| author | |
| committer | |
| log | 90ace40e07de7bca2558da72e6d67cf660f86192 |
| tree | b3cc13576ad7d9fc94a80776aa4008316c0ff746 |
| parent | 1b2154dfe2f9b5030f487e7c4be8c706ce6e59b5 |
| parent | 575fbd5e3592cff70cbfc5153884d919e6bed89f |
| signature |
New hashmap implementation17 files changed, 2017 insertions(+), 767 deletions(-)
lib/std/array_hash_map.zig created+1087| ... | ... | @@ -0,0 +1,1087 @@ |
| 1 | // SPDX-License-Identifier: MIT | |
| 2 | // Copyright (c) 2015-2020 Zig Contributors | |
| 3 | // This file is part of [zig](https://ziglang.org/), which is MIT licensed. | |
| 4 | // The MIT license requires this copyright notice to be included in all copies | |
| 5 | // and substantial portions of the software. | |
| 6 | const std = @import("std.zig"); | |
| 7 | const debug = std.debug; | |
| 8 | const assert = debug.assert; | |
| 9 | const testing = std.testing; | |
| 10 | const math = std.math; | |
| 11 | const mem = std.mem; | |
| 12 | const meta = std.meta; | |
| 13 | const trait = meta.trait; | |
| 14 | const autoHash = std.hash.autoHash; | |
| 15 | const Wyhash = std.hash.Wyhash; | |
| 16 | const Allocator = mem.Allocator; | |
| 17 | const builtin = @import("builtin"); | |
| 18 | const hash_map = @This(); | |
| 19 | ||
| 20 | pub fn AutoArrayHashMap(comptime K: type, comptime V: type) type { | |
| 21 | return ArrayHashMap(K, V, getAutoHashFn(K), getAutoEqlFn(K), autoEqlIsCheap(K)); | |
| 22 | } | |
| 23 | ||
| 24 | pub fn AutoArrayHashMapUnmanaged(comptime K: type, comptime V: type) type { | |
| 25 | return ArrayHashMapUnmanaged(K, V, getAutoHashFn(K), getAutoEqlFn(K), autoEqlIsCheap(K)); | |
| 26 | } | |
| 27 | ||
| 28 | /// Builtin hashmap for strings as keys. | |
| 29 | pub fn StringArrayHashMap(comptime V: type) type { | |
| 30 | return ArrayHashMap([]const u8, V, hashString, eqlString, true); | |
| 31 | } | |
| 32 | ||
| 33 | pub fn StringArrayHashMapUnmanaged(comptime V: type) type { | |
| 34 | return ArrayHashMapUnmanaged([]const u8, V, hashString, eqlString, true); | |
| 35 | } | |
| 36 | ||
| 37 | pub fn eqlString(a: []const u8, b: []const u8) bool { | |
| 38 | return mem.eql(u8, a, b); | |
| 39 | } | |
| 40 | ||
| 41 | pub fn hashString(s: []const u8) u32 { | |
| 42 | return @truncate(u32, std.hash.Wyhash.hash(0, s)); | |
| 43 | } | |
| 44 | ||
| 45 | /// Insertion order is preserved. | |
| 46 | /// Deletions perform a "swap removal" on the entries list. | |
| 47 | /// Modifying the hash map while iterating is allowed, however one must understand | |
| 48 | /// the (well defined) behavior when mixing insertions and deletions with iteration. | |
| 49 | /// For a hash map that can be initialized directly that does not store an Allocator | |
| 50 | /// field, see `ArrayHashMapUnmanaged`. | |
| 51 | /// When `store_hash` is `false`, this data structure is biased towards cheap `eql` | |
| 52 | /// functions. It does not store each item's hash in the table. Setting `store_hash` | |
| 53 | /// to `true` incurs slightly more memory cost by storing each key's hash in the table | |
| 54 | /// but only has to call `eql` for hash collisions. | |
| 55 | /// If typical operations (except iteration over entries) need to be faster, prefer | |
| 56 | /// the alternative `std.HashMap`. | |
| 57 | pub fn ArrayHashMap( | |
| 58 | comptime K: type, | |
| 59 | comptime V: type, | |
| 60 | comptime hash: fn (key: K) u32, | |
| 61 | comptime eql: fn (a: K, b: K) bool, | |
| 62 | comptime store_hash: bool, | |
| 63 | ) type { | |
| 64 | return struct { | |
| 65 | unmanaged: Unmanaged, | |
| 66 | allocator: *Allocator, | |
| 67 | ||
| 68 | pub const Unmanaged = ArrayHashMapUnmanaged(K, V, hash, eql, store_hash); | |
| 69 | pub const Entry = Unmanaged.Entry; | |
| 70 | pub const Hash = Unmanaged.Hash; | |
| 71 | pub const GetOrPutResult = Unmanaged.GetOrPutResult; | |
| 72 | ||
| 73 | /// Deprecated. Iterate using `items`. | |
| 74 | pub const Iterator = struct { | |
| 75 | hm: *const Self, | |
| 76 | /// Iterator through the entry array. | |
| 77 | index: usize, | |
| 78 | ||
| 79 | pub fn next(it: *Iterator) ?*Entry { | |
| 80 | if (it.index >= it.hm.unmanaged.entries.items.len) return null; | |
| 81 | const result = &it.hm.unmanaged.entries.items[it.index]; | |
| 82 | it.index += 1; | |
| 83 | return result; | |
| 84 | } | |
| 85 | ||
| 86 | /// Reset the iterator to the initial index | |
| 87 | pub fn reset(it: *Iterator) void { | |
| 88 | it.index = 0; | |
| 89 | } | |
| 90 | }; | |
| 91 | ||
| 92 | const Self = @This(); | |
| 93 | const Index = Unmanaged.Index; | |
| 94 | ||
| 95 | pub fn init(allocator: *Allocator) Self { | |
| 96 | return .{ | |
| 97 | .unmanaged = .{}, | |
| 98 | .allocator = allocator, | |
| 99 | }; | |
| 100 | } | |
| 101 | ||
| 102 | pub fn deinit(self: *Self) void { | |
| 103 | self.unmanaged.deinit(self.allocator); | |
| 104 | self.* = undefined; | |
| 105 | } | |
| 106 | ||
| 107 | pub fn clearRetainingCapacity(self: *Self) void { | |
| 108 | return self.unmanaged.clearRetainingCapacity(); | |
| 109 | } | |
| 110 | ||
| 111 | pub fn clearAndFree(self: *Self) void { | |
| 112 | return self.unmanaged.clearAndFree(self.allocator); | |
| 113 | } | |
| 114 | ||
| 115 | /// Deprecated. Use `items().len`. | |
| 116 | pub fn count(self: Self) usize { | |
| 117 | return self.items().len; | |
| 118 | } | |
| 119 | ||
| 120 | /// Deprecated. Iterate using `items`. | |
| 121 | pub fn iterator(self: *const Self) Iterator { | |
| 122 | return Iterator{ | |
| 123 | .hm = self, | |
| 124 | .index = 0, | |
| 125 | }; | |
| 126 | } | |
| 127 | ||
| 128 | /// If key exists this function cannot fail. | |
| 129 | /// If there is an existing item with `key`, then the result | |
| 130 | /// `Entry` pointer points to it, and found_existing is true. | |
| 131 | /// Otherwise, puts a new item with undefined value, and | |
| 132 | /// the `Entry` pointer points to it. Caller should then initialize | |
| 133 | /// the value (but not the key). | |
| 134 | pub fn getOrPut(self: *Self, key: K) !GetOrPutResult { | |
| 135 | return self.unmanaged.getOrPut(self.allocator, key); | |
| 136 | } | |
| 137 | ||
| 138 | /// If there is an existing item with `key`, then the result | |
| 139 | /// `Entry` pointer points to it, and found_existing is true. | |
| 140 | /// Otherwise, puts a new item with undefined value, and | |
| 141 | /// the `Entry` pointer points to it. Caller should then initialize | |
| 142 | /// the value (but not the key). | |
| 143 | /// If a new entry needs to be stored, this function asserts there | |
| 144 | /// is enough capacity to store it. | |
| 145 | pub fn getOrPutAssumeCapacity(self: *Self, key: K) GetOrPutResult { | |
| 146 | return self.unmanaged.getOrPutAssumeCapacity(key); | |
| 147 | } | |
| 148 | ||
| 149 | pub fn getOrPutValue(self: *Self, key: K, value: V) !*Entry { | |
| 150 | return self.unmanaged.getOrPutValue(self.allocator, key, value); | |
| 151 | } | |
| 152 | ||
| 153 | /// Increases capacity, guaranteeing that insertions up until the | |
| 154 | /// `expected_count` will not cause an allocation, and therefore cannot fail. | |
| 155 | pub fn ensureCapacity(self: *Self, new_capacity: usize) !void { | |
| 156 | return self.unmanaged.ensureCapacity(self.allocator, new_capacity); | |
| 157 | } | |
| 158 | ||
| 159 | /// Returns the number of total elements which may be present before it is | |
| 160 | /// no longer guaranteed that no allocations will be performed. | |
| 161 | pub fn capacity(self: *Self) usize { | |
| 162 | return self.unmanaged.capacity(); | |
| 163 | } | |
| 164 | ||
| 165 | /// Clobbers any existing data. To detect if a put would clobber | |
| 166 | /// existing data, see `getOrPut`. | |
| 167 | pub fn put(self: *Self, key: K, value: V) !void { | |
| 168 | return self.unmanaged.put(self.allocator, key, value); | |
| 169 | } | |
| 170 | ||
| 171 | /// Inserts a key-value pair into the hash map, asserting that no previous | |
| 172 | /// entry with the same key is already present | |
| 173 | pub fn putNoClobber(self: *Self, key: K, value: V) !void { | |
| 174 | return self.unmanaged.putNoClobber(self.allocator, key, value); | |
| 175 | } | |
| 176 | ||
| 177 | /// Asserts there is enough capacity to store the new key-value pair. | |
| 178 | /// Clobbers any existing data. To detect if a put would clobber | |
| 179 | /// existing data, see `getOrPutAssumeCapacity`. | |
| 180 | pub fn putAssumeCapacity(self: *Self, key: K, value: V) void { | |
| 181 | return self.unmanaged.putAssumeCapacity(key, value); | |
| 182 | } | |
| 183 | ||
| 184 | /// Asserts there is enough capacity to store the new key-value pair. | |
| 185 | /// Asserts that it does not clobber any existing data. | |
| 186 | /// To detect if a put would clobber existing data, see `getOrPutAssumeCapacity`. | |
| 187 | pub fn putAssumeCapacityNoClobber(self: *Self, key: K, value: V) void { | |
| 188 | return self.unmanaged.putAssumeCapacityNoClobber(key, value); | |
| 189 | } | |
| 190 | ||
| 191 | /// Inserts a new `Entry` into the hash map, returning the previous one, if any. | |
| 192 | pub fn fetchPut(self: *Self, key: K, value: V) !?Entry { | |
| 193 | return self.unmanaged.fetchPut(self.allocator, key, value); | |
| 194 | } | |
| 195 | ||
| 196 | /// Inserts a new `Entry` into the hash map, returning the previous one, if any. | |
| 197 | /// If insertion happuns, asserts there is enough capacity without allocating. | |
| 198 | pub fn fetchPutAssumeCapacity(self: *Self, key: K, value: V) ?Entry { | |
| 199 | return self.unmanaged.fetchPutAssumeCapacity(key, value); | |
| 200 | } | |
| 201 | ||
| 202 | pub fn getEntry(self: Self, key: K) ?*Entry { | |
| 203 | return self.unmanaged.getEntry(key); | |
| 204 | } | |
| 205 | ||
| 206 | pub fn getIndex(self: Self, key: K) ?usize { | |
| 207 | return self.unmanaged.getIndex(key); | |
| 208 | } | |
| 209 | ||
| 210 | pub fn get(self: Self, key: K) ?V { | |
| 211 | return self.unmanaged.get(key); | |
| 212 | } | |
| 213 | ||
| 214 | pub fn contains(self: Self, key: K) bool { | |
| 215 | return self.unmanaged.contains(key); | |
| 216 | } | |
| 217 | ||
| 218 | /// If there is an `Entry` with a matching key, it is deleted from | |
| 219 | /// the hash map, and then returned from this function. | |
| 220 | pub fn remove(self: *Self, key: K) ?Entry { | |
| 221 | return self.unmanaged.remove(key); | |
| 222 | } | |
| 223 | ||
| 224 | /// Asserts there is an `Entry` with matching key, deletes it from the hash map, | |
| 225 | /// and discards it. | |
| 226 | pub fn removeAssertDiscard(self: *Self, key: K) void { | |
| 227 | return self.unmanaged.removeAssertDiscard(key); | |
| 228 | } | |
| 229 | ||
| 230 | pub fn items(self: Self) []Entry { | |
| 231 | return self.unmanaged.items(); | |
| 232 | } | |
| 233 | ||
| 234 | pub fn clone(self: Self) !Self { | |
| 235 | var other = try self.unmanaged.clone(self.allocator); | |
| 236 | return other.promote(self.allocator); | |
| 237 | } | |
| 238 | }; | |
| 239 | } | |
| 240 | ||
| 241 | /// General purpose hash table. | |
| 242 | /// Insertion order is preserved. | |
| 243 | /// Deletions perform a "swap removal" on the entries list. | |
| 244 | /// Modifying the hash map while iterating is allowed, however one must understand | |
| 245 | /// the (well defined) behavior when mixing insertions and deletions with iteration. | |
| 246 | /// This type does not store an Allocator field - the Allocator must be passed in | |
| 247 | /// with each function call that requires it. See `ArrayHashMap` for a type that stores | |
| 248 | /// an Allocator field for convenience. | |
| 249 | /// Can be initialized directly using the default field values. | |
| 250 | /// This type is designed to have low overhead for small numbers of entries. When | |
| 251 | /// `store_hash` is `false` and the number of entries in the map is less than 9, | |
| 252 | /// the overhead cost of using `ArrayHashMapUnmanaged` rather than `std.ArrayList` is | |
| 253 | /// only a single pointer-sized integer. | |
| 254 | /// When `store_hash` is `false`, this data structure is biased towards cheap `eql` | |
| 255 | /// functions. It does not store each item's hash in the table. Setting `store_hash` | |
| 256 | /// to `true` incurs slightly more memory cost by storing each key's hash in the table | |
| 257 | /// but guarantees only one call to `eql` per insertion/deletion. | |
| 258 | pub fn ArrayHashMapUnmanaged( | |
| 259 | comptime K: type, | |
| 260 | comptime V: type, | |
| 261 | comptime hash: fn (key: K) u32, | |
| 262 | comptime eql: fn (a: K, b: K) bool, | |
| 263 | comptime store_hash: bool, | |
| 264 | ) type { | |
| 265 | return struct { | |
| 266 | /// It is permitted to access this field directly. | |
| 267 | entries: std.ArrayListUnmanaged(Entry) = .{}, | |
| 268 | ||
| 269 | /// When entries length is less than `linear_scan_max`, this remains `null`. | |
| 270 | /// Once entries length grows big enough, this field is allocated. There is | |
| 271 | /// an IndexHeader followed by an array of Index(I) structs, where I is defined | |
| 272 | /// by how many total indexes there are. | |
| 273 | index_header: ?*IndexHeader = null, | |
| 274 | ||
| 275 | /// Modifying the key is illegal behavior. | |
| 276 | /// Modifying the value is allowed. | |
| 277 | /// Entry pointers become invalid whenever this ArrayHashMap is modified, | |
| 278 | /// unless `ensureCapacity` was previously used. | |
| 279 | pub const Entry = struct { | |
| 280 | /// This field is `void` if `store_hash` is `false`. | |
| 281 | hash: Hash, | |
| 282 | key: K, | |
| 283 | value: V, | |
| 284 | }; | |
| 285 | ||
| 286 | pub const Hash = if (store_hash) u32 else void; | |
| 287 | ||
| 288 | pub const GetOrPutResult = struct { | |
| 289 | entry: *Entry, | |
| 290 | found_existing: bool, | |
| 291 | }; | |
| 292 | ||
| 293 | pub const Managed = ArrayHashMap(K, V, hash, eql, store_hash); | |
| 294 | ||
| 295 | const Self = @This(); | |
| 296 | ||
| 297 | const linear_scan_max = 8; | |
| 298 | ||
| 299 | pub fn promote(self: Self, allocator: *Allocator) Managed { | |
| 300 | return .{ | |
| 301 | .unmanaged = self, | |
| 302 | .allocator = allocator, | |
| 303 | }; | |
| 304 | } | |
| 305 | ||
| 306 | pub fn deinit(self: *Self, allocator: *Allocator) void { | |
| 307 | self.entries.deinit(allocator); | |
| 308 | if (self.index_header) |header| { | |
| 309 | header.free(allocator); | |
| 310 | } | |
| 311 | self.* = undefined; | |
| 312 | } | |
| 313 | ||
| 314 | pub fn clearRetainingCapacity(self: *Self) void { | |
| 315 | self.entries.items.len = 0; | |
| 316 | if (self.index_header) |header| { | |
| 317 | header.max_distance_from_start_index = 0; | |
| 318 | switch (header.capacityIndexType()) { | |
| 319 | .u8 => mem.set(Index(u8), header.indexes(u8), Index(u8).empty), | |
| 320 | .u16 => mem.set(Index(u16), header.indexes(u16), Index(u16).empty), | |
| 321 | .u32 => mem.set(Index(u32), header.indexes(u32), Index(u32).empty), | |
| 322 | .usize => mem.set(Index(usize), header.indexes(usize), Index(usize).empty), | |
| 323 | } | |
| 324 | } | |
| 325 | } | |
| 326 | ||
| 327 | pub fn clearAndFree(self: *Self, allocator: *Allocator) void { | |
| 328 | self.entries.shrink(allocator, 0); | |
| 329 | if (self.index_header) |header| { | |
| 330 | header.free(allocator); | |
| 331 | self.index_header = null; | |
| 332 | } | |
| 333 | } | |
| 334 | ||
| 335 | /// If key exists this function cannot fail. | |
| 336 | /// If there is an existing item with `key`, then the result | |
| 337 | /// `Entry` pointer points to it, and found_existing is true. | |
| 338 | /// Otherwise, puts a new item with undefined value, and | |
| 339 | /// the `Entry` pointer points to it. Caller should then initialize | |
| 340 | /// the value (but not the key). | |
| 341 | pub fn getOrPut(self: *Self, allocator: *Allocator, key: K) !GetOrPutResult { | |
| 342 | self.ensureCapacity(allocator, self.entries.items.len + 1) catch |err| { | |
| 343 | // "If key exists this function cannot fail." | |
| 344 | return GetOrPutResult{ | |
| 345 | .entry = self.getEntry(key) orelse return err, | |
| 346 | .found_existing = true, | |
| 347 | }; | |
| 348 | }; | |
| 349 | return self.getOrPutAssumeCapacity(key); | |
| 350 | } | |
| 351 | ||
| 352 | /// If there is an existing item with `key`, then the result | |
| 353 | /// `Entry` pointer points to it, and found_existing is true. | |
| 354 | /// Otherwise, puts a new item with undefined value, and | |
| 355 | /// the `Entry` pointer points to it. Caller should then initialize | |
| 356 | /// the value (but not the key). | |
| 357 | /// If a new entry needs to be stored, this function asserts there | |
| 358 | /// is enough capacity to store it. | |
| 359 | pub fn getOrPutAssumeCapacity(self: *Self, key: K) GetOrPutResult { | |
| 360 | const header = self.index_header orelse { | |
| 361 | // Linear scan. | |
| 362 | const h = if (store_hash) hash(key) else {}; | |
| 363 | for (self.entries.items) |*item| { | |
| 364 | if (item.hash == h and eql(key, item.key)) { | |
| 365 | return GetOrPutResult{ | |
| 366 | .entry = item, | |
| 367 | .found_existing = true, | |
| 368 | }; | |
| 369 | } | |
| 370 | } | |
| 371 | const new_entry = self.entries.addOneAssumeCapacity(); | |
| 372 | new_entry.* = .{ | |
| 373 | .hash = if (store_hash) h else {}, | |
| 374 | .key = key, | |
| 375 | .value = undefined, | |
| 376 | }; | |
| 377 | return GetOrPutResult{ | |
| 378 | .entry = new_entry, | |
| 379 | .found_existing = false, | |
| 380 | }; | |
| 381 | }; | |
| 382 | ||
| 383 | switch (header.capacityIndexType()) { | |
| 384 | .u8 => return self.getOrPutInternal(key, header, u8), | |
| 385 | .u16 => return self.getOrPutInternal(key, header, u16), | |
| 386 | .u32 => return self.getOrPutInternal(key, header, u32), | |
| 387 | .usize => return self.getOrPutInternal(key, header, usize), | |
| 388 | } | |
| 389 | } | |
| 390 | ||
| 391 | pub fn getOrPutValue(self: *Self, allocator: *Allocator, key: K, value: V) !*Entry { | |
| 392 | const res = try self.getOrPut(allocator, key); | |
| 393 | if (!res.found_existing) | |
| 394 | res.entry.value = value; | |
| 395 | ||
| 396 | return res.entry; | |
| 397 | } | |
| 398 | ||
| 399 | /// Increases capacity, guaranteeing that insertions up until the | |
