lst.c revision 1.64 1 1.64 rillig /* $NetBSD: lst.c,v 1.64 2020/09/14 19:14:19 rillig Exp $ */
2 1.1 rillig
3 1.1 rillig /*
4 1.1 rillig * Copyright (c) 1988, 1989, 1990, 1993
5 1.1 rillig * The Regents of the University of California. All rights reserved.
6 1.1 rillig *
7 1.1 rillig * This code is derived from software contributed to Berkeley by
8 1.1 rillig * Adam de Boor.
9 1.1 rillig *
10 1.1 rillig * Redistribution and use in source and binary forms, with or without
11 1.1 rillig * modification, are permitted provided that the following conditions
12 1.1 rillig * are met:
13 1.1 rillig * 1. Redistributions of source code must retain the above copyright
14 1.1 rillig * notice, this list of conditions and the following disclaimer.
15 1.1 rillig * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 rillig * notice, this list of conditions and the following disclaimer in the
17 1.1 rillig * documentation and/or other materials provided with the distribution.
18 1.1 rillig * 3. Neither the name of the University nor the names of its contributors
19 1.1 rillig * may be used to endorse or promote products derived from this software
20 1.1 rillig * without specific prior written permission.
21 1.1 rillig *
22 1.1 rillig * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
23 1.1 rillig * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 1.1 rillig * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 1.1 rillig * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
26 1.1 rillig * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
27 1.1 rillig * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
28 1.1 rillig * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29 1.1 rillig * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
30 1.1 rillig * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
31 1.1 rillig * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
32 1.1 rillig * SUCH DAMAGE.
33 1.1 rillig */
34 1.1 rillig
35 1.30 skrll #include <stdint.h>
36 1.8 rillig
37 1.19 rillig #include "make.h"
38 1.1 rillig
39 1.64 rillig MAKE_RCSID("$NetBSD: lst.c,v 1.64 2020/09/14 19:14:19 rillig Exp $");
40 1.1 rillig
41 1.13 rillig struct ListNode {
42 1.15 rillig struct ListNode *prev; /* previous element in list */
43 1.15 rillig struct ListNode *next; /* next in list */
44 1.7 rillig uint8_t useCount; /* Count of functions using the node.
45 1.4 rillig * node may not be deleted until count
46 1.4 rillig * goes to 0 */
47 1.7 rillig Boolean deleted; /* List node should be removed when done */
48 1.39 rillig union {
49 1.39 rillig void *datum; /* datum associated with this element */
50 1.39 rillig const GNode *gnode; /* alias, just for debugging */
51 1.39 rillig const char *str; /* alias, just for debugging */
52 1.39 rillig };
53 1.13 rillig };
54 1.1 rillig
55 1.1 rillig typedef enum {
56 1.1 rillig Head, Middle, Tail, Unknown
57 1.1 rillig } Where;
58 1.1 rillig
59 1.13 rillig struct List {
60 1.15 rillig LstNode first; /* first node in list */
61 1.15 rillig LstNode last; /* last node in list */
62 1.20 rillig
63 1.20 rillig /* fields for sequential access */
64 1.21 rillig Boolean isOpen; /* true if list has been Lst_Open'ed */
65 1.15 rillig Where lastAccess; /* Where in the list the last access was */
66 1.15 rillig LstNode curr; /* current node, if open. NULL if
67 1.4 rillig * *just* opened */
68 1.20 rillig LstNode prev; /* Previous node, if open. Used by Lst_Remove */
69 1.13 rillig };
70 1.1 rillig
71 1.22 rillig /* Allocate and initialize a list node.
72 1.22 rillig *
73 1.22 rillig * The fields 'prev' and 'next' must be initialized by the caller.
