2010-05-18 Tristan Gingold <gingold@adacore.com>
[deliverable/binutils-gdb.git] / gold / script.cc
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1// script.cc -- handle linker scripts for gold.
2
62dfdd4d 3// Copyright 2006, 2007, 2008, 2009, 2010 Free Software Foundation, Inc.
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4// Written by Ian Lance Taylor <iant@google.com>.
5
6// This file is part of gold.
7
8// This program is free software; you can redistribute it and/or modify
9// it under the terms of the GNU General Public License as published by
10// the Free Software Foundation; either version 3 of the License, or
11// (at your option) any later version.
12
13// This program is distributed in the hope that it will be useful,
14// but WITHOUT ANY WARRANTY; without even the implied warranty of
15// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16// GNU General Public License for more details.
17
18// You should have received a copy of the GNU General Public License
19// along with this program; if not, write to the Free Software
20// Foundation, Inc., 51 Franklin Street - Fifth Floor, Boston,
21// MA 02110-1301, USA.
22
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23#include "gold.h"
24
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25#include <cstdio>
26#include <cstdlib>
27#include <cstring>
09124467 28#include <fnmatch.h>
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29#include <string>
30#include <vector>
ad2d6943 31#include "filenames.h"
dbe717ef 32
e5756efb 33#include "elfcpp.h"
09124467 34#include "demangle.h"
3c2fafa5 35#include "dirsearch.h"
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36#include "options.h"
37#include "fileread.h"
38#include "workqueue.h"
39#include "readsyms.h"
ad2d6943 40#include "parameters.h"
d391083d 41#include "layout.h"
e5756efb 42#include "symtab.h"
15f8229b 43#include "target-select.h"
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44#include "script.h"
45#include "script-c.h"
072fe7ce 46#include "incremental.h"
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47
48namespace gold
49{
50
51// A token read from a script file. We don't implement keywords here;
52// all keywords are simply represented as a string.
53
54class Token
55{
56 public:
57 // Token classification.
58 enum Classification
59 {
60 // Token is invalid.
61 TOKEN_INVALID,
62 // Token indicates end of input.
63 TOKEN_EOF,
64 // Token is a string of characters.
65 TOKEN_STRING,
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66 // Token is a quoted string of characters.
67 TOKEN_QUOTED_STRING,
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68 // Token is an operator.
69 TOKEN_OPERATOR,
70 // Token is a number (an integer).
71 TOKEN_INTEGER
72 };
73
74 // We need an empty constructor so that we can put this STL objects.
75 Token()
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76 : classification_(TOKEN_INVALID), value_(NULL), value_length_(0),
77 opcode_(0), lineno_(0), charpos_(0)
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78 { }
79
80 // A general token with no value.
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81 Token(Classification classification, int lineno, int charpos)
82 : classification_(classification), value_(NULL), value_length_(0),
83 opcode_(0), lineno_(lineno), charpos_(charpos)
a3ad94ed 84 {
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85 gold_assert(classification == TOKEN_INVALID
86 || classification == TOKEN_EOF);
a3ad94ed 87 }
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88
89 // A general token with a value.
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90 Token(Classification classification, const char* value, size_t length,
91 int lineno, int charpos)
92 : classification_(classification), value_(value), value_length_(length),
93 opcode_(0), lineno_(lineno), charpos_(charpos)
a3ad94ed 94 {
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95 gold_assert(classification != TOKEN_INVALID
96 && classification != TOKEN_EOF);
a3ad94ed 97 }
dbe717ef 98
dbe717ef 99 // A token representing an operator.
2ea97941 100 Token(int opcode, int lineno, int charpos)
e5756efb 101 : classification_(TOKEN_OPERATOR), value_(NULL), value_length_(0),
2ea97941 102 opcode_(opcode), lineno_(lineno), charpos_(charpos)
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103 { }
104
105 // Return whether the token is invalid.
106 bool
107 is_invalid() const
108 { return this->classification_ == TOKEN_INVALID; }
109
110 // Return whether this is an EOF token.
111 bool
112 is_eof() const
113 { return this->classification_ == TOKEN_EOF; }
114
115 // Return the token classification.
116 Classification
117 classification() const
118 { return this->classification_; }
119
120 // Return the line number at which the token starts.
121 int
122 lineno() const
123 { return this->lineno_; }
124
125 // Return the character position at this the token starts.
126 int
127 charpos() const
128 { return this->charpos_; }
129
130 // Get the value of a token.
131
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132 const char*
133 string_value(size_t* length) const
dbe717ef 134 {
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135 gold_assert(this->classification_ == TOKEN_STRING
136 || this->classification_ == TOKEN_QUOTED_STRING);
137 *length = this->value_length_;
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138 return this->value_;
139 }
140
141 int
142 operator_value() const
143 {
a3ad94ed 144 gold_assert(this->classification_ == TOKEN_OPERATOR);
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145 return this->opcode_;
146 }
147
e5756efb 148 uint64_t
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149 integer_value() const
150 {
a3ad94ed 151 gold_assert(this->classification_ == TOKEN_INTEGER);
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152 // Null terminate.
153 std::string s(this->value_, this->value_length_);
154 return strtoull(s.c_str(), NULL, 0);
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155 }
156
157 private:
158 // The token classification.
159 Classification classification_;
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160 // The token value, for TOKEN_STRING or TOKEN_QUOTED_STRING or
161 // TOKEN_INTEGER.
162 const char* value_;
163 // The length of the token value.
164 size_t value_length_;
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165 // The token value, for TOKEN_OPERATOR.
166 int opcode_;
167 // The line number where this token started (one based).
168 int lineno_;
169 // The character position within the line where this token started
170 // (one based).
171 int charpos_;
172};
173
e5756efb 174// This class handles lexing a file into a sequence of tokens.
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175
176class Lex
177{
178 public:
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179 // We unfortunately have to support different lexing modes, because
180 // when reading different parts of a linker script we need to parse
181 // things differently.
182 enum Mode
183 {
184 // Reading an ordinary linker script.
185 LINKER_SCRIPT,
186 // Reading an expression in a linker script.
187 EXPRESSION,
188 // Reading a version script.
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189 VERSION_SCRIPT,
190 // Reading a --dynamic-list file.
191 DYNAMIC_LIST
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192 };
193
194 Lex(const char* input_string, size_t input_length, int parsing_token)
195 : input_string_(input_string), input_length_(input_length),
196 current_(input_string), mode_(LINKER_SCRIPT),
197 first_token_(parsing_token), token_(),
198 lineno_(1), linestart_(input_string)
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199 { }
200
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201 // Read a file into a string.
202 static void
203 read_file(Input_file*, std::string*);
204
205 // Return the next token.
206 const Token*
207 next_token();
dbe717ef 208
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209 // Return the current lexing mode.
210 Lex::Mode
211 mode() const
212 { return this->mode_; }
dbe717ef 213
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214 // Set the lexing mode.
215 void
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216 set_mode(Mode mode)
217 { this->mode_ = mode; }
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218
219 private:
220 Lex(const Lex&);
221 Lex& operator=(const Lex&);
222
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223 // Make a general token with no value at the current location.
224 Token
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225 make_token(Token::Classification c, const char* start) const
226 { return Token(c, this->lineno_, start - this->linestart_ + 1); }
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227
228 // Make a general token with a value at the current location.
229 Token
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230 make_token(Token::Classification c, const char* v, size_t len,
231 const char* start)
dbe717ef 232 const
e5756efb 233 { return Token(c, v, len, this->lineno_, start - this->linestart_ + 1); }
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234
235 // Make an operator token at the current location.
236 Token
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237 make_token(int opcode, const char* start) const
238 { return Token(opcode, this->lineno_, start - this->linestart_ + 1); }
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239
240 // Make an invalid token at the current location.
241 Token
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242 make_invalid_token(const char* start)
243 { return this->make_token(Token::TOKEN_INVALID, start); }
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244
245 // Make an EOF token at the current location.
246 Token
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247 make_eof_token(const char* start)
248 { return this->make_token(Token::TOKEN_EOF, start); }
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249
250 // Return whether C can be the first character in a name. C2 is the
251 // next character, since we sometimes need that.
e5756efb 252 inline bool
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253 can_start_name(char c, char c2);
254
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255 // If C can appear in a name which has already started, return a
256 // pointer to a character later in the token or just past
257 // it. Otherwise, return NULL.
258 inline const char*
259 can_continue_name(const char* c);
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260
261 // Return whether C, C2, C3 can start a hex number.
e5756efb 262 inline bool
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263 can_start_hex(char c, char c2, char c3);
264
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265 // If C can appear in a hex number which has already started, return
266 // a pointer to a character later in the token or just past
267 // it. Otherwise, return NULL.
268 inline const char*
269 can_continue_hex(const char* c);
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270
271 // Return whether C can start a non-hex number.
272 static inline bool
273 can_start_number(char c);
274
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275 // If C can appear in a decimal number which has already started,
276 // return a pointer to a character later in the token or just past
277 // it. Otherwise, return NULL.
278 inline const char*
279 can_continue_number(const char* c)
280 { return Lex::can_start_number(*c) ? c + 1 : NULL; }
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281
282 // If C1 C2 C3 form a valid three character operator, return the
283 // opcode. Otherwise return 0.
284 static inline int
285 three_char_operator(char c1, char c2, char c3);
286
287 // If C1 C2 form a valid two character operator, return the opcode.
288 // Otherwise return 0.
289 static inline int
290 two_char_operator(char c1, char c2);
291
292 // If C1 is a valid one character operator, return the opcode.
293 // Otherwise return 0.
294 static inline int
295 one_char_operator(char c1);
296
297 // Read the next token.
298 Token
299 get_token(const char**);
300
301 // Skip a C style /* */ comment. Return false if the comment did
302 // not end.
303 bool
304 skip_c_comment(const char**);
305
306 // Skip a line # comment. Return false if there was no newline.
307 bool
308 skip_line_comment(const char**);
309
310 // Build a token CLASSIFICATION from all characters that match
311 // CAN_CONTINUE_FN. The token starts at START. Start matching from
312 // MATCH. Set *PP to the character following the token.
313 inline Token
e5756efb 314 gather_token(Token::Classification,
09124467 315 const char* (Lex::*can_continue_fn)(const char*),
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316 const char* start, const char* match, const char** pp);
317
318 // Build a token from a quoted string.
319 Token
320 gather_quoted_string(const char** pp);
321
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322 // The string we are tokenizing.
323 const char* input_string_;
324 // The length of the string.
325 size_t input_length_;
326 // The current offset into the string.
327 const char* current_;
328 // The current lexing mode.
329 Mode mode_;
330 // The code to use for the first token. This is set to 0 after it
331 // is used.
332 int first_token_;
333 // The current token.
334 Token token_;
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335 // The current line number.
336 int lineno_;
e5756efb 337 // The start of the current line in the string.
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338 const char* linestart_;
339};
340
341// Read the whole file into memory. We don't expect linker scripts to
342// be large, so we just use a std::string as a buffer. We ignore the
343// data we've already read, so that we read aligned buffers.
344
345void
e5756efb 346Lex::read_file(Input_file* input_file, std::string* contents)
dbe717ef 347{
e5756efb 348 off_t filesize = input_file->file().filesize();
dbe717ef 349 contents->clear();
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350 contents->reserve(filesize);
351
dbe717ef 352 off_t off = 0;
dbe717ef 353 unsigned char buf[BUFSIZ];
82dcae9d 354 while (off < filesize)
dbe717ef 355 {
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356 off_t get = BUFSIZ;
357 if (get > filesize - off)
358 get = filesize - off;
e5756efb 359 input_file->file().read(off, get, buf);
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360 contents->append(reinterpret_cast<char*>(&buf[0]), get);
361 off += get;
dbe717ef 362 }
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363}
364
365// Return whether C can be the start of a name, if the next character
366// is C2. A name can being with a letter, underscore, period, or
367// dollar sign. Because a name can be a file name, we also permit
368// forward slash, backslash, and tilde. Tilde is the tricky case
369// here; GNU ld also uses it as a bitwise not operator. It is only
370// recognized as the operator if it is not immediately followed by
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371// some character which can appear in a symbol. That is, when we
372// don't know that we are looking at an expression, "~0" is a file
373// name, and "~ 0" is an expression using bitwise not. We are
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374// compatible.
375
376inline bool
377Lex::can_start_name(char c, char c2)
378{
379 switch (c)
380 {
381 case 'A': case 'B': case 'C': case 'D': case 'E': case 'F':
382 case 'G': case 'H': case 'I': case 'J': case 'K': case 'L':
383 case 'M': case 'N': case 'O': case 'Q': case 'P': case 'R':
384 case 'S': case 'T': case 'U': case 'V': case 'W': case 'X':
385 case 'Y': case 'Z':
386 case 'a': case 'b': case 'c': case 'd': case 'e': case 'f':
387 case 'g': case 'h': case 'i': case 'j': case 'k': case 'l':
388 case 'm': case 'n': case 'o': case 'q': case 'p': case 'r':
389 case 's': case 't': case 'u': case 'v': case 'w': case 'x':
390 case 'y': case 'z':
e5756efb 391 case '_': case '.': case '$':
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392 return true;
393
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394 case '/': case '\\':
395 return this->mode_ == LINKER_SCRIPT;
396
dbe717ef 397 case '~':
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398 return this->mode_ == LINKER_SCRIPT && can_continue_name(&c2);
399
c82fbeee 400 case '*': case '[':
3802b2dd 401 return (this->mode_ == VERSION_SCRIPT
c82fbeee 402 || this->mode_ == DYNAMIC_LIST
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403 || (this->mode_ == LINKER_SCRIPT
404 && can_continue_name(&c2)));
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405
406 default:
407 return false;
408 }
409}
410
411// Return whether C can continue a name which has already started.
