merge.c revision 1.2 1 1.1 darran /*
2 1.1 darran * CDDL HEADER START
3 1.1 darran *
4 1.1 darran * The contents of this file are subject to the terms of the
5 1.1 darran * Common Development and Distribution License (the "License").
6 1.1 darran * You may not use this file except in compliance with the License.
7 1.1 darran *
8 1.1 darran * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 1.1 darran * or http://www.opensolaris.org/os/licensing.
10 1.1 darran * See the License for the specific language governing permissions
11 1.1 darran * and limitations under the License.
12 1.1 darran *
13 1.1 darran * When distributing Covered Code, include this CDDL HEADER in each
14 1.1 darran * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 1.1 darran * If applicable, add the following below this CDDL HEADER, with the
16 1.1 darran * fields enclosed by brackets "[]" replaced with your own identifying
17 1.1 darran * information: Portions Copyright [yyyy] [name of copyright owner]
18 1.1 darran *
19 1.1 darran * CDDL HEADER END
20 1.1 darran */
21 1.1 darran /*
22 1.1 darran * Copyright 2006 Sun Microsystems, Inc. All rights reserved.
23 1.1 darran * Use is subject to license terms.
24 1.1 darran */
25 1.1 darran
26 1.1 darran #pragma ident "%Z%%M% %I% %E% SMI"
27 1.1 darran
28 1.1 darran /*
29 1.1 darran * This file contains routines that merge one tdata_t tree, called the child,
30 1.1 darran * into another, called the parent. Note that these names are used mainly for
31 1.1 darran * convenience and to represent the direction of the merge. They are not meant
32 1.1 darran * to imply any relationship between the tdata_t graphs prior to the merge.
33 1.1 darran *
34 1.1 darran * tdata_t structures contain two main elements - a hash of iidesc_t nodes, and
35 1.1 darran * a directed graph of tdesc_t nodes, pointed to by the iidesc_t nodes. Simply
36 1.1 darran * put, we merge the tdesc_t graphs, followed by the iidesc_t nodes, and then we
37 1.1 darran * clean up loose ends.
38 1.1 darran *
39 1.1 darran * The algorithm is as follows:
40 1.1 darran *
41 1.1 darran * 1. Mapping iidesc_t nodes
42 1.1 darran *
43 1.1 darran * For each child iidesc_t node, we first try to map its tdesc_t subgraph
44 1.1 darran * against the tdesc_t graph in the parent. For each node in the child subgraph
45 1.1 darran * that exists in the parent, a mapping between the two (between their type IDs)
46 1.1 darran * is established. For the child nodes that cannot be mapped onto existing
47 1.1 darran * parent nodes, a mapping is established between the child node ID and a
48 1.1 darran * newly-allocated ID that the node will use when it is re-created in the
49 1.1 darran * parent. These unmappable nodes are added to the md_tdtba (tdesc_t To Be
50 1.1 darran * Added) hash, which tracks nodes that need to be created in the parent.
51 1.1 darran *
52 1.1 darran * If all of the nodes in the subgraph for an iidesc_t in the child can be
53 1.1 darran * mapped to existing nodes in the parent, then we can try to map the child
54 1.1 darran * iidesc_t onto an iidesc_t in the parent. If we cannot find an equivalent
55 1.1 darran * iidesc_t, or if we were not able to completely map the tdesc_t subgraph(s),
56 1.1 darran * then we add this iidesc_t to the md_iitba (iidesc_t To Be Added) list. This
57 1.1 darran * list tracks iidesc_t nodes that are to be created in the parent.
58 1.1 darran *
59 1.1 darran * While visiting the tdesc_t nodes, we may discover a forward declaration (a
60 1.1 darran * FORWARD tdesc_t) in the parent that is resolved in the child. That is, there
61 1.1 darran * may be a structure or union definition in the child with the same name as the
62 1.1 darran * forward declaration in the parent. If we find such a node, we record an
63 1.1 darran * association in the md_fdida (Forward => Definition ID Association) list
64 1.1 darran * between the parent ID of the forward declaration and the ID that the
65 1.1 darran * definition will use when re-created in the parent.
66 1.1 darran *
67 1.1 darran * 2. Creating new tdesc_t nodes (the md_tdtba hash)
68 1.1 darran *
69 1.1 darran * We have now attempted to map all tdesc_t nodes from the child into the
70 1.1 darran * parent, and have, in md_tdtba, a hash of all tdesc_t nodes that need to be
71 1.1 darran * created (or, as we so wittily call it, conjured) in the parent. We iterate
72 1.1 darran * through this hash, creating the indicated tdesc_t nodes. For a given tdesc_t
73 1.1 darran * node, conjuring requires two steps - the copying of the common tdesc_t data
74 1.1 darran * (name, type, etc) from the child node, and the creation of links from the
75 1.1 darran * newly-created node to the parent equivalents of other tdesc_t nodes pointed
76 1.1 darran * to by node being conjured. Note that in some cases, the targets of these
77 1.1 darran * links will be on the md_tdtba hash themselves, and may not have been created
78 1.1 darran * yet. As such, we can't establish the links from these new nodes into the
79 1.1 darran * parent graph. We therefore conjure them with links to nodes in the *child*
80 1.1 darran * graph, and add pointers to the links to be created to the md_tdtbr (tdesc_t
81 1.1 darran * To Be Remapped) hash. For example, a POINTER tdesc_t that could not be
82 1.1 darran * resolved would have its &tdesc_t->t_tdesc added to md_tdtbr.
83 1.1 darran *
84 1.1 darran * 3. Creating new iidesc_t nodes (the md_iitba list)
85 1.1 darran *
86 1.1 darran * When we have completed step 2, all tdesc_t nodes have been created (or
87 1.1 darran * already existed) in the parent. Some of them may have incorrect links (the
88 1.1 darran * members of the md_tdtbr list), but they've all been created. As such, we can
89 1.1 darran * create all of the iidesc_t nodes, as we can attach the tdesc_t subgraph
90 1.1 darran * pointers correctly. We create each node, and attach the pointers to the
91 1.1 darran * appropriate parts of the parent tdesc_t graph.
92 1.1 darran *
93 1.1 darran * 4. Resolving newly-created tdesc_t node links (the md_tdtbr list)
94 1.1 darran *
95 1.1 darran * As in step 3, we rely on the fact that all of the tdesc_t nodes have been
96 1.1 darran * created. Each entry in the md_tdtbr list is a pointer to where a link into
97 1.1 darran * the parent will be established. As saved in the md_tdtbr list, these
98 1.1 darran * pointers point into the child tdesc_t subgraph. We can thus get the target
99 1.1 darran * type ID from the child, look at the ID mapping to determine the desired link
100 1.1 darran * target, and redirect the link accordingly.
101 1.1 darran *
102 1.1 darran * 5. Parent => child forward declaration resolution
103 1.1 darran *
104 1.1 darran * If entries were made in the md_fdida list in step 1, we have forward
105 1.1 darran * declarations in the parent that need to be resolved to their definitions
106 1.1 darran * re-created in step 2 from the child. Using the md_fdida list, we can locate
107 1.1 darran * the definition for the forward declaration, and we can redirect all inbound
108 1.1 darran * edges to the forward declaration node to the actual definition.
109 1.1 darran *
110 1.1 darran * A pox on the house of anyone who changes the algorithm without updating
111 1.1 darran * this comment.