74 1.22 rillig */
75 1.12 rillig static LstNode
76 1.12 rillig LstNodeNew(void *datum)
77 1.12 rillig {
78 1.16 rillig LstNode node = bmake_malloc(sizeof *node);
79 1.16 rillig node->useCount = 0;
80 1.16 rillig node->deleted = FALSE;
81 1.16 rillig node->datum = datum;
82 1.16 rillig return node;
83 1.12 rillig }
84 1.12 rillig
85 1.2 rillig static Boolean
86 1.16 rillig LstIsEmpty(Lst list)
87 1.2 rillig {
88 1.16 rillig return list->first == NULL;
89 1.2 rillig }
90 1.1 rillig
91 1.5 rillig /* Create and initialize a new, empty list. */
92 1.1 rillig Lst
93 1.5 rillig Lst_Init(void)
94 1.1 rillig {
95 1.16 rillig Lst list = bmake_malloc(sizeof *list);
96 1.1 rillig
97 1.16 rillig list->first = NULL;
98 1.16 rillig list->last = NULL;
99 1.16 rillig list->isOpen = FALSE;
100 1.16 rillig list->lastAccess = Unknown;
101 1.1 rillig
102 1.16 rillig return list;
103 1.1 rillig }
104 1.1 rillig
105 1.14 rillig /* Duplicate an entire list, usually by copying the datum pointers.
106 1.14 rillig * If copyProc is given, that function is used to create the new datum from the
107 1.35 rillig * old datum, usually by creating a copy of it. */
108 1.1 rillig Lst
109 1.50 rillig Lst_Copy(Lst list, LstCopyProc copyProc)
110 1.1 rillig {
111 1.16 rillig Lst newList;
112 1.16 rillig LstNode node;
113 1.1 rillig
114 1.52 rillig assert(list != NULL);
115 1.1 rillig
116 1.16 rillig newList = Lst_Init();
117 1.1 rillig
118 1.35 rillig for (node = list->first; node != NULL; node = node->next) {
119 1.35 rillig void *datum = copyProc != NULL ? copyProc(node->datum) : node->datum;
120 1.50 rillig Lst_Append(newList, datum);
121 1.1 rillig }
122 1.1 rillig
123 1.16 rillig return newList;
124 1.1 rillig }
125 1.1 rillig
126 1.42 rillig /* Free a list and all its nodes. The list data itself are not freed though. */
127 1.42 rillig void
128 1.50 rillig Lst_Free(Lst list)
129 1.42 rillig {
130 1.42 rillig LstNode node;
131 1.42 rillig LstNode next;
132 1.42 rillig
133 1.52 rillig assert(list != NULL);
134 1.42 rillig
135 1.42 rillig for (node = list->first; node != NULL; node = next) {
136 1.42 rillig next = node->next;
137 1.42 rillig free(node);
138 1.42 rillig }
139 1.42 rillig
140 1.42 rillig free(list);
141 1.42 rillig }
142 1.42 rillig
143 1.59 rillig /* Destroy a list and free all its resources. The freeProc is called with the
144 1.59 rillig * datum from each node in turn before the node is freed. */
145 1.1 rillig void
146 1.50 rillig Lst_Destroy(Lst list, LstFreeProc freeProc)
147 1.1 rillig {
148 1.16 rillig LstNode node;
149 1.42 rillig LstNode next;
150 1.1 rillig
151 1.52 rillig assert(list != NULL);
152 1.42 rillig assert(freeProc != NULL);
153 1.1 rillig
154 1.42 rillig for (node = list->first; node != NULL; node = next) {
155 1.42 rillig next = node->next;
156 1.42 rillig freeProc(node->datum);
157 1.42 rillig free(node);
158 1.1 rillig }
159 1.1 rillig
160 1.1 rillig free(list);
161 1.1 rillig }
162 1.1 rillig
163 1.1 rillig /*
164 1.1 rillig * Functions to modify a list
165 1.1 rillig */
166 1.1 rillig
167 1.14 rillig /* Insert a new node with the given piece of data before the given node in the
168 1.14 rillig * given list. */
169 1.26 rillig void
170 1.50 rillig Lst_InsertBefore(Lst list, LstNode node, void *datum)
171 1.26 rillig {
172 1.26 rillig LstNode newNode;
173 1.26 rillig
174 1.52 rillig assert(list != NULL);
175 1.26 rillig assert(!LstIsEmpty(list));
176 1.52 rillig assert(node != NULL);
177 1.26 rillig assert(datum != NULL);
178 1.26 rillig
179 1.26 rillig newNode = LstNodeNew(datum);