412// Subsequent characters in a name are the same as the leading
413// characters, plus digits and "=+-:[],?*". So in general the linker
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414// script language requires spaces around operators, unless we know
415// that we are parsing an expression.
dbe717ef 416
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417inline const char*
418Lex::can_continue_name(const char* c)
dbe717ef 419{
09124467 420 switch (*c)
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421 {
422 case 'A': case 'B': case 'C': case 'D': case 'E': case 'F':
423 case 'G': case 'H': case 'I': case 'J': case 'K': case 'L':
424 case 'M': case 'N': case 'O': case 'Q': case 'P': case 'R':
425 case 'S': case 'T': case 'U': case 'V': case 'W': case 'X':
426 case 'Y': case 'Z':
427 case 'a': case 'b': case 'c': case 'd': case 'e': case 'f':
428 case 'g': case 'h': case 'i': case 'j': case 'k': case 'l':
429 case 'm': case 'n': case 'o': case 'q': case 'p': case 'r':
430 case 's': case 't': case 'u': case 'v': case 'w': case 'x':
431 case 'y': case 'z':
e5756efb 432 case '_': case '.': case '$':
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433 case '0': case '1': case '2': case '3': case '4':
434 case '5': case '6': case '7': case '8': case '9':
09124467 435 return c + 1;
dbe717ef 436
c82fbeee 437 // TODO(csilvers): why not allow ~ in names for version-scripts?
e5756efb 438 case '/': case '\\': case '~':
09124467 439 case '=': case '+':
afe47622 440 case ',':
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441 if (this->mode_ == LINKER_SCRIPT)
442 return c + 1;
443 return NULL;
444
afe47622 445 case '[': case ']': case '*': case '?': case '-':
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446 if (this->mode_ == LINKER_SCRIPT || this->mode_ == VERSION_SCRIPT
447 || this->mode_ == DYNAMIC_LIST)
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448 return c + 1;
449 return NULL;
450
c82fbeee 451 // TODO(csilvers): why allow this? ^ is meaningless in version scripts.
09124467 452 case '^':
c82fbeee 453 if (this->mode_ == VERSION_SCRIPT || this->mode_ == DYNAMIC_LIST)
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454 return c + 1;
455 return NULL;
456
457 case ':':
458 if (this->mode_ == LINKER_SCRIPT)
459 return c + 1;
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460 else if ((this->mode_ == VERSION_SCRIPT || this->mode_ == DYNAMIC_LIST)
461 && (c[1] == ':'))
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462 {
463 // A name can have '::' in it, as that's a c++ namespace
464 // separator. But a single colon is not part of a name.
465 return c + 2;
466 }
467 return NULL;
e5756efb 468
dbe717ef 469 default:
09124467 470 return NULL;
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471 }
472}
473
474// For a number we accept 0x followed by hex digits, or any sequence
475// of digits. The old linker accepts leading '$' for hex, and
476// trailing HXBOD. Those are for MRI compatibility and we don't
477// accept them. The old linker also accepts trailing MK for mega or
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478// kilo. FIXME: Those are mentioned in the documentation, and we
479// should accept them.
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480
481// Return whether C1 C2 C3 can start a hex number.
482
483inline bool
484Lex::can_start_hex(char c1, char c2, char c3)
485{
486 if (c1 == '0' && (c2 == 'x' || c2 == 'X'))
09124467 487 return this->can_continue_hex(&c3);
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488 return false;
489}
490
491// Return whether C can appear in a hex number.
492
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493inline const char*
494Lex::can_continue_hex(const char* c)
dbe717ef 495{
09124467 496 switch (*c)
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497 {
498 case '0': case '1': case '2': case '3': case '4':
499 case '5': case '6': case '7': case '8': case '9':
500 case 'A': case 'B': case 'C': case 'D': case 'E': case 'F':
501 case 'a': case 'b': case 'c': case 'd': case 'e': case 'f':
09124467 502 return c + 1;
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503
504 default:
09124467 505 return NULL;
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506 }
507}
508
509// Return whether C can start a non-hex number.
510
511inline bool
512Lex::can_start_number(char c)
513{
514 switch (c)
515 {
516 case '0': case '1': case '2': case '3': case '4':
517 case '5': case '6': case '7': case '8': case '9':
518 return true;
519
520 default:
521 return false;
522 }
523}
524
525// If C1 C2 C3 form a valid three character operator, return the
526// opcode (defined in the yyscript.h file generated from yyscript.y).
527// Otherwise return 0.
528
529inline int
530Lex::three_char_operator(char c1, char c2, char c3)
531{
532 switch (c1)
533 {
534 case '<':
535 if (c2 == '<' && c3 == '=')
536 return LSHIFTEQ;
537 break;
538 case '>':
539 if (c2 == '>' && c3 == '=')
540 return RSHIFTEQ;
541 break;
542 default:
543 break;
544 }
545 return 0;
546}
547
548// If C1 C2 form a valid two character operator, return the opcode
549// (defined in the yyscript.h file generated from yyscript.y).
550// Otherwise return 0.
551
552inline int
553Lex::two_char_operator(char c1, char c2)
554{
555 switch (c1)
556 {
557 case '=':
558 if (c2 == '=')
559 return EQ;
560 break;
561 case '!':
562 if (c2 == '=')
563 return NE;
564 break;
565 case '+':
566 if (c2 == '=')
567 return PLUSEQ;
568 break;
569 case '-':
570 if (c2 == '=')
571 return MINUSEQ;
572 break;
573 case '*':
574 if (c2 == '=')
575 return MULTEQ;
576 break;
577 case '/':
578 if (c2 == '=')
579 return DIVEQ;
580 break;
581 case '|':
582 if (c2 == '=')
583 return OREQ;
584 if (c2 == '|')
585 return OROR;
586 break;
587 case '&':
588 if (c2 == '=')
589 return ANDEQ;
590 if (c2 == '&')
591 return ANDAND;
592 break;
593 case '>':
594 if (c2 == '=')
595 return GE;
596 if (c2 == '>')
597 return RSHIFT;
598 break;
599 case '<':
600 if (c2 == '=')
601 return LE;
602 if (c2 == '<')
603 return LSHIFT;
604 break;
605 default:
606 break;
607 }
608 return 0;
609}
610
611// If C1 is a valid operator, return the opcode. Otherwise return 0.
612
613inline int
614Lex::one_char_operator(char c1)
615{
616 switch (c1)
617 {
618 case '+':
619 case '-':
620 case '*':
621 case '/':
622 case '%':
623 case '!':
624 case '&':
625 case '|':
626 case '^':
627 case '~':
628 case '<':
629 case '>':
630 case '=':
631 case '?':
632 case ',':
633 case '(':
634 case ')':
635 case '{':
636 case '}':
637 case '[':
638 case ']':
639 case ':':
640 case ';':
641 return c1;
642 default:
643 return 0;
644 }
645}
646
647// Skip a C style comment. *PP points to just after the "/*". Return
648// false if the comment did not end.
649
650bool
651Lex::skip_c_comment(const char** pp)
652{
653 const char* p = *pp;
654 while (p[0] != '*' || p[1] != '/')
655 {
656 if (*p == '\0')
657 {
658 *pp = p;
659 return false;
660 }
661
662 if (*p == '\n')
663 {
664 ++this->lineno_;
665 this->linestart_ = p + 1;
666 }
667 ++p;
668 }
669
670 *pp = p + 2;
671 return true;
672}
673
674// Skip a line # comment. Return false if there was no newline.
675
676bool
677Lex::skip_line_comment(const char** pp)
678{
679 const char* p = *pp;
680 size_t skip = strcspn(p, "\n");
681 if (p[skip] == '\0')
682 {
683 *pp = p + skip;
684 return false;
685 }
686
687 p += skip + 1;
688 ++this->lineno_;
689 this->linestart_ = p;
690 *pp = p;
691
692 return true;
693}
694
695// Build a token CLASSIFICATION from all characters that match
696// CAN_CONTINUE_FN. Update *PP.
697
698inline Token
699Lex::gather_token(Token::Classification classification,
09124467 700 const char* (Lex::*can_continue_fn)(const char*),
dbe717ef
ILT
701 const char* start,
702 const char* match,
703 const char **pp)
704{
09124467
ILT
705 const char* new_match = NULL;
706 while ((new_match = (this->*can_continue_fn)(match)))
707 match = new_match;
dbe717ef 708 *pp = match;
e5756efb 709 return this->make_token(classification, start, match - start, start);
dbe717ef
ILT
710}
711
712// Build a token from a quoted string.
713
714Token
715Lex::gather_quoted_string(const char** pp)
716{
717 const char* start = *pp;
718 const char* p = start;
719 ++p;
720 size_t skip = strcspn(p, "\"\n");
721 if (p[skip] != '"')
722 return this->make_invalid_token(start);
723 *pp = p + skip + 1;
e5756efb 724 return this->make_token(Token::TOKEN_QUOTED_STRING, p, skip, start);
dbe717ef
ILT
725}
726
727// Return the next token at *PP. Update *PP. General guideline: we
728// require linker scripts to be simple ASCII. No unicode linker
729// scripts. In particular we can assume that any '\0' is the end of
730// the input.
731
732Token
733Lex::get_token(const char** pp)
734{
735 const char* p = *pp;
736
737 while (true)
738 {
739 if (*p == '\0')
740 {
741 *pp = p;
742 return this->make_eof_token(p);
743 }
744
745 // Skip whitespace quickly.
f3048a1d 746 while (*p == ' ' || *p == '\t' || *p == '\r')
dbe717ef
ILT
747 ++p;
748
749 if (*p == '\n')
750 {
751 ++p;
752 ++this->lineno_;
753 this->linestart_ = p;
754 continue;
755 }
756
757 // Skip C style comments.
758 if (p[0] == '/' && p[1] == '*')
759 {
760 int lineno = this->lineno_;
761 int charpos = p - this->linestart_ + 1;
762
763 *pp = p + 2;
764 if (!this->skip_c_comment(pp))
765 return Token(Token::TOKEN_INVALID, lineno, charpos);
766 p = *pp;
767
768 continue;
769 }
770
771 // Skip line comments.
772 if (*p == '#')
773 {
774 *pp = p + 1;
775 if (!this->skip_line_comment(pp))
776 return this->make_eof_token(p);
777 p = *pp;
778 continue;
779 }
780
781 // Check for a name.
e5756efb 782 if (this->can_start_name(p[0], p[1]))
dbe717ef 783 return this->gather_token(Token::TOKEN_STRING,
e5756efb
ILT
784 &Lex::can_continue_name,
785 p, p + 1, pp);
dbe717ef
ILT
786
787 // We accept any arbitrary name in double quotes, as long as it
788 // does not cross a line boundary.
789 if (*p == '"')
790 {
791 *pp = p;
792 return this->gather_quoted_string(pp);
793 }
794
795 // Check for a number.
796
e5756efb 797 if (this->can_start_hex(p[0], p[1], p[2]))
dbe717ef 798 return this->gather_token(Token::TOKEN_INTEGER,
e5756efb 799 &Lex::can_continue_hex,
dbe717ef
ILT
800 p, p + 3, pp);
801
802 if (Lex::can_start_number(p[0]))
803 return this->gather_token(Token::TOKEN_INTEGER,
e5756efb 804 &Lex::can_continue_number,
dbe717ef
ILT
805 p, p + 1, pp);
806
807 // Check for operators.
808
809 int opcode = Lex::three_char_operator(p[0], p[1], p[2]);
810 if (opcode != 0)
811 {
812 *pp = p + 3;
813 return this->make_token(opcode, p);
814 }
815
816 opcode = Lex::two_char_operator(p[0], p[1]);
817 if (opcode != 0)
818 {
819 *pp = p + 2;
820 return this->make_token(opcode, p);
821 }
822
823 opcode = Lex::one_char_operator(p[0]);
824 if (opcode != 0)
825 {
826 *pp = p + 1;
827 return this->make_token(opcode, p);
828 }
829
830 return this->make_token(Token::TOKEN_INVALID, p);
831 }
832}
833
e5756efb 834// Return the next token.
dbe717ef 835
e5756efb
ILT
836const Token*
837Lex::next_token()
dbe717ef 838{
e5756efb
ILT
839 // The first token is special.
840 if (this->first_token_ != 0)
dbe717ef 841 {
e5756efb
ILT
842 this->token_ = Token(this->first_token_, 0, 0);
843 this->first_token_ = 0;
844 return &this->token_;
845 }
dbe717ef 846
e5756efb 847 this->token_ = this->get_token(&this->current_);
dbe717ef 848
e5756efb
ILT
849 // Don't let an early null byte fool us into thinking that we've
850 // reached the end of the file.
851 if (this->token_.is_eof()
852 && (static_cast<size_t>(this->current_ - this->input_string_)
853 < this->input_length_))
854 this->token_ = this->make_invalid_token(this->current_);
dbe717ef 855
e5756efb 856 return &this->token_;
dbe717ef
ILT
857}
858
494e05f4 859// class Symbol_assignment.
e5756efb 860
494e05f4
ILT
861// Add the symbol to the symbol table. This makes sure the symbol is
862// there and defined. The actual value is stored later. We can't
863// determine the actual value at this point, because we can't
864// necessarily evaluate the expression until all ordinary symbols have
865// been finalized.
e5756efb 866
caa9d5d9
ILT
867// The GNU linker lets symbol assignments in the linker script
868// silently override defined symbols in object files. We are
869// compatible. FIXME: Should we issue a warning?
870
e5756efb 871void
9b07f471 872Symbol_assignment::add_to_table(Symbol_table* symtab)
e5756efb 873{
494e05f4 874 elfcpp::STV vis = this->hidden_ ? elfcpp::STV_HIDDEN : elfcpp::STV_DEFAULT;
9b07f471 875 this->sym_ = symtab->define_as_constant(this->name_.c_str(),
e5756efb 876 NULL, // version
99fff23b
ILT
877 (this->is_defsym_
878 ? Symbol_table::DEFSYM
879 : Symbol_table::SCRIPT),
e5756efb
ILT
880 0, // value
881 0, // size
882 elfcpp::STT_NOTYPE,
883 elfcpp::STB_GLOBAL,
884 vis,
885 0, // nonvis
caa9d5d9
ILT
886 this->provide_,
887 true); // force_override
e5756efb
ILT
888}
889
494e05f4 890// Finalize a symbol value.
e5756efb
ILT
891
892void
494e05f4 893Symbol_assignment::finalize(Symbol_table* symtab, const Layout* layout)
a445fddf 894{
77e65537 895 this->finalize_maybe_dot(symtab, layout, false, 0, NULL);
a445fddf
ILT
896}
897
898// Finalize a symbol value which can refer to the dot symbol.
899
900void
901Symbol_assignment::finalize_with_dot(Symbol_table* symtab,
902 const Layout* layout,
77e65537
ILT
903 uint64_t dot_value,
904 Output_section* dot_section)
a445fddf 905{
77e65537 906 this->finalize_maybe_dot(symtab, layout, true, dot_value, dot_section);
a445fddf
ILT
907}
908
909// Finalize a symbol value, internal version.