| 400 | /// `expected_count` will not cause an allocation, and therefore cannot fail. | |
| 401 | pub fn ensureCapacity(self: *Self, allocator: *Allocator, new_capacity: usize) !void { | |
| 402 | try self.entries.ensureCapacity(allocator, new_capacity); | |
| 403 | if (new_capacity <= linear_scan_max) return; | |
| 404 | ||
| 405 | // Ensure that the indexes will be at most 60% full if | |
| 406 | // `new_capacity` items are put into it. | |
| 407 | const needed_len = new_capacity * 5 / 3; | |
| 408 | if (self.index_header) |header| { | |
| 409 | if (needed_len > header.indexes_len) { | |
| 410 | // An overflow here would mean the amount of memory required would not | |
| 411 | // be representable in the address space. | |
| 412 | const new_indexes_len = math.ceilPowerOfTwo(usize, needed_len) catch unreachable; | |
| 413 | const new_header = try IndexHeader.alloc(allocator, new_indexes_len); | |
| 414 | self.insertAllEntriesIntoNewHeader(new_header); | |
| 415 | header.free(allocator); | |
| 416 | self.index_header = new_header; | |
| 417 | } | |
| 418 | } else { | |
| 419 | // An overflow here would mean the amount of memory required would not | |
| 420 | // be representable in the address space. | |
| 421 | const new_indexes_len = math.ceilPowerOfTwo(usize, needed_len) catch unreachable; | |
| 422 | const header = try IndexHeader.alloc(allocator, new_indexes_len); | |
| 423 | self.insertAllEntriesIntoNewHeader(header); | |
| 424 | self.index_header = header; | |
| 425 | } | |
| 426 | } | |
| 427 | ||
| 428 | /// Returns the number of total elements which may be present before it is | |
| 429 | /// no longer guaranteed that no allocations will be performed. | |
| 430 | pub fn capacity(self: Self) usize { | |
| 431 | const entry_cap = self.entries.capacity; | |
| 432 | const header = self.index_header orelse return math.min(linear_scan_max, entry_cap); | |
| 433 | const indexes_cap = (header.indexes_len + 1) * 3 / 4; | |
| 434 | return math.min(entry_cap, indexes_cap); | |
| 435 | } | |
| 436 | ||
| 437 | /// Clobbers any existing data. To detect if a put would clobber | |
| 438 | /// existing data, see `getOrPut`. | |
| 439 | pub fn put(self: *Self, allocator: *Allocator, key: K, value: V) !void { | |
| 440 | const result = try self.getOrPut(allocator, key); | |
| 441 | result.entry.value = value; | |
| 442 | } | |
| 443 | ||
| 444 | /// Inserts a key-value pair into the hash map, asserting that no previous | |
| 445 | /// entry with the same key is already present | |
| 446 | pub fn putNoClobber(self: *Self, allocator: *Allocator, key: K, value: V) !void { | |
| 447 | const result = try self.getOrPut(allocator, key); | |
| 448 | assert(!result.found_existing); | |
| 449 | result.entry.value = value; | |
| 450 | } | |
| 451 | ||
| 452 | /// Asserts there is enough capacity to store the new key-value pair. | |
| 453 | /// Clobbers any existing data. To detect if a put would clobber | |
| 454 | /// existing data, see `getOrPutAssumeCapacity`. | |
| 455 | pub fn putAssumeCapacity(self: *Self, key: K, value: V) void { | |
| 456 | const result = self.getOrPutAssumeCapacity(key); | |
| 457 | result.entry.value = value; | |
| 458 | } | |
| 459 | ||
| 460 | /// Asserts there is enough capacity to store the new key-value pair. | |
| 461 | /// Asserts that it does not clobber any existing data. | |
| 462 | /// To detect if a put would clobber existing data, see `getOrPutAssumeCapacity`. | |
| 463 | pub fn putAssumeCapacityNoClobber(self: *Self, key: K, value: V) void { | |
| 464 | const result = self.getOrPutAssumeCapacity(key); | |
| 465 | assert(!result.found_existing); | |
| 466 | result.entry.value = value; | |
| 467 | } | |
| 468 | ||
| 469 | /// Inserts a new `Entry` into the hash map, returning the previous one, if any. | |
| 470 | pub fn fetchPut(self: *Self, allocator: *Allocator, key: K, value: V) !?Entry { | |
| 471 | const gop = try self.getOrPut(allocator, key); | |
| 472 | var result: ?Entry = null; | |
| 473 | if (gop.found_existing) { | |
| 474 | result = gop.entry.*; | |
| 475 | } | |
| 476 | gop.entry.value = value; | |
| 477 | return result; | |
| 478 | } | |
| 479 | ||
| 480 | /// Inserts a new `Entry` into the hash map, returning the previous one, if any. | |
| 481 | /// If insertion happens, asserts there is enough capacity without allocating. | |
| 482 | pub fn fetchPutAssumeCapacity(self: *Self, key: K, value: V) ?Entry { | |
| 483 | const gop = self.getOrPutAssumeCapacity(key); | |
| 484 | var result: ?Entry = null; | |
| 485 | if (gop.found_existing) { | |
| 486 | result = gop.entry.*; | |
| 487 | } | |
| 488 | gop.entry.value = value; | |
| 489 | return result; | |
| 490 | } | |
| 491 | ||
| 492 | pub fn getEntry(self: Self, key: K) ?*Entry { | |
| 493 | const index = self.getIndex(key) orelse return null; | |
| 494 | return &self.entries.items[index]; | |
| 495 | } | |
| 496 | ||
| 497 | pub fn getIndex(self: Self, key: K) ?usize { | |
| 498 | const header = self.index_header orelse { | |
| 499 | // Linear scan. | |
| 500 | const h = if (store_hash) hash(key) else {}; | |
| 501 | for (self.entries.items) |*item, i| { | |
| 502 | if (item.hash == h and eql(key, item.key)) { | |
| 503 | return i; | |
| 504 | } | |
| 505 | } | |
| 506 | return null; | |
| 507 | }; | |
| 508 | switch (header.capacityIndexType()) { | |
| 509 | .u8 => return self.getInternal(key, header, u8), | |
| 510 | .u16 => return self.getInternal(key, header, u16), | |
| 511 | .u32 => return self.getInternal(key, header, u32), | |
| 512 | .usize => return self.getInternal(key, header, usize), | |
| 513 | } | |
| 514 | } | |
| 515 | ||
| 516 | pub fn get(self: Self, key: K) ?V { | |
| 517 | return if (self.getEntry(key)) |entry| entry.value else null; | |
| 518 | } | |
| 519 | ||
| 520 | pub fn contains(self: Self, key: K) bool { | |
| 521 | return self.getEntry(key) != null; | |
| 522 | } | |
| 523 | ||
| 524 | /// If there is an `Entry` with a matching key, it is deleted from | |
| 525 | /// the hash map, and then returned from this function. | |
| 526 | pub fn remove(self: *Self, key: K) ?Entry { | |
| 527 | const header = self.index_header orelse { | |
| 528 | // Linear scan. | |
| 529 | const h = if (store_hash) hash(key) else {}; | |
| 530 | for (self.entries.items) |item, i| { | |
| 531 | if (item.hash == h and eql(key, item.key)) { | |
| 532 | return self.entries.swapRemove(i); | |
| 533 | } | |
| 534 | } | |
| 535 | return null; | |
| 536 | }; | |
| 537 | switch (header.capacityIndexType()) { | |
| 538 | .u8 => return self.removeInternal(key, header, u8), | |
| 539 | .u16 => return self.removeInternal(key, header, u16), | |
| 540 | .u32 => return self.removeInternal(key, header, u32), | |
| 541 | .usize => return self.removeInternal(key, header, usize), | |
| 542 | } | |
| 543 | } | |
| 544 | ||
| 545 | /// Asserts there is an `Entry` with matching key, deletes it from the hash map, | |
| 546 | /// and discards it. | |
| 547 | pub fn removeAssertDiscard(self: *Self, key: K) void { | |
| 548 | assert(self.remove(key) != null); | |
| 549 | } | |
| 550 | ||
| 551 | pub fn items(self: Self) []Entry { | |
| 552 | return self.entries.items; | |
| 553 | } | |
| 554 | ||
| 555 | pub fn clone(self: Self, allocator: *Allocator) !Self { | |
| 556 | var other: Self = .{}; | |
| 557 | try other.entries.appendSlice(allocator, self.entries.items); | |
| 558 | ||
| 559 | if (self.index_header) |header| { | |
| 560 | const new_header = try IndexHeader.alloc(allocator, header.indexes_len); | |
| 561 | other.insertAllEntriesIntoNewHeader(new_header); | |
| 562 | other.index_header = new_header; | |
| 563 | } | |
| 564 | return other; | |
| 565 | } | |
| 566 | ||
| 567 | fn removeInternal(self: *Self, key: K, header: *IndexHeader, comptime I: type) ?Entry { | |
| 568 | const indexes = header.indexes(I); | |
| 569 | const h = hash(key); | |
| 570 | const start_index = header.constrainIndex(h); | |
| 571 | var roll_over: usize = 0; | |
| 572 | while (roll_over <= header.max_distance_from_start_index) : (roll_over += 1) { | |
| 573 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 574 | var index = &indexes[index_index]; | |
| 575 | if (index.isEmpty()) | |
| 576 | return null; | |
| 577 | ||
| 578 | const entry = &self.entries.items[index.entry_index]; | |
| 579 | ||
| 580 | const hash_match = if (store_hash) h == entry.hash else true; | |
| 581 | if (!hash_match or !eql(key, entry.key)) | |
| 582 | continue; | |
| 583 | ||
| 584 | const removed_entry = self.entries.swapRemove(index.entry_index); | |
| 585 | if (self.entries.items.len > 0 and self.entries.items.len != index.entry_index) { | |
| 586 | // Because of the swap remove, now we need to update the index that was | |
| 587 | // pointing to the last entry and is now pointing to this removed item slot. | |
| 588 | self.updateEntryIndex(header, self.entries.items.len, index.entry_index, I, indexes); | |
| 589 | } | |
| 590 | ||
| 591 | // Now we have to shift over the following indexes. | |
| 592 | roll_over += 1; | |
| 593 | while (roll_over < header.indexes_len) : (roll_over += 1) { | |
| 594 | const next_index_index = header.constrainIndex(start_index + roll_over); | |
| 595 | const next_index = &indexes[next_index_index]; | |
| 596 | if (next_index.isEmpty() or next_index.distance_from_start_index == 0) { | |
| 597 | index.setEmpty(); | |
| 598 | return removed_entry; | |
| 599 | } | |
| 600 | index.* = next_index.*; | |
| 601 | index.distance_from_start_index -= 1; | |
| 602 | index = next_index; | |
| 603 | } | |
| 604 | unreachable; | |
| 605 | } | |
| 606 | return null; | |
| 607 | } | |
| 608 | ||
| 609 | fn updateEntryIndex( | |
| 610 | self: *Self, | |
| 611 | header: *IndexHeader, | |
| 612 | old_entry_index: usize, | |
| 613 | new_entry_index: usize, | |
| 614 | comptime I: type, | |
| 615 | indexes: []Index(I), | |
| 616 | ) void { | |
| 617 | const h = if (store_hash) self.entries.items[new_entry_index].hash else hash(self.entries.items[new_entry_index].key); | |
| 618 | const start_index = header.constrainIndex(h); | |
| 619 | var roll_over: usize = 0; | |
| 620 | while (roll_over <= header.max_distance_from_start_index) : (roll_over += 1) { | |
| 621 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 622 | const index = &indexes[index_index]; | |
| 623 | if (index.entry_index == old_entry_index) { | |
| 624 | index.entry_index = @intCast(I, new_entry_index); | |
| 625 | return; | |
| 626 | } | |
| 627 | } | |
| 628 | unreachable; | |
| 629 | } | |
| 630 | ||
| 631 | /// Must ensureCapacity before calling this. | |
| 632 | fn getOrPutInternal(self: *Self, key: K, header: *IndexHeader, comptime I: type) GetOrPutResult { | |
| 633 | const indexes = header.indexes(I); | |
| 634 | const h = hash(key); | |
| 635 | const start_index = header.constrainIndex(h); | |
| 636 | var roll_over: usize = 0; | |
| 637 | var distance_from_start_index: usize = 0; | |
| 638 | while (roll_over <= header.indexes_len) : ({ | |
| 639 | roll_over += 1; | |
| 640 | distance_from_start_index += 1; | |
| 641 | }) { | |
| 642 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 643 | const index = indexes[index_index]; | |
| 644 | if (index.isEmpty()) { | |
| 645 | indexes[index_index] = .{ | |
| 646 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 647 | .entry_index = @intCast(I, self.entries.items.len), | |
| 648 | }; | |
| 649 | header.maybeBumpMax(distance_from_start_index); | |
| 650 | const new_entry = self.entries.addOneAssumeCapacity(); | |
| 651 | new_entry.* = .{ | |
| 652 | .hash = if (store_hash) h else {}, | |
| 653 | .key = key, | |
| 654 | .value = undefined, | |
| 655 | }; | |
| 656 | return .{ | |
| 657 | .found_existing = false, | |
| 658 | .entry = new_entry, | |
| 659 | }; | |
| 660 | } | |
| 661 | ||
| 662 | // This pointer survives the following append because we call | |
| 663 | // entries.ensureCapacity before getOrPutInternal. | |
| 664 | const entry = &self.entries.items[index.entry_index]; | |
| 665 | const hash_match = if (store_hash) h == entry.hash else true; | |
| 666 | if (hash_match and eql(key, entry.key)) { | |
| 667 | return .{ | |
| 668 | .found_existing = true, | |
| 669 | .entry = entry, | |
| 670 | }; | |
| 671 | } | |
| 672 | if (index.distance_from_start_index < distance_from_start_index) { | |
| 673 | // In this case, we did not find the item. We will put a new entry. | |
| 674 | // However, we will use this index for the new entry, and move | |
| 675 | // the previous index down the line, to keep the max_distance_from_start_index | |
| 676 | // as small as possible. | |
| 677 | indexes[index_index] = .{ | |
| 678 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 679 | .entry_index = @intCast(I, self.entries.items.len), | |
| 680 | }; | |
| 681 | header.maybeBumpMax(distance_from_start_index); | |
| 682 | const new_entry = self.entries.addOneAssumeCapacity(); | |
| 683 | new_entry.* = .{ | |
| 684 | .hash = if (store_hash) h else {}, | |
| 685 | .key = key, | |
| 686 | .value = undefined, | |
| 687 | }; | |
| 688 | ||
| 689 | distance_from_start_index = index.distance_from_start_index; | |
| 690 | var prev_entry_index = index.entry_index; | |
| 691 | ||
| 692 | // Find somewhere to put the index we replaced by shifting | |
| 693 | // following indexes backwards. | |
| 694 | roll_over += 1; | |
| 695 | distance_from_start_index += 1; | |
| 696 | while (roll_over < header.indexes_len) : ({ | |
| 697 | roll_over += 1; | |
| 698 | distance_from_start_index += 1; | |
| 699 | }) { | |
| 700 | const next_index_index = header.constrainIndex(start_index + roll_over); | |
| 701 | const next_index = indexes[next_index_index]; | |
| 702 | if (next_index.isEmpty()) { | |
| 703 | header.maybeBumpMax(distance_from_start_index); | |
| 704 | indexes[next_index_index] = .{ | |
| 705 | .entry_index = prev_entry_index, | |
| 706 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 707 | }; | |
| 708 | return .{ | |
| 709 | .found_existing = false, | |
| 710 | .entry = new_entry, | |
| 711 | }; | |
| 712 | } | |
| 713 | if (next_index.distance_from_start_index < distance_from_start_index) { | |
| 714 | header.maybeBumpMax(distance_from_start_index); | |
| 715 | indexes[next_index_index] = .{ | |
| 716 | .entry_index = prev_entry_index, | |
| 717 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 718 | }; | |
| 719 | distance_from_start_index = next_index.distance_from_start_index; | |
| 720 | prev_entry_index = next_index.entry_index; | |
| 721 | } | |
| 722 | } | |
| 723 | unreachable; | |
| 724 | } | |
| 725 | } | |
| 726 | unreachable; | |
| 727 | } | |
| 728 | ||
| 729 | fn getInternal(self: Self, key: K, header: *IndexHeader, comptime I: type) ?usize { | |
| 730 | const indexes = header.indexes(I); | |
| 731 | const h = hash(key); | |
| 732 | const start_index = header.constrainIndex(h); | |
| 733 | var roll_over: usize = 0; | |
| 734 | while (roll_over <= header.max_distance_from_start_index) : (roll_over += 1) { | |
| 735 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 736 | const index = indexes[index_index]; | |
| 737 | if (index.isEmpty()) | |
| 738 | return null; | |
| 739 | ||
| 740 | const entry = &self.entries.items[index.entry_index]; | |
| 741 | const hash_match = if (store_hash) h == entry.hash else true; | |
| 742 | if (hash_match and eql(key, entry.key)) | |
| 743 | return index.entry_index; | |
| 744 | } | |
| 745 | return null; | |
| 746 | } | |
| 747 | ||
| 748 | fn insertAllEntriesIntoNewHeader(self: *Self, header: *IndexHeader) void { | |
| 749 | switch (header.capacityIndexType()) { | |
| 750 | .u8 => return self.insertAllEntriesIntoNewHeaderGeneric(header, u8), | |
| 751 | .u16 => return self.insertAllEntriesIntoNewHeaderGeneric(header, u16), | |
| 752 | .u32 => return self.insertAllEntriesIntoNewHeaderGeneric(header, u32), | |
| 753 | .usize => return self.insertAllEntriesIntoNewHeaderGeneric(header, usize), | |
| 754 | } | |
| 755 | } | |
| 756 | ||
| 757 | fn insertAllEntriesIntoNewHeaderGeneric(self: *Self, header: *IndexHeader, comptime I: type) void { | |
| 758 | const indexes = header.indexes(I); | |
| 759 | entry_loop: for (self.entries.items) |entry, i| { | |
| 760 | const h = if (store_hash) entry.hash else hash(entry.key); | |
| 761 | const start_index = header.constrainIndex(h); | |
| 762 | var entry_index = i; | |
| 763 | var roll_over: usize = 0; | |
| 764 | var distance_from_start_index: usize = 0; | |
| 765 | while (roll_over < header.indexes_len) : ({ | |
| 766 | roll_over += 1; | |
| 767 | distance_from_start_index += 1; | |
| 768 | }) { | |
| 769 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 770 | const next_index = indexes[index_index]; | |
| 771 | if (next_index.isEmpty()) { | |
| 772 | header.maybeBumpMax(distance_from_start_index); | |
| 773 | indexes[index_index] = .{ | |
| 774 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 775 | .entry_index = @intCast(I, entry_index), | |
| 776 | }; | |
| 777 | continue :entry_loop; | |
| 778 | } | |
| 779 | if (next_index.distance_from_start_index < distance_from_start_index) { | |
| 780 | header.maybeBumpMax(distance_from_start_index); | |
| 781 | indexes[index_index] = .{ | |
| 782 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 783 | .entry_index = @intCast(I, entry_index), | |
| 784 | }; | |
| 785 | distance_from_start_index = next_index.distance_from_start_index; | |
| 786 | entry_index = next_index.entry_index; | |
| 787 | } | |
| 788 | } | |
| 789 | unreachable; | |
| 790 | } | |
| 791 | } | |
| 792 | }; | |
| 793 | } | |
| 794 | ||
| 795 | const CapacityIndexType = enum { u8, u16, u32, usize }; | |
| 796 | ||
| 797 | fn capacityIndexType(indexes_len: usize) CapacityIndexType { | |
| 798 | if (indexes_len < math.maxInt(u8)) | |
| 799 | return .u8; | |
| 800 | if (indexes_len < math.maxInt(u16)) | |
| 801 | return .u16; | |
| 802 | if (indexes_len < math.maxInt(u32)) | |
| 803 | return .u32; | |
| 804 | return .usize; | |
| 805 | } | |
| 806 | ||
| 807 | fn capacityIndexSize(indexes_len: usize) usize { | |
| 808 | switch (capacityIndexType(indexes_len)) { | |
| 809 | .u8 => return @sizeOf(Index(u8)), | |
| 810 | .u16 => return @sizeOf(Index(u16)), | |
| 811 | .u32 => return @sizeOf(Index(u32)), | |
| 812 | .usize => return @sizeOf(Index(usize)), | |
| 813 | } | |
| 814 | } | |
| 815 | ||