180 1.26 rillig newNode->prev = node->prev;
181 1.26 rillig newNode->next = node;
182 1.26 rillig
183 1.26 rillig if (node->prev != NULL) {
184 1.26 rillig node->prev->next = newNode;
185 1.26 rillig }
186 1.26 rillig node->prev = newNode;
187 1.26 rillig
188 1.26 rillig if (node == list->first) {
189 1.26 rillig list->first = newNode;
190 1.26 rillig }
191 1.26 rillig }
192 1.26 rillig
193 1.22 rillig /* Add a piece of data at the start of the given list. */
194 1.22 rillig void
195 1.50 rillig Lst_Prepend(Lst list, void *datum)
196 1.22 rillig {
197 1.22 rillig LstNode node;
198 1.22 rillig
199 1.52 rillig assert(list != NULL);
200 1.22 rillig assert(datum != NULL);
201 1.22 rillig
202 1.22 rillig node = LstNodeNew(datum);
203 1.22 rillig node->prev = NULL;
204 1.22 rillig node->next = list->first;
205 1.22 rillig
206 1.22 rillig if (list->first == NULL) {
207 1.22 rillig list->first = node;
208 1.22 rillig list->last = node;
209 1.22 rillig } else {
210 1.22 rillig list->first->prev = node;
211 1.22 rillig list->first = node;
212 1.22 rillig }
213 1.22 rillig }
214 1.22 rillig
215 1.21 rillig /* Add a piece of data at the end of the given list. */
216 1.21 rillig void
217 1.50 rillig Lst_Append(Lst list, void *datum)
218 1.21 rillig {
219 1.21 rillig LstNode node;
220 1.21 rillig
221 1.52 rillig assert(list != NULL);
222 1.21 rillig assert(datum != NULL);
223 1.21 rillig
224 1.21 rillig node = LstNodeNew(datum);
225 1.21 rillig node->prev = list->last;
226 1.21 rillig node->next = NULL;
227 1.21 rillig
228 1.21 rillig if (list->last == NULL) {
229 1.21 rillig list->first = node;
230 1.21 rillig list->last = node;
231 1.21 rillig } else {
232 1.21 rillig list->last->next = node;
233 1.21 rillig list->last = node;
234 1.21 rillig }
235 1.21 rillig }
236 1.21 rillig
237 1.8 rillig /* Remove the given node from the given list.
238 1.8 rillig * The datum stored in the node must be freed by the caller, if necessary. */
239 1.8 rillig void
240 1.50 rillig Lst_Remove(Lst list, LstNode node)
241 1.1 rillig {
242 1.52 rillig assert(list != NULL);
243 1.52 rillig assert(node != NULL);
244 1.1 rillig
245 1.1 rillig /*
246 1.1 rillig * unlink it from the list
247 1.1 rillig */
248 1.16 rillig if (node->next != NULL) {
249 1.16 rillig node->next->prev = node->prev;
250 1.1 rillig }
251 1.16 rillig if (node->prev != NULL) {
252 1.16 rillig node->prev->next = node->next;
253 1.1 rillig }
254 1.1 rillig
255 1.1 rillig /*
256 1.15 rillig * if either the first or last of the list point to this node,
257 1.1 rillig * adjust them accordingly
258 1.1 rillig */
259 1.16 rillig if (list->first == node) {
260 1.16 rillig list->first = node->next;
261 1.1 rillig }
262 1.16 rillig if (list->last == node) {
263 1.16 rillig list->last = node->prev;
264 1.1 rillig }
265 1.1 rillig
266 1.1 rillig /*
267 1.1 rillig * Sequential access stuff. If the node we're removing is the current
268 1.1 rillig * node in the list, reset the current node to the previous one. If the
269 1.15 rillig * previous one was non-existent (prev == NULL), we set the
270 1.1 rillig * end to be Unknown, since it is.
271 1.1 rillig */
272 1.16 rillig if (list->isOpen && list->curr == node) {
273 1.15 rillig list->curr = list->prev;
274 1.15 rillig if (list->curr == NULL) {
275 1.15 rillig list->lastAccess = Unknown;
276 1.1 rillig }
277 1.1 rillig }
278 1.1 rillig
279 1.1 rillig /*
280 1.1 rillig * note that the datum is unmolested. The caller must free it as
281 1.1 rillig * necessary and as expected.
