY: len > 22 ⇒ cap > 0 ⇒ Vec has an allocation, so the pointer
182 // is non-null. Vec guarantees a non-null pointer for any allocated
183 // Vec (and a dangling-but-non-null for empty, which we don't hit here).
184 let ptr = unsafe { NonNull::new_unchecked(v.as_mut_ptr()) };
185 let len = v.len();
186 let cap = v.capacity();
187 Self { heap: Heap::new(ptr, len, cap) }
188 }
189 }
190
191 #[inline]
192 fn alloc_heap(bytes: &[u8]) -> Self {
193 let len = bytes.len();
194 // `len > 22` (caller has already taken the heap branch) and `len` is
195 // a slice length ⇒ ≤ `isize::MAX` ⇒ well below the `usize::MAX -
196 // (align - 1)` bound `from_size_align_unchecked` needs. u8's align is 1.
197 // SAFETY: see above.
198 let layout = unsafe { Layout::from_size_align_unchecked(len, 1) };
199 // SAFETY: layout.size() > 0 (caller's heap branch guarantees len > 22).
200 let raw = unsafe { alloc(layout) };
201 let Some(ptr) = NonNull::new(raw) else { handle_alloc_error(layout) };
202 // SAFETY: alloc returned a writable region of `len` bytes; source is a
203 // disjoint slice.
204 unsafe {
205 core::ptr::copy_nonoverlapping(bytes.as_ptr(), ptr.as_ptr(), len);
206 }
207 Self { heap: Heap::new(ptr, len, len) }
208 }
209
210 /// True when stored inline; the byte at index 23 is the deciding tag in
211 /// either rep, so the check is a single load + compare.
212 #[inline]
213 fn is_inline(&self) -> bool {
214 // SAFETY: byte 23 is always initialised — either as Inline::tag (0..=22)
215 // or as the high byte of Heap::cap_and_tag (= 0xFF). Reading it through
216 // the Inline view is valid in either case (the union is `repr(C)`).
217 unsafe { self.inline.tag <= INLINE_LEN_MAX }
218 }
219
220 /// Number of bytes stored.
221 ///
222 /// # Examples
223 ///
224 /// The same answer either side of the inline boundary — which is the
225 /// point of the type: where the bytes live is not the caller's problem.
226 ///
227 /// ```
228 /// use kevy_bytes::SmallBytes;
229 /// assert_eq!(SmallBytes::from_slice(&[0u8; 22]).len(), 22);
230 /// assert_eq!(SmallBytes::from_slice(&[0u8; 23]).len(), 23);
231 /// ```
232 #[inline]
233 pub fn len(&self) -> usize {
234 if self.is_inline() {
235 // SAFETY: just verified `inline.tag` ≤ 22.
236 unsafe { self.inline.tag as usize }
237 } else {
238 // SAFETY: tag > 22 ⇒ heap variant is active.
239 unsafe { self.heap.length() }
240 }
241 }
242
243 /// Whether `len() == 0`.
244 ///
245 /// # Examples
246 ///
247 /// ```
248 /// use kevy_bytes::SmallBytes;
249 /// assert!(SmallBytes::from_slice(b"").is_empty());
250 /// assert!(!SmallBytes::from_slice(b"\0").is_empty(), "a NUL byte is a byte");
251 /// ```
252 #[inline]
253 pub fn is_empty(&self) -> bool {
254 self.len() == 0
255 }
256
257 /// Bytes this value holds on the heap (0 when inline). Lets memory-accounting
258 /// callers (e.g. `maxmemory` enforcement) charge only the off-stack footprint
259 /// without re-deriving the inline-length threshold.
260 ///
261 /// # Examples
262 ///
263 /// This is what `maxmemory` charges, so an inline value must cost zero
264 /// — it is already inside the entry the keyspace has counted:
265 ///
266 /// ```
267 /// use kevy_bytes::SmallBytes;
268 /// assert_eq!(SmallBytes::from_slice(b"user:1").heap_bytes(), 0);
269 /// assert_eq!(SmallBytes::from_slice(&[b'x'; 1000]).heap_bytes(), 1000);
270 /// ```
271 #[inline]
272 pub fn heap_bytes(&self) -> usize {
273 if self.is_inline() { 0 } else { self.len() }
274 }
275
276 /// Borrow the bytes (no allocation; same for inline and heap variants).
277 ///
278 /// # Examples
279 ///
280 /// ```
281 /// use kevy_bytes::SmallBytes;
282 /// let b = SmallBytes::from_slice(b"GET");
283 /// assert_eq!(b.as_slice(), b"GET");
284 /// assert_eq!(SmallBytes::new().as_slice(), b"");
285 /// ```
286 #[inline]
287 pub fn as_slice(&self) -> &[u8] {
288 if self.is_inline() {
289 // SAFETY: first `tag` bytes of `data` are valid (zero-init at construction).
290 unsafe { slice::from_raw_parts(self.inline.data.as_ptr(), self.inline.tag as usize) }
291 } else {
292 // SAFETY: heap variant active; ptr/len originate from a Vec or our own alloc.
293 unsafe { slice::from_raw_parts(self.heap.ptr.as_ptr(), self.heap.length()) }
294 }
295 }
296
297 /// Copy into a fresh `Vec<u8>` (clone semantics).