910
911void
912Symbol_assignment::finalize_maybe_dot(Symbol_table* symtab,
913 const Layout* layout,
914 bool is_dot_available,
77e65537
ILT
915 uint64_t dot_value,
916 Output_section* dot_section)
e5756efb 917{
494e05f4
ILT
918 // If we were only supposed to provide this symbol, the sym_ field
919 // will be NULL if the symbol was not referenced.
920 if (this->sym_ == NULL)
921 {
922 gold_assert(this->provide_);
923 return;
924 }
925
8851ecca 926 if (parameters->target().get_size() == 32)
e5756efb
ILT
927 {
928#if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
77e65537
ILT
929 this->sized_finalize<32>(symtab, layout, is_dot_available, dot_value,
930 dot_section);
e5756efb
ILT
931#else
932 gold_unreachable();
933#endif
934 }
8851ecca 935 else if (parameters->target().get_size() == 64)
e5756efb
ILT
936 {
937#if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
77e65537
ILT
938 this->sized_finalize<64>(symtab, layout, is_dot_available, dot_value,
939 dot_section);
e5756efb
ILT
940#else
941 gold_unreachable();
942#endif
943 }
944 else
945 gold_unreachable();
946}
947
948template<int size>
949void
a445fddf 950Symbol_assignment::sized_finalize(Symbol_table* symtab, const Layout* layout,
77e65537
ILT
951 bool is_dot_available, uint64_t dot_value,
952 Output_section* dot_section)
a445fddf 953{
77e65537 954 Output_section* section;
919ed24c 955 uint64_t final_val = this->val_->eval_maybe_dot(symtab, layout, true,
a445fddf 956 is_dot_available,
77e65537 957 dot_value, dot_section,
f6973bdc 958 &section, NULL);
494e05f4 959 Sized_symbol<size>* ssym = symtab->get_sized_symbol<size>(this->sym_);
a445fddf 960 ssym->set_value(final_val);
77e65537
ILT
961 if (section != NULL)
962 ssym->set_output_section(section);
a445fddf
ILT
963}
964
965// Set the symbol value if the expression yields an absolute value.
966
967void
968Symbol_assignment::set_if_absolute(Symbol_table* symtab, const Layout* layout,
77e65537 969 bool is_dot_available, uint64_t dot_value)
a445fddf
ILT
970{
971 if (this->sym_ == NULL)
972 return;
973
77e65537 974 Output_section* val_section;
919ed24c
ILT
975 uint64_t val = this->val_->eval_maybe_dot(symtab, layout, false,
976 is_dot_available, dot_value,
f6973bdc 977 NULL, &val_section, NULL);
77e65537 978 if (val_section != NULL)
a445fddf
ILT
979 return;
980
8851ecca 981 if (parameters->target().get_size() == 32)
a445fddf
ILT
982 {
983#if defined(HAVE_TARGET_32_LITTLE) || defined(HAVE_TARGET_32_BIG)
984 Sized_symbol<32>* ssym = symtab->get_sized_symbol<32>(this->sym_);
985 ssym->set_value(val);
986#else
987 gold_unreachable();
988#endif
989 }
8851ecca 990 else if (parameters->target().get_size() == 64)
a445fddf
ILT
991 {
992#if defined(HAVE_TARGET_64_LITTLE) || defined(HAVE_TARGET_64_BIG)
993 Sized_symbol<64>* ssym = symtab->get_sized_symbol<64>(this->sym_);
994 ssym->set_value(val);
995#else
996 gold_unreachable();
997#endif
998 }
999 else
1000 gold_unreachable();
494e05f4
ILT
1001}
1002
1003// Print for debugging.
1004
1005void
1006Symbol_assignment::print(FILE* f) const
1007{
1008 if (this->provide_ && this->hidden_)
1009 fprintf(f, "PROVIDE_HIDDEN(");
1010 else if (this->provide_)
1011 fprintf(f, "PROVIDE(");
1012 else if (this->hidden_)
1013 gold_unreachable();
1014
1015 fprintf(f, "%s = ", this->name_.c_str());
1016 this->val_->print(f);
1017
1018 if (this->provide_ || this->hidden_)
1019 fprintf(f, ")");
1020
1021 fprintf(f, "\n");
1022}
1023
1024// Class Script_assertion.
1025
1026// Check the assertion.
1027
1028void
1029Script_assertion::check(const Symbol_table* symtab, const Layout* layout)
1030{
919ed24c 1031 if (!this->check_->eval(symtab, layout, true))
494e05f4
ILT
1032 gold_error("%s", this->message_.c_str());
1033}
1034
1035// Print for debugging.
1036
1037void
1038Script_assertion::print(FILE* f) const
1039{
1040 fprintf(f, "ASSERT(");
1041 this->check_->print(f);
1042 fprintf(f, ", \"%s\")\n", this->message_.c_str());
1043}
1044
1045// Class Script_options.
1046
1047Script_options::Script_options()
1048 : entry_(), symbol_assignments_(), version_script_info_(),
1049 script_sections_()
1050{
1051}
1052
1053// Add a symbol to be defined.
1054
1055void
1056Script_options::add_symbol_assignment(const char* name, size_t length,
99fff23b
ILT
1057 bool is_defsym, Expression* value,
1058 bool provide, bool hidden)
494e05f4 1059{
a445fddf
ILT
1060 if (length != 1 || name[0] != '.')
1061 {
1062 if (this->script_sections_.in_sections_clause())
a445fddf 1063 {
99fff23b
ILT
1064 gold_assert(!is_defsym);
1065 this->script_sections_.add_symbol_assignment(name, length, value,
a445fddf 1066 provide, hidden);
99fff23b
ILT
1067 }
1068 else
1069 {
1070 Symbol_assignment* p = new Symbol_assignment(name, length, is_defsym,
1071 value, provide, hidden);
a445fddf
ILT
1072 this->symbol_assignments_.push_back(p);
1073 }
1074 }
494e05f4
ILT
1075 else
1076 {
a445fddf
ILT
1077 if (provide || hidden)
1078 gold_error(_("invalid use of PROVIDE for dot symbol"));
12edd763
ILT
1079
1080 // The GNU linker permits assignments to dot outside of SECTIONS
1081 // clauses and treats them as occurring inside, so we don't
1082 // check in_sections_clause here.
1083 this->script_sections_.add_dot_assignment(value);
494e05f4
ILT
1084 }
1085}
1086
1087// Add an assertion.
1088
1089void
1090Script_options::add_assertion(Expression* check, const char* message,
1091 size_t messagelen)
1092{
1093 if (this->script_sections_.in_sections_clause())
1094 this->script_sections_.add_assertion(check, message, messagelen);
1095 else
1096 {
1097 Script_assertion* p = new Script_assertion(check, message, messagelen);
1098 this->assertions_.push_back(p);
1099 }
1100}
1101
919ed24c
ILT
1102// Create sections required by any linker scripts.
1103
1104void
1105Script_options::create_script_sections(Layout* layout)
1106{
1107 if (this->saw_sections_clause())
1108 this->script_sections_.create_sections(layout);
1109}
1110
494e05f4
ILT
1111// Add any symbols we are defining to the symbol table.
1112
1113void
9b07f471 1114Script_options::add_symbols_to_table(Symbol_table* symtab)
e5756efb
ILT
1115{
1116 for (Symbol_assignments::iterator p = this->symbol_assignments_.begin();
1117 p != this->symbol_assignments_.end();
1118 ++p)
9b07f471 1119 (*p)->add_to_table(symtab);
a445fddf 1120 this->script_sections_.add_symbols_to_table(symtab);
494e05f4
ILT
1121}
1122
a445fddf 1123// Finalize symbol values. Also check assertions.
494e05f4
ILT
1124
1125void
1126Script_options::finalize_symbols(Symbol_table* symtab, const Layout* layout)
1127{
7c07ecec
ILT
1128 // We finalize the symbols defined in SECTIONS first, because they
1129 // are the ones which may have changed. This way if symbol outside
1130 // SECTIONS are defined in terms of symbols inside SECTIONS, they
1131 // will get the right value.
1132 this->script_sections_.finalize_symbols(symtab, layout);
1133
494e05f4
ILT
1134 for (Symbol_assignments::iterator p = this->symbol_assignments_.begin();
1135 p != this->symbol_assignments_.end();
1136 ++p)
1137 (*p)->finalize(symtab, layout);
a445fddf
ILT
1138
1139 for (Assertions::iterator p = this->assertions_.begin();
1140 p != this->assertions_.end();
1141 ++p)
1142 (*p)->check(symtab, layout);
a445fddf
ILT
1143}
1144
1145// Set section addresses. We set all the symbols which have absolute
1146// values. Then we let the SECTIONS clause do its thing. This
1147// returns the segment which holds the file header and segment
1148// headers, if any.
1149
1150Output_segment*
1151Script_options::set_section_addresses(Symbol_table* symtab, Layout* layout)
1152{
1153 for (Symbol_assignments::iterator p = this->symbol_assignments_.begin();
1154 p != this->symbol_assignments_.end();
1155 ++p)
77e65537 1156 (*p)->set_if_absolute(symtab, layout, false, 0);
a445fddf
ILT
1157
1158 return this->script_sections_.set_section_addresses(symtab, layout);
e5756efb
ILT
1159}
1160
dbe717ef
ILT
1161// This class holds data passed through the parser to the lexer and to
1162// the parser support functions. This avoids global variables. We
17a1d0a9
ILT
1163// can't use global variables because we need not be called by a
1164// singleton thread.
dbe717ef
ILT
1165
1166class Parser_closure
1167{
1168 public:
2ea97941 1169 Parser_closure(const char* filename,
dbe717ef 1170 const Position_dependent_options& posdep_options,
99fff23b 1171 bool parsing_defsym, bool in_group, bool is_in_sysroot,
2ea97941
ILT
1172 Command_line* command_line,
1173 Script_options* script_options,
15f8229b 1174 Lex* lex,
2ea97941
ILT
1175 bool skip_on_incompatible_target)
1176 : filename_(filename), posdep_options_(posdep_options),
99fff23b
ILT
1177 parsing_defsym_(parsing_defsym), in_group_(in_group),
1178 is_in_sysroot_(is_in_sysroot),
2ea97941 1179 skip_on_incompatible_target_(skip_on_incompatible_target),
15f8229b 1180 found_incompatible_target_(false),
2ea97941
ILT
1181 command_line_(command_line), script_options_(script_options),
1182 version_script_info_(script_options->version_script_info()),
e5756efb 1183 lex_(lex), lineno_(0), charpos_(0), lex_mode_stack_(), inputs_(NULL)
c82fbeee 1184 {
09124467 1185 // We start out processing C symbols in the default lex mode.
6affe781
ILT
1186 this->language_stack_.push_back(Version_script_info::LANGUAGE_C);
1187 this->lex_mode_stack_.push_back(lex->mode());
09124467 1188 }
dbe717ef
ILT
1189
1190 // Return the file name.
1191 const char*
1192 filename() const
1193 { return this->filename_; }
1194
1195 // Return the position dependent options. The caller may modify
1196 // this.
1197 Position_dependent_options&
1198 position_dependent_options()
1199 { return this->posdep_options_; }
1200
99fff23b
ILT
1201 // Whether we are parsing a --defsym.
1202 bool
1203 parsing_defsym() const
1204 { return this->parsing_defsym_; }
1205
dbe717ef
ILT
1206 // Return whether this script is being run in a group.
1207 bool
1208 in_group() const
1209 { return this->in_group_; }
1210
ad2d6943
ILT
1211 // Return whether this script was found using a directory in the
1212 // sysroot.
1213 bool
1214 is_in_sysroot() const
1215 { return this->is_in_sysroot_; }
1216
15f8229b
ILT
1217 // Whether to skip to the next file with the same name if we find an
1218 // incompatible target in an OUTPUT_FORMAT statement.
1219 bool
1220 skip_on_incompatible_target() const
1221 { return this->skip_on_incompatible_target_; }
1222
e6a307ba 1223 // Stop skipping to the next file on an incompatible target. This
15f8229b
ILT
1224 // is called when we make some unrevocable change to the data
1225 // structures.
1226 void
1227 clear_skip_on_incompatible_target()
1228 { this->skip_on_incompatible_target_ = false; }
1229
1230 // Whether we found an incompatible target in an OUTPUT_FORMAT
1231 // statement.
1232 bool
1233 found_incompatible_target() const
1234 { return this->found_incompatible_target_; }
1235
1236 // Note that we found an incompatible target.
1237 void
1238 set_found_incompatible_target()
1239 { this->found_incompatible_target_ = true; }
1240
a0451b38
ILT
1241 // Returns the Command_line structure passed in at constructor time.
1242 // This value may be NULL. The caller may modify this, which modifies
1243 // the passed-in Command_line object (not a copy).
e5756efb
ILT
1244 Command_line*
1245 command_line()
a0451b38
ILT
1246 { return this->command_line_; }
1247
e5756efb
ILT
1248 // Return the options which may be set by a script.
1249 Script_options*
1250 script_options()
1251 { return this->script_options_; }
dbe717ef 1252
09124467
ILT
1253 // Return the object in which version script information should be stored.
1254 Version_script_info*
1255 version_script()
1256 { return this->version_script_info_; }
1257
2dd3e587 1258 // Return the next token, and advance.
dbe717ef
ILT
1259 const Token*
1260 next_token()
1261 {
e5756efb
ILT
1262 const Token* token = this->lex_->next_token();
1263 this->lineno_ = token->lineno();
1264 this->charpos_ = token->charpos();
1265 return token;
dbe717ef
ILT
1266 }
1267
e5756efb
ILT
1268 // Set a new lexer mode, pushing the current one.
1269 void
1270 push_lex_mode(Lex::Mode mode)
1271 {
1272 this->lex_mode_stack_.push_back(this->lex_->mode());
1273 this->lex_->set_mode(mode);
1274 }
1275
1276 // Pop the lexer mode.
1277 void
1278 pop_lex_mode()
2dd3e587 1279 {
e5756efb
ILT
1280 gold_assert(!this->lex_mode_stack_.empty());
1281 this->lex_->set_mode(this->lex_mode_stack_.back());
1282 this->lex_mode_stack_.pop_back();
2dd3e587
ILT
1283 }
1284
09124467
ILT
1285 // Return the current lexer mode.