282 1.1 rillig */
283 1.16 rillig if (node->useCount == 0) {
284 1.16 rillig free(node);
285 1.1 rillig } else {
286 1.16 rillig node->deleted = TRUE;
287 1.1 rillig }
288 1.1 rillig }
289 1.1 rillig
290 1.8 rillig /* Replace the datum in the given node with the new datum. */
291 1.8 rillig void
292 1.50 rillig LstNode_Set(LstNode node, void *datum)
293 1.1 rillig {
294 1.52 rillig assert(node != NULL);
295 1.37 rillig assert(datum != NULL);
296 1.37 rillig
297 1.16 rillig node->datum = datum;
298 1.1 rillig }
299 1.1 rillig
300 1.37 rillig /* Replace the datum in the given node to NULL. */
301 1.37 rillig void
302 1.50 rillig LstNode_SetNull(LstNode node)
303 1.37 rillig {
304 1.52 rillig assert(node != NULL);
305 1.37 rillig
306 1.37 rillig node->datum = NULL;
307 1.37 rillig }
308 1.37 rillig
309 1.1 rillig
310 1.1 rillig /*
311 1.1 rillig * Node-specific functions
312 1.1 rillig */
313 1.1 rillig
314 1.42 rillig /* Return the first node from the given list, or NULL if the list is empty. */
315 1.42 rillig LstNode
316 1.50 rillig Lst_First(Lst list)
317 1.42 rillig {
318 1.52 rillig assert(list != NULL);
319 1.42 rillig
320 1.42 rillig return list->first;
321 1.42 rillig }
322 1.42 rillig
323 1.42 rillig /* Return the last node from the given list, or NULL if the list is empty. */
324 1.42 rillig LstNode
325 1.50 rillig Lst_Last(Lst list)
326 1.42 rillig {
327 1.52 rillig assert(list != NULL);
328 1.42 rillig
329 1.42 rillig return list->last;
330 1.42 rillig }
331 1.42 rillig
332 1.6 rillig /* Return the successor to the given node on its list, or NULL. */
333 1.1 rillig LstNode
334 1.56 rillig LstNode_Next(LstNode node)
335 1.42 rillig {
336 1.52 rillig assert(node != NULL);
337 1.42 rillig
338 1.42 rillig return node->next;
339 1.42 rillig }
340 1.42 rillig
341 1.6 rillig /* Return the predecessor to the given node on its list, or NULL. */
342 1.1 rillig LstNode
343 1.56 rillig LstNode_Prev(LstNode node)
344 1.1 rillig {
345 1.52 rillig assert(node != NULL);
346 1.33 rillig return node->prev;
347 1.1 rillig }
348 1.1 rillig
349 1.28 rillig /* Return the datum stored in the given node. */
350 1.1 rillig void *
351 1.58 rillig LstNode_Datum(LstNode node)
352 1.1 rillig {
353 1.52 rillig assert(node != NULL);
354 1.28 rillig return node->datum;
355 1.1 rillig }
356 1.1 rillig
357 1.1 rillig
358 1.1 rillig /*
359 1.1 rillig * Functions for entire lists
360 1.1 rillig */
361 1.1 rillig
362 1.42 rillig /* Return TRUE if the given list is empty. */
363 1.42 rillig Boolean
364 1.50 rillig Lst_IsEmpty(Lst list)
365 1.42 rillig {
366 1.52 rillig assert(list != NULL);
367 1.42 rillig
368 1.42 rillig return LstIsEmpty(list);
369 1.42 rillig }
370 1.42 rillig
371 1.53 rillig /* Return the first node from the list for which the match function returns
372 1.53 rillig * TRUE, or NULL if none of the nodes matched. */
373 1.53 rillig LstNode
374 1.55 rillig Lst_Find(Lst list, LstFindProc match, const void *matchArgs)
375 1.53 rillig {
376 1.55 rillig return Lst_FindFrom(list, Lst_First(list), match, matchArgs);
377 1.53 rillig }
378 1.53 rillig
379 1.53 rillig /* Return the first node from the list, starting at the given node, for which
380 1.53 rillig * the match function returns TRUE, or NULL if none of the nodes matches.