112 1.1 darran */
113 1.1 darran
114 1.1 darran #include <stdio.h>
115 1.1 darran #include <strings.h>
116 1.1 darran #include <assert.h>
117 1.1 darran #include <pthread.h>
118 1.1 darran
119 1.1 darran #include "ctf_headers.h"
120 1.1 darran #include "ctftools.h"
121 1.1 darran #include "list.h"
122 1.1 darran #include "alist.h"
123 1.1 darran #include "memory.h"
124 1.1 darran #include "traverse.h"
125 1.1 darran
126 1.1 darran typedef struct equiv_data equiv_data_t;
127 1.1 darran typedef struct merge_cb_data merge_cb_data_t;
128 1.1 darran
129 1.1 darran /*
130 1.1 darran * There are two traversals in this file, for equivalency and for tdesc_t
131 1.1 darran * re-creation, that do not fit into the tdtraverse() framework. We have our
132 1.1 darran * own traversal mechanism and ops vector here for those two cases.
133 1.1 darran */
134 1.1 darran typedef struct tdesc_ops {
135 1.2 darran const char *name;
136 1.1 darran int (*equiv)(tdesc_t *, tdesc_t *, equiv_data_t *);
137 1.1 darran tdesc_t *(*conjure)(tdesc_t *, int, merge_cb_data_t *);
138 1.1 darran } tdesc_ops_t;
139 1.1 darran extern tdesc_ops_t tdesc_ops[];
140 1.1 darran
141 1.1 darran /*
142 1.1 darran * The workhorse structure of tdata_t merging. Holds all lists of nodes to be
143 1.1 darran * processed during various phases of the merge algorithm.
144 1.1 darran */
145 1.1 darran struct merge_cb_data {
146 1.1 darran tdata_t *md_parent;
147 1.1 darran tdata_t *md_tgt;
148 1.1 darran alist_t *md_ta; /* Type Association */
149 1.1 darran alist_t *md_fdida; /* Forward -> Definition ID Association */
150 1.1 darran list_t **md_iitba; /* iidesc_t nodes To Be Added to the parent */
151 1.1 darran hash_t *md_tdtba; /* tdesc_t nodes To Be Added to the parent */
152 1.1 darran list_t **md_tdtbr; /* tdesc_t nodes To Be Remapped */
153 1.1 darran int md_flags;
154 1.1 darran }; /* merge_cb_data_t */
155 1.1 darran
156 1.1 darran /*
157 1.1 darran * When we first create a tdata_t from stabs data, we will have duplicate nodes.
158 1.1 darran * Normal merges, however, assume that the child tdata_t is already self-unique,
159 1.1 darran * and for speed reasons do not attempt to self-uniquify. If this flag is set,
160 1.1 darran * the merge algorithm will self-uniquify by avoiding the insertion of
161 1.1 darran * duplicates in the md_tdtdba list.
162 1.1 darran */
163 1.1 darran #define MCD_F_SELFUNIQUIFY 0x1
164 1.1 darran
165 1.1 darran /*
166 1.1 darran * When we merge the CTF data for the modules, we don't want it to contain any
167 1.1 darran * data that can be found in the reference module (usually genunix). If this
168 1.1 darran * flag is set, we're doing a merge between the fully merged tdata_t for this
169 1.1 darran * module and the tdata_t for the reference module, with the data unique to this
170 1.1 darran * module ending up in a third tdata_t. It is this third tdata_t that will end
171 1.1 darran * up in the .SUNW_ctf section for the module.
172 1.1 darran */
173 1.1 darran #define MCD_F_REFMERGE 0x2
174 1.1 darran
175 1.1 darran /*
176 1.1 darran * Mapping of child type IDs to parent type IDs
177 1.1 darran */
178 1.1 darran
179 1.1 darran static void
180 1.1 darran add_mapping(alist_t *ta, tid_t srcid, tid_t tgtid)
181 1.1 darran {
182 1.2 darran debug(3, "Adding mapping %u <%x> => %u <%x>\n", srcid, srcid, tgtid, tgtid);
183 1.1 darran
184 1.2 darran assert(!alist_find(ta, (void *)(uintptr_t)srcid, NULL));
185 1.1 darran assert(srcid != 0 && tgtid != 0);
186 1.1 darran
187 1.2 darran alist_add(ta, (void *)(uintptr_t)srcid, (void *)(uintptr_t)tgtid);
188 1.1 darran }
189 1.1 darran
190 1.1 darran static tid_t
191 1.1 darran get_mapping(alist_t *ta, int srcid)
192 1.1 darran {
193 1.2 darran void *ltgtid;
194 1.1 darran
195 1.2 darran if (alist_find(ta, (void *)(uintptr_t)srcid, (void **)<gtid))
196 1.2 darran return ((uintptr_t)ltgtid);
197 1.1 darran else
198 1.1 darran return (0);
199 1.1 darran }
200 1.1 darran
201 1.1 darran /*
202 1.1 darran * Determining equivalence of tdesc_t subgraphs
203 1.1 darran */
204 1.1 darran
205 1.1 darran struct equiv_data {
206 1.1 darran alist_t *ed_ta;
207 1.1 darran tdesc_t *ed_node;
208 1.1 darran tdesc_t *ed_tgt;
209 1.1 darran
210 1.1 darran int ed_clear_mark;
211 1.1 darran int ed_cur_mark;
212 1.1 darran int ed_selfuniquify;
213 1.1 darran }; /* equiv_data_t */
214 1.1 darran
215 1.1 darran static int equiv_node(tdesc_t *, tdesc_t *, equiv_data_t *);
216 1.1 darran
217 1.1 darran /*ARGSUSED2*/
218 1.1 darran static int
219 1.2 darran equiv_intrinsic(tdesc_t *stdp, tdesc_t *ttdp, equiv_data_t *ed __unused)
220 1.1 darran {
221 1.1 darran intr_t *si = stdp->t_intr;
222 1.1 darran intr_t *ti = ttdp->t_intr;
223 1.1 darran
224 1.1 darran if (si->intr_type != ti->intr_type ||
225 1.1 darran si->intr_signed != ti->intr_signed ||
226 1.1 darran si->intr_offset != ti->intr_offset ||
227 1.1 darran si->intr_nbits != ti->intr_nbits)
228 1.1 darran return (0);
229 1.1 darran
230 1.1 darran if (si->intr_type == INTR_INT &&
231 1.1 darran si->intr_iformat != ti->intr_iformat)
232 1.1 darran return (0);
233 1.1 darran else if (si->intr_type == INTR_REAL &&
234 1.1 darran si->intr_fformat != ti->intr_fformat)
235 1.1 darran return (0);
236 1.1 darran
237 1.1 darran return (1);
238 1.1 darran }
239 1.1 darran
240 1.1 darran static int
241 1.1 darran equiv_plain(tdesc_t *stdp, tdesc_t *ttdp, equiv_data_t *ed)
242 1.1 darran {
243 1.1 darran return (equiv_node(stdp->t_tdesc, ttdp->t_tdesc, ed));
244 1.1 darran }
245 1.1 darran
246 1.1 darran static int
247 1.1 darran equiv_function(tdesc_t *stdp, tdesc_t *ttdp, equiv_data_t *ed)
248 1.1 darran {
249 1.1 darran fndef_t *fn1 = stdp->t_fndef, *fn2 = ttdp->t_fndef;
250 1.1 darran int i;
251 1.1 darran
252 1.1 darran if (fn1->fn_nargs != fn2->fn_nargs ||
253 1.1 darran fn1->fn_vargs != fn2->fn_vargs)
254 1.1 darran return (0);
255 1.1 darran
256 1.1 darran if (!equiv_node(fn1->fn_ret, fn2->fn_ret, ed))
257 1.1 darran return (0);
258 1.1 darran
259 1.2 darran for (i = 0; i < (int) fn1->fn_nargs; i++) {
260 1.1 darran if (!equiv_node(fn1->fn_args[i], fn2->fn_args[i], ed))
261 1.1 darran return (0);
262 1.1 darran }
263 1.1 darran
264 1.1 darran return (1);
265 1.1 darran }
266 1.1 darran
267 1.1 darran static int
268 1.1 darran equiv_array(tdesc_t *stdp, tdesc_t *ttdp, equiv_data_t *ed)
269 1.1 darran {
270 1.1 darran ardef_t *ar1 = stdp->t_ardef, *ar2 = ttdp->t_ardef;
271 1.1 darran
272 1.1 darran if (!equiv_node(ar1->ad_contents, ar2->ad_contents, ed) ||
273 1.1 darran !equiv_node(ar1->ad_idxtype, ar2->ad_idxtype, ed))
274 1.1 darran return (0);
275 1.1 darran
276 1.1 darran if (ar1->ad_nelems != ar2->ad_nelems)
277 1.1 darran return (0);
278 1.1 darran
279 1.1 darran return (1);
280 1.1 darran }
281 1.1 darran
282 1.1 darran static int
283 1.1 darran equiv_su(tdesc_t *stdp, tdesc_t *ttdp, equiv_data_t *ed)
284 1.1 darran {
285 1.1 darran mlist_t *ml1 = stdp->t_members, *ml2 = ttdp->t_members;
286 1.1 darran mlist_t *olm1 = NULL;
287 1.1 darran
288 1.1 darran while (ml1 && ml2) {
289 1.1 darran if (ml1->ml_offset != ml2->ml_offset ||
290 1.1 darran strcmp(ml1->ml_name, ml2->ml_name) != 0)
291 1.1 darran return (0);
292 1.1 darran
293 1.1 darran /*
294 1.1 darran * Don't do the recursive equivalency checking more than
295 1.1 darran * we have to.