1286 Lex::Mode
1287 lex_mode() const
1288 { return this->lex_mode_stack_.back(); }
1289
e5756efb
ILT
1290 // Return the line number of the last token.
1291 int
1292 lineno() const
1293 { return this->lineno_; }
1294
1295 // Return the character position in the line of the last token.
1296 int
1297 charpos() const
1298 { return this->charpos_; }
1299
dbe717ef
ILT
1300 // Return the list of input files, creating it if necessary. This
1301 // is a space leak--we never free the INPUTS_ pointer.
1302 Input_arguments*
1303 inputs()
1304 {
1305 if (this->inputs_ == NULL)
1306 this->inputs_ = new Input_arguments();
1307 return this->inputs_;
1308 }
1309
1310 // Return whether we saw any input files.
1311 bool
1312 saw_inputs() const
1313 { return this->inputs_ != NULL && !this->inputs_->empty(); }
1314
09124467
ILT
1315 // Return the current language being processed in a version script
1316 // (eg, "C++"). The empty string represents unmangled C names.
6affe781 1317 Version_script_info::Language
09124467
ILT
1318 get_current_language() const
1319 { return this->language_stack_.back(); }
1320
1321 // Push a language onto the stack when entering an extern block.
6affe781
ILT
1322 void
1323 push_language(Version_script_info::Language lang)
09124467
ILT
1324 { this->language_stack_.push_back(lang); }
1325
1326 // Pop a language off of the stack when exiting an extern block.
6affe781
ILT
1327 void
1328 pop_language()
09124467
ILT
1329 {
1330 gold_assert(!this->language_stack_.empty());
1331 this->language_stack_.pop_back();
1332 }
1333
dbe717ef
ILT
1334 private:
1335 // The name of the file we are reading.
1336 const char* filename_;
1337 // The position dependent options.
1338 Position_dependent_options posdep_options_;
99fff23b
ILT
1339 // True if we are parsing a --defsym.
1340 bool parsing_defsym_;
dbe717ef
ILT
1341 // Whether we are currently in a --start-group/--end-group.
1342 bool in_group_;
ad2d6943
ILT
1343 // Whether the script was found in a sysrooted directory.
1344 bool is_in_sysroot_;
15f8229b
ILT
1345 // If this is true, then if we find an OUTPUT_FORMAT with an
1346 // incompatible target, then we tell the parser to abort so that we
1347 // can search for the next file with the same name.
1348 bool skip_on_incompatible_target_;
1349 // True if we found an OUTPUT_FORMAT with an incompatible target.
1350 bool found_incompatible_target_;
a0451b38
ILT
1351 // May be NULL if the user chooses not to pass one in.
1352 Command_line* command_line_;
e5756efb
ILT
1353 // Options which may be set from any linker script.
1354 Script_options* script_options_;
09124467
ILT
1355 // Information parsed from a version script.
1356 Version_script_info* version_script_info_;
e5756efb
ILT
1357 // The lexer.
1358 Lex* lex_;
1359 // The line number of the last token returned by next_token.
1360 int lineno_;
1361 // The column number of the last token returned by next_token.
1362 int charpos_;
1363 // A stack of lexer modes.
1364 std::vector<Lex::Mode> lex_mode_stack_;
09124467
ILT
1365 // A stack of which extern/language block we're inside. Can be C++,
1366 // java, or empty for C.
6affe781 1367 std::vector<Version_script_info::Language> language_stack_;
dbe717ef
ILT
1368 // New input files found to add to the link.
1369 Input_arguments* inputs_;
1370};
1371
1372// FILE was found as an argument on the command line. Try to read it
da769d56 1373// as a script. Return true if the file was handled.
dbe717ef
ILT
1374
1375bool
f1ed28fb 1376read_input_script(Workqueue* workqueue, Symbol_table* symtab, Layout* layout,
15f8229b
ILT
1377 Dirsearch* dirsearch, int dirindex,
1378 Input_objects* input_objects, Mapfile* mapfile,
1379 Input_group* input_group,
dbe717ef 1380 const Input_argument* input_argument,
da769d56
ILT
1381 Input_file* input_file, Task_token* next_blocker,
1382 bool* used_next_blocker)
dbe717ef 1383{
da769d56
ILT
1384 *used_next_blocker = false;
1385
e5756efb
ILT
1386 std::string input_string;
1387 Lex::read_file(input_file, &input_string);
1388
1389 Lex lex(input_string.c_str(), input_string.length(), PARSING_LINKER_SCRIPT);
dbe717ef
ILT
1390
1391 Parser_closure closure(input_file->filename().c_str(),
1392 input_argument->file().options(),
99fff23b 1393 false,
dbe717ef 1394 input_group != NULL,
ad2d6943 1395 input_file->is_in_sysroot(),
a0451b38 1396 NULL,
e5756efb 1397 layout->script_options(),
15f8229b
ILT
1398 &lex,
1399 input_file->will_search_for());
dbe717ef 1400
d7bb5745
ILT
1401 bool old_saw_sections_clause =
1402 layout->script_options()->saw_sections_clause();
1403
dbe717ef 1404 if (yyparse(&closure) != 0)
15f8229b
ILT
1405 {
1406 if (closure.found_incompatible_target())
1407 {
1408 Read_symbols::incompatible_warning(input_argument, input_file);
1409 Read_symbols::requeue(workqueue, input_objects, symtab, layout,
1410 dirsearch, dirindex, mapfile, input_argument,
1411 input_group, next_blocker);
1412 return true;
1413 }
1414 return false;
1415 }
dbe717ef 1416
d7bb5745
ILT
1417 if (!old_saw_sections_clause
1418 && layout->script_options()->saw_sections_clause()
1419 && layout->have_added_input_section())
1420 gold_error(_("%s: SECTIONS seen after other input files; try -T/--script"),
1421 input_file->filename().c_str());
1422
dbe717ef 1423 if (!closure.saw_inputs())
da769d56 1424 return true;
dbe717ef 1425
da769d56 1426 Task_token* this_blocker = NULL;
dbe717ef
ILT
1427 for (Input_arguments::const_iterator p = closure.inputs()->begin();
1428 p != closure.inputs()->end();
1429 ++p)
1430 {
1431 Task_token* nb;
1432 if (p + 1 == closure.inputs()->end())
1433 nb = next_blocker;
1434 else
1435 {
17a1d0a9 1436 nb = new Task_token(true);
dbe717ef
ILT
1437 nb->add_blocker();
1438 }
f1ed28fb 1439 workqueue->queue_soon(new Read_symbols(input_objects, symtab,
15f8229b 1440 layout, dirsearch, 0, mapfile, &*p,
b0193076 1441 input_group, NULL, this_blocker, nb));
dbe717ef
ILT
1442 this_blocker = nb;
1443 }
1444
072fe7ce
ILT
1445 if (layout->incremental_inputs())
1446 {
1447 // Like new Read_symbols(...) above, we rely on close.inputs()
1448 // getting leaked by closure.
1449 Script_info* info = new Script_info(closure.inputs());
98fa85cb
ILT
1450 layout->incremental_inputs()->report_script(
1451 input_argument,
1452 input_file->file().get_mtime(),
1453 info);
072fe7ce 1454 }
da769d56
ILT
1455 *used_next_blocker = true;
1456
dbe717ef
ILT
1457 return true;
1458}
1459
09124467
ILT
1460// Helper function for read_version_script() and
1461// read_commandline_script(). Processes the given file in the mode
1462// indicated by first_token and lex_mode.
3c2fafa5 1463
09124467
ILT
1464static bool
1465read_script_file(const char* filename, Command_line* cmdline,
c82fbeee 1466 Script_options* script_options,
09124467 1467 int first_token, Lex::Mode lex_mode)
3c2fafa5 1468{
a0451b38
ILT
1469 // TODO: if filename is a relative filename, search for it manually
1470 // using "." + cmdline->options()->search_path() -- not dirsearch.
3c2fafa5
ILT
1471 Dirsearch dirsearch;
1472
17a1d0a9
ILT
1473 // The file locking code wants to record a Task, but we haven't
1474 // started the workqueue yet. This is only for debugging purposes,
1475 // so we invent a fake value.
1476 const Task* task = reinterpret_cast<const Task*>(-1);
1477
b0d8593d
ILT
1478 // We don't want this file to be opened in binary mode.
1479 Position_dependent_options posdep = cmdline->position_dependent_options();
7cc619c3
ILT
1480 if (posdep.format_enum() == General_options::OBJECT_FORMAT_BINARY)
1481 posdep.set_format_enum(General_options::OBJECT_FORMAT_ELF);
ae3b5189
CD
1482 Input_file_argument input_argument(filename,
1483 Input_file_argument::INPUT_FILE_TYPE_FILE,
1484 "", false, posdep);
3c2fafa5 1485 Input_file input_file(&input_argument);
15f8229b
ILT
1486 int dummy = 0;
1487 if (!input_file.open(dirsearch, task, &dummy))
3c2fafa5
ILT
1488 return false;
1489
e5756efb
ILT
1490 std::string input_string;
1491 Lex::read_file(&input_file, &input_string);
1492
09124467
ILT
1493 Lex lex(input_string.c_str(), input_string.length(), first_token);
1494 lex.set_mode(lex_mode);
3c2fafa5
ILT
1495
1496 Parser_closure closure(filename,
1497 cmdline->position_dependent_options(),
99fff23b 1498 first_token == Lex::DYNAMIC_LIST,
3c2fafa5
ILT
1499 false,
1500 input_file.is_in_sysroot(),
a0451b38 1501 cmdline,
c82fbeee 1502 script_options,
15f8229b
ILT
1503 &lex,
1504 false);
3c2fafa5
ILT
1505 if (yyparse(&closure) != 0)
1506 {
17a1d0a9 1507 input_file.file().unlock(task);
3c2fafa5
ILT
1508 return false;
1509 }
1510
17a1d0a9 1511 input_file.file().unlock(task);
d391083d
ILT
1512
1513 gold_assert(!closure.saw_inputs());
1514
3c2fafa5
ILT
1515 return true;
1516}
1517
09124467
ILT
1518// FILENAME was found as an argument to --script (-T).
1519// Read it as a script, and execute its contents immediately.
1520
1521bool
1522read_commandline_script(const char* filename, Command_line* cmdline)
1523{
c82fbeee 1524 return read_script_file(filename, cmdline, &cmdline->script_options(),
09124467
ILT
1525 PARSING_LINKER_SCRIPT, Lex::LINKER_SCRIPT);
1526}
1527
c82fbeee
CS
1528// FILENAME was found as an argument to --version-script. Read it as
1529// a version script, and store its contents in
09124467
ILT
1530// cmdline->script_options()->version_script_info().
1531
1532bool
1533read_version_script(const char* filename, Command_line* cmdline)
1534{
c82fbeee 1535 return read_script_file(filename, cmdline, &cmdline->script_options(),
09124467
ILT
1536 PARSING_VERSION_SCRIPT, Lex::VERSION_SCRIPT);
1537}
1538
c82fbeee
CS
1539// FILENAME was found as an argument to --dynamic-list. Read it as a
1540// list of symbols, and store its contents in DYNAMIC_LIST.
1541
1542bool
1543read_dynamic_list(const char* filename, Command_line* cmdline,
1544 Script_options* dynamic_list)
1545{
1546 return read_script_file(filename, cmdline, dynamic_list,
1547 PARSING_DYNAMIC_LIST, Lex::DYNAMIC_LIST);
1548}
1549
e5756efb
ILT
1550// Implement the --defsym option on the command line. Return true if
1551// all is well.
1552
1553bool
1554Script_options::define_symbol(const char* definition)
1555{
1556 Lex lex(definition, strlen(definition), PARSING_DEFSYM);
1557 lex.set_mode(Lex::EXPRESSION);
1558
1559 // Dummy value.
1560 Position_dependent_options posdep_options;
1561
99fff23b
ILT
1562 Parser_closure closure("command line", posdep_options, true,
1563 false, false, NULL, this, &lex, false);
e5756efb
ILT
1564
1565 if (yyparse(&closure) != 0)
1566 return false;
1567
1568 gold_assert(!closure.saw_inputs());
1569
1570 return true;
1571}
1572
494e05f4
ILT
1573// Print the script to F for debugging.
1574
1575void
1576Script_options::print(FILE* f) const
1577{
1578 fprintf(f, "%s: Dumping linker script\n", program_name);
1579
1580 if (!this->entry_.empty())
1581 fprintf(f, "ENTRY(%s)\n", this->entry_.c_str());
1582
1583 for (Symbol_assignments::const_iterator p =
1584 this->symbol_assignments_.begin();
1585 p != this->symbol_assignments_.end();
1586 ++p)
1587 (*p)->print(f);
1588
1589 for (Assertions::const_iterator p = this->assertions_.begin();
1590 p != this->assertions_.end();
1591 ++p)
1592 (*p)->print(f);
1593
1594 this->script_sections_.print(f);
1595
1596 this->version_script_info_.print(f);
1597}
1598
dbe717ef 1599// Manage mapping from keywords to the codes expected by the bison
09124467
ILT
1600// parser. We construct one global object for each lex mode with
1601// keywords.
dbe717ef
ILT
1602
1603class Keyword_to_parsecode
1604{
1605 public:
1606 // The structure which maps keywords to parsecodes.
1607 struct Keyword_parsecode
1608 {
1609 // Keyword.
1610 const char* keyword;
1611 // Corresponding parsecode.
1612 int parsecode;
1613 };
1614
09124467
ILT
1615 Keyword_to_parsecode(const Keyword_parsecode* keywords,
1616 int keyword_count)
1617 : keyword_parsecodes_(keywords), keyword_count_(keyword_count)
1618 { }
1619
dbe717ef
ILT
1620 // Return the parsecode corresponding KEYWORD, or 0 if it is not a
1621 // keyword.
09124467
ILT
1622 int
1623 keyword_to_parsecode(const char* keyword, size_t len) const;
dbe717ef
ILT
1624
1625 private:
09124467
ILT
1626 const Keyword_parsecode* keyword_parsecodes_;
1627 const int keyword_count_;
dbe717ef
ILT
1628};
1629
1630// Mapping from keyword string to keyword parsecode. This array must
1631// be kept in sorted order. Parsecodes are looked up using bsearch.