| 816 | fn Index(comptime I: type) type { | |
| 817 | return extern struct { | |
| 818 | entry_index: I, | |
| 819 | distance_from_start_index: I, | |
| 820 | ||
| 821 | const Self = @This(); | |
| 822 | ||
| 823 | const empty = Self{ | |
| 824 | .entry_index = math.maxInt(I), | |
| 825 | .distance_from_start_index = undefined, | |
| 826 | }; | |
| 827 | ||
| 828 | fn isEmpty(idx: Self) bool { | |
| 829 | return idx.entry_index == math.maxInt(I); | |
| 830 | } | |
| 831 | ||
| 832 | fn setEmpty(idx: *Self) void { | |
| 833 | idx.entry_index = math.maxInt(I); | |
| 834 | } | |
| 835 | }; | |
| 836 | } | |
| 837 | ||
| 838 | /// This struct is trailed by an array of `Index(I)`, where `I` | |
| 839 | /// and the array length are determined by `indexes_len`. | |
| 840 | const IndexHeader = struct { | |
| 841 | max_distance_from_start_index: usize, | |
| 842 | indexes_len: usize, | |
| 843 | ||
| 844 | fn constrainIndex(header: IndexHeader, i: usize) usize { | |
| 845 | // This is an optimization for modulo of power of two integers; | |
| 846 | // it requires `indexes_len` to always be a power of two. | |
| 847 | return i & (header.indexes_len - 1); | |
| 848 | } | |
| 849 | ||
| 850 | fn indexes(header: *IndexHeader, comptime I: type) []Index(I) { | |
| 851 | const start = @ptrCast([*]Index(I), @ptrCast([*]u8, header) + @sizeOf(IndexHeader)); | |
| 852 | return start[0..header.indexes_len]; | |
| 853 | } | |
| 854 | ||
| 855 | fn capacityIndexType(header: IndexHeader) CapacityIndexType { | |
| 856 | return hash_map.capacityIndexType(header.indexes_len); | |
| 857 | } | |
| 858 | ||
| 859 | fn maybeBumpMax(header: *IndexHeader, distance_from_start_index: usize) void { | |
| 860 | if (distance_from_start_index > header.max_distance_from_start_index) { | |
| 861 | header.max_distance_from_start_index = distance_from_start_index; | |
| 862 | } | |
| 863 | } | |
| 864 | ||
| 865 | fn alloc(allocator: *Allocator, len: usize) !*IndexHeader { | |
| 866 | const index_size = hash_map.capacityIndexSize(len); | |
| 867 | const nbytes = @sizeOf(IndexHeader) + index_size * len; | |
| 868 | const bytes = try allocator.allocAdvanced(u8, @alignOf(IndexHeader), nbytes, .exact); | |
| 869 | @memset(bytes.ptr + @sizeOf(IndexHeader), 0xff, bytes.len - @sizeOf(IndexHeader)); | |
| 870 | const result = @ptrCast(*IndexHeader, bytes.ptr); | |
| 871 | result.* = .{ | |
| 872 | .max_distance_from_start_index = 0, | |
| 873 | .indexes_len = len, | |
| 874 | }; | |
| 875 | return result; | |
| 876 | } | |
| 877 | ||
| 878 | fn free(header: *IndexHeader, allocator: *Allocator) void { | |
| 879 | const index_size = hash_map.capacityIndexSize(header.indexes_len); | |
| 880 | const ptr = @ptrCast([*]u8, header); | |
| 881 | const slice = ptr[0 .. @sizeOf(IndexHeader) + header.indexes_len * index_size]; | |
| 882 | allocator.free(slice); | |
| 883 | } | |
| 884 | }; | |
| 885 | ||
| 886 | test "basic hash map usage" { | |
| 887 | var map = AutoArrayHashMap(i32, i32).init(std.testing.allocator); | |
| 888 | defer map.deinit(); | |
| 889 | ||
| 890 | testing.expect((try map.fetchPut(1, 11)) == null); | |
| 891 | testing.expect((try map.fetchPut(2, 22)) == null); | |
| 892 | testing.expect((try map.fetchPut(3, 33)) == null); | |
| 893 | testing.expect((try map.fetchPut(4, 44)) == null); | |
| 894 | ||
| 895 | try map.putNoClobber(5, 55); | |
| 896 | testing.expect((try map.fetchPut(5, 66)).?.value == 55); | |
| 897 | testing.expect((try map.fetchPut(5, 55)).?.value == 66); | |
| 898 | ||
| 899 | const gop1 = try map.getOrPut(5); | |
| 900 | testing.expect(gop1.found_existing == true); | |
| 901 | testing.expect(gop1.entry.value == 55); | |
| 902 | gop1.entry.value = 77; | |
| 903 | testing.expect(map.getEntry(5).?.value == 77); | |
| 904 | ||
| 905 | const gop2 = try map.getOrPut(99); | |
| 906 | testing.expect(gop2.found_existing == false); | |
| 907 | gop2.entry.value = 42; | |
| 908 | testing.expect(map.getEntry(99).?.value == 42); | |
| 909 | ||
| 910 | const gop3 = try map.getOrPutValue(5, 5); | |
| 911 | testing.expect(gop3.value == 77); | |
| 912 | ||
| 913 | const gop4 = try map.getOrPutValue(100, 41); | |
| 914 | testing.expect(gop4.value == 41); | |
| 915 | ||
| 916 | testing.expect(map.contains(2)); | |
| 917 | testing.expect(map.getEntry(2).?.value == 22); | |
| 918 | testing.expect(map.get(2).? == 22); | |
| 919 | ||
| 920 | const rmv1 = map.remove(2); | |
| 921 | testing.expect(rmv1.?.key == 2); | |
| 922 | testing.expect(rmv1.?.value == 22); | |
| 923 | testing.expect(map.remove(2) == null); | |
| 924 | testing.expect(map.getEntry(2) == null); | |
| 925 | testing.expect(map.get(2) == null); | |
| 926 | ||
| 927 | map.removeAssertDiscard(3); | |
| 928 | } | |
| 929 | ||
| 930 | test "iterator hash map" { | |
| 931 | // https://github.com/ziglang/zig/issues/5127 | |
| 932 | if (std.Target.current.cpu.arch == .mips) return error.SkipZigTest; | |
| 933 | ||
| 934 | var reset_map = AutoArrayHashMap(i32, i32).init(std.testing.allocator); | |
| 935 | defer reset_map.deinit(); | |
| 936 | ||
| 937 | // test ensureCapacity with a 0 parameter | |
| 938 | try reset_map.ensureCapacity(0); | |
| 939 | ||
| 940 | try reset_map.putNoClobber(0, 11); | |
| 941 | try reset_map.putNoClobber(1, 22); | |
| 942 | try reset_map.putNoClobber(2, 33); | |
| 943 | ||
| 944 | var keys = [_]i32{ | |
| 945 | 0, 2, 1, | |
| 946 | }; | |
| 947 | ||
| 948 | var values = [_]i32{ | |
| 949 | 11, 33, 22, | |
| 950 | }; | |
| 951 | ||
| 952 | var buffer = [_]i32{ | |
| 953 | 0, 0, 0, | |
| 954 | }; | |
| 955 | ||
| 956 | var it = reset_map.iterator(); | |
| 957 | const first_entry = it.next().?; | |
| 958 | it.reset(); | |
| 959 | ||
| 960 | var count: usize = 0; | |
| 961 | while (it.next()) |entry| : (count += 1) { | |
| 962 | buffer[@intCast(usize, entry.key)] = entry.value; | |
| 963 | } | |
| 964 | testing.expect(count == 3); | |
| 965 | testing.expect(it.next() == null); | |
| 966 | ||
| 967 | for (buffer) |v, i| { | |
| 968 | testing.expect(buffer[@intCast(usize, keys[i])] == values[i]); | |
| 969 | } | |
| 970 | ||
| 971 | it.reset(); | |
| 972 | count = 0; | |
| 973 | while (it.next()) |entry| { | |
| 974 | buffer[@intCast(usize, entry.key)] = entry.value; | |
| 975 | count += 1; | |
| 976 | if (count >= 2) break; | |
| 977 | } | |
| 978 | ||
| 979 | for (buffer[0..2]) |v, i| { | |
| 980 | testing.expect(buffer[@intCast(usize, keys[i])] == values[i]); | |
| 981 | } | |
| 982 | ||
| 983 | it.reset(); | |
| 984 | var entry = it.next().?; | |
| 985 | testing.expect(entry.key == first_entry.key); | |
| 986 | testing.expect(entry.value == first_entry.value); | |
| 987 | } | |
| 988 | ||
| 989 | test "ensure capacity" { | |
| 990 | var map = AutoArrayHashMap(i32, i32).init(std.testing.allocator); | |
| 991 | defer map.deinit(); | |
| 992 | ||
| 993 | try map.ensureCapacity(20); | |
| 994 | const initial_capacity = map.capacity(); | |
| 995 | testing.expect(initial_capacity >= 20); | |
| 996 | var i: i32 = 0; | |
| 997 | while (i < 20) : (i += 1) { | |
| 998 | testing.expect(map.fetchPutAssumeCapacity(i, i + 10) == null); | |
| 999 | } | |
| 1000 | // shouldn't resize from putAssumeCapacity | |
| 1001 | testing.expect(initial_capacity == map.capacity()); | |
| 1002 | } | |
| 1003 | ||
| 1004 | test "clone" { | |
| 1005 | var original = AutoArrayHashMap(i32, i32).init(std.testing.allocator); | |
| 1006 | defer original.deinit(); | |
| 1007 | ||
| 1008 | // put more than `linear_scan_max` so we can test that the index header is properly cloned | |
| 1009 | var i: u8 = 0; | |
| 1010 | while (i < 10) : (i += 1) { | |
| 1011 | try original.putNoClobber(i, i * 10); | |
| 1012 | } | |
| 1013 | ||
| 1014 | var copy = try original.clone(); | |
| 1015 | defer copy.deinit(); | |
| 1016 | ||
| 1017 | i = 0; | |
| 1018 | while (i < 10) : (i += 1) { | |
| 1019 | testing.expect(copy.get(i).? == i * 10); | |
| 1020 | } | |
| 1021 | } | |
| 1022 | ||
| 1023 | pub fn getHashPtrAddrFn(comptime K: type) (fn (K) u32) { | |
| 1024 | return struct { | |
| 1025 | fn hash(key: K) u32 { | |
| 1026 | return getAutoHashFn(usize)(@ptrToInt(key)); | |
| 1027 | } | |
| 1028 | }.hash; | |
| 1029 | } | |
| 1030 | ||
| 1031 | pub fn getTrivialEqlFn(comptime K: type) (fn (K, K) bool) { | |
| 1032 | return struct { | |
| 1033 | fn eql(a: K, b: K) bool { | |
| 1034 | return a == b; | |
| 1035 | } | |
| 1036 | }.eql; | |
| 1037 | } | |
| 1038 | ||
| 1039 | pub fn getAutoHashFn(comptime K: type) (fn (K) u32) { | |
| 1040 | return struct { | |
| 1041 | fn hash(key: K) u32 { | |
| 1042 | if (comptime trait.hasUniqueRepresentation(K)) { | |
| 1043 | return @truncate(u32, Wyhash.hash(0, std.mem.asBytes(&key))); | |
| 1044 | } else { | |
| 1045 | var hasher = Wyhash.init(0); | |
| 1046 | autoHash(&hasher, key); | |
| 1047 | return @truncate(u32, hasher.final()); | |
| 1048 | } | |
| 1049 | } | |
| 1050 | }.hash; | |
| 1051 | } | |
| 1052 | ||
| 1053 | pub fn getAutoEqlFn(comptime K: type) (fn (K, K) bool) { | |
| 1054 | return struct { | |
| 1055 | fn eql(a: K, b: K) bool { | |
| 1056 | return meta.eql(a, b); | |
| 1057 | } | |
| 1058 | }.eql; | |
| 1059 | } | |
| 1060 | ||
| 1061 | pub fn autoEqlIsCheap(comptime K: type) bool { | |
| 1062 | return switch (@typeInfo(K)) { | |
| 1063 | .Bool, | |
| 1064 | .Int, | |
| 1065 | .Float, | |
| 1066 | .Pointer, | |
| 1067 | .ComptimeFloat, | |
| 1068 | .ComptimeInt, | |
| 1069 | .Enum, | |
| 1070 | .Fn, | |
| 1071 | .ErrorSet, | |
| 1072 | .AnyFrame, | |
| 1073 | .EnumLiteral, | |
| 1074 | => true, | |
| 1075 | else => false, | |
| 1076 | }; | |
| 1077 | } | |
| 1078 | ||
| 1079 | pub fn getAutoHashStratFn(comptime K: type, comptime strategy: std.hash.Strategy) (fn (K) u32) { | |
| 1080 | return struct { | |
| 1081 | fn hash(key: K) u32 { | |
| 1082 | var hasher = Wyhash.init(0); | |
| 1083 | std.hash.autoHashStrat(&hasher, key, strategy); | |
| 1084 | return @truncate(u32, hasher.final()); | |
| 1085 | } | |
| 1086 | }.hash; | |
| 1087 | } |
lib/std/buf_set.zig+2-1| ... | ... | @@ -20,7 +20,8 @@ pub const BufSet = struct { |
| 20 | 20 | } |
| 21 | 21 | |
| 22 | 22 | pub fn deinit(self: *BufSet) void { |
| 23 | for (self.hash_map.items()) |entry| { | |
| 23 | var it = self.hash_map.iterator(); | |
| 24 | while (it.next()) |entry| { | |
| 24 | 25 | self.free(entry.key); |
| 25 | 26 | } |
| 26 | 27 | self.hash_map.deinit(); |
lib/std/hash_map.zig+846-697| ... | ... | @@ -4,91 +4,94 @@ |
| 4 | 4 | // The MIT license requires this copyright notice to be included in all copies |
| 5 | 5 | // and substantial portions of the software. |
| 6 | 6 | const std = @import("std.zig"); |
| 7 | const debug = std.debug; | |
| 7 | const builtin = @import("builtin"); | |
| 8 | 8 | const assert = debug.assert; |
| 9 | const testing = std.testing; | |
| 9 | const autoHash = std.hash.autoHash; | |
| 10 | const debug = std.debug; | |
| 11 | const warn = debug.warn; | |
| 10 | 12 | const math = std.math; |
| 11 | 13 | const mem = std.mem; |
| 12 | 14 | const meta = std.meta; |
| 13 | 15 | const trait = meta.trait; |
| 14 | const autoHash = std.hash.autoHash; | |
| 15 | const Wyhash = std.hash.Wyhash; | |
| 16 | 16 | const Allocator = mem.Allocator; |
| 17 | const builtin = @import("builtin"); | |
| 18 | const hash_map = @This(); | |
| 17 | const Wyhash = std.hash.Wyhash; | |
| 18 | ||
| 19 | pub fn getAutoHashFn(comptime K: type) (fn (K) u64) { | |
| 20 | return struct { | |
| 21 | fn hash(key: K) u64 { | |
| 22 | if (comptime trait.hasUniqueRepresentation(K)) { | |
| 23 | return Wyhash.hash(0, std.mem.asBytes(&key)); | |
| 24 | } else { | |
| 25 | var hasher = Wyhash.init(0); | |
| 26 | autoHash(&hasher, key); | |
| 27 | return hasher.final(); | |
| 28 | } | |
| 29 | } | |
| 30 | }.hash; | |
| 31 | } | |
| 32 | ||
| 33 | pub fn getAutoEqlFn(comptime K: type) (fn (K, K) bool) { | |
| 34 | return struct { | |
| 35 | fn eql(a: K, b: K) bool { | |
| 36 | return meta.eql(a, b); | |
| 37 | } | |
| 38 | }.eql; | |
| 39 | } | |
| 19 | 40 | |
| 20 | 41 | pub fn AutoHashMap(comptime K: type, comptime V: type) type { |
| 21 | return HashMap(K, V, getAutoHashFn(K), getAutoEqlFn(K), autoEqlIsCheap(K)); | |
| 42 | return HashMap(K, V, getAutoHashFn(K), getAutoEqlFn(K), DefaultMaxLoadPercentage); | |
| 22 | 43 | } |
| 23 | 44 | |
| 24 | 45 | pub fn AutoHashMapUnmanaged(comptime K: type, comptime V: type) type { |
| 25 | return HashMapUnmanaged(K, V, getAutoHashFn(K), getAutoEqlFn(K), autoEqlIsCheap(K)); | |
| 46 | return HashMapUnmanaged(K, V, getAutoHashFn(K), getAutoEqlFn(K), DefaultMaxLoadPercentage); | |
| 26 | 47 | } |
| 27 | 48 | |
| 28 | 49 | /// Builtin hashmap for strings as keys. |
| 29 | 50 | pub fn StringHashMap(comptime V: type) type { |
| 30 | return HashMap([]const u8, V, hashString, eqlString, true); | |
| 51 | return HashMap([]const u8, V, hashString, eqlString, DefaultMaxLoadPercentage); | |
| 31 | 52 | } |
| 32 | 53 | |
| 33 | 54 | pub fn StringHashMapUnmanaged(comptime V: type) type { |
| 34 | return HashMapUnmanaged([]const u8, V, hashString, eqlString, true); | |
| 55 | return HashMapUnmanaged([]const u8, V, hashString, eqlString, DefaultMaxLoadPercentage); | |
| 35 | 56 | } |
| 36 | 57 | |
| 37 | 58 | pub fn eqlString(a: []const u8, b: []const u8) bool { |
| 38 | 59 | return mem.eql(u8, a, b); |
| 39 | 60 | } |
| 40 | 61 | |
| 41 | pub fn hashString(s: []const u8) u32 { | |
| 42 | return @truncate(u32, std.hash.Wyhash.hash(0, s)); | |
| 62 | pub fn hashString(s: []const u8) u64 { | |
| 63 | return std.hash.Wyhash.hash(0, s); | |
| 43 | 64 | } |
| 44 | 65 | |
| 45 | /// Insertion order is preserved. | |
| 46 | /// Deletions perform a "swap removal" on the entries list. | |
| 47 | /// Modifying the hash map while iterating is allowed, however one must understand | |
| 48 | /// the (well defined) behavior when mixing insertions and deletions with iteration. | |
| 66 | pub const DefaultMaxLoadPercentage = 80; | |
| 67 | ||
| 68 | /// General purpose hash table. | |
| 69 | /// No order is guaranteed and any modification invalidates live iterators. | |
| 70 | /// It provides fast operations (lookup, insertion, deletion) with quite high | |
| 71 | /// load factors (up to 80% by default) for a low memory usage. | |
| 49 | 72 | /// For a hash map that can be initialized directly that does not store an Allocator |
| 50 | 73 | /// field, see `HashMapUnmanaged`. |
| 51 | /// When `store_hash` is `false`, this data structure is biased towards cheap `eql` | |
| 52 | /// functions. It does not store each item's hash in the table. Setting `store_hash` | |
| 53 | /// to `true` incurs slightly more memory cost by storing each key's hash in the table | |
| 54 | /// but only has to call `eql` for hash collisions. | |
| 74 | /// If iterating over the table entries is a strong usecase and needs to be fast, | |
| 75 | /// prefer the alternative `std.ArrayHashMap`. | |
| 55 | 76 | pub fn HashMap( |
| 56 | 77 | comptime K: type, |
| 57 | 78 | comptime V: type, |
| 58 | comptime hash: fn (key: K) u32, | |
| 59 | comptime eql: fn (a: K, b: K) bool, | |
| 60 | comptime store_hash: bool, | |
| 79 | comptime hashFn: fn (key: K) u64, | |
| 80 | comptime eqlFn: fn (a: K, b: K) bool, | |
| 81 | comptime MaxLoadPercentage: u64, | |
| 61 | 82 | ) type { |
| 62 | 83 | return struct { |
| 63 | 84 | unmanaged: Unmanaged, |
| 64 | 85 | allocator: *Allocator, |
| 65 | 86 | |
| 66 | pub const Unmanaged = HashMapUnmanaged(K, V, hash, eql, store_hash); | |
| 87 | pub const Unmanaged = HashMapUnmanaged(K, V, hashFn, eqlFn, MaxLoadPercentage); | |
| 67 | 88 | pub const Entry = Unmanaged.Entry; |
| 68 | 89 | pub const Hash = Unmanaged.Hash; |
| 90 | pub const Iterator = Unmanaged.Iterator; | |
| 91 | pub const Size = Unmanaged.Size; | |
| 69 | 92 | pub const GetOrPutResult = Unmanaged.GetOrPutResult; |
| 70 | 93 | |
| 71 | /// Deprecated. Iterate using `items`. | |
| 72 | pub const Iterator = struct { | |
| 73 | hm: *const Self, | |
| 74 | /// Iterator through the entry array. | |
| 75 | index: usize, | |
| 76 | ||
| 77 | pub fn next(it: *Iterator) ?*Entry { | |
| 78 | if (it.index >= it.hm.unmanaged.entries.items.len) return null; | |
| 79 | const result = &it.hm.unmanaged.entries.items[it.index]; | |
| 80 | it.index += 1; | |
| 81 | return result; | |
| 82 | } | |
| 83 | ||
| 84 | /// Reset the iterator to the initial index | |
| 85 | pub fn reset(it: *Iterator) void { | |
| 86 | it.index = 0; | |
| 87 | } | |
| 88 | }; | |
| 89 | ||
| 90 | 94 | const Self = @This(); |
| 91 | const Index = Unmanaged.Index; | |
| 92 | 95 | |
| 93 | 96 | pub fn init(allocator: *Allocator) Self { |
| 94 | 97 | return .{ |
| ... | ... | @@ -110,17 +113,12 @@ pub fn HashMap( |
| 110 | 113 | return self.unmanaged.clearAndFree(self.allocator); |
| 111 | 114 | } |
| 112 | 115 | |
| 113 | /// Deprecated. Use `items().len`. | |
| 114 | 116 | pub fn count(self: Self) usize { |
| 115 | return self.items().len; | |
| 117 | return self.unmanaged.count(); | |
| 116 | 118 | } |
| 117 | 119 | |
| 118 | /// Deprecated. Iterate using `items`. | |
| 119 | 120 | pub fn iterator(self: *const Self) Iterator { |
| 120 | return Iterator{ | |
| 121 | .hm = self, | |
| 122 | .index = 0, | |
| 123 | }; | |
| 121 | return self.unmanaged.iterator(); | |
| 124 | 122 | } |
| 125 | 123 | |
| 126 | 124 | /// If key exists this function cannot fail. |
| ... | ... | @@ -150,13 +148,13 @@ pub fn HashMap( |
| 150 | 148 | |
| 151 | 149 | /// Increases capacity, guaranteeing that insertions up until the |
| 152 | 150 | /// `expected_count` will not cause an allocation, and therefore cannot fail. |
| 153 | pub fn ensureCapacity(self: *Self, new_capacity: usize) !void { | |
| 154 | return self.unmanaged.ensureCapacity(self.allocator, new_capacity); | |
| 151 | pub fn ensureCapacity(self: *Self, expected_count: Size) !void { | |
| 152 | return self.unmanaged.ensureCapacity(self.allocator, expected_count); | |
| 155 | 153 | } |
| 156 | 154 | |
| 157 | 155 | /// Returns the number of total elements which may be present before it is |
| 158 | 156 | /// no longer guaranteed that no allocations will be performed. |
| 159 | pub fn capacity(self: *Self) usize { | |
| 157 | pub fn capacity(self: *Self) Size { | |
| 160 | 158 | return self.unmanaged.capacity(); |
| 161 | 159 | } |
| 162 | 160 | |
| ... | ... | @@ -197,18 +195,14 @@ pub fn HashMap( |