296 1.1 darran */
297 1.1 darran if (olm1 == NULL || olm1->ml_type->t_id != ml1->ml_type->t_id) {
298 1.1 darran if (ml1->ml_size != ml2->ml_size ||
299 1.1 darran !equiv_node(ml1->ml_type, ml2->ml_type, ed))
300 1.1 darran return (0);
301 1.1 darran }
302 1.1 darran
303 1.1 darran olm1 = ml1;
304 1.1 darran ml1 = ml1->ml_next;
305 1.1 darran ml2 = ml2->ml_next;
306 1.1 darran }
307 1.1 darran
308 1.1 darran if (ml1 || ml2)
309 1.1 darran return (0);
310 1.1 darran
311 1.1 darran return (1);
312 1.1 darran }
313 1.1 darran
314 1.1 darran /*ARGSUSED2*/
315 1.1 darran static int
316 1.2 darran equiv_enum(tdesc_t *stdp, tdesc_t *ttdp, equiv_data_t *ed __unused)
317 1.1 darran {
318 1.1 darran elist_t *el1 = stdp->t_emem;
319 1.1 darran elist_t *el2 = ttdp->t_emem;
320 1.1 darran
321 1.1 darran while (el1 && el2) {
322 1.1 darran if (el1->el_number != el2->el_number ||
323 1.1 darran strcmp(el1->el_name, el2->el_name) != 0)
324 1.1 darran return (0);
325 1.1 darran
326 1.1 darran el1 = el1->el_next;
327 1.1 darran el2 = el2->el_next;
328 1.1 darran }
329 1.1 darran
330 1.1 darran if (el1 || el2)
331 1.1 darran return (0);
332 1.1 darran
333 1.1 darran return (1);
334 1.1 darran }
335 1.1 darran
336 1.1 darran /*ARGSUSED*/
337 1.1 darran static int
338 1.2 darran equiv_assert(tdesc_t *stdp __unused, tdesc_t *ttdp __unused, equiv_data_t *ed __unused)
339 1.1 darran {
340 1.1 darran /* foul, evil, and very bad - this is a "shouldn't happen" */
341 1.1 darran assert(1 == 0);
342 1.1 darran
343 1.1 darran return (0);
344 1.1 darran }
345 1.1 darran
346 1.1 darran static int
347 1.1 darran fwd_equiv(tdesc_t *ctdp, tdesc_t *mtdp)
348 1.1 darran {
349 1.1 darran tdesc_t *defn = (ctdp->t_type == FORWARD ? mtdp : ctdp);
350 1.1 darran
351 1.1 darran return (defn->t_type == STRUCT || defn->t_type == UNION);
352 1.1 darran }
353 1.1 darran
354 1.1 darran static int
355 1.1 darran equiv_node(tdesc_t *ctdp, tdesc_t *mtdp, equiv_data_t *ed)
356 1.1 darran {
357 1.2 darran int (*equiv)(tdesc_t *, tdesc_t *, equiv_data_t *);
358 1.1 darran int mapping;
359 1.1 darran
360 1.1 darran if (ctdp->t_emark > ed->ed_clear_mark ||
361 1.1 darran mtdp->t_emark > ed->ed_clear_mark)
362 1.1 darran return (ctdp->t_emark == mtdp->t_emark);
363 1.1 darran
364 1.1 darran /*
365 1.1 darran * In normal (non-self-uniquify) mode, we don't want to do equivalency
366 1.1 darran * checking on a subgraph that has already been checked. If a mapping
367 1.1 darran * has already been established for a given child node, we can simply
368 1.1 darran * compare the mapping for the child node with the ID of the parent
369 1.1 darran * node. If we are in self-uniquify mode, then we're comparing two
370 1.1 darran * subgraphs within the child graph, and thus need to ignore any
371 1.1 darran * type mappings that have been created, as they are only valid into the
372 1.1 darran * parent.
373 1.1 darran */
374 1.1 darran if ((mapping = get_mapping(ed->ed_ta, ctdp->t_id)) > 0 &&
375 1.1 darran mapping == mtdp->t_id && !ed->ed_selfuniquify)
376 1.1 darran return (1);
377 1.1 darran
378 1.1 darran if (!streq(ctdp->t_name, mtdp->t_name))
379 1.1 darran return (0);
380 1.1 darran
381 1.1 darran if (ctdp->t_type != mtdp->t_type) {
382 1.1 darran if (ctdp->t_type == FORWARD || mtdp->t_type == FORWARD)
383 1.1 darran return (fwd_equiv(ctdp, mtdp));
384 1.1 darran else
385 1.1 darran return (0);
386 1.1 darran }
387 1.1 darran
388 1.1 darran ctdp->t_emark = ed->ed_cur_mark;
389 1.1 darran mtdp->t_emark = ed->ed_cur_mark;
390 1.1 darran ed->ed_cur_mark++;
391 1.1 darran
392 1.1 darran if ((equiv = tdesc_ops[ctdp->t_type].equiv) != NULL)
393 1.1 darran return (equiv(ctdp, mtdp, ed));
394 1.1 darran
395 1.1 darran return (1);
396 1.1 darran }
397 1.1 darran
398 1.1 darran /*
399 1.1 darran * We perform an equivalency check on two subgraphs by traversing through them
400 1.1 darran * in lockstep. If a given node is equivalent in both the parent and the child,
401 1.1 darran * we mark it in both subgraphs, using the t_emark field, with a monotonically
402 1.1 darran * increasing number. If, in the course of the traversal, we reach a node that
403 1.1 darran * we have visited and numbered during this equivalency check, we have a cycle.
404 1.1 darran * If the previously-visited nodes don't have the same emark, then the edges
405 1.1 darran * that brought us to these nodes are not equivalent, and so the check ends.
406 1.1 darran * If the emarks are the same, the edges are equivalent. We then backtrack and
407 1.1 darran * continue the traversal. If we have exhausted all edges in the subgraph, and
408 1.1 darran * have not found any inequivalent nodes, then the subgraphs are equivalent.