1632// This array must correspond to the list of parsecodes in yyscript.y.
1633
09124467
ILT
1634static const Keyword_to_parsecode::Keyword_parsecode
1635script_keyword_parsecodes[] =
dbe717ef
ILT
1636{
1637 { "ABSOLUTE", ABSOLUTE },
1638 { "ADDR", ADDR },
1639 { "ALIGN", ALIGN_K },
e5756efb 1640 { "ALIGNOF", ALIGNOF },
dbe717ef
ILT
1641 { "ASSERT", ASSERT_K },
1642 { "AS_NEEDED", AS_NEEDED },
1643 { "AT", AT },
1644 { "BIND", BIND },
1645 { "BLOCK", BLOCK },
1646 { "BYTE", BYTE },
1647 { "CONSTANT", CONSTANT },
1648 { "CONSTRUCTORS", CONSTRUCTORS },
1e5d2fb1 1649 { "COPY", COPY },
dbe717ef
ILT
1650 { "CREATE_OBJECT_SYMBOLS", CREATE_OBJECT_SYMBOLS },
1651 { "DATA_SEGMENT_ALIGN", DATA_SEGMENT_ALIGN },
1652 { "DATA_SEGMENT_END", DATA_SEGMENT_END },
1653 { "DATA_SEGMENT_RELRO_END", DATA_SEGMENT_RELRO_END },
1654 { "DEFINED", DEFINED },
1e5d2fb1 1655 { "DSECT", DSECT },
dbe717ef
ILT
1656 { "ENTRY", ENTRY },
1657 { "EXCLUDE_FILE", EXCLUDE_FILE },
1658 { "EXTERN", EXTERN },
1659 { "FILL", FILL },
1660 { "FLOAT", FLOAT },
1661 { "FORCE_COMMON_ALLOCATION", FORCE_COMMON_ALLOCATION },
1662 { "GROUP", GROUP },
1663 { "HLL", HLL },
1664 { "INCLUDE", INCLUDE },
1e5d2fb1 1665 { "INFO", INFO },
dbe717ef
ILT
1666 { "INHIBIT_COMMON_ALLOCATION", INHIBIT_COMMON_ALLOCATION },
1667 { "INPUT", INPUT },
1668 { "KEEP", KEEP },
1669 { "LENGTH", LENGTH },
1670 { "LOADADDR", LOADADDR },
1671 { "LONG", LONG },
1672 { "MAP", MAP },
1673 { "MAX", MAX_K },
1674 { "MEMORY", MEMORY },
1675 { "MIN", MIN_K },
1676 { "NEXT", NEXT },
1677 { "NOCROSSREFS", NOCROSSREFS },
1678 { "NOFLOAT", NOFLOAT },
1e5d2fb1 1679 { "NOLOAD", NOLOAD },
dbe717ef
ILT
1680 { "ONLY_IF_RO", ONLY_IF_RO },
1681 { "ONLY_IF_RW", ONLY_IF_RW },
195e7dc6 1682 { "OPTION", OPTION },
dbe717ef
ILT
1683 { "ORIGIN", ORIGIN },
1684 { "OUTPUT", OUTPUT },
1685 { "OUTPUT_ARCH", OUTPUT_ARCH },
1686 { "OUTPUT_FORMAT", OUTPUT_FORMAT },
1687 { "OVERLAY", OVERLAY },
1688 { "PHDRS", PHDRS },
1689 { "PROVIDE", PROVIDE },
1690 { "PROVIDE_HIDDEN", PROVIDE_HIDDEN },
1691 { "QUAD", QUAD },
1692 { "SEARCH_DIR", SEARCH_DIR },
1693 { "SECTIONS", SECTIONS },
1694 { "SEGMENT_START", SEGMENT_START },
1695 { "SHORT", SHORT },
1696 { "SIZEOF", SIZEOF },
1697 { "SIZEOF_HEADERS", SIZEOF_HEADERS },
3802b2dd 1698 { "SORT", SORT_BY_NAME },
dbe717ef
ILT
1699 { "SORT_BY_ALIGNMENT", SORT_BY_ALIGNMENT },
1700 { "SORT_BY_NAME", SORT_BY_NAME },
1701 { "SPECIAL", SPECIAL },
1702 { "SQUAD", SQUAD },
1703 { "STARTUP", STARTUP },
1704 { "SUBALIGN", SUBALIGN },
1705 { "SYSLIB", SYSLIB },
1706 { "TARGET", TARGET_K },
1707 { "TRUNCATE", TRUNCATE },
1708 { "VERSION", VERSIONK },
1709 { "global", GLOBAL },
1710 { "l", LENGTH },
1711 { "len", LENGTH },
1712 { "local", LOCAL },
1713 { "o", ORIGIN },
1714 { "org", ORIGIN },
1715 { "sizeof_headers", SIZEOF_HEADERS },
1716};
1717
09124467
ILT
1718static const Keyword_to_parsecode
1719script_keywords(&script_keyword_parsecodes[0],
1720 (sizeof(script_keyword_parsecodes)
1721 / sizeof(script_keyword_parsecodes[0])));
1722
1723static const Keyword_to_parsecode::Keyword_parsecode
1724version_script_keyword_parsecodes[] =
1725{
1726 { "extern", EXTERN },
1727 { "global", GLOBAL },
1728 { "local", LOCAL },
1729};
1730
1731static const Keyword_to_parsecode
1732version_script_keywords(&version_script_keyword_parsecodes[0],
1733 (sizeof(version_script_keyword_parsecodes)
1734 / sizeof(version_script_keyword_parsecodes[0])));
dbe717ef 1735
c82fbeee
CS
1736static const Keyword_to_parsecode::Keyword_parsecode
1737dynamic_list_keyword_parsecodes[] =
1738{
1739 { "extern", EXTERN },
1740};
1741
1742static const Keyword_to_parsecode
1743dynamic_list_keywords(&dynamic_list_keyword_parsecodes[0],
1744 (sizeof(dynamic_list_keyword_parsecodes)
1745 / sizeof(dynamic_list_keyword_parsecodes[0])));
1746
1747
1748
dbe717ef
ILT
1749// Comparison function passed to bsearch.
1750
1751extern "C"
1752{
1753
e5756efb
ILT
1754struct Ktt_key
1755{
1756 const char* str;
1757 size_t len;
1758};
1759
dbe717ef
ILT
1760static int
1761ktt_compare(const void* keyv, const void* kttv)
1762{
e5756efb 1763 const Ktt_key* key = static_cast<const Ktt_key*>(keyv);
dbe717ef
ILT
1764 const Keyword_to_parsecode::Keyword_parsecode* ktt =
1765 static_cast<const Keyword_to_parsecode::Keyword_parsecode*>(kttv);
e5756efb
ILT
1766 int i = strncmp(key->str, ktt->keyword, key->len);
1767 if (i != 0)
1768 return i;
1769 if (ktt->keyword[key->len] != '\0')
1770 return -1;
1771 return 0;
dbe717ef
ILT
1772}
1773
1774} // End extern "C".
1775
1776int
09124467
ILT
1777Keyword_to_parsecode::keyword_to_parsecode(const char* keyword,
1778 size_t len) const
dbe717ef 1779{
e5756efb
ILT
1780 Ktt_key key;
1781 key.str = keyword;
1782 key.len = len;
1783 void* kttv = bsearch(&key,
09124467
ILT
1784 this->keyword_parsecodes_,
1785 this->keyword_count_,
1786 sizeof(this->keyword_parsecodes_[0]),
1787 ktt_compare);
dbe717ef
ILT
1788 if (kttv == NULL)
1789 return 0;
1790 Keyword_parsecode* ktt = static_cast<Keyword_parsecode*>(kttv);
1791 return ktt->parsecode;
1792}
1793
494e05f4
ILT
1794// The following structs are used within the VersionInfo class as well
1795// as in the bison helper functions. They store the information
1796// parsed from the version script.
dbe717ef 1797
494e05f4
ILT
1798// A single version expression.
1799// For example, pattern="std::map*" and language="C++".
62dfdd4d 1800struct Version_expression
6affe781
ILT
1801{
1802 Version_expression(const std::string& a_pattern,
1803 Version_script_info::Language a_language,
1804 bool a_exact_match)
62dfdd4d
ILT
1805 : pattern(a_pattern), language(a_language), exact_match(a_exact_match),
1806 was_matched_by_symbol(false)
6affe781 1807 { }
dbe717ef 1808
494e05f4 1809 std::string pattern;
6affe781 1810 Version_script_info::Language language;
494e05f4
ILT
1811 // If false, we use glob() to match pattern. If true, we use strcmp().
1812 bool exact_match;
62dfdd4d
ILT
1813 // True if --no-undefined-version is in effect and we found this
1814 // version in get_symbol_version. We use mutable because this
1815 // struct is generally not modifiable after it has been created.
1816 mutable bool was_matched_by_symbol;
494e05f4 1817};
dbe717ef 1818
494e05f4 1819// A list of expressions.
6affe781
ILT
1820struct Version_expression_list
1821{
494e05f4
ILT
1822 std::vector<struct Version_expression> expressions;
1823};
e5756efb 1824
494e05f4
ILT
1825// A list of which versions upon which another version depends.
1826// Strings should be from the Stringpool.
6affe781
ILT
1827struct Version_dependency_list
1828{
494e05f4
ILT
1829 std::vector<std::string> dependencies;
1830};
dbe717ef 1831
494e05f4
ILT
1832// The total definition of a version. It includes the tag for the
1833// version, its global and local expressions, and any dependencies.
6affe781
ILT
1834struct Version_tree
1835{
494e05f4 1836 Version_tree()
6affe781
ILT
1837 : tag(), global(NULL), local(NULL), dependencies(NULL)
1838 { }
e5756efb 1839
494e05f4
ILT
1840 std::string tag;
1841 const struct Version_expression_list* global;
1842 const struct Version_expression_list* local;
1843 const struct Version_dependency_list* dependencies;
1844};
dbe717ef 1845
98e090bd
ILT
1846// Helper class that calls cplus_demangle when needed and takes care of freeing
1847// the result.
1848
1849class Lazy_demangler
1850{
1851 public:
1852 Lazy_demangler(const char* symbol, int options)
1853 : symbol_(symbol), options_(options), demangled_(NULL), did_demangle_(false)
1854 { }
1855
1856 ~Lazy_demangler()
1857 { free(this->demangled_); }
1858
1859 // Return the demangled name. The actual demangling happens on the first call,
1860 // and the result is later cached.
1861 inline char*
1862 get();
1863
1864 private:
1865 // The symbol to demangle.
1866 const char *symbol_;
1867 // Option flags to pass to cplus_demagle.
1868 const int options_;
1869 // The cached demangled value, or NULL if demangling didn't happen yet or
1870 // failed.
1871 char *demangled_;
1872 // Whether we already called cplus_demangle
1873 bool did_demangle_;
1874};
1875
1876// Return the demangled name. The actual demangling happens on the first call,
1877// and the result is later cached. Returns NULL if the symbol cannot be
1878// demangled.
1879
1880inline char*
1881Lazy_demangler::get()
1882{
1883 if (!this->did_demangle_)
1884 {
1885 this->demangled_ = cplus_demangle(this->symbol_, this->options_);
1886 this->did_demangle_ = true;
1887 }
1888 return this->demangled_;
1889}
1890
6affe781
ILT
1891// Class Version_script_info.
1892
1893Version_script_info::Version_script_info()
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1894 : dependency_lists_(), expression_lists_(), version_trees_(), globs_(),
1895 default_version_(NULL), default_is_global_(false), is_finalized_(false)
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1896{
1897 for (int i = 0; i < LANGUAGE_COUNT; ++i)
98e090bd 1898 this->exact_[i] = NULL;
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1899}
1900
494e05f4 1901Version_script_info::~Version_script_info()
1ef1f3d3 1902{
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1903}
1904
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1905// Forget all the known version script information.
1906
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1907void
1908Version_script_info::clear()
494e05f4 1909{
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1910 for (size_t k = 0; k < this->dependency_lists_.size(); ++k)
1911 delete this->dependency_lists_[k];
1ef1f3d3 1912 this->dependency_lists_.clear();
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1913 for (size_t k = 0; k < this->version_trees_.size(); ++k)
1914 delete this->version_trees_[k];
1ef1f3d3 1915 this->version_trees_.clear();
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1916 for (size_t k = 0; k < this->expression_lists_.size(); ++k)
1917 delete this->expression_lists_[k];
1ef1f3d3 1918 this->expression_lists_.clear();
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1919}
1920
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1921// Finalize the version script information.
1922
1923void
1924Version_script_info::finalize()
1925{
1926 if (!this->is_finalized_)
1927 {
1928 this->build_lookup_tables();
1929 this->is_finalized_ = true;
1930 }
1931}
1932
1933// Return all the versions.
1934
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1935std::vector<std::string>
1936Version_script_info::get_versions() const
dbe717ef 1937{
494e05f4 1938 std::vector<std::string> ret;
6affe781 1939 for (size_t j = 0; j < this->version_trees_.size(); ++j)
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1940 if (!this->version_trees_[j]->tag.empty())
1941 ret.push_back(this->version_trees_[j]->tag);
494e05f4 1942 return ret;
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1943}
1944
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1945// Return the dependencies of VERSION.
1946
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1947std::vector<std::string>
1948Version_script_info::get_dependencies(const char* version) const
dbe717ef 1949{
494e05f4 1950 std::vector<std::string> ret;
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1951 for (size_t j = 0; j < this->version_trees_.size(); ++j)
1952 if (this->version_trees_[j]->tag == version)
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1953 {
1954 const struct Version_dependency_list* deps =
6affe781 1955 this->version_trees_[j]->dependencies;
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1956 if (deps != NULL)
1957 for (size_t k = 0; k < deps->dependencies.size(); ++k)
1958 ret.push_back(deps->dependencies[k]);
1959 return ret;
1960 }
1961 return ret;
1962}
1963
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1964// A version script essentially maps a symbol name to a version tag
1965// and an indication of whether symbol is global or local within that
1966// version tag. Each symbol maps to at most one version tag.
1967// Unfortunately, in practice, version scripts are ambiguous, and list
1968// symbols multiple times. Thus, we have to document the matching
1969// process.
1970
1971// This is a description of what the GNU linker does as of 2010-01-11.