| 197 | 195 | return self.unmanaged.fetchPutAssumeCapacity(key, value); |
| 198 | 196 | } |
| 199 | 197 | |
| 200 | pub fn getEntry(self: Self, key: K) ?*Entry { | |
| 201 | return self.unmanaged.getEntry(key); | |
| 202 | } | |
| 203 | ||
| 204 | pub fn getIndex(self: Self, key: K) ?usize { | |
| 205 | return self.unmanaged.getIndex(key); | |
| 206 | } | |
| 207 | ||
| 208 | 198 | pub fn get(self: Self, key: K) ?V { |
| 209 | 199 | return self.unmanaged.get(key); |
| 210 | 200 | } |
| 211 | 201 | |
| 202 | pub fn getEntry(self: Self, key: K) ?*Entry { | |
| 203 | return self.unmanaged.getEntry(key); | |
| 204 | } | |
| 205 | ||
| 212 | 206 | pub fn contains(self: Self, key: K) bool { |
| 213 | 207 | return self.unmanaged.contains(key); |
| 214 | 208 | } |
| ... | ... | @@ -225,10 +219,6 @@ pub fn HashMap( |
| 225 | 219 | return self.unmanaged.removeAssertDiscard(key); |
| 226 | 220 | } |
| 227 | 221 | |
| 228 | pub fn items(self: Self) []Entry { | |
| 229 | return self.unmanaged.items(); | |
| 230 | } | |
| 231 | ||
| 232 | 222 | pub fn clone(self: Self) !Self { |
| 233 | 223 | var other = try self.unmanaged.clone(self.allocator); |
| 234 | 224 | return other.promote(self.allocator); |
| ... | ... | @@ -236,63 +226,152 @@ pub fn HashMap( |
| 236 | 226 | }; |
| 237 | 227 | } |
| 238 | 228 | |
| 239 | /// General purpose hash table. | |
| 240 | /// Insertion order is preserved. | |
| 241 | /// Deletions perform a "swap removal" on the entries list. | |
| 242 | /// Modifying the hash map while iterating is allowed, however one must understand | |
| 243 | /// the (well defined) behavior when mixing insertions and deletions with iteration. | |
| 244 | /// This type does not store an Allocator field - the Allocator must be passed in | |
| 245 | /// with each function call that requires it. See `HashMap` for a type that stores | |
| 246 | /// an Allocator field for convenience. | |
| 247 | /// Can be initialized directly using the default field values. | |
| 248 | /// This type is designed to have low overhead for small numbers of entries. When | |
| 249 | /// `store_hash` is `false` and the number of entries in the map is less than 9, | |
| 250 | /// the overhead cost of using `HashMapUnmanaged` rather than `std.ArrayList` is | |
| 251 | /// only a single pointer-sized integer. | |
| 252 | /// When `store_hash` is `false`, this data structure is biased towards cheap `eql` | |
| 253 | /// functions. It does not store each item's hash in the table. Setting `store_hash` | |
| 254 | /// to `true` incurs slightly more memory cost by storing each key's hash in the table | |
| 255 | /// but guarantees only one call to `eql` per insertion/deletion. | |
| 229 | /// A HashMap based on open addressing and linear probing. | |
| 230 | /// A lookup or modification typically occurs only 2 cache misses. | |
| 231 | /// No order is guaranteed and any modification invalidates live iterators. | |
| 232 | /// It achieves good performance with quite high load factors (by default, | |
| 233 | /// grow is triggered at 80% full) and only one byte of overhead per element. | |
| 234 | /// The struct itself is only 16 bytes for a small footprint. This comes at | |
| 235 | /// the price of handling size with u32, which should be reasonnable enough | |
| 236 | /// for almost all uses. | |
| 237 | /// Deletions are achieved with tombstones. | |
| 256 | 238 | pub fn HashMapUnmanaged( |
| 257 | 239 | comptime K: type, |
| 258 | 240 | comptime V: type, |
| 259 | comptime hash: fn (key: K) u32, | |
| 260 | comptime eql: fn (a: K, b: K) bool, | |
| 261 | comptime store_hash: bool, | |
| 241 | hashFn: fn (key: K) u64, | |
| 242 | eqlFn: fn (a: K, b: K) bool, | |
| 243 | comptime MaxLoadPercentage: u64, | |
| 262 | 244 | ) type { |
| 245 | comptime assert(MaxLoadPercentage > 0 and MaxLoadPercentage < 100); | |
| 246 | ||
| 263 | 247 | return struct { |
| 264 | /// It is permitted to access this field directly. | |
| 265 | entries: std.ArrayListUnmanaged(Entry) = .{}, | |
| 266 | ||
| 267 | /// When entries length is less than `linear_scan_max`, this remains `null`. | |
| 268 | /// Once entries length grows big enough, this field is allocated. There is | |
| 269 | /// an IndexHeader followed by an array of Index(I) structs, where I is defined | |
| 270 | /// by how many total indexes there are. | |
| 271 | index_header: ?*IndexHeader = null, | |
| 272 | ||
| 273 | /// Modifying the key is illegal behavior. | |
| 274 | /// Modifying the value is allowed. | |
| 275 | /// Entry pointers become invalid whenever this HashMap is modified, | |
| 276 | /// unless `ensureCapacity` was previously used. | |
| 248 | const Self = @This(); | |
| 249 | ||
| 250 | // This is actually a midway pointer to the single buffer containing | |
| 251 | // a `Header` field, the `Metadata`s and `Entry`s. | |
| 252 | // At `-@sizeOf(Header)` is the Header field. | |
| 253 | // At `sizeOf(Metadata) * capacity + offset`, which is pointed to by | |
| 254 | // self.header().entries, is the array of entries. | |
| 255 | // This means that the hashmap only holds one live allocation, to | |
| 256 | // reduce memory fragmentation and struct size. | |
| 257 | /// Pointer to the metadata. | |
| 258 | metadata: ?[*]Metadata = null, | |
| 259 | ||
| 260 | /// Current number of elements in the hashmap. | |
| 261 | size: Size = 0, | |
| 262 | ||
| 263 | // Having a countdown to grow reduces the number of instructions to | |
| 264 | // execute when determining if the hashmap has enough capacity already. | |
| 265 | /// Number of available slots before a grow is needed to satisfy the | |
| 266 | /// `MaxLoadPercentage`. | |
| 267 | available: Size = 0, | |
| 268 | ||
| 269 | // This is purely empirical and not a /very smart magic constant™/. | |
| 270 | /// Capacity of the first grow when bootstrapping the hashmap. | |
| 271 | const MinimalCapacity = 8; | |
| 272 | ||
| 273 | // This hashmap is specially designed for sizes that fit in a u32. | |
| 274 | const Size = u32; | |
| 275 | ||
| 276 | // u64 hashes guarantee us that the fingerprint bits will never be used | |
| 277 | // to compute the index of a slot, maximizing the use of entropy. | |
| 278 | const Hash = u64; | |
| 279 | ||
| 277 | 280 | pub const Entry = struct { |
| 278 | /// This field is `void` if `store_hash` is `false`. | |
| 279 | hash: Hash, | |
| 280 | 281 | key: K, |
| 281 | 282 | value: V, |
| 282 | 283 | }; |
| 283 | 284 | |
| 284 | pub const Hash = if (store_hash) u32 else void; | |
| 285 | const Header = packed struct { | |
| 286 | entries: [*]Entry, | |
| 287 | capacity: Size, | |
| 288 | }; | |
| 289 | ||
| 290 | /// Metadata for a slot. It can be in three states: empty, used or | |
| 291 | /// tombstone. Tombstones indicate that an entry was previously used, | |
| 292 | /// they are a simple way to handle removal. | |
| 293 | /// To this state, we add 6 bits from the slot's key hash. These are | |
| 294 | /// used as a fast way to disambiguate between entries without | |
| 295 | /// having to use the equality function. If two fingerprints are | |
| 296 | /// different, we know that we don't have to compare the keys at all. | |
| 297 | /// The 6 bits are the highest ones from a 64 bit hash. This way, not | |
| 298 | /// only we use the `log2(capacity)` lowest bits from the hash to determine | |
| 299 | /// a slot index, but we use 6 more bits to quickly resolve collisions | |
| 300 | /// when multiple elements with different hashes end up wanting to be in / the same slot. | |
| 301 | /// Not using the equality function means we don't have to read into | |
| 302 | /// the entries array, avoiding a likely cache miss. | |
| 303 | const Metadata = packed struct { | |
| 304 | const FingerPrint = u6; | |
| 305 | ||
| 306 | used: u1 = 0, | |
| 307 | tombstone: u1 = 0, | |
| 308 | fingerprint: FingerPrint = 0, | |
| 309 | ||
| 310 | pub fn isUsed(self: Metadata) bool { | |
| 311 | return self.used == 1; | |
| 312 | } | |
| 313 | ||
| 314 | pub fn isTombstone(self: Metadata) bool { | |
| 315 | return self.tombstone == 1; | |
| 316 | } | |
| 317 | ||
| 318 | pub fn takeFingerprint(hash: Hash) FingerPrint { | |
| 319 | const hash_bits = @typeInfo(Hash).Int.bits; | |
| 320 | const fp_bits = @typeInfo(FingerPrint).Int.bits; | |
| 321 | return @truncate(FingerPrint, hash >> (hash_bits - fp_bits)); | |
| 322 | } | |
| 323 | ||
| 324 | pub fn fill(self: *Metadata, fp: FingerPrint) void { | |
| 325 | self.used = 1; | |
| 326 | self.tombstone = 0; | |
| 327 | self.fingerprint = fp; | |
| 328 | } | |
| 329 | ||
| 330 | pub fn remove(self: *Metadata) void { | |
| 331 | self.used = 0; | |
| 332 | self.tombstone = 1; | |
| 333 | self.fingerprint = 0; | |
| 334 | } | |
| 335 | }; | |
| 336 | ||
| 337 | comptime { | |
| 338 | assert(@sizeOf(Metadata) == 1); | |
| 339 | assert(@alignOf(Metadata) == 1); | |
| 340 | } | |
| 341 | ||
| 342 | const Iterator = struct { | |
| 343 | hm: *const Self, | |
| 344 | index: Size = 0, | |
| 345 | ||
| 346 | pub fn next(it: *Iterator) ?*Entry { | |
| 347 | assert(it.index <= it.hm.capacity()); | |
| 348 | if (it.hm.size == 0) return null; | |
| 349 | ||
| 350 | const cap = it.hm.capacity(); | |
| 351 | const end = it.hm.metadata.? + cap; | |
| 352 | var metadata = it.hm.metadata.? + it.index; | |
| 353 | ||
| 354 | while (metadata != end) : ({ | |
| 355 | metadata += 1; | |
| 356 | it.index += 1; | |
| 357 | }) { | |
| 358 | if (metadata[0].isUsed()) { | |
| 359 | const entry = &it.hm.entries()[it.index]; | |
| 360 | it.index += 1; | |
| 361 | return entry; | |
| 362 | } | |
| 363 | } | |
| 364 | ||
| 365 | return null; | |
| 366 | } | |
| 367 | }; | |
| 285 | 368 | |
| 286 | 369 | pub const GetOrPutResult = struct { |
| 287 | 370 | entry: *Entry, |
| 288 | 371 | found_existing: bool, |
| 289 | 372 | }; |
| 290 | 373 | |
| 291 | pub const Managed = HashMap(K, V, hash, eql, store_hash); | |
| 292 | ||
| 293 | const Self = @This(); | |
| 294 | ||
| 295 | const linear_scan_max = 8; | |
| 374 | pub const Managed = HashMap(K, V, hashFn, eqlFn, MaxLoadPercentage); | |
| 296 | 375 | |
| 297 | 376 | pub fn promote(self: Self, allocator: *Allocator) Managed { |
| 298 | 377 | return .{ |
| ... | ... | @@ -301,167 +380,156 @@ pub fn HashMapUnmanaged( |
| 301 | 380 | }; |
| 302 | 381 | } |
| 303 | 382 | |
| 383 | fn isUnderMaxLoadPercentage(size: Size, cap: Size) bool { | |
| 384 | return size * 100 < MaxLoadPercentage * cap; | |
| 385 | } | |
| 386 | ||
| 387 | pub fn init(allocator: *Allocator) Self { | |
| 388 | return .{}; | |
| 389 | } | |
| 390 | ||
| 304 | 391 | pub fn deinit(self: *Self, allocator: *Allocator) void { |
| 305 | self.entries.deinit(allocator); | |
| 306 | if (self.index_header) |header| { | |
| 307 | header.free(allocator); | |
| 308 | } | |
| 392 | self.deallocate(allocator); | |
| 309 | 393 | self.* = undefined; |
| 310 | 394 | } |
| 311 | 395 | |
| 312 | pub fn clearRetainingCapacity(self: *Self) void { | |
| 313 | self.entries.items.len = 0; | |
| 314 | if (self.index_header) |header| { | |
| 315 | header.max_distance_from_start_index = 0; | |
| 316 | switch (header.capacityIndexType()) { | |
| 317 | .u8 => mem.set(Index(u8), header.indexes(u8), Index(u8).empty), | |
| 318 | .u16 => mem.set(Index(u16), header.indexes(u16), Index(u16).empty), | |
| 319 | .u32 => mem.set(Index(u32), header.indexes(u32), Index(u32).empty), | |
| 320 | .usize => mem.set(Index(usize), header.indexes(usize), Index(usize).empty), | |
| 321 | } | |
| 322 | } | |
| 323 | } | |
| 396 | fn deallocate(self: *Self, allocator: *Allocator) void { | |
| 397 | if (self.metadata == null) return; | |
| 324 | 398 | |
| 325 | pub fn clearAndFree(self: *Self, allocator: *Allocator) void { | |
| 326 | self.entries.shrink(allocator, 0); | |
| 327 | if (self.index_header) |header| { | |
| 328 | header.free(allocator); | |
| 329 | self.index_header = null; | |
| 330 | } | |
| 399 | const cap = self.capacity(); | |
| 400 | const meta_size = @sizeOf(Header) + cap * @sizeOf(Metadata); | |
| 401 | ||
| 402 | const alignment = @alignOf(Entry) - 1; | |
| 403 | const entries_size = @as(usize, cap) * @sizeOf(Entry) + alignment; | |
| 404 | ||
| 405 | const total_size = meta_size + entries_size; | |
| 406 | ||
| 407 | var slice: []u8 = undefined; | |
| 408 | slice.ptr = @intToPtr([*]u8, @ptrToInt(self.header())); | |
| 409 | slice.len = total_size; | |
| 410 | allocator.free(slice); | |
| 411 | ||
| 412 | self.metadata = null; | |
| 413 | self.available = 0; | |
| 331 | 414 | } |
| 332 | 415 | |
| 333 | /// If key exists this function cannot fail. | |
| 334 | /// If there is an existing item with `key`, then the result | |
| 335 | /// `Entry` pointer points to it, and found_existing is true. | |
| 336 | /// Otherwise, puts a new item with undefined value, and | |
| 337 | /// the `Entry` pointer points to it. Caller should then initialize | |
| 338 | /// the value (but not the key). | |
| 339 | pub fn getOrPut(self: *Self, allocator: *Allocator, key: K) !GetOrPutResult { | |
| 340 | self.ensureCapacity(allocator, self.entries.items.len + 1) catch |err| { | |
| 341 | // "If key exists this function cannot fail." | |
| 342 | return GetOrPutResult{ | |
| 343 | .entry = self.getEntry(key) orelse return err, | |
| 344 | .found_existing = true, | |
| 345 | }; | |
| 346 | }; | |
| 347 | return self.getOrPutAssumeCapacity(key); | |
| 416 | fn capacityForSize(size: Size) Size { | |
| 417 | var new_cap = @truncate(u32, (@as(u64, size) * 100) / MaxLoadPercentage + 1); | |
| 418 | new_cap = math.ceilPowerOfTwo(u32, new_cap) catch unreachable; | |
| 419 | return new_cap; | |
| 348 | 420 | } |
| 349 | 421 | |
| 350 | /// If there is an existing item with `key`, then the result | |
| 351 | /// `Entry` pointer points to it, and found_existing is true. | |
| 352 | /// Otherwise, puts a new item with undefined value, and | |
| 353 | /// the `Entry` pointer points to it. Caller should then initialize | |
| 354 | /// the value (but not the key). | |
| 355 | /// If a new entry needs to be stored, this function asserts there | |
| 356 | /// is enough capacity to store it. | |
| 357 | pub fn getOrPutAssumeCapacity(self: *Self, key: K) GetOrPutResult { | |
| 358 | const header = self.index_header orelse { | |
| 359 | // Linear scan. | |
| 360 | const h = if (store_hash) hash(key) else {}; | |
| 361 | for (self.entries.items) |*item| { | |
| 362 | if (item.hash == h and eql(key, item.key)) { | |
| 363 | return GetOrPutResult{ | |
| 364 | .entry = item, | |
| 365 | .found_existing = true, | |
| 366 | }; | |
| 367 | } | |
| 368 | } | |
| 369 | const new_entry = self.entries.addOneAssumeCapacity(); | |
| 370 | new_entry.* = .{ | |
| 371 | .hash = if (store_hash) h else {}, | |
| 372 | .key = key, | |
| 373 | .value = undefined, | |
| 374 | }; | |
| 375 | return GetOrPutResult{ | |
| 376 | .entry = new_entry, | |
| 377 | .found_existing = false, | |
| 378 | }; | |
| 379 | }; | |
| 422 | pub fn ensureCapacity(self: *Self, allocator: *Allocator, new_size: Size) !void { | |
| 423 | if (new_size > self.size) | |
| 424 | try self.growIfNeeded(allocator, new_size - self.size); | |
| 425 | } | |
| 380 | 426 | |
| 381 | switch (header.capacityIndexType()) { | |
| 382 | .u8 => return self.getOrPutInternal(key, header, u8), | |
| 383 | .u16 => return self.getOrPutInternal(key, header, u16), | |
| 384 | .u32 => return self.getOrPutInternal(key, header, u32), | |
| 385 | .usize => return self.getOrPutInternal(key, header, usize), | |
| 427 | pub fn clearRetainingCapacity(self: *Self) void { | |
| 428 | if (self.metadata) |_| { | |
| 429 | self.initMetadatas(); | |
| 430 | self.size = 0; | |
| 431 | self.available = 0; | |
| 386 | 432 | } |
| 387 | 433 | } |
| 388 | 434 | |
| 389 | pub fn getOrPutValue(self: *Self, allocator: *Allocator, key: K, value: V) !*Entry { | |
| 390 | const res = try self.getOrPut(allocator, key); | |
| 391 | if (!res.found_existing) | |
| 392 | res.entry.value = value; | |
| 435 | pub fn clearAndFree(self: *Self, allocator: *Allocator) void { | |
| 436 | self.deallocate(allocator); | |
| 437 | self.size = 0; | |
| 438 | self.available = 0; | |
| 439 | } | |
| 393 | 440 | |
| 394 | return res.entry; | |
| 441 | pub fn count(self: *const Self) Size { | |
| 442 | return self.size; | |
| 395 | 443 | } |
| 396 | 444 | |
| 397 | /// Increases capacity, guaranteeing that insertions up until the | |
| 398 | /// `expected_count` will not cause an allocation, and therefore cannot fail. | |
| 399 | pub fn ensureCapacity(self: *Self, allocator: *Allocator, new_capacity: usize) !void { | |
| 400 | try self.entries.ensureCapacity(allocator, new_capacity); | |
| 401 | if (new_capacity <= linear_scan_max) return; | |
| 402 | ||
| 403 | // Ensure that the indexes will be at most 60% full if | |
| 404 | // `new_capacity` items are put into it. | |
| 405 | const needed_len = new_capacity * 5 / 3; | |
| 406 | if (self.index_header) |header| { | |
| 407 | if (needed_len > header.indexes_len) { | |
| 408 | // An overflow here would mean the amount of memory required would not | |
| 409 | // be representable in the address space. | |
| 410 | const new_indexes_len = math.ceilPowerOfTwo(usize, needed_len) catch unreachable; | |
| 411 | const new_header = try IndexHeader.alloc(allocator, new_indexes_len); | |
| 412 | self.insertAllEntriesIntoNewHeader(new_header); | |
| 413 | header.free(allocator); | |
| 414 | self.index_header = new_header; | |
| 415 | } | |
| 416 | } else { | |
| 417 | // An overflow here would mean the amount of memory required would not | |
| 418 | // be representable in the address space. | |
| 419 | const new_indexes_len = math.ceilPowerOfTwo(usize, needed_len) catch unreachable; | |
| 420 | const header = try IndexHeader.alloc(allocator, new_indexes_len); | |
| 421 | self.insertAllEntriesIntoNewHeader(header); | |
| 422 | self.index_header = header; | |
| 423 | } | |
| 445 | fn header(self: *const Self) *Header { | |
| 446 | return @ptrCast(*Header, @ptrCast([*]Header, self.metadata.?) - 1); | |
| 424 | 447 | } |
| 425 | 448 | |
| 426 | /// Returns the number of total elements which may be present before it is | |
| 427 | /// no longer guaranteed that no allocations will be performed. | |
| 428 | pub fn capacity(self: Self) usize { | |
| 429 | const entry_cap = self.entries.capacity; | |