381 1.53 rillig *
382 1.53 rillig * The start node may be NULL, in which case nothing is found. This allows
383 1.56 rillig * for passing Lst_First or LstNode_Next as the start node. */
384 1.53 rillig LstNode
385 1.55 rillig Lst_FindFrom(Lst list, LstNode node, LstFindProc match, const void *matchArgs)
386 1.53 rillig {
387 1.53 rillig LstNode tln;
388 1.53 rillig
389 1.53 rillig assert(list != NULL);
390 1.53 rillig assert(match != NULL);
391 1.53 rillig
392 1.53 rillig for (tln = node; tln != NULL; tln = tln->next) {
393 1.53 rillig if (match(tln->datum, matchArgs))
394 1.53 rillig return tln;
395 1.53 rillig }
396 1.53 rillig
397 1.53 rillig return NULL;
398 1.53 rillig }
399 1.53 rillig
400 1.14 rillig /* Return the first node that contains the given datum, or NULL. */
401 1.1 rillig LstNode
402 1.57 rillig Lst_FindDatum(Lst list, const void *datum)
403 1.1 rillig {
404 1.16 rillig LstNode node;
405 1.1 rillig
406 1.52 rillig assert(list != NULL);
407 1.29 rillig assert(datum != NULL);
408 1.1 rillig
409 1.29 rillig for (node = list->first; node != NULL; node = node->next) {
410 1.16 rillig if (node->datum == datum) {
411 1.16 rillig return node;
412 1.1 rillig }
413 1.29 rillig }
414 1.1 rillig
415 1.1 rillig return NULL;
416 1.1 rillig }
417 1.1 rillig
418 1.14 rillig /* Apply the given function to each element of the given list. The function
419 1.14 rillig * should return 0 if traversal should continue and non-zero if it should
420 1.14 rillig * abort. */
421 1.1 rillig int
422 1.50 rillig Lst_ForEach(Lst list, LstActionProc proc, void *procData)
423 1.42 rillig {
424 1.42 rillig if (LstIsEmpty(list))
425 1.42 rillig return 0; /* XXX: Document what this value means. */
426 1.50 rillig return Lst_ForEachFrom(list, Lst_First(list), proc, procData);
427 1.42 rillig }
428 1.42 rillig
429 1.14 rillig /* Apply the given function to each element of the given list, starting from
430 1.14 rillig * the given node. The function should return 0 if traversal should continue,
431 1.14 rillig * and non-zero if it should abort. */
432 1.1 rillig int
433 1.50 rillig Lst_ForEachFrom(Lst list, LstNode node,
434 1.42 rillig LstActionProc proc, void *procData)
435 1.1 rillig {
436 1.16 rillig LstNode tln = node;
437 1.13 rillig LstNode next;
438 1.4 rillig Boolean done;
439 1.4 rillig int result;
440 1.1 rillig
441 1.52 rillig assert(list != NULL);
442 1.52 rillig assert(node != NULL);
443 1.42 rillig assert(proc != NULL);
444 1.1 rillig
445 1.1 rillig do {
446 1.1 rillig /*
447 1.1 rillig * Take care of having the current element deleted out from under
448 1.1 rillig * us.
449 1.1 rillig */
450 1.1 rillig
451 1.15 rillig next = tln->next;
452 1.1 rillig
453 1.1 rillig /*
454 1.1 rillig * We're done with the traversal if
455 1.38 rillig * - the next node to examine doesn't exist and
456 1.1 rillig * - nothing's been added after the current node (check this
457 1.1 rillig * after proc() has been called).
458 1.1 rillig */
459 1.38 rillig done = next == NULL;
460 1.1 rillig
461 1.17 rillig tln->useCount++;
462 1.16 rillig result = (*proc)(tln->datum, procData);
463 1.17 rillig tln->useCount--;
464 1.1 rillig
465 1.1 rillig /*
466 1.1 rillig * Now check whether a node has been added.
467 1.1 rillig * Note: this doesn't work if this node was deleted before
468 1.1 rillig * the new node was added.
469 1.1 rillig */
470 1.15 rillig if (next != tln->next) {
471 1.15 rillig next = tln->next;
472 1.4 rillig done = 0;
473 1.1 rillig }
474 1.1 rillig
475 1.7 rillig if (tln->deleted) {
476 1.1 rillig free((char *)tln);
477 1.1 rillig }
478 1.1 rillig tln = next;
479 1.1 rillig } while (!result && !LstIsEmpty(list) && !done);
480 1.1 rillig
481 1.1 rillig return result;
482 1.1 rillig }
483 1.1 rillig
484 1.34 rillig /* Move all nodes from list2 to the end of list1.