409 1.1 darran */
410 1.1 darran static int
411 1.1 darran equiv_cb(void *bucket, void *arg)
412 1.1 darran {
413 1.1 darran equiv_data_t *ed = arg;
414 1.1 darran tdesc_t *mtdp = bucket;
415 1.1 darran tdesc_t *ctdp = ed->ed_node;
416 1.1 darran
417 1.1 darran ed->ed_clear_mark = ed->ed_cur_mark + 1;
418 1.1 darran ed->ed_cur_mark = ed->ed_clear_mark + 1;
419 1.1 darran
420 1.1 darran if (equiv_node(ctdp, mtdp, ed)) {
421 1.2 darran debug(3, "equiv_node matched %d <%x> %d <%x>\n",
422 1.2 darran ctdp->t_id, ctdp->t_id, mtdp->t_id, mtdp->t_id);
423 1.1 darran ed->ed_tgt = mtdp;
424 1.1 darran /* matched. stop looking */
425 1.1 darran return (-1);
426 1.1 darran }
427 1.1 darran
428 1.1 darran return (0);
429 1.1 darran }
430 1.1 darran
431 1.1 darran /*ARGSUSED1*/
432 1.1 darran static int
433 1.2 darran map_td_tree_pre(tdesc_t *ctdp, tdesc_t **ctdpp __unused, void *private)
434 1.1 darran {
435 1.1 darran merge_cb_data_t *mcd = private;
436 1.1 darran
437 1.1 darran if (get_mapping(mcd->md_ta, ctdp->t_id) > 0)
438 1.1 darran return (0);
439 1.1 darran
440 1.1 darran return (1);
441 1.1 darran }
442 1.1 darran
443 1.1 darran /*ARGSUSED1*/
444 1.1 darran static int
445 1.2 darran map_td_tree_post(tdesc_t *ctdp, tdesc_t **ctdpp __unused, void *private)
446 1.1 darran {
447 1.1 darran merge_cb_data_t *mcd = private;
448 1.1 darran equiv_data_t ed;
449 1.1 darran
450 1.1 darran ed.ed_ta = mcd->md_ta;
451 1.1 darran ed.ed_clear_mark = mcd->md_parent->td_curemark;
452 1.1 darran ed.ed_cur_mark = mcd->md_parent->td_curemark + 1;
453 1.1 darran ed.ed_node = ctdp;
454 1.1 darran ed.ed_selfuniquify = 0;
455 1.1 darran
456 1.2 darran debug(3, "map_td_tree_post on %d <%x> %s\n", ctdp->t_id, ctdp->t_id,tdesc_name(ctdp));
457 1.1 darran
458 1.1 darran if (hash_find_iter(mcd->md_parent->td_layouthash, ctdp,
459 1.1 darran equiv_cb, &ed) < 0) {
460 1.1 darran /* We found an equivalent node */
461 1.1 darran if (ed.ed_tgt->t_type == FORWARD && ctdp->t_type != FORWARD) {
462 1.1 darran int id = mcd->md_tgt->td_nextid++;
463 1.1 darran
464 1.2 darran debug(3, "Creating new defn type %d <%x>\n", id, id);
465 1.1 darran add_mapping(mcd->md_ta, ctdp->t_id, id);
466 1.1 darran alist_add(mcd->md_fdida, (void *)(ulong_t)ed.ed_tgt,
467 1.1 darran (void *)(ulong_t)id);
468 1.1 darran hash_add(mcd->md_tdtba, ctdp);
469 1.1 darran } else
470 1.1 darran add_mapping(mcd->md_ta, ctdp->t_id, ed.ed_tgt->t_id);
471 1.1 darran
472 1.1 darran } else if (debug_level > 1 && hash_iter(mcd->md_parent->td_idhash,
473 1.1 darran equiv_cb, &ed) < 0) {
474 1.1 darran /*
475 1.1 darran * We didn't find an equivalent node by looking through the
476 1.1 darran * layout hash, but we somehow found it by performing an
477 1.1 darran * exhaustive search through the entire graph. This usually
478 1.1 darran * means that the "name" hash function is broken.
479 1.1 darran */
480 1.1 darran aborterr("Second pass for %d (%s) == %d\n", ctdp->t_id,
481 1.1 darran tdesc_name(ctdp), ed.ed_tgt->t_id);
482 1.1 darran } else {
483 1.1 darran int id = mcd->md_tgt->td_nextid++;
484 1.1 darran
485 1.2 darran debug(3, "Creating new type %d <%x>\n", id, id);
486 1.1 darran add_mapping(mcd->md_ta, ctdp->t_id, id);
487 1.1 darran hash_add(mcd->md_tdtba, ctdp);
488 1.1 darran }
489 1.1 darran
490 1.1 darran mcd->md_parent->td_curemark = ed.ed_cur_mark + 1;
491 1.1 darran
492 1.1 darran return (1);
493 1.1 darran }
494 1.1 darran
495 1.1 darran /*ARGSUSED1*/
496 1.1 darran static int
497 1.2 darran map_td_tree_self_post(tdesc_t *ctdp, tdesc_t **ctdpp __unused, void *private)
498 1.1 darran {
499 1.1 darran merge_cb_data_t *mcd = private;
500 1.1 darran equiv_data_t ed;
501 1.1 darran
502 1.1 darran ed.ed_ta = mcd->md_ta;
503 1.1 darran ed.ed_clear_mark = mcd->md_parent->td_curemark;
504 1.1 darran ed.ed_cur_mark = mcd->md_parent->td_curemark + 1;
505 1.1 darran ed.ed_node = ctdp;
506 1.1 darran ed.ed_selfuniquify = 1;
507 1.1 darran ed.ed_tgt = NULL;
508 1.1 darran
509 1.1 darran if (hash_find_iter(mcd->md_tdtba, ctdp, equiv_cb, &ed) < 0) {
510 1.2 darran debug(3, "Self check found %d <%x> in %d <%x>\n", ctdp->t_id,
511 1.2 darran ctdp->t_id, ed.ed_tgt->t_id, ed.ed_tgt->t_id);
512 1.1 darran add_mapping(mcd->md_ta, ctdp->t_id,
513 1.1 darran get_mapping(mcd->md_ta, ed.ed_tgt->t_id));
514 1.1 darran } else if (debug_level > 1 && hash_iter(mcd->md_tdtba,
515 1.1 darran equiv_cb, &ed) < 0) {
516 1.1 darran /*
517 1.1 darran * We didn't find an equivalent node using the quick way (going
518 1.1 darran * through the hash normally), but we did find it by iterating
519 1.1 darran * through the entire hash. This usually means that the hash
520 1.1 darran * function is broken.