1972// It walks through the version tags in the order in which they appear
1973// in the version script. For each tag, it first walks through the
1974// global patterns for that tag, then the local patterns. When
1975// looking at a single pattern, it first applies any language specific
1976// demangling as specified for the pattern, and then matches the
1977// resulting symbol name to the pattern. If it finds an exact match
1978// for a literal pattern (a pattern enclosed in quotes or with no
1979// wildcard characters), then that is the match that it uses. If
1980// finds a match with a wildcard pattern, then it saves it and
1981// continues searching. Wildcard patterns that are exactly "*" are
1982// saved separately.
1983
1984// If no exact match with a literal pattern is ever found, then if a
1985// wildcard match with a global pattern was found it is used,
1986// otherwise if a wildcard match with a local pattern was found it is
1987// used.
1988
1989// This is the result:
1990// * If there is an exact match, then we use the first tag in the
1991// version script where it matches.
1992// + If the exact match in that tag is global, it is used.
1993// + Otherwise the exact match in that tag is local, and is used.
1994// * Otherwise, if there is any match with a global wildcard pattern:
1995// + If there is any match with a wildcard pattern which is not
1996// "*", then we use the tag in which the *last* such pattern
1997// appears.
1998// + Otherwise, we matched "*". If there is no match with a local
1999// wildcard pattern which is not "*", then we use the *last*
2000// match with a global "*". Otherwise, continue.
2001// * Otherwise, if there is any match with a local wildcard pattern:
2002// + If there is any match with a wildcard pattern which is not
2003// "*", then we use the tag in which the *last* such pattern
2004// appears.
2005// + Otherwise, we matched "*", and we use the tag in which the
2006// *last* such match occurred.
2007
2008// There is an additional wrinkle. When the GNU linker finds a symbol
2009// with a version defined in an object file due to a .symver
2010// directive, it looks up that symbol name in that version tag. If it
2011// finds it, it matches the symbol name against the patterns for that
2012// version. If there is no match with a global pattern, but there is
2013// a match with a local pattern, then the GNU linker marks the symbol
2014// as local.
2015
2016// We want gold to be generally compatible, but we also want gold to
2017// be fast. These are the rules that gold implements:
2018// * If there is an exact match for the mangled name, we use it.
2019// + If there is more than one exact match, we give a warning, and
2020// we use the first tag in the script which matches.
2021// + If a symbol has an exact match as both global and local for
2022// the same version tag, we give an error.
2023// * Otherwise, we look for an extern C++ or an extern Java exact
2024// match. If we find an exact match, we use it.
2025// + If there is more than one exact match, we give a warning, and
2026// we use the first tag in the script which matches.
2027// + If a symbol has an exact match as both global and local for
2028// the same version tag, we give an error.
2029// * Otherwise, we look through the wildcard patterns, ignoring "*"
2030// patterns. We look through the version tags in reverse order.
2031// For each version tag, we look through the global patterns and
2032// then the local patterns. We use the first match we find (i.e.,
2033// the last matching version tag in the file).
2034// * Otherwise, we use the "*" pattern if there is one. We give an
2035// error if there are multiple "*" patterns.
2036
2037// At least for now, gold does not look up the version tag for a
2038// symbol version found in an object file to see if it should be
2039// forced local. There are other ways to force a symbol to be local,
2040// and I don't understand why this one is useful.
2041
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2042// Build a set of fast lookup tables for a version script.
2043
2044void
2045Version_script_info::build_lookup_tables()
2046{
2047 size_t size = this->version_trees_.size();
2048 for (size_t j = 0; j < size; ++j)
2049 {
2050 const Version_tree* v = this->version_trees_[j];
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2051 this->build_expression_list_lookup(v->local, v, false);
2052 this->build_expression_list_lookup(v->global, v, true);
2053 }
2054}
2055
2056// If a pattern has backlashes but no unquoted wildcard characters,
2057// then we apply backslash unquoting and look for an exact match.
2058// Otherwise we treat it as a wildcard pattern. This function returns
2059// true for a wildcard pattern. Otherwise, it does backslash
2060// unquoting on *PATTERN and returns false. If this returns true,
2061// *PATTERN may have been partially unquoted.
2062
2063bool
2064Version_script_info::unquote(std::string* pattern) const
2065{
2066 bool saw_backslash = false;
2067 size_t len = pattern->length();
2068 size_t j = 0;
2069 for (size_t i = 0; i < len; ++i)
2070 {
2071 if (saw_backslash)
2072 saw_backslash = false;
2073 else
2074 {
2075 switch ((*pattern)[i])
2076 {
2077 case '?': case '[': case '*':
2078 return true;
2079 case '\\':
2080 saw_backslash = true;
2081 continue;
2082 default:
2083 break;
2084 }
2085 }
2086
2087 if (i != j)
2088 (*pattern)[j] = (*pattern)[i];
2089 ++j;
2090 }
2091 return false;
2092}
2093
2094// Add an exact match for MATCH to *PE. The result of the match is
2095// V/IS_GLOBAL.
2096
2097void
2098Version_script_info::add_exact_match(const std::string& match,
2099 const Version_tree* v, bool is_global,
2100 const Version_expression* ve,
2101 Exact *pe)
2102{
2103 std::pair<Exact::iterator, bool> ins =
2104 pe->insert(std::make_pair(match, Version_tree_match(v, is_global, ve)));
2105 if (ins.second)
2106 {
2107 // This is the first time we have seen this match.
2108 return;
2109 }
2110
2111 Version_tree_match& vtm(ins.first->second);
2112 if (vtm.real->tag != v->tag)
2113 {
2114 // This is an ambiguous match. We still return the
2115 // first version that we found in the script, but we
2116 // record the new version to issue a warning if we
2117 // wind up looking up this symbol.
2118 if (vtm.ambiguous == NULL)
2119 vtm.ambiguous = v;
2120 }
2121 else if (is_global != vtm.is_global)
2122 {
2123 // We have a match for both the global and local entries for a
2124 // version tag. That's got to be wrong.
2125 gold_error(_("'%s' appears as both a global and a local symbol "
2126 "for version '%s' in script"),
2127 match.c_str(), v->tag.c_str());
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2128 }
2129}
2130
2131// Build fast lookup information for EXPLIST and store it in LOOKUP.
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2132// All matches go to V, and IS_GLOBAL is true if they are global
2133// matches.
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2134
2135void
2136Version_script_info::build_expression_list_lookup(
2137 const Version_expression_list* explist,
2138 const Version_tree* v,
98e090bd 2139 bool is_global)
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2140{
2141 if (explist == NULL)
2142 return;
2143 size_t size = explist->expressions.size();
98e090bd 2144 for (size_t i = 0; i < size; ++i)
6affe781 2145 {
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ILT
2146 const Version_expression& exp(explist->expressions[i]);
2147
2148 if (exp.pattern.length() == 1 && exp.pattern[0] == '*')
6affe781 2149 {
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ILT
2150 if (this->default_version_ != NULL
2151 && this->default_version_->tag != v->tag)
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ILT
2152 gold_warning(_("wildcard match appears in both version '%s' "
2153 "and '%s' in script"),
2154 this->default_version_->tag.c_str(), v->tag.c_str());
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ILT
2155 else if (this->default_version_ != NULL
2156 && this->default_is_global_ != is_global)
2157 gold_error(_("wildcard match appears as both global and local "
2158 "in version '%s' in script"),
2159 v->tag.c_str());
2160 this->default_version_ = v;
2161 this->default_is_global_ = is_global;
2162 continue;
2163 }
2164
2165 std::string pattern = exp.pattern;
2166 if (!exp.exact_match)
2167 {
2168 if (this->unquote(&pattern))
6affe781 2169 {
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2170 this->globs_.push_back(Glob(&exp, v, is_global));
2171 continue;
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2172 }
2173 }
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2174
2175 if (this->exact_[exp.language] == NULL)
2176 this->exact_[exp.language] = new Exact();
2177 this->add_exact_match(pattern, v, is_global, &exp,
2178 this->exact_[exp.language]);
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2179 }
2180}
2181
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2182// Return the name to match given a name, a language code, and two
2183// lazy demanglers.
62dfdd4d 2184
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2185const char*
2186Version_script_info::get_name_to_match(const char* name,
2187 int language,
2188 Lazy_demangler* cpp_demangler,
2189 Lazy_demangler* java_demangler) const
62dfdd4d 2190{
98e090bd 2191 switch (language)
62dfdd4d 2192 {
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2193 case LANGUAGE_C:
2194 return name;
2195 case LANGUAGE_CXX:
2196 return cpp_demangler->get();
2197 case LANGUAGE_JAVA:
2198 return java_demangler->get();
2199 default:
2200 gold_unreachable();
62dfdd4d 2201 }
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ILT
2202}
2203
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2204// Look up SYMBOL_NAME in the list of versions. Return true if the
2205// symbol is found, false if not. If the symbol is found, then if
2206// PVERSION is not NULL, set *PVERSION to the version tag, and if
2207// P_IS_GLOBAL is not NULL, set *P_IS_GLOBAL according to whether the
2208// symbol is global or not.
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ILT
2209
2210bool
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2211Version_script_info::get_symbol_version(const char* symbol_name,
2212 std::string* pversion,
2213 bool* p_is_global) const
494e05f4 2214{
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2215 Lazy_demangler cpp_demangled_name(symbol_name, DMGL_ANSI | DMGL_PARAMS);
2216 Lazy_demangler java_demangled_name(symbol_name,
2217 DMGL_ANSI | DMGL_PARAMS | DMGL_JAVA);
2218
6affe781 2219 gold_assert(this->is_finalized_);
6affe781 2220 for (int i = 0; i < LANGUAGE_COUNT; ++i)
494e05f4 2221 {
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2222 Exact* exact = this->exact_[i];
2223 if (exact == NULL)
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2224 continue;
2225
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2226 const char* name_to_match = this->get_name_to_match(symbol_name, i,
2227 &cpp_demangled_name,
2228 &java_demangled_name);
2229 if (name_to_match == NULL)
6affe781 2230 {
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ILT
2231 // If the name can not be demangled, the GNU linker goes
2232 // ahead and tries to match it anyhow. That does not
2233 // make sense to me and I have not implemented it.
2234 continue;
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2235 }
2236
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2237 Exact::const_iterator pe = exact->find(name_to_match);
2238 if (pe != exact->end())
6affe781 2239 {
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ILT
2240 const Version_tree_match& vtm(pe->second);
2241 if (vtm.ambiguous != NULL)
2242 gold_warning(_("using '%s' as version for '%s' which is also "
2243 "named in version '%s' in script"),
2244 vtm.real->tag.c_str(), name_to_match,
2245 vtm.ambiguous->tag.c_str());
2246
6affe781 2247 if (pversion != NULL)
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2248 *pversion = vtm.real->tag;
2249 if (p_is_global != NULL)
2250 *p_is_global = vtm.is_global;
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ILT
2251
2252 // If we are using --no-undefined-version, and this is a
2253 // global symbol, we have to record that we have found this
2254 // symbol, so that we don't warn about it. We have to do
2255 // this now, because otherwise we have no way to get from a
2256 // non-C language back to the demangled name that we
2257 // matched.
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2258 if (p_is_global != NULL && vtm.is_global)
2259 vtm.expression->was_matched_by_symbol = true;
62dfdd4d 2260
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2261 return true;
2262 }
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2263 }
2264
2265 // Look through the glob patterns in reverse order.
6affe781 2266
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2267 for (Globs::const_reverse_iterator p = this->globs_.rbegin();
2268 p != this->globs_.rend();
2269 ++p)
2270 {
2271 int language = p->expression->language;
2272 const char* name_to_match = this->get_name_to_match(symbol_name,
2273 language,
2274 &cpp_demangled_name,
2275 &java_demangled_name);
2276 if (name_to_match == NULL)
2277 continue;
2278
2279 if (fnmatch(p->expression->pattern.c_str(), name_to_match,
2280 FNM_NOESCAPE) == 0)
6affe781 2281 {
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ILT
2282 if (pversion != NULL)
2283 *pversion = p->version->tag;
2284 if (p_is_global != NULL)
2285 *p_is_global = p->is_global;
2286 return true;
6affe781 2287 }
98e090bd 2288 }
6affe781 2289
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ILT
2290 // Finally, there may be a wildcard.
2291 if (this->default_version_ != NULL)
2292 {
2293 if (pversion != NULL)
2294 *pversion = this->default_version_->tag;
2295 if (p_is_global != NULL)
2296 *p_is_global = this->default_is_global_;
2297 return true;
494e05f4 2298 }
6affe781 2299
057ead22 2300 return false;
494e05f4
ILT
2301}
2302
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2303// Give an error if any exact symbol names (not wildcards) appear in a
2304// version script, but there is no such symbol.
2305
2306void
2307Version_script_info::check_unmatched_names(const Symbol_table* symtab) const
2308{
2309 for (size_t i = 0; i < this->version_trees_.size(); ++i)
2310 {
2311 const Version_tree* vt = this->version_trees_[i];
2312 if (vt->global == NULL)
2313 continue;
2314 for (size_t j = 0; j < vt->global->expressions.size(); ++j)
2315 {
2316 const Version_expression& expression(vt->global->expressions[j]);
2317
2318 // Ignore cases where we used the version because we saw a
2319 // symbol that we looked up. Note that
2320 // WAS_MATCHED_BY_SYMBOL will be true even if the symbol was
2321 // not a definition. That's OK as in that case we most
2322 // likely gave an undefined symbol error anyhow.
2323 if (expression.was_matched_by_symbol)
2324 continue;
2325
2326 // Just ignore names which are in languages other than C.
2327 // We have no way to look them up in the symbol table.
2328 if (expression.language != LANGUAGE_C)
2329 continue;
2330
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2331 // Remove backslash quoting, and ignore wildcard patterns.