485 1.34 rillig * List2 is destroyed and freed. */
486 1.34 rillig void
487 1.50 rillig Lst_MoveAll(Lst list1, Lst list2)
488 1.1 rillig {
489 1.52 rillig assert(list1 != NULL);
490 1.52 rillig assert(list2 != NULL);
491 1.1 rillig
492 1.34 rillig if (list2->first != NULL) {
493 1.34 rillig list2->first->prev = list1->last;
494 1.34 rillig if (list1->last != NULL) {
495 1.34 rillig list1->last->next = list2->first;
496 1.34 rillig } else {
497 1.34 rillig list1->first = list2->first;
498 1.1 rillig }
499 1.34 rillig list1->last = list2->last;
500 1.1 rillig }
501 1.34 rillig free(list2);
502 1.1 rillig }
503 1.1 rillig
504 1.22 rillig /* Copy the element data from src to the start of dst. */
505 1.22 rillig void
506 1.50 rillig Lst_PrependAll(Lst dst, Lst src)
507 1.22 rillig {
508 1.22 rillig LstNode node;
509 1.22 rillig for (node = src->last; node != NULL; node = node->prev)
510 1.50 rillig Lst_Prepend(dst, node->datum);
511 1.22 rillig }
512 1.22 rillig
513 1.22 rillig /* Copy the element data from src to the end of dst. */
514 1.22 rillig void
515 1.50 rillig Lst_AppendAll(Lst dst, Lst src)
516 1.22 rillig {
517 1.22 rillig LstNode node;
518 1.22 rillig for (node = src->first; node != NULL; node = node->next)
519 1.50 rillig Lst_Append(dst, node->datum);
520 1.22 rillig }
521 1.1 rillig
522 1.1 rillig /*
523 1.1 rillig * these functions are for dealing with a list as a table, of sorts.
524 1.1 rillig * An idea of the "current element" is kept and used by all the functions
525 1.1 rillig * between Lst_Open() and Lst_Close().
526 1.1 rillig *
527 1.1 rillig * The sequential functions access the list in a slightly different way.
528 1.1 rillig * CurPtr points to their idea of the current node in the list and they
529 1.1 rillig * access the list based on it.
530 1.1 rillig */
531 1.1 rillig
532 1.14 rillig /* Open a list for sequential access. A list can still be searched, etc.,
533 1.14 rillig * without confusing these functions. */
534 1.10 rillig void
535 1.50 rillig Lst_Open(Lst list)
536 1.10 rillig {
537 1.52 rillig assert(list != NULL);
538 1.60 rillig assert(!list->isOpen);
539 1.10 rillig
540 1.16 rillig list->isOpen = TRUE;
541 1.16 rillig list->lastAccess = LstIsEmpty(list) ? Head : Unknown;
542 1.16 rillig list->curr = NULL;
543 1.10 rillig }
544 1.10 rillig
545 1.10 rillig /* Return the next node for the given list, or NULL if the end has been
546 1.10 rillig * reached. */
547 1.1 rillig LstNode
548 1.50 rillig Lst_Next(Lst list)
549 1.1 rillig {
550 1.16 rillig LstNode node;
551 1.1 rillig
552 1.52 rillig assert(list != NULL);
553 1.9 rillig assert(list->isOpen);
554 1.1 rillig
555 1.15 rillig list->prev = list->curr;
556 1.1 rillig
557 1.15 rillig if (list->curr == NULL) {
558 1.15 rillig if (list->lastAccess == Unknown) {
559 1.1 rillig /*
560 1.15 rillig * If we're just starting out, lastAccess will be Unknown.
561 1.1 rillig * Then we want to start this thing off in the right
562 1.15 rillig * direction -- at the start with lastAccess being Middle.