521 1.1 darran */
522 1.2 darran aborterr("Self-unique second pass for %d <%x> (%s) == %d <%x>\n",
523 1.2 darran ctdp->t_id, ctdp->t_id, tdesc_name(ctdp), ed.ed_tgt->t_id,
524 1.2 darran ed.ed_tgt->t_id);
525 1.1 darran } else {
526 1.1 darran int id = mcd->md_tgt->td_nextid++;
527 1.1 darran
528 1.2 darran debug(3, "Creating new type %d <%x>\n", id, id);
529 1.1 darran add_mapping(mcd->md_ta, ctdp->t_id, id);
530 1.1 darran hash_add(mcd->md_tdtba, ctdp);
531 1.1 darran }
532 1.1 darran
533 1.1 darran mcd->md_parent->td_curemark = ed.ed_cur_mark + 1;
534 1.1 darran
535 1.1 darran return (1);
536 1.1 darran }
537 1.1 darran
538 1.1 darran static tdtrav_cb_f map_pre[] = {
539 1.1 darran NULL,
540 1.1 darran map_td_tree_pre, /* intrinsic */
541 1.1 darran map_td_tree_pre, /* pointer */
542 1.1 darran map_td_tree_pre, /* array */
543 1.1 darran map_td_tree_pre, /* function */
544 1.1 darran map_td_tree_pre, /* struct */
545 1.1 darran map_td_tree_pre, /* union */
546 1.1 darran map_td_tree_pre, /* enum */
547 1.1 darran map_td_tree_pre, /* forward */
548 1.1 darran map_td_tree_pre, /* typedef */
549 1.1 darran tdtrav_assert, /* typedef_unres */
550 1.1 darran map_td_tree_pre, /* volatile */
551 1.1 darran map_td_tree_pre, /* const */
552 1.1 darran map_td_tree_pre /* restrict */
553 1.1 darran };
554 1.1 darran
555 1.1 darran static tdtrav_cb_f map_post[] = {
556 1.1 darran NULL,
557 1.1 darran map_td_tree_post, /* intrinsic */
558 1.1 darran map_td_tree_post, /* pointer */
559 1.1 darran map_td_tree_post, /* array */
560 1.1 darran map_td_tree_post, /* function */
561 1.1 darran map_td_tree_post, /* struct */
562 1.1 darran map_td_tree_post, /* union */
563 1.1 darran map_td_tree_post, /* enum */
564 1.1 darran map_td_tree_post, /* forward */
565 1.1 darran map_td_tree_post, /* typedef */
566 1.1 darran tdtrav_assert, /* typedef_unres */
567 1.1 darran map_td_tree_post, /* volatile */
568 1.1 darran map_td_tree_post, /* const */
569 1.1 darran map_td_tree_post /* restrict */
570 1.1 darran };
571 1.1 darran
572 1.1 darran static tdtrav_cb_f map_self_post[] = {
573 1.1 darran NULL,
574 1.1 darran map_td_tree_self_post, /* intrinsic */
575 1.1 darran map_td_tree_self_post, /* pointer */
576 1.1 darran map_td_tree_self_post, /* array */
577 1.1 darran map_td_tree_self_post, /* function */
578 1.1 darran map_td_tree_self_post, /* struct */
579 1.1 darran map_td_tree_self_post, /* union */
580 1.1 darran map_td_tree_self_post, /* enum */
581 1.1 darran map_td_tree_self_post, /* forward */
582 1.1 darran map_td_tree_self_post, /* typedef */
583 1.1 darran tdtrav_assert, /* typedef_unres */
584 1.1 darran map_td_tree_self_post, /* volatile */
585 1.1 darran map_td_tree_self_post, /* const */
586 1.1 darran map_td_tree_self_post /* restrict */
587 1.1 darran };
588 1.1 darran
589 1.1 darran /*
590 1.1 darran * Determining equivalence of iidesc_t nodes
591 1.1 darran */
592 1.1 darran
593 1.1 darran typedef struct iifind_data {
594 1.1 darran iidesc_t *iif_template;
595 1.1 darran alist_t *iif_ta;
596 1.1 darran int iif_newidx;
597 1.1 darran int iif_refmerge;
598 1.1 darran } iifind_data_t;
599 1.1 darran
600 1.1 darran /*
601 1.1 darran * Check to see if this iidesc_t (node) - the current one on the list we're
602 1.1 darran * iterating through - matches the target one (iif->iif_template). Return -1
603 1.1 darran * if it matches, to stop the iteration.
604 1.1 darran */
605 1.1 darran static int
606 1.1 darran iidesc_match(void *data, void *arg)
607 1.1 darran {
608 1.1 darran iidesc_t *node = data;
609 1.1 darran iifind_data_t *iif = arg;
610 1.1 darran int i;
611 1.1 darran
612 1.1 darran if (node->ii_type != iif->iif_template->ii_type ||
613 1.1 darran !streq(node->ii_name, iif->iif_template->ii_name) ||
614 1.1 darran node->ii_dtype->t_id != iif->iif_newidx)
615 1.1 darran return (0);
616 1.1 darran
617 1.1 darran if ((node->ii_type == II_SVAR || node->ii_type == II_SFUN) &&
618 1.1 darran !streq(node->ii_owner, iif->iif_template->ii_owner))
619 1.1 darran return (0);
620 1.1 darran
621 1.1 darran if (node->ii_nargs != iif->iif_template->ii_nargs)
622 1.1 darran return (0);
623 1.1 darran
624 1.1 darran for (i = 0; i < node->ii_nargs; i++) {
625 1.1 darran if (get_mapping(iif->iif_ta,
626 1.1 darran iif->iif_template->ii_args[i]->t_id) !=
627 1.1 darran node->ii_args[i]->t_id)
628 1.1 darran return (0);
629 1.1 darran }
630 1.1 darran
631 1.1 darran if (iif->iif_refmerge) {
632 1.1 darran switch (iif->iif_template->ii_type) {
633 1.1 darran case II_GFUN:
634 1.1 darran case II_SFUN:
635 1.1 darran case II_GVAR:
636 1.1 darran case II_SVAR:
637 1.1 darran debug(3, "suppressing duping of %d %s from %s\n",
638 1.1 darran iif->iif_template->ii_type,
639 1.1 darran iif->iif_template->ii_name,
640 1.1 darran (iif->iif_template->ii_owner ?
641 1.1 darran iif->iif_template->ii_owner : "NULL"));
642 1.1 darran return (0);
643 1.1 darran case II_NOT:
644 1.1 darran case II_PSYM:
645 1.1 darran case II_SOU:
646 1.1 darran case II_TYPE:
647 1.1 darran break;
648 1.1 darran }
649 1.1 darran }
650 1.1 darran
651 1.1 darran return (-1);
652 1.1 darran }
653 1.1 darran
654 1.1 darran static int
655 1.1 darran merge_type_cb(void *data, void *arg)
656 1.1 darran {
657 1.1 darran iidesc_t *sii = data;
658 1.1 darran merge_cb_data_t *mcd = arg;
659 1.1 darran iifind_data_t iif;
660 1.1 darran tdtrav_cb_f *post;
661 1.1 darran
662 1.1 darran post = (mcd->md_flags & MCD_F_SELFUNIQUIFY ? map_self_post : map_post);
663 1.1 darran
664 1.1 darran /* Map the tdesc nodes */
665 1.1 darran (void) iitraverse(sii, &mcd->md_parent->td_curvgen, NULL, map_pre, post,
666 1.1 darran mcd);
667 1.1 darran
668 1.1 darran /* Map the iidesc nodes */
669 1.1 darran iif.iif_template = sii;
670 1.1 darran iif.iif_ta = mcd->md_ta;
671 1.1 darran iif.iif_newidx = get_mapping(mcd->md_ta, sii->ii_dtype->t_id);
672 1.1 darran iif.iif_refmerge = (mcd->md_flags & MCD_F_REFMERGE);