| 430 | const header = self.index_header orelse return math.min(linear_scan_max, entry_cap); | |
| 431 | const indexes_cap = (header.indexes_len + 1) * 3 / 4; | |
| 432 | return math.min(entry_cap, indexes_cap); | |
| 449 | fn entries(self: *const Self) [*]Entry { | |
| 450 | return self.header().entries; | |
| 433 | 451 | } |
| 434 | 452 | |
| 435 | /// Clobbers any existing data. To detect if a put would clobber | |
| 436 | /// existing data, see `getOrPut`. | |
| 437 | pub fn put(self: *Self, allocator: *Allocator, key: K, value: V) !void { | |
| 438 | const result = try self.getOrPut(allocator, key); | |
| 439 | result.entry.value = value; | |
| 453 | pub fn capacity(self: *const Self) Size { | |
| 454 | if (self.metadata == null) return 0; | |
| 455 | ||
| 456 | return self.header().capacity; | |
| 440 | 457 | } |
| 441 | 458 | |
| 442 | /// Inserts a key-value pair into the hash map, asserting that no previous | |
| 443 | /// entry with the same key is already present | |
| 459 | pub fn iterator(self: *const Self) Iterator { | |
| 460 | return .{ .hm = self }; | |
| 461 | } | |
| 462 | ||
| 463 | /// Insert an entry in the map. Assumes it is not already present. | |
| 444 | 464 | pub fn putNoClobber(self: *Self, allocator: *Allocator, key: K, value: V) !void { |
| 445 | const result = try self.getOrPut(allocator, key); | |
| 446 | assert(!result.found_existing); | |
| 447 | result.entry.value = value; | |
| 465 | assert(!self.contains(key)); | |
| 466 | try self.growIfNeeded(allocator, 1); | |
| 467 | ||
| 468 | self.putAssumeCapacityNoClobber(key, value); | |
| 448 | 469 | } |
| 449 | 470 | |
| 450 | /// Asserts there is enough capacity to store the new key-value pair. | |
| 451 | /// Clobbers any existing data. To detect if a put would clobber | |
| 452 | /// existing data, see `getOrPutAssumeCapacity`. | |
| 453 | 471 | pub fn putAssumeCapacity(self: *Self, key: K, value: V) void { |
| 454 | const result = self.getOrPutAssumeCapacity(key); | |
| 455 | result.entry.value = value; | |
| 472 | const hash = hashFn(key); | |
| 473 | const mask = self.capacity() - 1; | |
| 474 | const fingerprint = Metadata.takeFingerprint(hash); | |
| 475 | var idx = @truncate(usize, hash & mask); | |
| 476 | ||
| 477 | var first_tombstone_idx: usize = self.capacity(); // invalid index | |
| 478 | var metadata = self.metadata.? + idx; | |
| 479 | while (metadata[0].isUsed() or metadata[0].isTombstone()) { | |
| 480 | if (metadata[0].isUsed() and metadata[0].fingerprint == fingerprint) { | |
| 481 | const entry = &self.entries()[idx]; | |
| 482 | if (eqlFn(entry.key, key)) { | |
| 483 | return; | |
| 484 | } | |
| 485 | } else if (first_tombstone_idx == self.capacity() and metadata[0].isTombstone()) { | |
| 486 | first_tombstone_idx = idx; | |
| 487 | } | |
| 488 | ||
| 489 | idx = (idx + 1) & mask; | |
| 490 | metadata = self.metadata.? + idx; | |
| 491 | } | |
| 492 | ||
| 493 | if (first_tombstone_idx < self.capacity()) { | |
| 494 | // Cheap try to lower probing lengths after deletions. Recycle a tombstone. | |
| 495 | idx = first_tombstone_idx; | |
| 496 | metadata = self.metadata.? + idx; | |
| 497 | } else { | |
| 498 | // We're using a slot previously free. | |
| 499 | self.available -= 1; | |
| 500 | } | |
| 501 | ||
| 502 | metadata[0].fill(fingerprint); | |
| 503 | const entry = &self.entries()[idx]; | |
| 504 | entry.* = .{ .key = key, .value = undefined }; | |
| 505 | self.size += 1; | |
| 456 | 506 | } |
| 457 | 507 | |
| 458 | /// Asserts there is enough capacity to store the new key-value pair. | |
| 459 | /// Asserts that it does not clobber any existing data. | |
| 460 | /// To detect if a put would clobber existing data, see `getOrPutAssumeCapacity`. | |
| 508 | /// Insert an entry in the map. Assumes it is not already present, | |
| 509 | /// and that no allocation is needed. | |
| 461 | 510 | pub fn putAssumeCapacityNoClobber(self: *Self, key: K, value: V) void { |
| 462 | const result = self.getOrPutAssumeCapacity(key); | |
| 463 | assert(!result.found_existing); | |
| 464 | result.entry.value = value; | |
| 511 | assert(!self.contains(key)); | |
| 512 | ||
| 513 | const hash = hashFn(key); | |
| 514 | const mask = self.capacity() - 1; | |
| 515 | var idx = @truncate(usize, hash & mask); | |
| 516 | ||
| 517 | var metadata = self.metadata.? + idx; | |
| 518 | while (metadata[0].isUsed()) { | |
| 519 | idx = (idx + 1) & mask; | |
| 520 | metadata = self.metadata.? + idx; | |
| 521 | } | |
| 522 | ||
| 523 | if (!metadata[0].isTombstone()) { | |
| 524 | assert(self.available > 0); | |
| 525 | self.available -= 1; | |
| 526 | } | |
| 527 | ||
| 528 | const fingerprint = Metadata.takeFingerprint(hash); | |
| 529 | metadata[0].fill(fingerprint); | |
| 530 | self.entries()[idx] = Entry{ .key = key, .value = value }; | |
| 531 | ||
| 532 | self.size += 1; | |
| 465 | 533 | } |
| 466 | 534 | |
| 467 | 535 | /// Inserts a new `Entry` into the hash map, returning the previous one, if any. |
| ... | ... | @@ -488,400 +556,622 @@ pub fn HashMapUnmanaged( |
| 488 | 556 | } |
| 489 | 557 | |
| 490 | 558 | pub fn getEntry(self: Self, key: K) ?*Entry { |
| 491 | const index = self.getIndex(key) orelse return null; | |
| 492 | return &self.entries.items[index]; | |
| 493 | } | |
| 559 | if (self.size == 0) { | |
| 560 | return null; | |
| 561 | } | |
| 494 | 562 | |
| 495 | pub fn getIndex(self: Self, key: K) ?usize { | |
| 496 | const header = self.index_header orelse { | |
| 497 | // Linear scan. | |
| 498 | const h = if (store_hash) hash(key) else {}; | |
| 499 | for (self.entries.items) |*item, i| { | |
| 500 | if (item.hash == h and eql(key, item.key)) { | |
| 501 | return i; | |
| 563 | const hash = hashFn(key); | |
| 564 | const mask = self.capacity() - 1; | |
| 565 | const fingerprint = Metadata.takeFingerprint(hash); | |
| 566 | var idx = @truncate(usize, hash & mask); | |
| 567 | ||
| 568 | var metadata = self.metadata.? + idx; | |
| 569 | while (metadata[0].isUsed() or metadata[0].isTombstone()) { | |
| 570 | if (metadata[0].isUsed() and metadata[0].fingerprint == fingerprint) { | |
| 571 | const entry = &self.entries()[idx]; | |
| 572 | if (eqlFn(entry.key, key)) { | |
| 573 | return entry; | |
| 502 | 574 | } |
| 503 | 575 | } |
| 504 | return null; | |
| 505 | }; | |
| 506 | switch (header.capacityIndexType()) { | |
| 507 | .u8 => return self.getInternal(key, header, u8), | |
| 508 | .u16 => return self.getInternal(key, header, u16), | |
| 509 | .u32 => return self.getInternal(key, header, u32), | |
| 510 | .usize => return self.getInternal(key, header, usize), | |
| 576 | idx = (idx + 1) & mask; | |
| 577 | metadata = self.metadata.? + idx; | |
| 511 | 578 | } |
| 512 | } | |
| 513 | 579 | |
| 514 | pub fn get(self: Self, key: K) ?V { | |
| 515 | return if (self.getEntry(key)) |entry| entry.value else null; | |
| 580 | return null; | |
| 516 | 581 | } |
| 517 | 582 | |
| 518 | pub fn contains(self: Self, key: K) bool { | |
| 519 | return self.getEntry(key) != null; | |
| 583 | /// Insert an entry if the associated key is not already present, otherwise update preexisting value. | |
| 584 | /// Returns true if the key was already present. | |
| 585 | pub fn put(self: *Self, allocator: *Allocator, key: K, value: V) !void { | |
| 586 | const result = try self.getOrPut(allocator, key); | |
| 587 | result.entry.value = value; | |
| 520 | 588 | } |
| 521 | 589 | |
| 522 | /// If there is an `Entry` with a matching key, it is deleted from | |
| 523 | /// the hash map, and then returned from this function. | |
| 524 | pub fn remove(self: *Self, key: K) ?Entry { | |
| 525 | const header = self.index_header orelse { | |
| 526 | // Linear scan. | |
| 527 | const h = if (store_hash) hash(key) else {}; | |
| 528 | for (self.entries.items) |item, i| { | |
| 529 | if (item.hash == h and eql(key, item.key)) { | |
| 530 | return self.entries.swapRemove(i); | |
| 590 | /// Get an optional pointer to the value associated with key, if present. | |
| 591 | pub fn get(self: Self, key: K) ?V { | |
| 592 | if (self.size == 0) { | |
| 593 | return null; | |
| 594 | } | |
| 595 | ||
| 596 | const hash = hashFn(key); | |
| 597 | const mask = self.capacity() - 1; | |
| 598 | const fingerprint = Metadata.takeFingerprint(hash); | |
| 599 | var idx = @truncate(usize, hash & mask); | |
| 600 | ||
| 601 | var metadata = self.metadata.? + idx; | |
| 602 | while (metadata[0].isUsed() or metadata[0].isTombstone()) { | |
| 603 | if (metadata[0].isUsed() and metadata[0].fingerprint == fingerprint) { | |
| 604 | const entry = &self.entries()[idx]; | |
| 605 | if (eqlFn(entry.key, key)) { | |
| 606 | return entry.value; | |
| 531 | 607 | } |
| 532 | 608 | } |
| 533 | return null; | |
| 534 | }; | |
| 535 | switch (header.capacityIndexType()) { | |
| 536 | .u8 => return self.removeInternal(key, header, u8), | |
| 537 | .u16 => return self.removeInternal(key, header, u16), | |
| 538 | .u32 => return self.removeInternal(key, header, u32), | |
| 539 | .usize => return self.removeInternal(key, header, usize), | |
| 609 | idx = (idx + 1) & mask; | |
| 610 | metadata = self.metadata.? + idx; | |
| 540 | 611 | } |
| 541 | } | |
| 542 | 612 | |
| 543 | /// Asserts there is an `Entry` with matching key, deletes it from the hash map, | |
| 544 | /// and discards it. | |
| 545 | pub fn removeAssertDiscard(self: *Self, key: K) void { | |
| 546 | assert(self.remove(key) != null); | |
| 613 | return null; | |
| 547 | 614 | } |
| 548 | 615 | |
| 549 | pub fn items(self: Self) []Entry { | |
| 550 | return self.entries.items; | |
| 616 | pub fn getOrPut(self: *Self, allocator: *Allocator, key: K) !GetOrPutResult { | |
| 617 | try self.growIfNeeded(allocator, 1); | |
| 618 | ||
| 619 | return self.getOrPutAssumeCapacity(key); | |
| 551 | 620 | } |
| 552 | 621 | |
| 553 | pub fn clone(self: Self, allocator: *Allocator) !Self { | |
| 554 | var other: Self = .{}; | |
| 555 | try other.entries.appendSlice(allocator, self.entries.items); | |
| 622 | pub fn getOrPutAssumeCapacity(self: *Self, key: K) GetOrPutResult { | |
| 623 | const hash = hashFn(key); | |
| 624 | const mask = self.capacity() - 1; | |
| 625 | const fingerprint = Metadata.takeFingerprint(hash); | |
| 626 | var idx = @truncate(usize, hash & mask); | |
| 627 | ||
| 628 | var first_tombstone_idx: usize = self.capacity(); // invalid index | |
| 629 | var metadata = self.metadata.? + idx; | |
| 630 | while (metadata[0].isUsed() or metadata[0].isTombstone()) { | |
| 631 | if (metadata[0].isUsed() and metadata[0].fingerprint == fingerprint) { | |
| 632 | const entry = &self.entries()[idx]; | |
| 633 | if (eqlFn(entry.key, key)) { | |
| 634 | return GetOrPutResult{ .entry = entry, .found_existing = true }; | |
| 635 | } | |
| 636 | } else if (first_tombstone_idx == self.capacity() and metadata[0].isTombstone()) { | |
| 637 | first_tombstone_idx = idx; | |
| 638 | } | |
| 556 | 639 | |
| 557 | if (self.index_header) |header| { | |
| 558 | const new_header = try IndexHeader.alloc(allocator, header.indexes_len); | |
| 559 | other.insertAllEntriesIntoNewHeader(new_header); | |
| 560 | other.index_header = new_header; | |
| 640 | idx = (idx + 1) & mask; | |
| 641 | metadata = self.metadata.? + idx; | |
| 561 | 642 | } |
| 562 | return other; | |
| 643 | ||
| 644 | if (first_tombstone_idx < self.capacity()) { | |
| 645 | // Cheap try to lower probing lengths after deletions. Recycle a tombstone. | |
| 646 | idx = first_tombstone_idx; | |
| 647 | metadata = self.metadata.? + idx; | |
| 648 | } else { | |
| 649 | // We're using a slot previously free. | |
| 650 | self.available -= 1; | |
| 651 | } | |
| 652 | ||
| 653 | metadata[0].fill(fingerprint); | |
| 654 | const entry = &self.entries()[idx]; | |
| 655 | entry.* = .{ .key = key, .value = undefined }; | |
| 656 | self.size += 1; | |
| 657 | ||
| 658 | return GetOrPutResult{ .entry = entry, .found_existing = false }; | |
| 563 | 659 | } |
| 564 | 660 | |
| 565 | fn removeInternal(self: *Self, key: K, header: *IndexHeader, comptime I: type) ?Entry { | |
| 566 | const indexes = header.indexes(I); | |
| 567 | const h = hash(key); | |
| 568 | const start_index = header.constrainIndex(h); | |
| 569 | var roll_over: usize = 0; | |
| 570 | while (roll_over <= header.max_distance_from_start_index) : (roll_over += 1) { | |
| 571 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 572 | var index = &indexes[index_index]; | |
| 573 | if (index.isEmpty()) | |
| 574 | return null; | |
| 575 | ||
| 576 | const entry = &self.entries.items[index.entry_index]; | |
| 577 | ||
| 578 | const hash_match = if (store_hash) h == entry.hash else true; | |
| 579 | if (!hash_match or !eql(key, entry.key)) | |
| 580 | continue; | |
| 581 | ||
| 582 | const removed_entry = self.entries.swapRemove(index.entry_index); | |
| 583 | if (self.entries.items.len > 0 and self.entries.items.len != index.entry_index) { | |
| 584 | // Because of the swap remove, now we need to update the index that was | |
| 585 | // pointing to the last entry and is now pointing to this removed item slot. | |
| 586 | self.updateEntryIndex(header, self.entries.items.len, index.entry_index, I, indexes); | |
| 587 | } | |
| 661 | pub fn getOrPutValue(self: *Self, allocator: *Allocator, key: K, value: V) !*Entry { | |
| 662 | const res = try self.getOrPut(allocator, key); | |
| 663 | if (!res.found_existing) res.entry.value = value; | |
| 664 | return res.entry; | |
| 665 | } | |
| 588 | 666 | |
| 589 | // Now we have to shift over the following indexes. | |
| 590 | roll_over += 1; | |
| 591 | while (roll_over < header.indexes_len) : (roll_over += 1) { | |
| 592 | const next_index_index = header.constrainIndex(start_index + roll_over); | |
| 593 | const next_index = &indexes[next_index_index]; | |
| 594 | if (next_index.isEmpty() or next_index.distance_from_start_index == 0) { | |
| 595 | index.setEmpty(); | |
| 667 | /// Return true if there is a value associated with key in the map. | |
| 668 | pub fn contains(self: *const Self, key: K) bool { | |
| 669 | return self.get(key) != null; | |
| 670 | } | |
| 671 | ||
| 672 | /// If there is an `Entry` with a matching key, it is deleted from | |
| 673 | /// the hash map, and then returned from this function. | |
| 674 | pub fn remove(self: *Self, key: K) ?Entry { | |
| 675 | if (self.size == 0) return null; | |
| 676 | ||
| 677 | const hash = hashFn(key); | |
| 678 | const mask = self.capacity() - 1; | |
| 679 | const fingerprint = Metadata.takeFingerprint(hash); | |
| 680 | var idx = @truncate(usize, hash & mask); | |
| 681 | ||
| 682 | var metadata = self.metadata.? + idx; | |
| 683 | while (metadata[0].isUsed() or metadata[0].isTombstone()) { | |
| 684 | if (metadata[0].isUsed() and metadata[0].fingerprint == fingerprint) { | |
| 685 | const entry = &self.entries()[idx]; | |
| 686 | if (eqlFn(entry.key, key)) { | |
| 687 | const removed_entry = entry.*; | |
| 688 | metadata[0].remove(); | |
| 689 | entry.* = undefined; | |
| 690 | self.size -= 1; | |
| 596 | 691 | return removed_entry; |
| 597 | 692 | } |
| 598 | index.* = next_index.*; | |
| 599 | index.distance_from_start_index -= 1; | |
| 600 | index = next_index; | |
| 601 | 693 | } |
| 602 | unreachable; | |
| 694 | idx = (idx + 1) & mask; | |
| 695 | metadata = self.metadata.? + idx; | |
| 603 | 696 | } |
| 697 | ||
| 604 | 698 | return null; |
| 605 | 699 | } |
| 606 | 700 | |
| 607 | fn updateEntryIndex( | |
| 608 | self: *Self, | |
| 609 | header: *IndexHeader, | |
| 610 | old_entry_index: usize, | |
| 611 | new_entry_index: usize, | |
| 612 | comptime I: type, | |
| 613 | indexes: []Index(I), | |
| 614 | ) void { | |
| 615 | const h = if (store_hash) self.entries.items[new_entry_index].hash else hash(self.entries.items[new_entry_index].key); | |
| 616 | const start_index = header.constrainIndex(h); | |
| 617 | var roll_over: usize = 0; | |
| 618 | while (roll_over <= header.max_distance_from_start_index) : (roll_over += 1) { | |
| 619 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 620 | const index = &indexes[index_index]; | |
| 621 | if (index.entry_index == old_entry_index) { | |
| 622 | index.entry_index = @intCast(I, new_entry_index); | |
| 623 | return; | |
| 701 | /// Asserts there is an `Entry` with matching key, deletes it from the hash map, | |
| 702 | /// and discards it. | |
| 703 | pub fn removeAssertDiscard(self: *Self, key: K) void { | |
| 704 | assert(self.contains(key)); | |
| 705 | ||
| 706 | const hash = hashFn(key); | |
| 707 | const mask = self.capacity() - 1; | |
| 708 | const fingerprint = Metadata.takeFingerprint(hash); | |
| 709 | var idx = @truncate(usize, hash & mask); | |
| 710 | ||
| 711 | var metadata = self.metadata.? + idx; | |
| 712 | while (metadata[0].isUsed() or metadata[0].isTombstone()) { | |
| 713 | if (metadata[0].isUsed() and metadata[0].fingerprint == fingerprint) { | |
| 714 | const entry = &self.entries()[idx]; | |
| 715 | if (eqlFn(entry.key, key)) { | |
| 716 | metadata[0].remove(); | |
| 717 | entry.* = undefined; | |
| 718 | self.size -= 1; | |
| 719 | return; | |
| 720 | } | |
| 624 | 721 | } |
| 722 | idx = (idx + 1) & mask; | |
| 723 | metadata = self.metadata.? + idx; | |
| 625 | 724 | } |
| 725 | ||
| 626 | 726 | unreachable; |
| 627 | 727 | } |
| 628 | 728 | |
| 629 | /// Must ensureCapacity before calling this. | |
| 630 | fn getOrPutInternal(self: *Self, key: K, header: *IndexHeader, comptime I: type) GetOrPutResult { | |
| 631 | const indexes = header.indexes(I); | |
| 632 | const h = hash(key); | |
| 633 | const start_index = header.constrainIndex(h); | |
| 634 | var roll_over: usize = 0; | |
| 635 | var distance_from_start_index: usize = 0; | |
| 636 | while (roll_over <= header.indexes_len) : ({ | |
| 637 | roll_over += 1; | |
| 638 | distance_from_start_index += 1; | |
| 639 | }) { | |
| 640 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 641 | const index = indexes[index_index]; | |
| 642 | if (index.isEmpty()) { | |
| 643 | indexes[index_index] = .{ | |
| 644 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 645 | .entry_index = @intCast(I, self.entries.items.len), | |
| 646 | }; | |
| 647 | header.maybeBumpMax(distance_from_start_index); | |
| 648 | const new_entry = self.entries.addOneAssumeCapacity(); | |
| 649 | new_entry.* = .{ | |