563 1.1 rillig */
564 1.16 rillig list->curr = node = list->first;
565 1.15 rillig list->lastAccess = Middle;
566 1.1 rillig } else {
567 1.16 rillig node = NULL;
568 1.15 rillig list->lastAccess = Tail;
569 1.1 rillig }
570 1.1 rillig } else {
571 1.16 rillig node = list->curr->next;
572 1.16 rillig list->curr = node;
573 1.1 rillig
574 1.16 rillig if (node == list->first || node == NULL) {
575 1.1 rillig /*
576 1.1 rillig * If back at the front, then we've hit the end...
577 1.1 rillig */
578 1.15 rillig list->lastAccess = Tail;
579 1.1 rillig } else {
580 1.1 rillig /*
581 1.1 rillig * Reset to Middle if gone past first.
582 1.1 rillig */
583 1.15 rillig list->lastAccess = Middle;
584 1.1 rillig }
585 1.1 rillig }
586 1.1 rillig
587 1.16 rillig return node;
588 1.1 rillig }
589 1.1 rillig
590 1.10 rillig /* Close a list which was opened for sequential access. */
591 1.1 rillig void
592 1.50 rillig Lst_Close(Lst list)
593 1.1 rillig {
594 1.52 rillig assert(list != NULL);
595 1.16 rillig assert(list->isOpen);
596 1.1 rillig
597 1.10 rillig list->isOpen = FALSE;
598 1.15 rillig list->lastAccess = Unknown;
599 1.1 rillig }
600 1.1 rillig
601 1.1 rillig
602 1.1 rillig /*
603 1.1 rillig * for using the list as a queue
604 1.1 rillig */
605 1.1 rillig
606 1.14 rillig /* Add the datum to the tail of the given list. */
607 1.25 rillig void
608 1.50 rillig Lst_Enqueue(Lst list, void *datum)
609 1.1 rillig {
610 1.50 rillig Lst_Append(list, datum);
611 1.1 rillig }
612 1.1 rillig
613 1.25 rillig /* Remove and return the datum at the head of the given list. */
614 1.1 rillig void *
615 1.50 rillig Lst_Dequeue(Lst list)
616 1.1 rillig {
617 1.16 rillig void *datum;
618 1.1 rillig
619 1.52 rillig assert(list != NULL);
620 1.25 rillig assert(!LstIsEmpty(list));
621 1.1 rillig
622 1.25 rillig datum = list->first->datum;
623 1.50 rillig Lst_Remove(list, list->first);
624 1.25 rillig assert(datum != NULL);
625 1.16 rillig return datum;
626 1.1 rillig }
627 1.61 rillig
628 1.61 rillig void
629 1.61 rillig Stack_Init(Stack *stack)
630 1.61 rillig {
631 1.61 rillig stack->len = 0;
632 1.61 rillig stack->cap = 10;
633 1.61 rillig stack->items = bmake_malloc(stack->cap * sizeof stack->items[0]);
634 1.61 rillig }
635 1.61 rillig
636 1.61 rillig Boolean Stack_IsEmpty(Stack *stack)
637 1.61 rillig {
638 1.61 rillig return stack->len == 0;
639 1.61 rillig }
640 1.61 rillig
641 1.61 rillig void Stack_Push(Stack *stack, void *datum)
642 1.61 rillig {
643 1.61 rillig if (stack->len >= stack->cap) {
644 1.62 rillig stack->cap *= 2;
645 1.61 rillig stack->items = bmake_realloc(stack->items,
646 1.61 rillig stack->cap * sizeof stack->items[0]);
647 1.61 rillig }
648 1.61 rillig stack->items[stack->len] = datum;
649 1.61 rillig stack->len++;
650 1.61 rillig }
651 1.61 rillig
652 1.61 rillig void *Stack_Pop(Stack *stack)
653 1.61 rillig {
654 1.64 rillig void *datum;
655 1.64 rillig
656 1.61 rillig assert(stack->len > 0);
657 1.61 rillig stack->len--;
658 1.64 rillig datum = stack->items[stack->len];
659 1.64 rillig #ifdef CLEANUP
660 1.64 rillig stack->items[stack->len] = NULL;
661 1.64 rillig #endif
662 1.64 rillig return datum;
663 1.61 rillig }
664 1.61 rillig
665 1.61 rillig void Stack_Done(Stack *stack)
666 1.61 rillig {
667 1.61 rillig free(stack->items);
668 1.61 rillig }
669