673 1.1 darran
674 1.1 darran if (hash_match(mcd->md_parent->td_iihash, sii, iidesc_match,
675 1.1 darran &iif) == 1)
676 1.1 darran /* successfully mapped */
677 1.1 darran return (1);
678 1.1 darran
679 1.1 darran debug(3, "tba %s (%d)\n", (sii->ii_name ? sii->ii_name : "(anon)"),
680 1.1 darran sii->ii_type);
681 1.1 darran
682 1.1 darran list_add(mcd->md_iitba, sii);
683 1.1 darran
684 1.1 darran return (0);
685 1.1 darran }
686 1.1 darran
687 1.1 darran static int
688 1.1 darran remap_node(tdesc_t **tgtp, tdesc_t *oldtgt, int selftid, tdesc_t *newself,
689 1.1 darran merge_cb_data_t *mcd)
690 1.1 darran {
691 1.1 darran tdesc_t *tgt = NULL;
692 1.1 darran tdesc_t template;
693 1.1 darran int oldid = oldtgt->t_id;
694 1.1 darran
695 1.1 darran if (oldid == selftid) {
696 1.1 darran *tgtp = newself;
697 1.1 darran return (1);
698 1.1 darran }
699 1.1 darran
700 1.1 darran if ((template.t_id = get_mapping(mcd->md_ta, oldid)) == 0)
701 1.2 darran aborterr("failed to get mapping for tid %d <%x>\n", oldid, oldid);
702 1.1 darran
703 1.1 darran if (!hash_find(mcd->md_parent->td_idhash, (void *)&template,
704 1.1 darran (void *)&tgt) && (!(mcd->md_flags & MCD_F_REFMERGE) ||
705 1.1 darran !hash_find(mcd->md_tgt->td_idhash, (void *)&template,
706 1.1 darran (void *)&tgt))) {
707 1.2 darran debug(3, "Remap couldn't find %d <%x> (from %d <%x>)\n", template.t_id,
708 1.2 darran template.t_id, oldid, oldid);
709 1.1 darran *tgtp = oldtgt;
710 1.1 darran list_add(mcd->md_tdtbr, tgtp);
711 1.1 darran return (0);
712 1.1 darran }
713 1.1 darran
714 1.1 darran *tgtp = tgt;
715 1.1 darran return (1);
716 1.1 darran }
717 1.1 darran
718 1.1 darran static tdesc_t *
719 1.1 darran conjure_template(tdesc_t *old, int newselfid)
720 1.1 darran {
721 1.1 darran tdesc_t *new = xcalloc(sizeof (tdesc_t));
722 1.1 darran
723 1.1 darran new->t_name = old->t_name ? xstrdup(old->t_name) : NULL;
724 1.1 darran new->t_type = old->t_type;
725 1.1 darran new->t_size = old->t_size;
726 1.1 darran new->t_id = newselfid;
727 1.1 darran new->t_flags = old->t_flags;
728 1.1 darran
729 1.1 darran return (new);
730 1.1 darran }
731 1.1 darran
732 1.1 darran /*ARGSUSED2*/
733 1.1 darran static tdesc_t *
734 1.2 darran conjure_intrinsic(tdesc_t *old, int newselfid, merge_cb_data_t *mcd __unused)
735 1.1 darran {
736 1.1 darran tdesc_t *new = conjure_template(old, newselfid);
737 1.1 darran
738 1.1 darran new->t_intr = xmalloc(sizeof (intr_t));
739 1.1 darran bcopy(old->t_intr, new->t_intr, sizeof (intr_t));
740 1.1 darran
741 1.1 darran return (new);
742 1.1 darran }
743 1.1 darran
744 1.1 darran static tdesc_t *
745 1.1 darran conjure_plain(tdesc_t *old, int newselfid, merge_cb_data_t *mcd)
746 1.1 darran {
747 1.1 darran tdesc_t *new = conjure_template(old, newselfid);
748 1.1 darran
749 1.1 darran (void) remap_node(&new->t_tdesc, old->t_tdesc, old->t_id, new, mcd);
750 1.1 darran
751 1.1 darran return (new);
752 1.1 darran }
753 1.1 darran
754 1.1 darran static tdesc_t *
755 1.1 darran conjure_function(tdesc_t *old, int newselfid, merge_cb_data_t *mcd)
756 1.1 darran {
757 1.1 darran tdesc_t *new = conjure_template(old, newselfid);
758 1.1 darran fndef_t *nfn = xmalloc(sizeof (fndef_t));
759 1.1 darran fndef_t *ofn = old->t_fndef;
760 1.1 darran int i;
761 1.1 darran
762 1.1 darran (void) remap_node(&nfn->fn_ret, ofn->fn_ret, old->t_id, new, mcd);
763 1.1 darran
764 1.1 darran nfn->fn_nargs = ofn->fn_nargs;
765 1.1 darran nfn->fn_vargs = ofn->fn_vargs;
766 1.1 darran
767 1.1 darran if (nfn->fn_nargs > 0)
768 1.1 darran nfn->fn_args = xcalloc(sizeof (tdesc_t *) * ofn->fn_nargs);
769 1.1 darran
770 1.2 darran for (i = 0; i < (int) ofn->fn_nargs; i++) {
771 1.1 darran (void) remap_node(&nfn->fn_args[i], ofn->fn_args[i], old->t_id,
772 1.1 darran new, mcd);
773 1.1 darran }
774 1.1 darran
775 1.1 darran new->t_fndef = nfn;
776 1.1 darran
777 1.1 darran return (new);
778 1.1 darran }
779 1.1 darran
780 1.1 darran static tdesc_t *
781 1.1 darran conjure_array(tdesc_t *old, int newselfid, merge_cb_data_t *mcd)
782 1.1 darran {
783 1.1 darran tdesc_t *new = conjure_template(old, newselfid);
784 1.1 darran ardef_t *nar = xmalloc(sizeof (ardef_t));
785 1.1 darran ardef_t *oar = old->t_ardef;
786 1.1 darran
787 1.1 darran (void) remap_node(&nar->ad_contents, oar->ad_contents, old->t_id, new,
788 1.1 darran mcd);
789 1.1 darran (void) remap_node(&nar->ad_idxtype, oar->ad_idxtype, old->t_id, new,
790 1.1 darran mcd);
791 1.1 darran
792 1.1 darran nar->ad_nelems = oar->ad_nelems;
793 1.1 darran
794 1.1 darran new->t_ardef = nar;
795 1.1 darran
796 1.1 darran return (new);
797 1.1 darran }
798 1.1 darran
799 1.1 darran static tdesc_t *
800 1.1 darran conjure_su(tdesc_t *old, int newselfid, merge_cb_data_t *mcd)
801 1.1 darran {
802 1.1 darran tdesc_t *new = conjure_template(old, newselfid);
803 1.1 darran mlist_t *omem, **nmemp;
804 1.1 darran
805 1.1 darran for (omem = old->t_members, nmemp = &new->t_members;
806 1.1 darran omem; omem = omem->ml_next, nmemp = &((*nmemp)->ml_next)) {
807 1.1 darran *nmemp = xmalloc(sizeof (mlist_t));
808 1.1 darran (*nmemp)->ml_offset = omem->ml_offset;
809 1.1 darran (*nmemp)->ml_size = omem->ml_size;
810 1.2 darran (*nmemp)->ml_name = xstrdup(omem->ml_name ? omem->ml_name : "empty omem->ml_name");
811 1.1 darran (void) remap_node(&((*nmemp)->ml_type), omem->ml_type,
812 1.1 darran old->t_id, new, mcd);
813 1.1 darran }
814 1.1 darran *nmemp = NULL;
815 1.1 darran
816 1.1 darran return (new);
817 1.1 darran }
818 1.1 darran
819 1.1 darran /*ARGSUSED2*/
820 1.1 darran static tdesc_t *
821 1.2 darran conjure_enum(tdesc_t *old, int newselfid, merge_cb_data_t *mcd __unused)
822 1.1 darran {
823 1.1 darran tdesc_t *new = conjure_template(old, newselfid);
824 1.1 darran elist_t *oel, **nelp;
825 1.1 darran
826 1.1 darran for (oel = old->t_emem, nelp = &new->t_emem;