| 650 | .hash = if (store_hash) h else {}, | |
| 651 | .key = key, | |
| 652 | .value = undefined, | |
| 653 | }; | |
| 654 | return .{ | |
| 655 | .found_existing = false, | |
| 656 | .entry = new_entry, | |
| 657 | }; | |
| 658 | } | |
| 729 | fn initMetadatas(self: *Self) void { | |
| 730 | @memset(@ptrCast([*]u8, self.metadata.?), 0, @sizeOf(Metadata) * self.capacity()); | |
| 731 | } | |
| 659 | 732 | |
| 660 | // This pointer survives the following append because we call | |
| 661 | // entries.ensureCapacity before getOrPutInternal. | |
| 662 | const entry = &self.entries.items[index.entry_index]; | |
| 663 | const hash_match = if (store_hash) h == entry.hash else true; | |
| 664 | if (hash_match and eql(key, entry.key)) { | |
| 665 | return .{ | |
| 666 | .found_existing = true, | |
| 667 | .entry = entry, | |
| 668 | }; | |
| 669 | } | |
| 670 | if (index.distance_from_start_index < distance_from_start_index) { | |
| 671 | // In this case, we did not find the item. We will put a new entry. | |
| 672 | // However, we will use this index for the new entry, and move | |
| 673 | // the previous index down the line, to keep the max_distance_from_start_index | |
| 674 | // as small as possible. | |
| 675 | indexes[index_index] = .{ | |
| 676 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 677 | .entry_index = @intCast(I, self.entries.items.len), | |
| 678 | }; | |
| 679 | header.maybeBumpMax(distance_from_start_index); | |
| 680 | const new_entry = self.entries.addOneAssumeCapacity(); | |
| 681 | new_entry.* = .{ | |
| 682 | .hash = if (store_hash) h else {}, | |
| 683 | .key = key, | |
| 684 | .value = undefined, | |
| 685 | }; | |
| 686 | ||
| 687 | distance_from_start_index = index.distance_from_start_index; | |
| 688 | var prev_entry_index = index.entry_index; | |
| 689 | ||
| 690 | // Find somewhere to put the index we replaced by shifting | |
| 691 | // following indexes backwards. | |
| 692 | roll_over += 1; | |
| 693 | distance_from_start_index += 1; | |
| 694 | while (roll_over < header.indexes_len) : ({ | |
| 695 | roll_over += 1; | |
| 696 | distance_from_start_index += 1; | |
| 697 | }) { | |
| 698 | const next_index_index = header.constrainIndex(start_index + roll_over); | |
| 699 | const next_index = indexes[next_index_index]; | |
| 700 | if (next_index.isEmpty()) { | |
| 701 | header.maybeBumpMax(distance_from_start_index); | |
| 702 | indexes[next_index_index] = .{ | |
| 703 | .entry_index = prev_entry_index, | |
| 704 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 705 | }; | |
| 706 | return .{ | |
| 707 | .found_existing = false, | |
| 708 | .entry = new_entry, | |
| 709 | }; | |
| 710 | } | |
| 711 | if (next_index.distance_from_start_index < distance_from_start_index) { | |
| 712 | header.maybeBumpMax(distance_from_start_index); | |
| 713 | indexes[next_index_index] = .{ | |
| 714 | .entry_index = prev_entry_index, | |
| 715 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 716 | }; | |
| 717 | distance_from_start_index = next_index.distance_from_start_index; | |
| 718 | prev_entry_index = next_index.entry_index; | |
| 719 | } | |
| 720 | } | |
| 721 | unreachable; | |
| 722 | } | |
| 723 | } | |
| 724 | unreachable; | |
| 733 | // This counts the number of occupied slots, used + tombstones, which is | |
| 734 | // what has to stay under the MaxLoadPercentage of capacity. | |
| 735 | fn load(self: *const Self) Size { | |
| 736 | const max_load = (self.capacity() * MaxLoadPercentage) / 100; | |
| 737 | assert(max_load >= self.available); | |
| 738 | return @truncate(Size, max_load - self.available); | |
| 725 | 739 | } |
| 726 | 740 | |
| 727 | fn getInternal(self: Self, key: K, header: *IndexHeader, comptime I: type) ?usize { | |
| 728 | const indexes = header.indexes(I); | |
| 729 | const h = hash(key); | |
| 730 | const start_index = header.constrainIndex(h); | |
| 731 | var roll_over: usize = 0; | |
| 732 | while (roll_over <= header.max_distance_from_start_index) : (roll_over += 1) { | |
| 733 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 734 | const index = indexes[index_index]; | |
| 735 | if (index.isEmpty()) | |
| 736 | return null; | |
| 737 | ||
| 738 | const entry = &self.entries.items[index.entry_index]; | |
| 739 | const hash_match = if (store_hash) h == entry.hash else true; | |
| 740 | if (hash_match and eql(key, entry.key)) | |
| 741 | return index.entry_index; | |
| 741 | fn growIfNeeded(self: *Self, allocator: *Allocator, new_count: Size) !void { | |
| 742 | if (new_count > self.available) { | |
| 743 | try self.grow(allocator, capacityForSize(self.load() + new_count)); | |
| 742 | 744 | } |
| 743 | return null; | |
| 744 | 745 | } |
| 745 | 746 | |
| 746 | fn insertAllEntriesIntoNewHeader(self: *Self, header: *IndexHeader) void { | |
| 747 | switch (header.capacityIndexType()) { | |
| 748 | .u8 => return self.insertAllEntriesIntoNewHeaderGeneric(header, u8), | |
| 749 | .u16 => return self.insertAllEntriesIntoNewHeaderGeneric(header, u16), | |
| 750 | .u32 => return self.insertAllEntriesIntoNewHeaderGeneric(header, u32), | |
| 751 | .usize => return self.insertAllEntriesIntoNewHeaderGeneric(header, usize), | |
| 747 | pub fn clone(self: Self, allocator: *Allocator) !Self { | |
| 748 | var other = Self{}; | |
| 749 | if (self.size == 0) | |
| 750 | return other; | |
| 751 | ||
| 752 | const new_cap = capacityForSize(self.size); | |
| 753 | try other.allocate(allocator, new_cap); | |
| 754 | other.initMetadatas(); | |
| 755 | other.available = @truncate(u32, (new_cap * MaxLoadPercentage) / 100); | |
| 756 | ||
| 757 | var i: Size = 0; | |
| 758 | var metadata = self.metadata.?; | |
| 759 | var entr = self.entries(); | |
| 760 | while (i < self.capacity()) : (i += 1) { | |
| 761 | if (metadata[i].isUsed()) { | |
| 762 | const entry = &entr[i]; | |
| 763 | other.putAssumeCapacityNoClobber(entry.key, entry.value); | |
| 764 | if (other.size == self.size) | |
| 765 | break; | |
| 766 | } | |
| 752 | 767 | } |
| 768 | ||
| 769 | return other; | |
| 753 | 770 | } |
| 754 | 771 | |
| 755 | fn insertAllEntriesIntoNewHeaderGeneric(self: *Self, header: *IndexHeader, comptime I: type) void { | |
| 756 | const indexes = header.indexes(I); | |
| 757 | entry_loop: for (self.entries.items) |entry, i| { | |
| 758 | const h = if (store_hash) entry.hash else hash(entry.key); | |
| 759 | const start_index = header.constrainIndex(h); | |
| 760 | var entry_index = i; | |
| 761 | var roll_over: usize = 0; | |
| 762 | var distance_from_start_index: usize = 0; | |
| 763 | while (roll_over < header.indexes_len) : ({ | |
| 764 | roll_over += 1; | |
| 765 | distance_from_start_index += 1; | |
| 766 | }) { | |
| 767 | const index_index = header.constrainIndex(start_index + roll_over); | |
| 768 | const next_index = indexes[index_index]; | |
| 769 | if (next_index.isEmpty()) { | |
| 770 | header.maybeBumpMax(distance_from_start_index); | |
| 771 | indexes[index_index] = .{ | |
| 772 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 773 | .entry_index = @intCast(I, entry_index), | |
| 774 | }; | |
| 775 | continue :entry_loop; | |
| 776 | } | |
| 777 | if (next_index.distance_from_start_index < distance_from_start_index) { | |
| 778 | header.maybeBumpMax(distance_from_start_index); | |
| 779 | indexes[index_index] = .{ | |
| 780 | .distance_from_start_index = @intCast(I, distance_from_start_index), | |
| 781 | .entry_index = @intCast(I, entry_index), | |
| 782 | }; | |
| 783 | distance_from_start_index = next_index.distance_from_start_index; | |
| 784 | entry_index = next_index.entry_index; | |
| 772 | fn grow(self: *Self, allocator: *Allocator, new_capacity: Size) !void { | |
| 773 | const new_cap = std.math.max(new_capacity, MinimalCapacity); | |
| 774 | assert(new_cap > self.capacity()); | |
| 775 | assert(std.math.isPowerOfTwo(new_cap)); | |
| 776 | ||
| 777 | var map = Self{}; | |
| 778 | defer map.deinit(allocator); | |
| 779 | try map.allocate(allocator, new_cap); | |
| 780 | map.initMetadatas(); | |
| 781 | map.available = @truncate(u32, (new_cap * MaxLoadPercentage) / 100); | |
| 782 | ||
| 783 | if (self.size != 0) { | |
| 784 | const old_capacity = self.capacity(); | |
| 785 | var i: Size = 0; | |
| 786 | var metadata = self.metadata.?; | |
| 787 | var entr = self.entries(); | |
| 788 | while (i < old_capacity) : (i += 1) { | |
| 789 | if (metadata[i].isUsed()) { | |
| 790 | const entry = &entr[i]; | |
| 791 | map.putAssumeCapacityNoClobber(entry.key, entry.value); | |
| 792 | if (map.size == self.size) | |
| 793 | break; | |
| 785 | 794 | } |
| 786 | 795 | } |
| 787 | unreachable; | |
| 788 | 796 | } |
| 797 | ||
| 798 | self.size = 0; | |
| 799 | std.mem.swap(Self, self, &map); | |
| 800 | } | |
| 801 | ||
| 802 | fn allocate(self: *Self, allocator: *Allocator, new_capacity: Size) !void { | |
| 803 | const meta_size = @sizeOf(Header) + new_capacity * @sizeOf(Metadata); | |
| 804 | ||
| 805 | const alignment = @alignOf(Entry) - 1; | |
| 806 | const entries_size = @as(usize, new_capacity) * @sizeOf(Entry) + alignment; | |
| 807 | ||
| 808 | const total_size = meta_size + entries_size; | |
| 809 | ||
| 810 | const slice = try allocator.alignedAlloc(u8, @alignOf(Header), total_size); | |
| 811 | const ptr = @ptrToInt(slice.ptr); | |
| 812 | ||
| 813 | const metadata = ptr + @sizeOf(Header); | |
| 814 | var entry_ptr = ptr + meta_size; | |
| 815 | entry_ptr = (entry_ptr + alignment) & ~@as(usize, alignment); | |
| 816 | assert(entry_ptr + @as(usize, new_capacity) * @sizeOf(Entry) <= ptr + total_size); | |
| 817 | ||
| 818 | const hdr = @intToPtr(*Header, ptr); | |
| 819 | hdr.entries = @intToPtr([*]Entry, entry_ptr); | |
| 820 | hdr.capacity = new_capacity; | |
| 821 | self.metadata = @intToPtr([*]Metadata, metadata); | |
| 789 | 822 | } |
| 790 | 823 | }; |
| 791 | 824 | } |
| 792 | 825 | |
| 793 | const CapacityIndexType = enum { u8, u16, u32, usize }; | |
| 826 | const testing = std.testing; | |
| 827 | const expect = std.testing.expect; | |
| 828 | const expectEqual = std.testing.expectEqual; | |
| 829 | ||
| 830 | test "std.hash_map basic usage" { | |
| 831 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 832 | defer map.deinit(); | |
| 833 | ||
| 834 | const count = 5; | |
| 835 | var i: u32 = 0; | |
| 836 | var total: u32 = 0; | |
| 837 | while (i < count) : (i += 1) { | |
| 838 | try map.put(i, i); | |
| 839 | total += i; | |
| 840 | } | |
| 841 | ||
| 842 | var sum: u32 = 0; | |
| 843 | var it = map.iterator(); | |
| 844 | while (it.next()) |kv| { | |
| 845 | sum += kv.key; | |
| 846 | } | |
| 847 | expect(sum == total); | |
| 848 | ||
| 849 | i = 0; | |
| 850 | sum = 0; | |
| 851 | while (i < count) : (i += 1) { | |
| 852 | expectEqual(map.get(i).?, i); | |
| 853 | sum += map.get(i).?; | |
| 854 | } | |
| 855 | expectEqual(total, sum); | |
| 856 | } | |
| 857 | ||
| 858 | test "std.hash_map ensureCapacity" { | |
| 859 | var map = AutoHashMap(i32, i32).init(std.testing.allocator); | |
| 860 | defer map.deinit(); | |
| 794 | 861 | |
| 795 | fn capacityIndexType(indexes_len: usize) CapacityIndexType { | |
| 796 | if (indexes_len < math.maxInt(u8)) | |
| 797 | return .u8; | |
| 798 | if (indexes_len < math.maxInt(u16)) | |
| 799 | return .u16; | |
| 800 | if (indexes_len < math.maxInt(u32)) | |
| 801 | return .u32; | |
| 802 | return .usize; | |
| 862 | try map.ensureCapacity(20); | |
| 863 | const initial_capacity = map.capacity(); | |
| 864 | testing.expect(initial_capacity >= 20); | |
| 865 | var i: i32 = 0; | |
| 866 | while (i < 20) : (i += 1) { | |
| 867 | testing.expect(map.fetchPutAssumeCapacity(i, i + 10) == null); | |
| 868 | } | |
| 869 | // shouldn't resize from putAssumeCapacity | |
| 870 | testing.expect(initial_capacity == map.capacity()); | |
| 803 | 871 | } |
| 804 | 872 | |
| 805 | fn capacityIndexSize(indexes_len: usize) usize { | |
| 806 | switch (capacityIndexType(indexes_len)) { | |
| 807 | .u8 => return @sizeOf(Index(u8)), | |
| 808 | .u16 => return @sizeOf(Index(u16)), | |
| 809 | .u32 => return @sizeOf(Index(u32)), | |
| 810 | .usize => return @sizeOf(Index(usize)), | |
| 873 | test "std.hash_map ensureCapacity with tombstones" { | |
| 874 | var map = AutoHashMap(i32, i32).init(std.testing.allocator); | |
| 875 | defer map.deinit(); | |
| 876 | ||
| 877 | var i: i32 = 0; | |
| 878 | while (i < 100) : (i += 1) { | |
| 879 | try map.ensureCapacity(@intCast(u32, map.count() + 1)); | |
| 880 | map.putAssumeCapacity(i, i); | |
| 881 | // Remove to create tombstones that still count as load in the hashmap. | |
| 882 | _ = map.remove(i); | |
| 811 | 883 | } |
| 812 | 884 | } |
| 813 | 885 | |
| 814 | fn Index(comptime I: type) type { | |
| 815 | return extern struct { | |
| 816 | entry_index: I, | |
| 817 | distance_from_start_index: I, | |
| 886 | test "std.hash_map clearRetainingCapacity" { | |
| 887 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 888 | defer map.deinit(); | |
| 889 | ||
| 890 | map.clearRetainingCapacity(); | |
| 818 | 891 | |
| 819 | const Self = @This(); | |
| 892 | try map.put(1, 1); | |
| 893 | expectEqual(map.get(1).?, 1); | |
| 894 | expectEqual(map.count(), 1); | |
| 820 | 895 | |
| 821 | const empty = Self{ | |
| 822 | .entry_index = math.maxInt(I), | |
| 823 | .distance_from_start_index = undefined, | |
| 824 | }; | |
| 896 | const cap = map.capacity(); | |
| 897 | expect(cap > 0); | |
| 898 | ||
| 899 | map.clearRetainingCapacity(); | |
| 900 | map.clearRetainingCapacity(); | |
| 901 | expectEqual(map.count(), 0); | |
| 902 | expectEqual(map.capacity(), cap); | |
| 903 | expect(!map.contains(1)); | |
| 904 | } | |
| 905 | ||
| 906 | test "std.hash_map grow" { | |
| 907 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 908 | defer map.deinit(); | |
| 825 | 909 | |
| 826 | fn isEmpty(idx: Self) bool { | |
| 827 | return idx.entry_index == math.maxInt(I); | |
| 910 | const growTo = 12456; | |
| 911 | ||
| 912 | var i: u32 = 0; | |
| 913 | while (i < growTo) : (i += 1) { | |
| 914 | try map.put(i, i); | |
| 915 | } | |
| 916 | expectEqual(map.count(), growTo); | |
| 917 | ||
| 918 | i = 0; | |
| 919 | var it = map.iterator(); | |
| 920 | while (it.next()) |kv| { | |
| 921 | expectEqual(kv.key, kv.value); | |
| 922 | i += 1; | |
| 923 | } | |
| 924 | expectEqual(i, growTo); | |
| 925 | ||
| 926 | i = 0; | |
| 927 | while (i < growTo) : (i += 1) { | |
| 928 | expectEqual(map.get(i).?, i); | |
| 929 | } | |
| 930 | } | |
| 931 | ||
| 932 | test "std.hash_map clone" { | |
| 933 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 934 | defer map.deinit(); | |
| 935 | ||
| 936 | var a = try map.clone(); | |
| 937 | defer a.deinit(); | |
| 938 | ||
| 939 | expectEqual(a.count(), 0); | |
| 940 | ||
| 941 | try a.put(1, 1); | |
| 942 | try a.put(2, 2); | |
| 943 | try a.put(3, 3); | |
| 944 | ||
| 945 | var b = try a.clone(); | |
| 946 | defer b.deinit(); | |
| 947 | ||
| 948 | expectEqual(b.count(), 3); | |
| 949 | expectEqual(b.get(1), 1); | |
| 950 | expectEqual(b.get(2), 2); | |
| 951 | expectEqual(b.get(3), 3); | |
| 952 | } | |
| 953 | ||
| 954 | test "std.hash_map ensureCapacity with existing elements" { | |
| 955 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 956 | defer map.deinit(); | |
| 957 | ||
| 958 | try map.put(0, 0); | |
| 959 | expectEqual(map.count(), 1); | |
| 960 | expectEqual(map.capacity(), @TypeOf(map).Unmanaged.MinimalCapacity); | |
| 961 | ||
| 962 | try map.ensureCapacity(65); | |
| 963 | expectEqual(map.count(), 1); | |
| 964 | expectEqual(map.capacity(), 128); | |
| 965 | } | |
| 966 | ||
| 967 | test "std.hash_map ensureCapacity satisfies max load factor" { | |
| 968 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 969 | defer map.deinit(); | |
| 970 | ||
| 971 | try map.ensureCapacity(127); | |
| 972 | expectEqual(map.capacity(), 256); | |
| 973 | } | |
| 974 | ||
| 975 | test "std.hash_map remove" { | |
| 976 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 977 | defer map.deinit(); | |
| 978 | ||
| 979 | var i: u32 = 0; | |
| 980 | while (i < 16) : (i += 1) { | |
| 981 | try map.put(i, i); | |
| 982 | } | |
| 983 | ||
| 984 | i = 0; | |
| 985 | while (i < 16) : (i += 1) { | |
| 986 | if (i % 3 == 0) { | |
| 987 | _ = map.remove(i); | |
| 828 | 988 | } |
| 989 | } | |
| 990 | expectEqual(map.count(), 10); | |
| 991 | var it = map.iterator(); | |
| 992 | while (it.next()) |kv| { | |
| 993 | expectEqual(kv.key, kv.value); | |
| 994 | expect(kv.key % 3 != 0); | |
| 995 | } | |
| 829 | 996 | |
| 830 | fn setEmpty(idx: *Self) void { | |
| 831 | idx.entry_index = math.maxInt(I); | |
| 997 | i = 0; | |
| 998 | while (i < 16) : (i += 1) { | |
| 999 | if (i % 3 == 0) { | |
| 1000 | expect(!map.contains(i)); | |
| 1001 | } else { | |
| 1002 | expectEqual(map.get(i).?, i); | |
| 832 | 1003 | } |
| 833 | }; | |
| 1004 | } | |
| 834 | 1005 | } |
| 835 | 1006 | |
| 836 | /// This struct is trailed by an array of `Index(I)`, where `I` | |
| 837 | /// and the array length are determined by `indexes_len`. | |
| 838 | const IndexHeader = struct { | |
| 839 | max_distance_from_start_index: usize, | |
| 840 | indexes_len: usize, | |
| 1007 | test "std.hash_map reverse removes" { | |
| 1008 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 1009 | defer map.deinit(); | |
| 841 | 1010 | |
| 842 | fn constrainIndex(header: IndexHeader, i: usize) usize { | |
| 843 | // This is an optimization for modulo of power of two integers; | |
| 844 | // it requires `indexes_len` to always be a power of two. | |
| 845 | return i & (header.indexes_len - 1); | |
| 1011 | var i: u32 = 0; | |
| 1012 | while (i < 16) : (i += 1) { | |
| 1013 | try map.putNoClobber(i, i); | |
| 846 | 1014 | } |
| 847 | 1015 | |
| 848 | fn indexes(header: *IndexHeader, comptime I: type) []Index(I) { | |
| 849 | const start = @ptrCast([*]Index(I), @ptrCast([*]u8, header) + @sizeOf(IndexHeader)); | |
| 850 | return start[0..header.indexes_len]; | |
| 1016 | i = 16; | |
| 1017 | while (i > 0) : (i -= 1) { | |
| 1018 | _ = map.remove(i - 1); | |
| 1019 | expect(!map.contains(i - 1)); | |
| 1020 | var j: u32 = 0; | |
| 1021 | while (j < i - 1) : (j += 1) { | |
| 1022 | expectEqual(map.get(j).?, j); | |
| 1023 | } | |
| 851 | 1024 | } |
| 852 | 1025 | |
| 853 | fn capacityIndexType(header: IndexHeader) CapacityIndexType { | |
| 854 | return hash_map.capacityIndexType(header.indexes_len); | |