2332 std::string pattern = expression.pattern;
2333 if (!expression.exact_match)
62dfdd4d 2334 {
98e090bd
ILT
2335 if (this->unquote(&pattern))
2336 continue;
62dfdd4d 2337 }
98e090bd
ILT
2338
2339 if (symtab->lookup(pattern.c_str(), vt->tag.c_str()) == NULL)
2340 gold_error(_("version script assignment of %s to symbol %s "
2341 "failed: symbol not defined"),
2342 vt->tag.c_str(), pattern.c_str());
62dfdd4d
ILT
2343 }
2344 }
2345}
2346
494e05f4
ILT
2347struct Version_dependency_list*
2348Version_script_info::allocate_dependency_list()
2349{
2350 dependency_lists_.push_back(new Version_dependency_list);
2351 return dependency_lists_.back();
2352}
2353
2354struct Version_expression_list*
2355Version_script_info::allocate_expression_list()
2356{
2357 expression_lists_.push_back(new Version_expression_list);
2358 return expression_lists_.back();
2359}
2360
2361struct Version_tree*
2362Version_script_info::allocate_version_tree()
2363{
2364 version_trees_.push_back(new Version_tree);
2365 return version_trees_.back();
2366}
2367
2368// Print for debugging.
2369
2370void
2371Version_script_info::print(FILE* f) const
2372{
2373 if (this->empty())
2374 return;
2375
2376 fprintf(f, "VERSION {");
2377
2378 for (size_t i = 0; i < this->version_trees_.size(); ++i)
2379 {
2380 const Version_tree* vt = this->version_trees_[i];
2381
2382 if (vt->tag.empty())
2383 fprintf(f, " {\n");
2384 else
2385 fprintf(f, " %s {\n", vt->tag.c_str());
2386
2387 if (vt->global != NULL)
2388 {
2389 fprintf(f, " global :\n");
2390 this->print_expression_list(f, vt->global);
2391 }
2392
2393 if (vt->local != NULL)
2394 {
2395 fprintf(f, " local :\n");
2396 this->print_expression_list(f, vt->local);
2397 }
2398
2399 fprintf(f, " }");
2400 if (vt->dependencies != NULL)
2401 {
2402 const Version_dependency_list* deps = vt->dependencies;
2403 for (size_t j = 0; j < deps->dependencies.size(); ++j)
2404 {
2405 if (j < deps->dependencies.size() - 1)
2406 fprintf(f, "\n");
2407 fprintf(f, " %s", deps->dependencies[j].c_str());
2408 }
2409 }
2410 fprintf(f, ";\n");
2411 }
2412
2413 fprintf(f, "}\n");
2414}
2415
2416void
2417Version_script_info::print_expression_list(
2418 FILE* f,
2419 const Version_expression_list* vel) const
2420{
6affe781 2421 Version_script_info::Language current_language = LANGUAGE_C;
494e05f4
ILT
2422 for (size_t i = 0; i < vel->expressions.size(); ++i)
2423 {
2424 const Version_expression& ve(vel->expressions[i]);
2425
2426 if (ve.language != current_language)
2427 {
6affe781 2428 if (current_language != LANGUAGE_C)
494e05f4 2429 fprintf(f, " }\n");
6affe781
ILT
2430 switch (ve.language)
2431 {
2432 case LANGUAGE_C:
2433 break;
2434 case LANGUAGE_CXX:
2435 fprintf(f, " extern \"C++\" {\n");
2436 break;
2437 case LANGUAGE_JAVA:
2438 fprintf(f, " extern \"Java\" {\n");
2439 break;
2440 default:
2441 gold_unreachable();
2442 }
494e05f4
ILT
2443 current_language = ve.language;
2444 }
2445
2446 fprintf(f, " ");
6affe781 2447 if (current_language != LANGUAGE_C)
494e05f4
ILT
2448 fprintf(f, " ");
2449
2450 if (ve.exact_match)
2451 fprintf(f, "\"");
2452 fprintf(f, "%s", ve.pattern.c_str());
2453 if (ve.exact_match)
2454 fprintf(f, "\"");
2455
2456 fprintf(f, "\n");
2457 }
2458
6affe781 2459 if (current_language != LANGUAGE_C)
494e05f4
ILT
2460 fprintf(f, " }\n");
2461}
2462
2463} // End namespace gold.
2464
2465// The remaining functions are extern "C", so it's clearer to not put
2466// them in namespace gold.
2467
2468using namespace gold;
2469
2470// This function is called by the bison parser to return the next
2471// token.
2472
2473extern "C" int
2474yylex(YYSTYPE* lvalp, void* closurev)
2475{
2476 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2477 const Token* token = closure->next_token();
2478 switch (token->classification())
2479 {
2480 default:
2481 gold_unreachable();
2482
2483 case Token::TOKEN_INVALID:
2484 yyerror(closurev, "invalid character");
2485 return 0;
2486
2487 case Token::TOKEN_EOF:
2488 return 0;
2489
2490 case Token::TOKEN_STRING:
2491 {
2492 // This is either a keyword or a STRING.
2493 size_t len;
2494 const char* str = token->string_value(&len);
2495 int parsecode = 0;
2496 switch (closure->lex_mode())
2497 {
2498 case Lex::LINKER_SCRIPT:
2499 parsecode = script_keywords.keyword_to_parsecode(str, len);
2500 break;
2501 case Lex::VERSION_SCRIPT:
2502 parsecode = version_script_keywords.keyword_to_parsecode(str, len);
2503 break;
c82fbeee
CS
2504 case Lex::DYNAMIC_LIST:
2505 parsecode = dynamic_list_keywords.keyword_to_parsecode(str, len);
2506 break;
494e05f4
ILT
2507 default:
2508 break;
2509 }
2510 if (parsecode != 0)
2511 return parsecode;
2512 lvalp->string.value = str;
2513 lvalp->string.length = len;
2514 return STRING;
2515 }
2516
2517 case Token::TOKEN_QUOTED_STRING:
2518 lvalp->string.value = token->string_value(&lvalp->string.length);
2519 return QUOTED_STRING;
2520
2521 case Token::TOKEN_OPERATOR:
2522 return token->operator_value();
2523
2524 case Token::TOKEN_INTEGER:
2525 lvalp->integer = token->integer_value();
2526 return INTEGER;
2527 }
2528}
2529
2530// This function is called by the bison parser to report an error.
2531
2532extern "C" void
2533yyerror(void* closurev, const char* message)
2534{
2535 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2536 gold_error(_("%s:%d:%d: %s"), closure->filename(), closure->lineno(),
2537 closure->charpos(), message);
2538}
2539
afc06bb8
ILT
2540// Called by the bison parser to add an external symbol to the link.
2541
2542extern "C" void
2543script_add_extern(void* closurev, const char* name, size_t length)
2544{
2545 // We treat exactly like -u NAME. FIXME: If it seems useful, we
2546 // could handle this after the command line has been read, by adding
2547 // entries to the symbol table directly.
2548 std::string arg("--undefined=");
2549 arg.append(name, length);
2550 script_parse_option(closurev, arg.c_str(), arg.size());
2551}
2552
494e05f4
ILT
2553// Called by the bison parser to add a file to the link.
2554
2555extern "C" void
2556script_add_file(void* closurev, const char* name, size_t length)
2557{
2558 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2559
2560 // If this is an absolute path, and we found the script in the
2561 // sysroot, then we want to prepend the sysroot to the file name.
2562 // For example, this is how we handle a cross link to the x86_64
2563 // libc.so, which refers to /lib/libc.so.6.
2564 std::string name_string(name, length);
2565 const char* extra_search_path = ".";
2566 std::string script_directory;
2567 if (IS_ABSOLUTE_PATH(name_string.c_str()))
2568 {
2569 if (closure->is_in_sysroot())
2570 {
8851ecca 2571 const std::string& sysroot(parameters->options().sysroot());
494e05f4
ILT
2572 gold_assert(!sysroot.empty());
2573 name_string = sysroot + name_string;
2574 }
2575 }
2576 else
2577 {
2578 // In addition to checking the normal library search path, we
2579 // also want to check in the script-directory.
2580 const char *slash = strrchr(closure->filename(), '/');
2581 if (slash != NULL)
2582 {
2583 script_directory.assign(closure->filename(),
2584 slash - closure->filename() + 1);
2585 extra_search_path = script_directory.c_str();
2586 }
2587 }
2588
ae3b5189
CD
2589 Input_file_argument file(name_string.c_str(),
2590 Input_file_argument::INPUT_FILE_TYPE_FILE,
2591 extra_search_path, false,
2592 closure->position_dependent_options());
494e05f4 2593 closure->inputs()->add_file(file);
dbe717ef
ILT
2594}
2595
2596// Called by the bison parser to start a group. If we are already in
2597// a group, that means that this script was invoked within a
2598// --start-group --end-group sequence on the command line, or that
2599// this script was found in a GROUP of another script. In that case,
2600// we simply continue the existing group, rather than starting a new
2601// one. It is possible to construct a case in which this will do
2602// something other than what would happen if we did a recursive group,
2603// but it's hard to imagine why the different behaviour would be
2604// useful for a real program. Avoiding recursive groups is simpler
2605// and more efficient.
2606
2607extern "C" void
2608script_start_group(void* closurev)
2609{
2610 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2611 if (!closure->in_group())
2612 closure->inputs()->start_group();
2613}
2614
2615// Called by the bison parser at the end of a group.
2616
2617extern "C" void
2618script_end_group(void* closurev)
2619{
2620 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2621 if (!closure->in_group())
2622 closure->inputs()->end_group();
2623}
2624
2625// Called by the bison parser to start an AS_NEEDED list.
2626
2627extern "C" void
2628script_start_as_needed(void* closurev)
2629{
2630 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
45aa233b 2631 closure->position_dependent_options().set_as_needed(true);
dbe717ef
ILT
2632}
2633
2634// Called by the bison parser at the end of an AS_NEEDED list.
2635
2636extern "C" void
2637script_end_as_needed(void* closurev)
2638{
2639 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
45aa233b 2640 closure->position_dependent_options().set_as_needed(false);
dbe717ef 2641}
195e7dc6 2642
d391083d
ILT
2643// Called by the bison parser to set the entry symbol.
2644
2645extern "C" void
e5756efb 2646script_set_entry(void* closurev, const char* entry, size_t length)
d391083d 2647{
a5dc0706
ILT
2648 // We'll parse this exactly the same as --entry=ENTRY on the commandline
2649 // TODO(csilvers): FIXME -- call set_entry directly.
1890b465 2650 std::string arg("--entry=");
a5dc0706
ILT
2651 arg.append(entry, length);
2652 script_parse_option(closurev, arg.c_str(), arg.size());
e5756efb
ILT
2653}
2654
0dfbdef4
ILT
2655// Called by the bison parser to set whether to define common symbols.
2656
2657extern "C" void
2658script_set_common_allocation(void* closurev, int set)
2659{
2660 const char* arg = set != 0 ? "--define-common" : "--no-define-common";
2661 script_parse_option(closurev, arg, strlen(arg));
2662}
2663
e5756efb
ILT
2664// Called by the bison parser to define a symbol.
2665
2666extern "C" void
2667script_set_symbol(void* closurev, const char* name, size_t length,
2668 Expression* value, int providei, int hiddeni)
2669{
2670 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2671 const bool provide = providei != 0;
2672 const bool hidden = hiddeni != 0;
99fff23b
ILT
2673 closure->script_options()->add_symbol_assignment(name, length,
2674 closure->parsing_defsym(),
2675 value, provide, hidden);
15f8229b 2676 closure->clear_skip_on_incompatible_target();
d391083d
ILT
2677}
2678
494e05f4
ILT
2679// Called by the bison parser to add an assertion.
2680
2681extern "C" void
2682script_add_assertion(void* closurev, Expression* check, const char* message,
2683 size_t messagelen)
2684{
2685 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2686 closure->script_options()->add_assertion(check, message, messagelen);
15f8229b 2687 closure->clear_skip_on_incompatible_target();
494e05f4
ILT
2688}
2689
195e7dc6
ILT
2690// Called by the bison parser to parse an OPTION.
2691
2692extern "C" void
e5756efb 2693script_parse_option(void* closurev, const char* option, size_t length)
195e7dc6
ILT
2694{
2695 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
a0451b38
ILT
2696 // We treat the option as a single command-line option, even if
2697 // it has internal whitespace.
2698 if (closure->command_line() == NULL)
2699 {
2700 // There are some options that we could handle here--e.g.,
2701 // -lLIBRARY. Should we bother?
e5756efb 2702 gold_warning(_("%s:%d:%d: ignoring command OPTION; OPTION is only valid"
d391083d 2703 " for scripts specified via -T/--script"),
e5756efb 2704 closure->filename(), closure->lineno(), closure->charpos());
a0451b38
ILT
2705 }
2706 else
2707 {
2708 bool past_a_double_dash_option = false;
ee1fe73e 2709 const char* mutable_option = strndup(option, length);
e5756efb 2710 gold_assert(mutable_option != NULL);
a0451b38
ILT
2711 closure->command_line()->process_one_option(1, &mutable_option, 0,
2712 &past_a_double_dash_option);
a5dc0706
ILT
2713 // The General_options class will quite possibly store a pointer
2714 // into mutable_option, so we can't free it. In cases the class
2715 // does not store such a pointer, this is a memory leak. Alas. :(
a0451b38 2716 }
15f8229b
ILT
2717 closure->clear_skip_on_incompatible_target();
2718}
2719
2720// Called by the bison parser to handle OUTPUT_FORMAT. OUTPUT_FORMAT
2721// takes either one or three arguments. In the three argument case,
2722// the format depends on the endianness option, which we don't
2723// currently support (FIXME). If we see an OUTPUT_FORMAT for the
2724// wrong format, then we want to search for a new file. Returning 0
2725// here will cause the parser to immediately abort.
2726
2727extern "C" int
2728script_check_output_format(void* closurev,
2729 const char* default_name, size_t default_length,
2730 const char*, size_t, const char*, size_t)
2731{
2732 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2733 std::string name(default_name, default_length);
2734 Target* target = select_target_by_name(name.c_str());
2735 if (target == NULL || !parameters->is_compatible_target(target))
2736 {
2737 if (closure->skip_on_incompatible_target())
2738 {
2739 closure->set_found_incompatible_target();
2740 return 0;
2741 }
2742 // FIXME: Should we warn about the unknown target?
2743 }
2744 return 1;
195e7dc6 2745}
e5756efb 2746
e6a307ba
ILT
2747// Called by the bison parser to handle TARGET.
2748
2749extern "C" void
2750script_set_target(void* closurev, const char* target, size_t len)
2751{
2752 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2753 std::string s(target, len);
2754 General_options::Object_format format_enum;
2755 format_enum = General_options::string_to_object_format(s.c_str());
2756 closure->position_dependent_options().set_format_enum(format_enum);
2757}
2758
3802b2dd
ILT
2759// Called by the bison parser to handle SEARCH_DIR. This is handled
2760// exactly like a -L option.