827 1.1 darran oel; oel = oel->el_next, nelp = &((*nelp)->el_next)) {
828 1.1 darran *nelp = xmalloc(sizeof (elist_t));
829 1.1 darran (*nelp)->el_name = xstrdup(oel->el_name);
830 1.1 darran (*nelp)->el_number = oel->el_number;
831 1.1 darran }
832 1.1 darran *nelp = NULL;
833 1.1 darran
834 1.1 darran return (new);
835 1.1 darran }
836 1.1 darran
837 1.1 darran /*ARGSUSED2*/
838 1.1 darran static tdesc_t *
839 1.1 darran conjure_forward(tdesc_t *old, int newselfid, merge_cb_data_t *mcd)
840 1.1 darran {
841 1.1 darran tdesc_t *new = conjure_template(old, newselfid);
842 1.1 darran
843 1.1 darran list_add(&mcd->md_tgt->td_fwdlist, new);
844 1.1 darran
845 1.1 darran return (new);
846 1.1 darran }
847 1.1 darran
848 1.1 darran /*ARGSUSED*/
849 1.1 darran static tdesc_t *
850 1.2 darran conjure_assert(tdesc_t *old __unused, int newselfid __unused, merge_cb_data_t *mcd __unused)
851 1.1 darran {
852 1.1 darran assert(1 == 0);
853 1.1 darran return (NULL);
854 1.1 darran }
855 1.1 darran
856 1.1 darran static iidesc_t *
857 1.1 darran conjure_iidesc(iidesc_t *old, merge_cb_data_t *mcd)
858 1.1 darran {
859 1.1 darran iidesc_t *new = iidesc_dup(old);
860 1.1 darran int i;
861 1.1 darran
862 1.1 darran (void) remap_node(&new->ii_dtype, old->ii_dtype, -1, NULL, mcd);
863 1.1 darran for (i = 0; i < new->ii_nargs; i++) {
864 1.1 darran (void) remap_node(&new->ii_args[i], old->ii_args[i], -1, NULL,
865 1.1 darran mcd);
866 1.1 darran }
867 1.1 darran
868 1.1 darran return (new);
869 1.1 darran }
870 1.1 darran
871 1.1 darran static int
872 1.1 darran fwd_redir(tdesc_t *fwd, tdesc_t **fwdp, void *private)
873 1.1 darran {
874 1.1 darran alist_t *map = private;
875 1.2 darran void *defn;
876 1.1 darran
877 1.1 darran if (!alist_find(map, (void *)fwd, (void **)&defn))
878 1.1 darran return (0);
879 1.1 darran
880 1.1 darran debug(3, "Redirecting an edge to %s\n", tdesc_name(defn));
881 1.1 darran
882 1.1 darran *fwdp = defn;
883 1.1 darran
884 1.1 darran return (1);
885 1.1 darran }
886 1.1 darran
887 1.1 darran static tdtrav_cb_f fwd_redir_cbs[] = {
888 1.1 darran NULL,
889 1.1 darran NULL, /* intrinsic */
890 1.1 darran NULL, /* pointer */
891 1.1 darran NULL, /* array */
892 1.1 darran NULL, /* function */
893 1.1 darran NULL, /* struct */
894 1.1 darran NULL, /* union */
895 1.1 darran NULL, /* enum */
896 1.1 darran fwd_redir, /* forward */
897 1.1 darran NULL, /* typedef */
898 1.1 darran tdtrav_assert, /* typedef_unres */
899 1.1 darran NULL, /* volatile */
900 1.1 darran NULL, /* const */
901 1.1 darran NULL /* restrict */
902 1.1 darran };
903 1.1 darran
904 1.1 darran typedef struct redir_mstr_data {
905 1.1 darran tdata_t *rmd_tgt;
906 1.1 darran alist_t *rmd_map;
907 1.1 darran } redir_mstr_data_t;
908 1.1 darran
909 1.1 darran static int
910 1.1 darran redir_mstr_fwd_cb(void *name, void *value, void *arg)
911 1.1 darran {
912 1.1 darran tdesc_t *fwd = name;
913 1.2 darran int defnid = (uintptr_t)value;
914 1.1 darran redir_mstr_data_t *rmd = arg;
915 1.1 darran tdesc_t template;
916 1.1 darran tdesc_t *defn;
917 1.1 darran
918 1.1 darran template.t_id = defnid;
919 1.1 darran
920 1.1 darran if (!hash_find(rmd->rmd_tgt->td_idhash, (void *)&template,
921 1.1 darran (void *)&defn)) {
922 1.1 darran aborterr("Couldn't unforward %d (%s)\n", defnid,
923 1.1 darran tdesc_name(defn));
924 1.1 darran }
925 1.1 darran
926 1.1 darran debug(3, "Forward map: resolved %d to %s\n", defnid, tdesc_name(defn));
927 1.1 darran
928 1.1 darran alist_add(rmd->rmd_map, (void *)fwd, (void *)defn);
929 1.1 darran
930 1.1 darran return (1);
931 1.1 darran }
932 1.1 darran
933 1.1 darran static void
934 1.1 darran redir_mstr_fwds(merge_cb_data_t *mcd)
935 1.1 darran {
936 1.1 darran redir_mstr_data_t rmd;
937 1.1 darran alist_t *map = alist_new(NULL, NULL);
938 1.1 darran
939 1.1 darran rmd.rmd_tgt = mcd->md_tgt;
940 1.1 darran rmd.rmd_map = map;
941 1.1 darran
942 1.1 darran if (alist_iter(mcd->md_fdida, redir_mstr_fwd_cb, &rmd)) {
943 1.1 darran (void) iitraverse_hash(mcd->md_tgt->td_iihash,
944 1.1 darran &mcd->md_tgt->td_curvgen, fwd_redir_cbs, NULL, NULL, map);
945 1.1 darran }
946 1.1 darran
947 1.1 darran alist_free(map);
948 1.1 darran }
949 1.1 darran
950 1.1 darran static int
951 1.1 darran add_iitba_cb(void *data, void *private)
952 1.1 darran {
953 1.1 darran merge_cb_data_t *mcd = private;
954 1.1 darran iidesc_t *tba = data;
955 1.1 darran iidesc_t *new;
956 1.1 darran iifind_data_t iif;
957 1.1 darran int newidx;
958 1.1 darran
959 1.1 darran newidx = get_mapping(mcd->md_ta, tba->ii_dtype->t_id);
960 1.1 darran assert(newidx != -1);
961 1.1 darran
962 1.1 darran (void) list_remove(mcd->md_iitba, data, NULL, NULL);
963 1.1 darran
964 1.1 darran iif.iif_template = tba;
965 1.1 darran iif.iif_ta = mcd->md_ta;
966 1.1 darran iif.iif_newidx = newidx;
967 1.1 darran iif.iif_refmerge = (mcd->md_flags & MCD_F_REFMERGE);
968 1.1 darran
969 1.1 darran if (hash_match(mcd->md_parent->td_iihash, tba, iidesc_match,
970 1.1 darran &iif) == 1) {
971 1.1 darran debug(3, "iidesc_t %s already exists\n",
972 1.1 darran (tba->ii_name ? tba->ii_name : "(anon)"));
973 1.1 darran return (1);
974 1.1 darran }
975 1.1 darran
976 1.1 darran new = conjure_iidesc(tba, mcd);
977 1.1 darran hash_add(mcd->md_tgt->td_iihash, new);
978 1.1 darran
979 1.1 darran return (1);
980 1.1 darran }
981 1.1 darran
982 1.1 darran static int
983 1.1 darran add_tdesc(tdesc_t *oldtdp, int newid, merge_cb_data_t *mcd)
984 1.1 darran {
985 1.1 darran tdesc_t *newtdp;
986 1.1 darran tdesc_t template;
987 1.1 darran
988 1.1 darran template.t_id = newid;
989 1.1 darran assert(hash_find(mcd->md_parent->td_idhash,
990 1.1 darran (void *)&template, NULL) == 0);
991 1.1 darran
992 1.2 darran debug(3, "trying to conjure %d %s (%d, <%x>) as %d, <%x>\n",
993 1.2 darran oldtdp->t_type, tdesc_name(oldtdp), oldtdp->t_id,
994 1.2 darran oldtdp->t_id, newid, newid);
995 1.1 darran