| 1026 | expectEqual(map.count(), 0); | |
| 1027 | } | |
| 1028 | ||
| 1029 | test "std.hash_map multiple removes on same metadata" { | |
| 1030 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 1031 | defer map.deinit(); | |
| 1032 | ||
| 1033 | var i: u32 = 0; | |
| 1034 | while (i < 16) : (i += 1) { | |
| 1035 | try map.put(i, i); | |
| 855 | 1036 | } |
| 856 | 1037 | |
| 857 | fn maybeBumpMax(header: *IndexHeader, distance_from_start_index: usize) void { | |
| 858 | if (distance_from_start_index > header.max_distance_from_start_index) { | |
| 859 | header.max_distance_from_start_index = distance_from_start_index; | |
| 1038 | _ = map.remove(7); | |
| 1039 | _ = map.remove(15); | |
| 1040 | _ = map.remove(14); | |
| 1041 | _ = map.remove(13); | |
| 1042 | expect(!map.contains(7)); | |
| 1043 | expect(!map.contains(15)); | |
| 1044 | expect(!map.contains(14)); | |
| 1045 | expect(!map.contains(13)); | |
| 1046 | ||
| 1047 | i = 0; | |
| 1048 | while (i < 13) : (i += 1) { | |
| 1049 | if (i == 7) { | |
| 1050 | expect(!map.contains(i)); | |
| 1051 | } else { | |
| 1052 | expectEqual(map.get(i).?, i); | |
| 860 | 1053 | } |
| 861 | 1054 | } |
| 862 | 1055 | |
| 863 | fn alloc(allocator: *Allocator, len: usize) !*IndexHeader { | |
| 864 | const index_size = hash_map.capacityIndexSize(len); | |
| 865 | const nbytes = @sizeOf(IndexHeader) + index_size * len; | |
| 866 | const bytes = try allocator.allocAdvanced(u8, @alignOf(IndexHeader), nbytes, .exact); | |
| 867 | @memset(bytes.ptr + @sizeOf(IndexHeader), 0xff, bytes.len - @sizeOf(IndexHeader)); | |
| 868 | const result = @ptrCast(*IndexHeader, bytes.ptr); | |
| 869 | result.* = .{ | |
| 870 | .max_distance_from_start_index = 0, | |
| 871 | .indexes_len = len, | |
| 872 | }; | |
| 873 | return result; | |
| 1056 | try map.put(15, 15); | |
| 1057 | try map.put(13, 13); | |
| 1058 | try map.put(14, 14); | |
| 1059 | try map.put(7, 7); | |
| 1060 | i = 0; | |
| 1061 | while (i < 16) : (i += 1) { | |
| 1062 | expectEqual(map.get(i).?, i); | |
| 1063 | } | |
| 1064 | } | |
| 1065 | ||
| 1066 | test "std.hash_map put and remove loop in random order" { | |
| 1067 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 1068 | defer map.deinit(); | |
| 1069 | ||
| 1070 | var keys = std.ArrayList(u32).init(std.testing.allocator); | |
| 1071 | defer keys.deinit(); | |
| 1072 | ||
| 1073 | const size = 32; | |
| 1074 | const iterations = 100; | |
| 1075 | ||
| 1076 | var i: u32 = 0; | |
| 1077 | while (i < size) : (i += 1) { | |
| 1078 | try keys.append(i); | |
| 1079 | } | |
| 1080 | var rng = std.rand.DefaultPrng.init(0); | |
| 1081 | ||
| 1082 | while (i < iterations) : (i += 1) { | |
| 1083 | std.rand.Random.shuffle(&rng.random, u32, keys.items); | |
| 1084 | ||
| 1085 | for (keys.items) |key| { | |
| 1086 | try map.put(key, key); | |
| 1087 | } | |
| 1088 | expectEqual(map.count(), size); | |
| 1089 | ||
| 1090 | for (keys.items) |key| { | |
| 1091 | _ = map.remove(key); | |
| 1092 | } | |
| 1093 | expectEqual(map.count(), 0); | |
| 1094 | } | |
| 1095 | } | |
| 1096 | ||
| 1097 | test "std.hash_map remove one million elements in random order" { | |
| 1098 | const Map = AutoHashMap(u32, u32); | |
| 1099 | const n = 1000 * 1000; | |
| 1100 | var map = Map.init(std.heap.page_allocator); | |
| 1101 | defer map.deinit(); | |
| 1102 | ||
| 1103 | var keys = std.ArrayList(u32).init(std.heap.page_allocator); | |
| 1104 | defer keys.deinit(); | |
| 1105 | ||
| 1106 | var i: u32 = 0; | |
| 1107 | while (i < n) : (i += 1) { | |
| 1108 | keys.append(i) catch unreachable; | |
| 1109 | } | |
| 1110 | ||
| 1111 | var rng = std.rand.DefaultPrng.init(0); | |
| 1112 | std.rand.Random.shuffle(&rng.random, u32, keys.items); | |
| 1113 | ||
| 1114 | for (keys.items) |key| { | |
| 1115 | map.put(key, key) catch unreachable; | |
| 1116 | } | |
| 1117 | ||
| 1118 | std.rand.Random.shuffle(&rng.random, u32, keys.items); | |
| 1119 | i = 0; | |
| 1120 | while (i < n) : (i += 1) { | |
| 1121 | const key = keys.items[i]; | |
| 1122 | _ = map.remove(key); | |
| 1123 | } | |
| 1124 | } | |
| 1125 | ||
| 1126 | test "std.hash_map put" { | |
| 1127 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 1128 | defer map.deinit(); | |
| 1129 | ||
| 1130 | var i: u32 = 0; | |
| 1131 | while (i < 16) : (i += 1) { | |
| 1132 | _ = try map.put(i, i); | |
| 1133 | } | |
| 1134 | ||
| 1135 | i = 0; | |
| 1136 | while (i < 16) : (i += 1) { | |
| 1137 | expectEqual(map.get(i).?, i); | |
| 1138 | } | |
| 1139 | ||
| 1140 | i = 0; | |
| 1141 | while (i < 16) : (i += 1) { | |
| 1142 | try map.put(i, i * 16 + 1); | |
| 1143 | } | |
| 1144 | ||
| 1145 | i = 0; | |
| 1146 | while (i < 16) : (i += 1) { | |
| 1147 | expectEqual(map.get(i).?, i * 16 + 1); | |
| 1148 | } | |
| 1149 | } | |
| 1150 | ||
| 1151 | test "std.hash_map getOrPut" { | |
| 1152 | var map = AutoHashMap(u32, u32).init(std.testing.allocator); | |
| 1153 | defer map.deinit(); | |
| 1154 | ||
| 1155 | var i: u32 = 0; | |
| 1156 | while (i < 10) : (i += 1) { | |
| 1157 | try map.put(i * 2, 2); | |
| 874 | 1158 | } |
| 875 | 1159 | |
| 876 | fn free(header: *IndexHeader, allocator: *Allocator) void { | |
| 877 | const index_size = hash_map.capacityIndexSize(header.indexes_len); | |
| 878 | const ptr = @ptrCast([*]u8, header); | |
| 879 | const slice = ptr[0 .. @sizeOf(IndexHeader) + header.indexes_len * index_size]; | |
| 880 | allocator.free(slice); | |
| 1160 | i = 0; | |
| 1161 | while (i < 20) : (i += 1) { | |
| 1162 | var n = try map.getOrPutValue(i, 1); | |
| 881 | 1163 | } |
| 882 | }; | |
| 883 | 1164 | |
| 884 | test "basic hash map usage" { | |
| 1165 | i = 0; | |
| 1166 | var sum = i; | |
| 1167 | while (i < 20) : (i += 1) { | |
| 1168 | sum += map.get(i).?; | |
| 1169 | } | |
| 1170 | ||
| 1171 | expectEqual(sum, 30); | |
| 1172 | } | |
| 1173 | ||
| 1174 | test "std.hash_map basic hash map usage" { | |
| 885 | 1175 | var map = AutoHashMap(i32, i32).init(std.testing.allocator); |
| 886 | 1176 | defer map.deinit(); |
| 887 | 1177 | |
| ... | ... | @@ -925,85 +1215,10 @@ test "basic hash map usage" { |
| 925 | 1215 | map.removeAssertDiscard(3); |
| 926 | 1216 | } |
| 927 | 1217 | |
| 928 | test "iterator hash map" { | |
| 929 | // https://github.com/ziglang/zig/issues/5127 | |
| 930 | if (std.Target.current.cpu.arch == .mips) return error.SkipZigTest; | |
| 931 | ||
| 932 | var reset_map = AutoHashMap(i32, i32).init(std.testing.allocator); | |
| 933 | defer reset_map.deinit(); | |
| 934 | ||
| 935 | // test ensureCapacity with a 0 parameter | |
| 936 | try reset_map.ensureCapacity(0); | |
| 937 | ||
| 938 | try reset_map.putNoClobber(0, 11); | |
| 939 | try reset_map.putNoClobber(1, 22); | |
| 940 | try reset_map.putNoClobber(2, 33); | |
| 941 | ||
| 942 | var keys = [_]i32{ | |
| 943 | 0, 2, 1, | |
| 944 | }; | |
| 945 | ||
| 946 | var values = [_]i32{ | |
| 947 | 11, 33, 22, | |
| 948 | }; | |
| 949 | ||
| 950 | var buffer = [_]i32{ | |
| 951 | 0, 0, 0, | |
| 952 | }; | |
| 953 | ||
| 954 | var it = reset_map.iterator(); | |
| 955 | const first_entry = it.next().?; | |
| 956 | it.reset(); | |
| 957 | ||
| 958 | var count: usize = 0; | |
| 959 | while (it.next()) |entry| : (count += 1) { | |
| 960 | buffer[@intCast(usize, entry.key)] = entry.value; | |
| 961 | } | |
| 962 | testing.expect(count == 3); | |
| 963 | testing.expect(it.next() == null); | |
| 964 | ||
| 965 | for (buffer) |v, i| { | |
| 966 | testing.expect(buffer[@intCast(usize, keys[i])] == values[i]); | |
| 967 | } | |
| 968 | ||
| 969 | it.reset(); | |
| 970 | count = 0; | |
| 971 | while (it.next()) |entry| { | |
| 972 | buffer[@intCast(usize, entry.key)] = entry.value; | |
| 973 | count += 1; | |
| 974 | if (count >= 2) break; | |
| 975 | } | |
| 976 | ||
| 977 | for (buffer[0..2]) |v, i| { | |
| 978 | testing.expect(buffer[@intCast(usize, keys[i])] == values[i]); | |
| 979 | } | |
| 980 | ||
| 981 | it.reset(); | |
| 982 | var entry = it.next().?; | |
| 983 | testing.expect(entry.key == first_entry.key); | |
| 984 | testing.expect(entry.value == first_entry.value); | |
| 985 | } | |
| 986 | ||
| 987 | test "ensure capacity" { | |
| 988 | var map = AutoHashMap(i32, i32).init(std.testing.allocator); | |
| 989 | defer map.deinit(); | |
| 990 | ||
| 991 | try map.ensureCapacity(20); | |
| 992 | const initial_capacity = map.capacity(); | |
| 993 | testing.expect(initial_capacity >= 20); | |
| 994 | var i: i32 = 0; | |
| 995 | while (i < 20) : (i += 1) { | |
| 996 | testing.expect(map.fetchPutAssumeCapacity(i, i + 10) == null); | |
| 997 | } | |
| 998 | // shouldn't resize from putAssumeCapacity | |
| 999 | testing.expect(initial_capacity == map.capacity()); | |
| 1000 | } | |
| 1001 | ||
| 1002 | test "clone" { | |
| 1218 | test "std.hash_map clone" { | |
| 1003 | 1219 | var original = AutoHashMap(i32, i32).init(std.testing.allocator); |
| 1004 | 1220 | defer original.deinit(); |
| 1005 | 1221 | |
| 1006 | // put more than `linear_scan_max` so we can test that the index header is properly cloned | |
| 1007 | 1222 | var i: u8 = 0; |
| 1008 | 1223 | while (i < 10) : (i += 1) { |
| 1009 | 1224 | try original.putNoClobber(i, i * 10); |
| ... | ... | @@ -1017,69 +1232,3 @@ test "clone" { |
| 1017 | 1232 | testing.expect(copy.get(i).? == i * 10); |
| 1018 | 1233 | } |
| 1019 | 1234 | } |
| 1020 | ||
| 1021 | pub fn getHashPtrAddrFn(comptime K: type) (fn (K) u32) { | |
| 1022 | return struct { | |
| 1023 | fn hash(key: K) u32 { | |
| 1024 | return getAutoHashFn(usize)(@ptrToInt(key)); | |
| 1025 | } | |
| 1026 | }.hash; | |
| 1027 | } | |
| 1028 | ||
| 1029 | pub fn getTrivialEqlFn(comptime K: type) (fn (K, K) bool) { | |
| 1030 | return struct { | |
| 1031 | fn eql(a: K, b: K) bool { | |
| 1032 | return a == b; | |
| 1033 | } | |
| 1034 | }.eql; | |
| 1035 | } | |
| 1036 | ||
| 1037 | pub fn getAutoHashFn(comptime K: type) (fn (K) u32) { | |
| 1038 | return struct { | |
| 1039 | fn hash(key: K) u32 { | |
| 1040 | if (comptime trait.hasUniqueRepresentation(K)) { | |
| 1041 | return @truncate(u32, Wyhash.hash(0, std.mem.asBytes(&key))); | |
| 1042 | } else { | |
| 1043 | var hasher = Wyhash.init(0); | |
| 1044 | autoHash(&hasher, key); | |
| 1045 | return @truncate(u32, hasher.final()); | |
| 1046 | } | |
| 1047 | } | |
| 1048 | }.hash; | |
| 1049 | } | |
| 1050 | ||
| 1051 | pub fn getAutoEqlFn(comptime K: type) (fn (K, K) bool) { | |
| 1052 | return struct { | |
| 1053 | fn eql(a: K, b: K) bool { | |
| 1054 | return meta.eql(a, b); | |
| 1055 | } | |
| 1056 | }.eql; | |
| 1057 | } | |
| 1058 | ||
| 1059 | pub fn autoEqlIsCheap(comptime K: type) bool { | |
| 1060 | return switch (@typeInfo(K)) { | |
| 1061 | .Bool, | |
| 1062 | .Int, | |
| 1063 | .Float, | |
| 1064 | .Pointer, | |
| 1065 | .ComptimeFloat, | |
| 1066 | .ComptimeInt, | |
| 1067 | .Enum, | |
| 1068 | .Fn, | |
| 1069 | .ErrorSet, | |
| 1070 | .AnyFrame, | |
| 1071 | .EnumLiteral, | |
| 1072 | => true, | |
| 1073 | else => false, | |
| 1074 | }; | |
| 1075 | } | |
| 1076 | ||
| 1077 | pub fn getAutoHashStratFn(comptime K: type, comptime strategy: std.hash.Strategy) (fn (K) u32) { | |
| 1078 | return struct { | |
| 1079 | fn hash(key: K) u32 { | |
| 1080 | var hasher = Wyhash.init(0); | |
| 1081 | std.hash.autoHashStrat(&hasher, key, strategy); | |
| 1082 | return @truncate(u32, hasher.final()); | |
| 1083 | } | |
| 1084 | }.hash; | |
| 1085 | } |
lib/std/heap/general_purpose_allocator.zig+3-2| ... | ... | @@ -325,7 +325,8 @@ pub fn GeneralPurposeAllocator(comptime config: Config) type { |
| 325 | 325 | break; |
| 326 | 326 | } |
| 327 | 327 | } |
| 328 | for (self.large_allocations.items()) |*large_alloc| { | |
| 328 | var it = self.large_allocations.iterator(); | |
| 329 | while (it.next()) |large_alloc| { | |
| 329 | 330 | log.err("Memory leak detected: {}", .{large_alloc.value.getStackTrace()}); |
| 330 | 331 | leaks = true; |
| 331 | 332 | } |
| ... | ... | @@ -584,7 +585,7 @@ pub fn GeneralPurposeAllocator(comptime config: Config) type { |
| 584 | 585 | if (new_aligned_size > largest_bucket_object_size) { |
| 585 | 586 | try self.large_allocations.ensureCapacity( |
| 586 | 587 | self.backing_allocator, |
| 587 | self.large_allocations.entries.items.len + 1, | |
| 588 | self.large_allocations.count() + 1, | |
| 588 | 589 | ); |
| 589 | 590 | |
| 590 | 591 | const slice = try self.backing_allocator.allocFn(self.backing_allocator, len, ptr_align, len_align, ret_addr); |
lib/std/http/headers.zig+5-4| ... | ... | @@ -123,9 +123,9 @@ pub const Headers = struct { |
| 123 | 123 | |
| 124 | 124 | pub fn deinit(self: *Self) void { |
| 125 | 125 | { |
| 126 | for (self.index.items()) |*entry| { | |
| 127 | const dex = &entry.value; | |
| 128 | dex.deinit(self.allocator); | |
| 126 | var it = self.index.iterator(); | |
| 127 | while (it.next()) |entry| { | |
| 128 | entry.value.deinit(self.allocator); | |
| 129 | 129 | self.allocator.free(entry.key); |
| 130 | 130 | } |
| 131 | 131 | self.index.deinit(self.allocator); |
| ... | ... | @@ -333,7 +333,8 @@ pub const Headers = struct { |
| 333 | 333 | |
| 334 | 334 | fn rebuildIndex(self: *Self) void { |
| 335 | 335 | // clear out the indexes |
| 336 | for (self.index.items()) |*entry| { | |
| 336 | var it = self.index.iterator(); | |
| 337 | while (it.next()) |entry| { | |
| 337 | 338 | entry.value.shrinkRetainingCapacity(0); |
| 338 | 339 | } |
| 339 | 340 | // fill up indexes again; we know capacity is fine from before |
lib/std/std.zig+7| ... | ... | @@ -3,11 +3,15 @@ |
| 3 | 3 | // This file is part of [zig](https://ziglang.org/), which is MIT licensed. |
| 4 | 4 | // The MIT license requires this copyright notice to be included in all copies |
| 5 | 5 | // and substantial portions of the software. |
| 6 | pub const ArrayHashMap = array_hash_map.ArrayHashMap; | |
| 7 | pub const ArrayHashMapUnmanaged = array_hash_map.ArrayHashMapUnmanaged; | |
| 6 | 8 | pub const ArrayList = @import("array_list.zig").ArrayList; |
| 7 | 9 | pub const ArrayListAligned = @import("array_list.zig").ArrayListAligned; |
| 8 | 10 | pub const ArrayListAlignedUnmanaged = @import("array_list.zig").ArrayListAlignedUnmanaged; |
| 9 | 11 | pub const ArrayListSentineled = @import("array_list_sentineled.zig").ArrayListSentineled; |
| 10 | 12 | pub const ArrayListUnmanaged = @import("array_list.zig").ArrayListUnmanaged; |
| 13 | pub const AutoArrayHashMap = array_hash_map.AutoArrayHashMap; | |
| 14 | pub const AutoArrayHashMapUnmanaged = array_hash_map.AutoArrayHashMapUnmanaged; | |
| 11 | 15 | pub const AutoHashMap = hash_map.AutoHashMap; |
| 12 | 16 | pub const AutoHashMapUnmanaged = hash_map.AutoHashMapUnmanaged; |
| 13 | 17 | pub const BloomFilter = @import("bloom_filter.zig").BloomFilter; |
| ... | ... | @@ -32,10 +36,13 @@ pub const SinglyLinkedList = @import("linked_list.zig").SinglyLinkedList; |
| 32 | 36 | pub const SpinLock = @import("spinlock.zig").SpinLock; |
| 33 | 37 | pub const StringHashMap = hash_map.StringHashMap; |
| 34 | 38 | pub const StringHashMapUnmanaged = hash_map.StringHashMapUnmanaged; |
| 39 | pub const StringArrayHashMap = array_hash_map.StringArrayHashMap; | |
| 40 | pub const StringArrayHashMapUnmanaged = array_hash_map.StringArrayHashMapUnmanaged; | |
| 35 | 41 | pub const TailQueue = @import("linked_list.zig").TailQueue; |
| 36 | 42 | pub const Target = @import("target.zig").Target; |
| 37 | 43 | pub const Thread = @import("thread.zig").Thread; |
| 38 | 44 | |
| 45 | pub const array_hash_map = @import("array_hash_map.zig"); | |
| 39 | 46 | pub const atomic = @import("atomic.zig"); |
| 40 | 47 | pub const base64 = @import("base64.zig"); |
| 41 | 48 | pub const build = @import("build.zig"); |
src-self-hosted/Module.zig+14-13| ... | ... | @@ -36,17 +36,17 @@ bin_file_path: []const u8, |
| 36 | 36 | /// It's rare for a decl to be exported, so we save memory by having a sparse map of |
| 37 | 37 | /// Decl pointers to details about them being exported. |
| 38 | 38 | /// The Export memory is owned by the `export_owners` table; the slice itself is owned by this table. |
| 39 | decl_exports: std.AutoHashMapUnmanaged(*Decl, []*Export) = .{}, | |
| 39 | decl_exports: std.AutoArrayHashMapUnmanaged(*Decl, []*Export) = .{}, | |
| 40 | 40 | /// We track which export is associated with the given symbol name for quick |
| 41 | 41 | /// detection of symbol collisions. |
| 42 | symbol_exports: std.StringHashMapUnmanaged(*Export) = .{}, | |
| 42 | symbol_exports: std.StringArrayHashMapUnmanaged(*Export) = .{}, | |
| 43 | 43 | /// This models the Decls that perform exports, so that `decl_exports` can be updated when a Decl |
| 44 | 44 | /// is modified. Note that the key of this table is not the Decl being exported, but the Decl that |
| 45 | 45 | /// is performing the export of another Decl. |
| 46 | 46 | /// This table owns the Export memory. |
| 47 | export_owners: std.AutoHashMapUnmanaged(*Decl, []*Export) = .{}, | |
| 47 | export_owners: std.AutoArrayHashMapUnmanaged(*Decl, []*Export) = .{}, | |
| 48 | 48 | /// Maps fully qualified namespaced names to the Decl struct for them. |
| 49 | decl_table: std.HashMapUnmanaged(Scope.NameHash, *Decl, Scope.name_hash_hash, Scope.name_hash_eql, false) = .{}, | |
| 49 | decl_table: std.ArrayHashMapUnmanaged(Scope.NameHash, *Decl, Scope.name_hash_hash, Scope.name_hash_eql, false) = .{}, | |
| 50 | 50 | |
| 51 | 51 | link_error_flags: link.File.ErrorFlags = .{}, |
| 52 | 52 | |
| ... | ... | @@ -57,13 +57,13 @@ work_queue: std.fifo.LinearFifo(WorkItem, .Dynamic), |
| 57 | 57 | /// The ErrorMsg memory is owned by the decl, using Module's allocator. |
| 58 | 58 | /// Note that a Decl can succeed but the Fn it represents can fail. In this case, |
| 59 | 59 | /// a Decl can have a failed_decls entry but have analysis status of success. |
| 60 | failed_decls: std.AutoHashMapUnmanaged(*Decl, *ErrorMsg) = .{}, | |
| 60 | failed_decls: std.AutoArrayHashMapUnmanaged(*Decl, *ErrorMsg) = .{}, | |
| 61 | 61 | /// Using a map here for consistency with the other fields here. |
| 62 | 62 | /// The ErrorMsg memory is owned by the `Scope`, using Module's allocator. |
| 63 | failed_files: std.AutoHashMapUnmanaged(*Scope, *ErrorMsg) = .{}, | |
| 63 | failed_files: std.AutoArrayHashMapUnmanaged(*Scope, *ErrorMsg) = .{}, | |
| 64 | 64 | /// Using a map here for consistency with the other fields here. |