298 ///
299 /// # Examples
300 ///
301 /// ```
302 /// use kevy_bytes::SmallBytes;
303 /// let b = SmallBytes::from_slice(b"copy me");
304 /// assert_eq!(b.to_vec(), b"copy me");
305 /// assert_eq!(b.as_slice(), b"copy me", "the original still holds them");
306 /// ```
307 pub fn to_vec(&self) -> Vec<u8> {
308 self.as_slice().to_vec()
309 }
310
311 /// Consume self and return an owned `Vec<u8>`. The heap path reuses the
312 /// existing allocation; the inline path copies into a new vec.
313 ///
314 /// # Examples
315 ///
316 /// A heap value hands its buffer straight back, so a round trip through
317 /// `SmallBytes` costs no allocation at either end:
318 ///
319 /// ```
320 /// use kevy_bytes::SmallBytes;
321 /// let v = vec![b'q'; 128];
322 /// let addr = v.as_ptr();
323 /// assert_eq!(SmallBytes::from_vec(v).into_vec().as_ptr(), addr);
324 /// ```
325 ///
326 /// ```
327 /// use kevy_bytes::SmallBytes;
328 /// assert_eq!(SmallBytes::from_slice(b"short").into_vec(), b"short");
329 /// ```
330 pub fn into_vec(self) -> Vec<u8> {
331 if self.is_inline() {
332 self.as_slice().to_vec()
333 // self drops as inline — nothing to free.
334 } else {
335 // SAFETY: heap variant active.
336 let (ptr, len, cap) =
337 unsafe { (self.heap.ptr.as_ptr(), self.heap.length(), self.heap.capacity()) };
338 // Skip our Drop to avoid double-free; Vec::from_raw_parts now owns it.
339 let _do_not_drop = ManuallyDrop::new(self);
340 // SAFETY: ptr/len/cap originated from either a Vec<u8> (from_vec)
341 // or our own `alloc(Layout::array::<u8>(cap))` (alloc_heap, where
342 // cap == len) — both meet Vec::from_raw_parts' requirements.
343 unsafe { Vec::from_raw_parts(ptr, len, cap) }
344 }
345 }
346}
347
348impl Default for SmallBytes {
349 fn default() -> Self {
350 Self::new()
351 }
352}
353
354impl Drop for SmallBytes {
355 fn drop(&mut self) {
356 if self.is_inline() {
357 return;
358 }
359 // SAFETY: heap variant active; layout matches the one used at alloc
360 // time (either from Vec — Vec uses `Layout::array::<u8>(cap)` — or our
361 // own alloc_heap which used the same layout).
362 unsafe {
363 let cap = self.heap.capacity();
364 let layout = Layout::array::<u8>(cap).expect("kevy-bytes: drop layout");
365 dealloc(self.heap.ptr.as_ptr(), layout);
366 }
367 }
368}
369
370impl Clone for SmallBytes {
371 /// Specialised clone that bypasses `as_slice → from_slice → alloc_heap`'s
372 /// two layered length checks. Inline variant is a bitwise union copy (no
373 /// branch through the slice path); heap variant goes straight to a single
374 /// `alloc + memcpy` keyed on the already-known heap length.
375 #[inline]
376 fn clone(&self) -> Self {
377 if self.is_inline() {
378 // SAFETY: `Inline` is `repr(C)` + `Copy`; bitwise copy is sound
379 // when the source is currently in the inline variant (the tag
380 // byte ≤ 22 is part of the bit pattern we're copying, so the
381 // discriminator stays correct).
382 unsafe { Self { inline: self.inline } }
383 } else {
384 // SAFETY: tag > 22 ⇒ heap variant is active.
385 unsafe { self.clone_heap() }
386 }
387 }
388}
389
390impl SmallBytes {
391 /// Heap-fast-path clone. Caller must have established that `self` is in
392 /// the heap variant.
393 ///
394 /// # Safety
395 /// `self.heap` must be the active union variant (i.e. `is_inline()` is
396 /// false). `self.heap.ptr` must point to `self.heap.len` valid bytes.
397 #[inline]
398 unsafe fn clone_heap(&self) -> Self {
399 // SAFETY (covers the three `self.heap.*` reads): caller asserts the
400 // heap variant is active.
401 let (src_ptr, len) = unsafe { (self.heap.ptr.as_ptr(), self.heap.length()) };
402 // `len > 22 ⇒ len > 0`, and the high bits are guarded by `CAP_MASK`
403 // never letting cap exceed 2^56, well below `isize::MAX`, so the
404 // unchecked layout is sound. Allocator alignment for `u8` is 1.
405 let layout = unsafe { Layout::from_size_align_unchecked(len, 1) };
406 // SAFETY: layout.size() > 0.
407 let raw = unsafe { alloc(layout) };
408 let Some(ptr) = NonNull::new(raw) else { handle_alloc_error(layout) };
409 // SAFETY: src has `len` valid bytes; dst is freshly-allocated for `len`
410 // bytes; regions are disjoint.
411 unsafe { core::ptr::copy_nonoverlapping(src_ptr, ptr.as_ptr(), len) };
412 Self { heap: Heap::new(ptr, len, len) }
413 }
414}
415
416#[cfg(test)]
417mod tests;