996 1.1 darran if ((newtdp = tdesc_ops[oldtdp->t_type].conjure(oldtdp, newid,
997 1.1 darran mcd)) == NULL)
998 1.1 darran /* couldn't map everything */
999 1.1 darran return (0);
1000 1.1 darran
1001 1.1 darran debug(3, "succeeded\n");
1002 1.1 darran
1003 1.1 darran hash_add(mcd->md_tgt->td_idhash, newtdp);
1004 1.1 darran hash_add(mcd->md_tgt->td_layouthash, newtdp);
1005 1.1 darran
1006 1.1 darran return (1);
1007 1.1 darran }
1008 1.1 darran
1009 1.1 darran static int
1010 1.1 darran add_tdtba_cb(void *data, void *arg)
1011 1.1 darran {
1012 1.1 darran tdesc_t *tdp = data;
1013 1.1 darran merge_cb_data_t *mcd = arg;
1014 1.1 darran int newid;
1015 1.1 darran int rc;
1016 1.1 darran
1017 1.1 darran newid = get_mapping(mcd->md_ta, tdp->t_id);
1018 1.1 darran assert(newid != -1);
1019 1.1 darran
1020 1.1 darran if ((rc = add_tdesc(tdp, newid, mcd)))
1021 1.1 darran hash_remove(mcd->md_tdtba, (void *)tdp);
1022 1.1 darran
1023 1.1 darran return (rc);
1024 1.1 darran }
1025 1.1 darran
1026 1.1 darran static int
1027 1.1 darran add_tdtbr_cb(void *data, void *arg)
1028 1.1 darran {
1029 1.1 darran tdesc_t **tdpp = data;
1030 1.1 darran merge_cb_data_t *mcd = arg;
1031 1.1 darran
1032 1.1 darran debug(3, "Remapping %s (%d)\n", tdesc_name(*tdpp), (*tdpp)->t_id);
1033 1.1 darran
1034 1.1 darran if (!remap_node(tdpp, *tdpp, -1, NULL, mcd))
1035 1.1 darran return (0);
1036 1.1 darran
1037 1.1 darran (void) list_remove(mcd->md_tdtbr, (void *)tdpp, NULL, NULL);
1038 1.1 darran return (1);
1039 1.1 darran }
1040 1.1 darran
1041 1.1 darran static void
1042 1.1 darran merge_types(hash_t *src, merge_cb_data_t *mcd)
1043 1.1 darran {
1044 1.1 darran list_t *iitba = NULL;
1045 1.1 darran list_t *tdtbr = NULL;
1046 1.1 darran int iirc, tdrc;
1047 1.1 darran
1048 1.1 darran mcd->md_iitba = &iitba;
1049 1.1 darran mcd->md_tdtba = hash_new(TDATA_LAYOUT_HASH_SIZE, tdesc_layouthash,
1050 1.1 darran tdesc_layoutcmp);
1051 1.1 darran mcd->md_tdtbr = &tdtbr;
1052 1.1 darran
1053 1.1 darran (void) hash_iter(src, merge_type_cb, mcd);
1054 1.1 darran
1055 1.2 darran tdrc = hash_iter(mcd->md_tdtba, add_tdtba_cb, mcd);
1056 1.1 darran debug(3, "add_tdtba_cb added %d items\n", tdrc);
1057 1.1 darran
1058 1.2 darran iirc = list_iter(*mcd->md_iitba, add_iitba_cb, mcd);
1059 1.1 darran debug(3, "add_iitba_cb added %d items\n", iirc);
1060 1.1 darran
1061 1.1 darran assert(list_count(*mcd->md_iitba) == 0 &&
1062 1.1 darran hash_count(mcd->md_tdtba) == 0);
1063 1.1 darran
1064 1.2 darran tdrc = list_iter(*mcd->md_tdtbr, add_tdtbr_cb, mcd);
1065 1.1 darran debug(3, "add_tdtbr_cb added %d items\n", tdrc);
1066 1.1 darran
1067 1.1 darran if (list_count(*mcd->md_tdtbr) != 0)
1068 1.1 darran aborterr("Couldn't remap all nodes\n");
1069 1.1 darran
1070 1.1 darran /*
1071 1.1 darran * We now have an alist of master forwards and the ids of the new master
1072 1.1 darran * definitions for those forwards in mcd->md_fdida. By this point,
1073 1.1 darran * we're guaranteed that all of the master definitions referenced in
1074 1.1 darran * fdida have been added to the master tree. We now traverse through
1075 1.1 darran * the master tree, redirecting all edges inbound to forwards that have
1076 1.1 darran * definitions to those definitions.
1077 1.1 darran */
1078 1.1 darran if (mcd->md_parent == mcd->md_tgt) {
1079 1.1 darran redir_mstr_fwds(mcd);
1080 1.1 darran }
1081 1.1 darran }
1082 1.1 darran
1083 1.1 darran void
1084 1.1 darran merge_into_master(tdata_t *cur, tdata_t *mstr, tdata_t *tgt, int selfuniquify)
1085 1.1 darran {
1086 1.1 darran merge_cb_data_t mcd;
1087 1.1 darran
1088 1.1 darran cur->td_ref++;
1089 1.1 darran mstr->td_ref++;
1090 1.1 darran if (tgt)
1091 1.1 darran tgt->td_ref++;
1092 1.1 darran
1093 1.1 darran assert(cur->td_ref == 1 && mstr->td_ref == 1 &&
1094 1.1 darran (tgt == NULL || tgt->td_ref == 1));
1095 1.1 darran
1096 1.1 darran mcd.md_parent = mstr;
1097 1.1 darran mcd.md_tgt = (tgt ? tgt : mstr);
1098 1.1 darran mcd.md_ta = alist_new(NULL, NULL);
1099 1.1 darran mcd.md_fdida = alist_new(NULL, NULL);
1100 1.1 darran mcd.md_flags = 0;
1101 1.1 darran
1102 1.1 darran if (selfuniquify)
1103 1.1 darran mcd.md_flags |= MCD_F_SELFUNIQUIFY;
1104 1.1 darran if (tgt)
1105 1.1 darran mcd.md_flags |= MCD_F_REFMERGE;
1106 1.1 darran
1107 1.1 darran mstr->td_curvgen = MAX(mstr->td_curvgen, cur->td_curvgen);
1108 1.1 darran mstr->td_curemark = MAX(mstr->td_curemark, cur->td_curemark);
1109 1.1 darran
1110 1.1 darran merge_types(cur->td_iihash, &mcd);
1111 1.1 darran
1112 1.1 darran if (debug_level >= 3) {
1113 1.1 darran debug(3, "Type association stats\n");
1114 1.1 darran alist_stats(mcd.md_ta, 0);
1115 1.1 darran debug(3, "Layout hash stats\n");
1116 1.1 darran hash_stats(mcd.md_tgt->td_layouthash, 1);
1117 1.1 darran }
1118 1.1 darran
1119 1.1 darran alist_free(mcd.md_fdida);
1120 1.1 darran alist_free(mcd.md_ta);
1121 1.1 darran
1122 1.1 darran cur->td_ref--;
1123 1.1 darran mstr->td_ref--;
1124 1.1 darran if (tgt)
1125 1.1 darran tgt->td_ref--;
1126 1.1 darran }
1127 1.1 darran
1128 1.1 darran tdesc_ops_t tdesc_ops[] = {
1129 1.1 darran { "ERROR! BAD tdesc TYPE", NULL, NULL },
1130 1.1 darran { "intrinsic", equiv_intrinsic, conjure_intrinsic },
1131 1.1 darran { "pointer", equiv_plain, conjure_plain },
1132 1.1 darran { "array", equiv_array, conjure_array },
1133 1.1 darran { "function", equiv_function, conjure_function },
1134 1.1 darran { "struct", equiv_su, conjure_su },
1135 1.1 darran { "union", equiv_su, conjure_su },
1136 1.1 darran { "enum", equiv_enum, conjure_enum },
1137 1.1 darran { "forward", NULL, conjure_forward },
1138 1.1 darran { "typedef", equiv_plain, conjure_plain },
1139 1.1 darran { "typedef_unres", equiv_assert, conjure_assert },
1140 1.1 darran { "volatile", equiv_plain, conjure_plain },
1141 1.1 darran { "const", equiv_plain, conjure_plain },
1142 1.1 darran { "restrict", equiv_plain, conjure_plain }
1143 1.1 darran };
1144