| 65 | 65 | /// The ErrorMsg memory is owned by the `Export`, using Module's allocator. |
| 66 | failed_exports: std.AutoHashMapUnmanaged(*Export, *ErrorMsg) = .{}, | |
| 66 | failed_exports: std.AutoArrayHashMapUnmanaged(*Export, *ErrorMsg) = .{}, | |
| 67 | 67 | |
| 68 | 68 | /// Incrementing integer used to compare against the corresponding Decl |
| 69 | 69 | /// field to determine whether a Decl's status applies to an ongoing update, or a |
| ... | ... | @@ -201,9 +201,9 @@ pub const Decl = struct { |
| 201 | 201 | /// typed_value may need to be regenerated. |
| 202 | 202 | dependencies: DepsTable = .{}, |
| 203 | 203 | |
| 204 | /// The reason this is not `std.AutoHashMapUnmanaged` is a workaround for | |
| 204 | /// The reason this is not `std.AutoArrayHashMapUnmanaged` is a workaround for | |
| 205 | 205 | /// stage1 compiler giving me: `error: struct 'Module.Decl' depends on itself` |
| 206 | pub const DepsTable = std.HashMapUnmanaged(*Decl, void, std.hash_map.getAutoHashFn(*Decl), std.hash_map.getAutoEqlFn(*Decl), false); | |
| 206 | pub const DepsTable = std.ArrayHashMapUnmanaged(*Decl, void, std.array_hash_map.getAutoHashFn(*Decl), std.array_hash_map.getAutoEqlFn(*Decl), false); | |
| 207 | 207 | |
| 208 | 208 | pub fn destroy(self: *Decl, gpa: *Allocator) void { |
| 209 | 209 | gpa.free(mem.spanZ(self.name)); |
| ... | ... | @@ -933,7 +933,8 @@ pub fn deinit(self: *Module) void { |
| 933 | 933 | self.symbol_exports.deinit(gpa); |
| 934 | 934 | self.root_scope.destroy(gpa); |
| 935 | 935 | |
| 936 | for (self.global_error_set.items()) |entry| { | |
| 936 | var it = self.global_error_set.iterator(); | |
| 937 | while (it.next()) |entry| { | |
| 937 | 938 | gpa.free(entry.key); |
| 938 | 939 | } |
| 939 | 940 | self.global_error_set.deinit(gpa); |
| ... | ... | @@ -1756,7 +1757,7 @@ fn analyzeRootSrcFile(self: *Module, root_scope: *Scope.File) !void { |
| 1756 | 1757 | |
| 1757 | 1758 | // Keep track of the decls that we expect to see in this file so that |
| 1758 | 1759 | // we know which ones have been deleted. |
| 1759 | var deleted_decls = std.AutoHashMap(*Decl, void).init(self.gpa); | |
| 1760 | var deleted_decls = std.AutoArrayHashMap(*Decl, void).init(self.gpa); | |
| 1760 | 1761 | defer deleted_decls.deinit(); |
| 1761 | 1762 | try deleted_decls.ensureCapacity(root_scope.decls.items.len); |
| 1762 | 1763 | for (root_scope.decls.items) |file_decl| { |
| ... | ... | @@ -1877,7 +1878,7 @@ fn analyzeRootZIRModule(self: *Module, root_scope: *Scope.ZIRModule) !void { |
| 1877 | 1878 | |
| 1878 | 1879 | // Keep track of the decls that we expect to see in this file so that |
| 1879 | 1880 | // we know which ones have been deleted. |
| 1880 | var deleted_decls = std.AutoHashMap(*Decl, void).init(self.gpa); | |
| 1881 | var deleted_decls = std.AutoArrayHashMap(*Decl, void).init(self.gpa); | |
| 1881 | 1882 | defer deleted_decls.deinit(); |
| 1882 | 1883 | try deleted_decls.ensureCapacity(self.decl_table.items().len); |
| 1883 | 1884 | for (self.decl_table.items()) |entry| { |
| ... | ... | @@ -2087,7 +2088,7 @@ pub fn getErrorValue(self: *Module, name: []const u8) !std.StringHashMapUnmanage |
| 2087 | 2088 | errdefer self.global_error_set.removeAssertDiscard(name); |
| 2088 | 2089 | |
| 2089 | 2090 | gop.entry.key = try self.gpa.dupe(u8, name); |
| 2090 | gop.entry.value = @intCast(u16, self.global_error_set.items().len - 1); | |
| 2091 | gop.entry.value = @intCast(u16, self.global_error_set.count() - 1); | |
| 2091 | 2092 | return gop.entry.*; |
| 2092 | 2093 | } |
| 2093 | 2094 |
src-self-hosted/codegen.zig+4-4| ... | ... | @@ -359,7 +359,7 @@ fn Function(comptime arch: std.Target.Cpu.Arch) type { |
| 359 | 359 | }; |
| 360 | 360 | |
| 361 | 361 | const Branch = struct { |
| 362 | inst_table: std.AutoHashMapUnmanaged(*ir.Inst, MCValue) = .{}, | |
| 362 | inst_table: std.AutoArrayHashMapUnmanaged(*ir.Inst, MCValue) = .{}, | |
| 363 | 363 | |
| 364 | 364 | fn deinit(self: *Branch, gpa: *Allocator) void { |
| 365 | 365 | self.inst_table.deinit(gpa); |
| ... | ... | @@ -750,7 +750,7 @@ fn Function(comptime arch: std.Target.Cpu.Arch) type { |
| 750 | 750 | const ptr_bits = arch.ptrBitWidth(); |
| 751 | 751 | const ptr_bytes: u64 = @divExact(ptr_bits, 8); |
| 752 | 752 | if (abi_size <= ptr_bytes) { |
| 753 | try self.registers.ensureCapacity(self.gpa, self.registers.items().len + 1); | |
| 753 | try self.registers.ensureCapacity(self.gpa, self.registers.count() + 1); | |
| 754 | 754 | if (self.allocReg(inst)) |reg| { |
| 755 | 755 | return MCValue{ .register = registerAlias(reg, abi_size) }; |
| 756 | 756 | } |
| ... | ... | @@ -788,7 +788,7 @@ fn Function(comptime arch: std.Target.Cpu.Arch) type { |
| 788 | 788 | /// `reg_owner` is the instruction that gets associated with the register in the register table. |
| 789 | 789 | /// This can have a side effect of spilling instructions to the stack to free up a register. |
| 790 | 790 | fn copyToNewRegister(self: *Self, reg_owner: *ir.Inst, mcv: MCValue) !MCValue { |
| 791 | try self.registers.ensureCapacity(self.gpa, self.registers.items().len + 1); | |
| 791 | try self.registers.ensureCapacity(self.gpa, @intCast(u32, self.registers.count() + 1)); | |
| 792 | 792 | |
| 793 | 793 | const reg = self.allocReg(reg_owner) orelse b: { |
| 794 | 794 | // We'll take over the first register. Move the instruction that was previously |
| ... | ... | @@ -1247,7 +1247,7 @@ fn Function(comptime arch: std.Target.Cpu.Arch) type { |
| 1247 | 1247 | if (inst.base.isUnused()) |
| 1248 | 1248 | return MCValue.dead; |
| 1249 | 1249 | |
| 1250 | try self.registers.ensureCapacity(self.gpa, self.registers.items().len + 1); | |
| 1250 | try self.registers.ensureCapacity(self.gpa, self.registers.count() + 1); | |
| 1251 | 1251 | |
| 1252 | 1252 | const result = self.args[self.arg_index]; |
| 1253 | 1253 | self.arg_index += 1; |
src-self-hosted/codegen/c.zig+2-1| ... | ... | @@ -110,7 +110,8 @@ const Context = struct { |
| 110 | 110 | } |
| 111 | 111 | |
| 112 | 112 | fn deinit(self: *Context) void { |
| 113 | for (self.inst_map.items()) |kv| { | |
| 113 | var it = self.inst_map.iterator(); | |
| 114 | while (it.next()) |kv| { | |
| 114 | 115 | self.file.base.allocator.free(kv.value); |
| 115 | 116 | } |
| 116 | 117 | self.inst_map.deinit(); |
src-self-hosted/link.zig+1-1| ... | ... | @@ -47,7 +47,7 @@ pub const File = struct { |
| 47 | 47 | }; |
| 48 | 48 | |
| 49 | 49 | /// For DWARF .debug_info. |
| 50 | pub const DbgInfoTypeRelocsTable = std.HashMapUnmanaged(Type, DbgInfoTypeReloc, Type.hash, Type.eql, true); | |
| 50 | pub const DbgInfoTypeRelocsTable = std.HashMapUnmanaged(Type, DbgInfoTypeReloc, Type.hash, Type.eql, std.hash_map.DefaultMaxLoadPercentage); | |
| 51 | 51 | |
| 52 | 52 | /// For DWARF .debug_info. |
| 53 | 53 | pub const DbgInfoTypeReloc = struct { |
src-self-hosted/link/Elf.zig+6-3| ... | ... | @@ -1629,7 +1629,8 @@ pub fn updateDecl(self: *Elf, module: *Module, decl: *Module.Decl) !void { |
| 1629 | 1629 | |
| 1630 | 1630 | var dbg_info_type_relocs: File.DbgInfoTypeRelocsTable = .{}; |
| 1631 | 1631 | defer { |
| 1632 | for (dbg_info_type_relocs.items()) |*entry| { | |
| 1632 | var it = dbg_info_type_relocs.iterator(); | |
| 1633 | while (it.next()) |entry| { | |
| 1633 | 1634 | entry.value.relocs.deinit(self.base.allocator); |
| 1634 | 1635 | } |
| 1635 | 1636 | dbg_info_type_relocs.deinit(self.base.allocator); |
| ... | ... | @@ -1917,7 +1918,8 @@ pub fn updateDecl(self: *Elf, module: *Module, decl: *Module.Decl) !void { |
| 1917 | 1918 | // Now we emit the .debug_info types of the Decl. These will count towards the size of |
| 1918 | 1919 | // the buffer, so we have to do it before computing the offset, and we can't perform the actual |
| 1919 | 1920 | // relocations yet. |
| 1920 | for (dbg_info_type_relocs.items()) |*entry| { | |
| 1921 | var it = dbg_info_type_relocs.iterator(); | |
| 1922 | while (it.next()) |entry| { | |
| 1921 | 1923 | entry.value.off = @intCast(u32, dbg_info_buffer.items.len); |
| 1922 | 1924 | try self.addDbgInfoType(entry.key, &dbg_info_buffer); |
| 1923 | 1925 | } |
| ... | ... | @@ -1925,7 +1927,8 @@ pub fn updateDecl(self: *Elf, module: *Module, decl: *Module.Decl) !void { |
| 1925 | 1927 | try self.updateDeclDebugInfoAllocation(text_block, @intCast(u32, dbg_info_buffer.items.len)); |
| 1926 | 1928 | |
| 1927 | 1929 | // Now that we have the offset assigned we can finally perform type relocations. |
| 1928 | for (dbg_info_type_relocs.items()) |entry| { | |
| 1930 | it = dbg_info_type_relocs.iterator(); | |
| 1931 | while (it.next()) |entry| { | |
| 1929 | 1932 | for (entry.value.relocs.items) |off| { |
| 1930 | 1933 | mem.writeInt( |
| 1931 | 1934 | u32, |
src-self-hosted/liveness.zig+26-15| ... | ... | @@ -15,7 +15,7 @@ pub fn analyze( |
| 15 | 15 | |
| 16 | 16 | var table = std.AutoHashMap(*ir.Inst, void).init(gpa); |
| 17 | 17 | defer table.deinit(); |
| 18 | try table.ensureCapacity(body.instructions.len); | |
| 18 | try table.ensureCapacity(@intCast(u32, body.instructions.len)); | |
| 19 | 19 | try analyzeWithTable(arena, &table, null, body); |
| 20 | 20 | } |
| 21 | 21 | |
| ... | ... | @@ -84,8 +84,11 @@ fn analyzeInst( |
| 84 | 84 | try analyzeWithTable(arena, table, &then_table, inst.then_body); |
| 85 | 85 | |
| 86 | 86 | // Reset the table back to its state from before the branch. |
| 87 | for (then_table.items()) |entry| { | |
| 88 | table.removeAssertDiscard(entry.key); | |
| 87 | { | |
| 88 | var it = then_table.iterator(); | |
| 89 | while (it.next()) |entry| { | |
| 90 | table.removeAssertDiscard(entry.key); | |
| 91 | } | |
| 89 | 92 | } |
| 90 | 93 | |
| 91 | 94 | var else_table = std.AutoHashMap(*ir.Inst, void).init(table.allocator); |
| ... | ... | @@ -97,28 +100,36 @@ fn analyzeInst( |
| 97 | 100 | var else_entry_deaths = std.ArrayList(*ir.Inst).init(table.allocator); |
| 98 | 101 | defer else_entry_deaths.deinit(); |
| 99 | 102 | |
| 100 | for (else_table.items()) |entry| { | |
| 101 | const else_death = entry.key; | |
| 102 | if (!then_table.contains(else_death)) { | |
| 103 | try then_entry_deaths.append(else_death); | |
| 103 | { | |
| 104 | var it = else_table.iterator(); | |
| 105 | while (it.next()) |entry| { | |
| 106 | const else_death = entry.key; | |
| 107 | if (!then_table.contains(else_death)) { | |
| 108 | try then_entry_deaths.append(else_death); | |
| 109 | } | |
| 104 | 110 | } |
| 105 | 111 | } |
| 106 | 112 | // This loop is the same, except it's for the then branch, and it additionally |
| 107 | 113 | // has to put its items back into the table to undo the reset. |
| 108 | for (then_table.items()) |entry| { | |
| 109 | const then_death = entry.key; | |
| 110 | if (!else_table.contains(then_death)) { | |
| 111 | try else_entry_deaths.append(then_death); | |
| 114 | { | |
| 115 | var it = then_table.iterator(); | |
| 116 | while (it.next()) |entry| { | |
| 117 | const then_death = entry.key; | |
| 118 | if (!else_table.contains(then_death)) { | |
| 119 | try else_entry_deaths.append(then_death); | |
| 120 | } | |
| 121 | _ = try table.put(then_death, {}); | |
| 112 | 122 | } |
| 113 | _ = try table.put(then_death, {}); | |
| 114 | 123 | } |
| 115 | 124 | // Now we have to correctly populate new_set. |
| 116 | 125 | if (new_set) |ns| { |
| 117 | try ns.ensureCapacity(ns.items().len + then_table.items().len + else_table.items().len); | |
| 118 | for (then_table.items()) |entry| { | |
| 126 | try ns.ensureCapacity(@intCast(u32, ns.count() + then_table.count() + else_table.count())); | |
| 127 | var it = then_table.iterator(); | |
| 128 | while (it.next()) |entry| { | |
| 119 | 129 | _ = ns.putAssumeCapacity(entry.key, {}); |
| 120 | 130 | } |
| 121 | for (else_table.items()) |entry| { | |
| 131 | it = else_table.iterator(); | |
| 132 | while (it.next()) |entry| { | |
| 122 | 133 | _ = ns.putAssumeCapacity(entry.key, {}); |
| 123 | 134 | } |
| 124 | 135 | } |
src-self-hosted/translate_c.zig+6-19| ... | ... | @@ -19,23 +19,9 @@ pub const Error = error{OutOfMemory}; |
| 19 | 19 | const TypeError = Error || error{UnsupportedType}; |
| 20 | 20 | const TransError = TypeError || error{UnsupportedTranslation}; |
| 21 | 21 | |
| 22 | const DeclTable = std.HashMap(usize, []const u8, addrHash, addrEql, false); | |
| 22 | const DeclTable = std.AutoArrayHashMap(usize, []const u8); | |
| 23 | 23 | |
| 24 | fn addrHash(x: usize) u32 { | |
| 25 | switch (@typeInfo(usize).Int.bits) { | |
| 26 | 32 => return x, | |
| 27 | // pointers are usually aligned so we ignore the bits that are probably all 0 anyway | |
| 28 | // usually the larger bits of addr space are unused so we just chop em off | |
| 29 | 64 => return @truncate(u32, x >> 4), | |
| 30 | else => @compileError("unreachable"), | |
| 31 | } | |
| 32 | } | |
| 33 | ||
| 34 | fn addrEql(a: usize, b: usize) bool { | |
| 35 | return a == b; | |
| 36 | } | |
| 37 | ||
| 38 | const SymbolTable = std.StringHashMap(*ast.Node); | |
| 24 | const SymbolTable = std.StringArrayHashMap(*ast.Node); | |
| 39 | 25 | const AliasList = std.ArrayList(struct { |
| 40 | 26 | alias: []const u8, |
| 41 | 27 | name: []const u8, |
| ... | ... | @@ -285,7 +271,7 @@ pub const Context = struct { |
| 285 | 271 | /// a list of names that we found by visiting all the top level decls without |
| 286 | 272 | /// translating them. The other maps are updated as we translate; this one is updated |
| 287 | 273 | /// up front in a pre-processing step. |
| 288 | global_names: std.StringHashMap(void), | |
| 274 | global_names: std.StringArrayHashMap(void), | |
| 289 | 275 | |
| 290 | 276 | fn getMangle(c: *Context) u32 { |
| 291 | 277 | c.mangle_count += 1; |
| ... | ... | @@ -380,7 +366,7 @@ pub fn translate( |
| 380 | 366 | .alias_list = AliasList.init(gpa), |
| 381 | 367 | .global_scope = try arena.allocator.create(Scope.Root), |
| 382 | 368 | .clang_context = ZigClangASTUnit_getASTContext(ast_unit).?, |
| 383 | .global_names = std.StringHashMap(void).init(gpa), | |
| 369 | .global_names = std.StringArrayHashMap(void).init(gpa), | |
| 384 | 370 | .token_ids = .{}, |
| 385 | 371 | .token_locs = .{}, |
| 386 | 372 | .errors = .{}, |
| ... | ... | @@ -6424,7 +6410,8 @@ fn getFnProto(c: *Context, ref: *ast.Node) ?*ast.Node.FnProto { |
| 6424 | 6410 | } |
| 6425 | 6411 | |
| 6426 | 6412 | fn addMacros(c: *Context) !void { |
| 6427 | for (c.global_scope.macro_table.items()) |kv| { | |
| 6413 | var it = c.global_scope.macro_table.iterator(); | |
| 6414 | while (it.next()) |kv| { | |
| 6428 | 6415 | if (getFnProto(c, kv.value)) |proto_node| { |
| 6429 | 6416 | // If a macro aliases a global variable which is a function pointer, we conclude that |
| 6430 | 6417 | // the macro is intended to represent a function that assumes the function pointer |
src-self-hosted/type.zig+2-2| ... | ... | @@ -238,7 +238,7 @@ pub const Type = extern union { |
| 238 | 238 | } |
| 239 | 239 | } |
| 240 | 240 | |
| 241 | pub fn hash(self: Type) u32 { | |
| 241 | pub fn hash(self: Type) u64 { | |
| 242 | 242 | var hasher = std.hash.Wyhash.init(0); |
| 243 | 243 | const zig_type_tag = self.zigTypeTag(); |
| 244 | 244 | std.hash.autoHash(&hasher, zig_type_tag); |
| ... | ... | @@ -303,7 +303,7 @@ pub const Type = extern union { |
| 303 | 303 | // TODO implement more type hashing |
| 304 | 304 | }, |
| 305 | 305 | } |
| 306 | return @truncate(u32, hasher.final()); | |
| 306 | return hasher.final(); | |
| 307 | 307 | } |
| 308 | 308 | |
| 309 | 309 | pub fn copy(self: Type, allocator: *Allocator) error{OutOfMemory}!Type { |
src-self-hosted/value.zig+2-1| ... | ... | @@ -358,7 +358,8 @@ pub const Value = extern union { |
| 358 | 358 | .error_set => { |
| 359 | 359 | const error_set = val.cast(Payload.ErrorSet).?; |
| 360 | 360 | try out_stream.writeAll("error{"); |
| 361 | for (error_set.fields.items()) |entry| { | |
| 361 | var it = error_set.fields.iterator(); | |
| 362 | while (it.next()) |entry| { | |
| 362 | 363 | try out_stream.print("{},", .{entry.value}); |
| 363 | 364 | } |
| 364 | 365 | return out_stream.writeAll("}"); |
src-self-hosted/zir.zig+3-3| ... | ... | @@ -1049,7 +1049,7 @@ pub const Module = struct { |
| 1049 | 1049 | defer write.loop_table.deinit(); |
| 1050 | 1050 | |
| 1051 | 1051 | // First, build a map of *Inst to @ or % indexes |
| 1052 | try write.inst_table.ensureCapacity(self.decls.len); | |
| 1052 | try write.inst_table.ensureCapacity(@intCast(u32, self.decls.len)); | |
| 1053 | 1053 | |
| 1054 | 1054 | for (self.decls) |decl, decl_i| { |
| 1055 | 1055 | try write.inst_table.putNoClobber(decl.inst, .{ .inst = decl.inst, .index = null, .name = decl.name }); |
| ... | ... | @@ -1685,7 +1685,7 @@ pub fn emit(allocator: *Allocator, old_module: IrModule) !Module { |
| 1685 | 1685 | .arena = std.heap.ArenaAllocator.init(allocator), |
| 1686 | 1686 | .old_module = &old_module, |
| 1687 | 1687 | .next_auto_name = 0, |
| 1688 | .names = std.StringHashMap(void).init(allocator), | |
| 1688 | .names = std.StringArrayHashMap(void).init(allocator), | |
| 1689 | 1689 | .primitive_table = std.AutoHashMap(Inst.Primitive.Builtin, *Decl).init(allocator), |
| 1690 | 1690 | .indent = 0, |
| 1691 | 1691 | .block_table = std.AutoHashMap(*ir.Inst.Block, *Inst.Block).init(allocator), |
| ... | ... | @@ -1758,7 +1758,7 @@ const EmitZIR = struct { |
| 1758 | 1758 | arena: std.heap.ArenaAllocator, |
| 1759 | 1759 | old_module: *const IrModule, |
| 1760 | 1760 | decls: std.ArrayListUnmanaged(*Decl), |
| 1761 | names: std.StringHashMap(void), | |
| 1761 | names: std.StringArrayHashMap(void), | |
| 1762 | 1762 | next_auto_name: usize, |
| 1763 | 1763 | primitive_table: std.AutoHashMap(Inst.Primitive.Builtin, *Decl), |
| 1764 | 1764 | indent: usize, |
src-self-hosted/zir_sema.zig+1-1| ... | ... | @@ -812,7 +812,7 @@ fn analyzeInstErrorSet(mod: *Module, scope: *Scope, inst: *zir.Inst.ErrorSet) In |
| 812 | 812 | .fields = .{}, |
| 813 | 813 | .decl = undefined, // populated below |
| 814 | 814 | }; |
| 815 | try payload.fields.ensureCapacity(&new_decl_arena.allocator, inst.positionals.fields.len); | |
| 815 | try payload.fields.ensureCapacity(&new_decl_arena.allocator, @intCast(u32, inst.positionals.fields.len)); | |
| 816 | 816 | |
| 817 | 817 | for (inst.positionals.fields) |field_name| { |
| 818 | 818 | const entry = try mod.getErrorValue(field_name); |