2761
2762extern "C" void
2763script_add_search_dir(void* closurev, const char* option, size_t length)
2764{
2765 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2766 if (closure->command_line() == NULL)
2767 gold_warning(_("%s:%d:%d: ignoring SEARCH_DIR; SEARCH_DIR is only valid"
2768 " for scripts specified via -T/--script"),
2769 closure->filename(), closure->lineno(), closure->charpos());
2770 else
2771 {
2772 std::string s = "-L" + std::string(option, length);
2773 script_parse_option(closurev, s.c_str(), s.size());
2774 }
2775}
2776
e5756efb
ILT
2777/* Called by the bison parser to push the lexer into expression
2778 mode. */
2779
494e05f4 2780extern "C" void
e5756efb
ILT
2781script_push_lex_into_expression_mode(void* closurev)
2782{
2783 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2784 closure->push_lex_mode(Lex::EXPRESSION);
2785}
2786
09124467
ILT
2787/* Called by the bison parser to push the lexer into version
2788 mode. */
2789
494e05f4 2790extern "C" void
09124467
ILT
2791script_push_lex_into_version_mode(void* closurev)
2792{
2793 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
6affe781
ILT
2794 if (closure->version_script()->is_finalized())
2795 gold_error(_("%s:%d:%d: invalid use of VERSION in input file"),
2796 closure->filename(), closure->lineno(), closure->charpos());
09124467
ILT
2797 closure->push_lex_mode(Lex::VERSION_SCRIPT);
2798}
2799
e5756efb
ILT
2800/* Called by the bison parser to pop the lexer mode. */
2801
494e05f4 2802extern "C" void
e5756efb
ILT
2803script_pop_lex_mode(void* closurev)
2804{
2805 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2806 closure->pop_lex_mode();
2807}
09124467 2808
09124467
ILT
2809// Register an entire version node. For example:
2810//
2811// GLIBC_2.1 {
2812// global: foo;
2813// } GLIBC_2.0;
2814//
2815// - tag is "GLIBC_2.1"
2816// - tree contains the information "global: foo"
2817// - deps contains "GLIBC_2.0"
2818
2819extern "C" void
2820script_register_vers_node(void*,
2821 const char* tag,
2822 int taglen,
2823 struct Version_tree *tree,
2824 struct Version_dependency_list *deps)
2825{
2826 gold_assert(tree != NULL);
09124467 2827 tree->dependencies = deps;
057ead22
ILT
2828 if (tag != NULL)
2829 tree->tag = std::string(tag, taglen);
09124467
ILT
2830}
2831
2832// Add a dependencies to the list of existing dependencies, if any,
2833// and return the expanded list.
2834
2835extern "C" struct Version_dependency_list *
2836script_add_vers_depend(void* closurev,
2837 struct Version_dependency_list *all_deps,
2838 const char *depend_to_add, int deplen)
2839{
2840 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2841 if (all_deps == NULL)
2842 all_deps = closure->version_script()->allocate_dependency_list();
2843 all_deps->dependencies.push_back(std::string(depend_to_add, deplen));
2844 return all_deps;
2845}
2846
2847// Add a pattern expression to an existing list of expressions, if any.
09124467
ILT
2848
2849extern "C" struct Version_expression_list *
2850script_new_vers_pattern(void* closurev,
2851 struct Version_expression_list *expressions,
10600224 2852 const char *pattern, int patlen, int exact_match)
09124467
ILT
2853{
2854 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2855 if (expressions == NULL)
2856 expressions = closure->version_script()->allocate_expression_list();
2857 expressions->expressions.push_back(
2858 Version_expression(std::string(pattern, patlen),
10600224
ILT
2859 closure->get_current_language(),
2860 static_cast<bool>(exact_match)));
09124467
ILT
2861 return expressions;
2862}
2863
10600224
ILT
2864// Attaches b to the end of a, and clears b. So a = a + b and b = {}.
2865
2866extern "C" struct Version_expression_list*
2867script_merge_expressions(struct Version_expression_list *a,
2868 struct Version_expression_list *b)
2869{
2870 a->expressions.insert(a->expressions.end(),
2871 b->expressions.begin(), b->expressions.end());
2872 // We could delete b and remove it from expressions_lists_, but
2873 // that's a lot of work. This works just as well.
2874 b->expressions.clear();
2875 return a;
2876}
2877
09124467
ILT
2878// Combine the global and local expressions into a a Version_tree.
2879
2880extern "C" struct Version_tree *
2881script_new_vers_node(void* closurev,
2882 struct Version_expression_list *global,
2883 struct Version_expression_list *local)
2884{
2885 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2886 Version_tree* tree = closure->version_script()->allocate_version_tree();
2887 tree->global = global;
2888 tree->local = local;
2889 return tree;
2890}
2891
10600224 2892// Handle a transition in language, such as at the
09124467
ILT
2893// start or end of 'extern "C++"'
2894
2895extern "C" void
2896version_script_push_lang(void* closurev, const char* lang, int langlen)
2897{
2898 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
6affe781
ILT
2899 std::string language(lang, langlen);
2900 Version_script_info::Language code;
2901 if (language.empty() || language == "C")
2902 code = Version_script_info::LANGUAGE_C;
2903 else if (language == "C++")
2904 code = Version_script_info::LANGUAGE_CXX;
2905 else if (language == "Java")
2906 code = Version_script_info::LANGUAGE_JAVA;
2907 else
2908 {
2909 char* buf = new char[langlen + 100];
2910 snprintf(buf, langlen + 100,
2911 _("unrecognized version script language '%s'"),
2912 language.c_str());
2913 yyerror(closurev, buf);
2914 delete[] buf;
2915 code = Version_script_info::LANGUAGE_C;
2916 }
2917 closure->push_language(code);
09124467
ILT
2918}
2919
2920extern "C" void
2921version_script_pop_lang(void* closurev)
2922{
2923 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2924 closure->pop_language();
2925}
494e05f4
ILT
2926
2927// Called by the bison parser to start a SECTIONS clause.
2928
2929extern "C" void
2930script_start_sections(void* closurev)
2931{
2932 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2933 closure->script_options()->script_sections()->start_sections();
15f8229b 2934 closure->clear_skip_on_incompatible_target();
494e05f4
ILT
2935}
2936
2937// Called by the bison parser to finish a SECTIONS clause.
2938
2939extern "C" void
2940script_finish_sections(void* closurev)
2941{
2942 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2943 closure->script_options()->script_sections()->finish_sections();
2944}
2945
2946// Start processing entries for an output section.
2947
2948extern "C" void
2949script_start_output_section(void* closurev, const char* name, size_t namelen,
2950 const struct Parser_output_section_header* header)
2951{
2952 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2953 closure->script_options()->script_sections()->start_output_section(name,
2954 namelen,
2955 header);
2956}
2957
2958// Finish processing entries for an output section.
2959
2960extern "C" void
c82fbeee 2961script_finish_output_section(void* closurev,
494e05f4
ILT
2962 const struct Parser_output_section_trailer* trail)
2963{
2964 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2965 closure->script_options()->script_sections()->finish_output_section(trail);
2966}
2967
2968// Add a data item (e.g., "WORD (0)") to the current output section.
2969
2970extern "C" void
2971script_add_data(void* closurev, int data_token, Expression* val)
2972{
2973 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
2974 int size;
2975 bool is_signed = true;
2976 switch (data_token)
2977 {
2978 case QUAD:
2979 size = 8;
2980 is_signed = false;
2981 break;
2982 case SQUAD:
2983 size = 8;
2984 break;
2985 case LONG:
2986 size = 4;
2987 break;
2988 case SHORT:
2989 size = 2;
2990 break;
2991 case BYTE:
2992 size = 1;
2993 break;
2994 default:
2995 gold_unreachable();
2996 }
2997 closure->script_options()->script_sections()->add_data(size, is_signed, val);
2998}
2999
3000// Add a clause setting the fill value to the current output section.
3001
3002extern "C" void
3003script_add_fill(void* closurev, Expression* val)
3004{
3005 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
3006 closure->script_options()->script_sections()->add_fill(val);
3007}
3008
3009// Add a new input section specification to the current output
3010// section.
3011
3012extern "C" void
3013script_add_input_section(void* closurev,
3014 const struct Input_section_spec* spec,
3015 int keepi)
3016{
3017 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
3018 bool keep = keepi != 0;
3019 closure->script_options()->script_sections()->add_input_section(spec, keep);
3020}
3021
2d924fd9
ILT
3022// When we see DATA_SEGMENT_ALIGN we record that following output
3023// sections may be relro.
3024
3025extern "C" void
3026script_data_segment_align(void* closurev)
3027{
3028 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
3029 if (!closure->script_options()->saw_sections_clause())
3030 gold_error(_("%s:%d:%d: DATA_SEGMENT_ALIGN not in SECTIONS clause"),
3031 closure->filename(), closure->lineno(), closure->charpos());
3032 else
3033 closure->script_options()->script_sections()->data_segment_align();
3034}
3035
3036// When we see DATA_SEGMENT_RELRO_END we know that all output sections
3037// since DATA_SEGMENT_ALIGN should be relro.
3038
3039extern "C" void
3040script_data_segment_relro_end(void* closurev)
3041{
3042 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
3043 if (!closure->script_options()->saw_sections_clause())
3044 gold_error(_("%s:%d:%d: DATA_SEGMENT_ALIGN not in SECTIONS clause"),
3045 closure->filename(), closure->lineno(), closure->charpos());
3046 else
3047 closure->script_options()->script_sections()->data_segment_relro_end();
3048}
3049
494e05f4
ILT
3050// Create a new list of string/sort pairs.
3051
3052extern "C" String_sort_list_ptr
3053script_new_string_sort_list(const struct Wildcard_section* string_sort)
3054{
3055 return new String_sort_list(1, *string_sort);
3056}
3057
3058// Add an entry to a list of string/sort pairs. The way the parser
3059// works permits us to simply modify the first parameter, rather than
3060// copy the vector.
3061
3062extern "C" String_sort_list_ptr
3063script_string_sort_list_add(String_sort_list_ptr pv,
3064 const struct Wildcard_section* string_sort)
3065{
a445fddf
ILT
3066 if (pv == NULL)
3067 return script_new_string_sort_list(string_sort);
3068 else
3069 {
3070 pv->push_back(*string_sort);
3071 return pv;
3072 }
494e05f4
ILT
3073}
3074
3075// Create a new list of strings.
3076
3077extern "C" String_list_ptr
3078script_new_string_list(const char* str, size_t len)
3079{
3080 return new String_list(1, std::string(str, len));
3081}
3082
3083// Add an element to a list of strings. The way the parser works
3084// permits us to simply modify the first parameter, rather than copy
3085// the vector.
3086
3087extern "C" String_list_ptr
3088script_string_list_push_back(String_list_ptr pv, const char* str, size_t len)
3089{
1c4f3631
ILT
3090 if (pv == NULL)
3091 return script_new_string_list(str, len);
3092 else
3093 {
3094 pv->push_back(std::string(str, len));
3095 return pv;
3096 }
494e05f4
ILT
3097}
3098
3099// Concatenate two string lists. Either or both may be NULL. The way
3100// the parser works permits us to modify the parameters, rather than
3101// copy the vector.
3102
3103extern "C" String_list_ptr
3104script_string_list_append(String_list_ptr pv1, String_list_ptr pv2)
3105{
3106 if (pv1 == NULL)
3107 return pv2;
3108 if (pv2 == NULL)
3109 return pv1;
3110 pv1->insert(pv1->end(), pv2->begin(), pv2->end());
3111 return pv1;
3112}
1c4f3631
ILT
3113
3114// Add a new program header.
3115
3116extern "C" void
3117script_add_phdr(void* closurev, const char* name, size_t namelen,
3118 unsigned int type, const Phdr_info* info)
3119{
3120 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
3121 bool includes_filehdr = info->includes_filehdr != 0;
3122 bool includes_phdrs = info->includes_phdrs != 0;
3123 bool is_flags_valid = info->is_flags_valid != 0;
3124 Script_sections* ss = closure->script_options()->script_sections();
3125 ss->add_phdr(name, namelen, type, includes_filehdr, includes_phdrs,
3126 is_flags_valid, info->flags, info->load_address);
15f8229b 3127 closure->clear_skip_on_incompatible_target();
1c4f3631
ILT
3128}
3129
3130// Convert a program header string to a type.
3131
3132#define PHDR_TYPE(NAME) { #NAME, sizeof(#NAME) - 1, elfcpp::NAME }
3133
3134static struct
3135{
3136 const char* name;
3137 size_t namelen;
3138 unsigned int val;
3139} phdr_type_names[] =
3140{
3141 PHDR_TYPE(PT_NULL),
3142 PHDR_TYPE(PT_LOAD),
3143 PHDR_TYPE(PT_DYNAMIC),
3144 PHDR_TYPE(PT_INTERP),
3145 PHDR_TYPE(PT_NOTE),
3146 PHDR_TYPE(PT_SHLIB),
3147 PHDR_TYPE(PT_PHDR),
3148 PHDR_TYPE(PT_TLS),
3149 PHDR_TYPE(PT_GNU_EH_FRAME),
3150 PHDR_TYPE(PT_GNU_STACK),
3151 PHDR_TYPE(PT_GNU_RELRO)
3152};
3153
3154extern "C" unsigned int
3155script_phdr_string_to_type(void* closurev, const char* name, size_t namelen)
3156{
3157 for (unsigned int i = 0;
3158 i < sizeof(phdr_type_names) / sizeof(phdr_type_names[0]);
3159 ++i)
3160 if (namelen == phdr_type_names[i].namelen
3161 && strncmp(name, phdr_type_names[i].name, namelen) == 0)
3162 return phdr_type_names[i].val;
3163 yyerror(closurev, _("unknown PHDR type (try integer)"));
3164 return elfcpp::PT_NULL;
3165}
3c12dcdb
DK
3166
3167extern "C" void
3168script_saw_segment_start_expression(void* closurev)
3169{
3170 Parser_closure* closure = static_cast<Parser_closure*>(closurev);
3171 Script_sections* ss = closure->script_options()->script_sections();
3172 ss->set_saw_segment_start_expression(true);
3173}
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