1 /* C preprocessor macro expansion for GDB.
2 Copyright (C) 2002-2023 Free Software Foundation, Inc.
3 Contributed by Red Hat, Inc.
5 This file is part of GDB.
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
21 #include "gdbsupport/gdb_obstack.h"
24 #include "macroscope.h"
30 /* A string type that we can use to refer to substrings of other
33 struct shared_macro_buffer
35 /* An array of characters. This buffer is a pointer into some
36 larger string and thus we can't assume in that the text is
40 /* The number of characters in the string. */
43 /* For detecting token splicing.
45 This is the index in TEXT of the first character of the token
46 that abuts the end of TEXT. If TEXT contains no tokens, then we
47 set this equal to LEN. If TEXT ends in whitespace, then there is
48 no token abutting the end of TEXT (it's just whitespace), and
49 again, we set this equal to LEN. We set this to -1 if we don't
50 know the nature of TEXT. */
53 /* If this buffer is holding the result from get_token, then this
54 is non-zero if it is an identifier token, zero otherwise. */
55 int is_identifier
= 0;
57 shared_macro_buffer ()
63 /* Set the macro buffer to refer to the LEN bytes at ADDR, as a
65 shared_macro_buffer (const char *addr
, int len
)
67 set_shared (addr
, len
);
70 /* Set the macro buffer to refer to the LEN bytes at ADDR, as a
72 void set_shared (const char *addr
, int len_
)
79 /* A string type that we can resize and quickly append to. */
81 struct growable_macro_buffer
83 /* An array of characters. The first LEN bytes are the real text,
84 but there are SIZE bytes allocated to the array. */
87 /* The number of characters in the string. */
90 /* The number of characters allocated to the string. */
93 /* For detecting token splicing.
95 This is the index in TEXT of the first character of the token
96 that abuts the end of TEXT. If TEXT contains no tokens, then we
97 set this equal to LEN. If TEXT ends in whitespace, then there is
98 no token abutting the end of TEXT (it's just whitespace), and
99 again, we set this equal to LEN. We set this to -1 if we don't
100 know the nature of TEXT. */
103 /* Set the macro buffer to the empty string, guessing that its
104 final contents will fit in N bytes. (It'll get resized if it
105 doesn't, so the guess doesn't have to be right.) Allocate the
106 initial storage with xmalloc. */
107 explicit growable_macro_buffer (int n
)
112 text
= (char *) xmalloc (n
);
117 DISABLE_COPY_AND_ASSIGN (growable_macro_buffer
);
119 ~growable_macro_buffer ()
124 /* Release the text of the buffer to the caller. */
125 gdb::unique_xmalloc_ptr
<char> release ()
130 return gdb::unique_xmalloc_ptr
<char> (result
);
133 /* Resize the buffer to be at least N bytes long. */
134 void resize_buffer (int n
)
142 text
= (char *) xrealloc (text
, size
);
145 /* Append the character C to the buffer. */
148 int new_len
= len
+ 1;
151 resize_buffer (new_len
);
157 /* Append the COUNT bytes at ADDR to the buffer. */
158 void appendmem (const char *addr
, int count
)
160 int new_len
= len
+ count
;
163 resize_buffer (new_len
);
165 memcpy (text
+ len
, addr
, count
);
172 /* Recognizing preprocessor tokens. */
176 macro_is_whitespace (int c
)
187 macro_is_digit (int c
)
189 return ('0' <= c
&& c
<= '9');
194 macro_is_identifier_nondigit (int c
)
197 || ('a' <= c
&& c
<= 'z')
198 || ('A' <= c
&& c
<= 'Z'));
203 set_token (shared_macro_buffer
*tok
, const char *start
, const char *end
)
205 tok
->set_shared (start
, end
- start
);
208 /* Presumed; get_identifier may overwrite this. */
209 tok
->is_identifier
= 0;
214 get_comment (shared_macro_buffer
*tok
, const char *p
, const char *end
)
221 const char *tok_start
= p
;
231 set_token (tok
, tok_start
, p
);
235 error (_("Unterminated comment in macro expansion."));
240 const char *tok_start
= p
;
247 set_token (tok
, tok_start
, p
);
256 get_identifier (shared_macro_buffer
*tok
, const char *p
, const char *end
)
259 && macro_is_identifier_nondigit (*p
))
261 const char *tok_start
= p
;
264 && (macro_is_identifier_nondigit (*p
)
265 || macro_is_digit (*p
)))
268 set_token (tok
, tok_start
, p
);
269 tok
->is_identifier
= 1;
278 get_pp_number (shared_macro_buffer
*tok
, const char *p
, const char *end
)
281 && (macro_is_digit (*p
)
284 && macro_is_digit (p
[1]))))
286 const char *tok_start
= p
;
291 && strchr ("eEpP", *p
)
292 && (p
[1] == '+' || p
[1] == '-'))
294 else if (macro_is_digit (*p
)
295 || macro_is_identifier_nondigit (*p
)
302 set_token (tok
, tok_start
, p
);
311 /* If the text starting at P going up to (but not including) END
312 starts with a character constant, set *TOK to point to that
313 character constant, and return 1. Otherwise, return zero.
314 Signal an error if it contains a malformed or incomplete character
317 get_character_constant (shared_macro_buffer
*tok
,
318 const char *p
, const char *end
)
320 /* ISO/IEC 9899:1999 (E) Section 6.4.4.4 paragraph 1
321 But of course, what really matters is that we handle it the same
322 way GDB's C/C++ lexer does. So we call parse_escape in utils.c
323 to handle escape sequences. */
324 if ((p
+ 1 <= end
&& *p
== '\'')
326 && (p
[0] == 'L' || p
[0] == 'u' || p
[0] == 'U')
329 const char *tok_start
= p
;
334 else if (*p
== 'L' || *p
== 'u' || *p
== 'U')
337 gdb_assert_not_reached ("unexpected character constant");
342 error (_("Unmatched single quote."));
346 error (_("A character constant must contain at least one "
356 char_count
+= c_parse_escape (&s
, NULL
);
366 set_token (tok
, tok_start
, p
);
374 /* If the text starting at P going up to (but not including) END
375 starts with a string literal, set *TOK to point to that string
376 literal, and return 1. Otherwise, return zero. Signal an error if
377 it contains a malformed or incomplete string literal. */
379 get_string_literal (shared_macro_buffer
*tok
, const char *p
, const char *end
)
384 && (p
[0] == 'L' || p
[0] == 'u' || p
[0] == 'U')
387 const char *tok_start
= p
;
391 else if (*p
== 'L' || *p
== 'u' || *p
== 'U')
394 gdb_assert_not_reached ("unexpected string literal");
399 error (_("Unterminated string in expression."));
406 error (_("Newline characters may not appear in string "
413 c_parse_escape (&s
, NULL
);
420 set_token (tok
, tok_start
, p
);
429 get_punctuator (shared_macro_buffer
*tok
, const char *p
, const char *end
)
431 /* Here, speed is much less important than correctness and clarity. */
433 /* ISO/IEC 9899:1999 (E) Section 6.4.6 Paragraph 1.
434 Note that this table is ordered in a special way. A punctuator
435 which is a prefix of another punctuator must appear after its
436 "extension". Otherwise, the wrong token will be returned. */
437 static const char * const punctuators
[] = {
438 "[", "]", "(", ")", "{", "}", "?", ";", ",", "~",
440 "->", "--", "-=", "-",
446 "%>", "%:%:", "%:", "%=", "%",
451 "<<=", "<<", "<=", "<:", "<%", "<",
452 ">>=", ">>", ">=", ">",
461 for (i
= 0; punctuators
[i
]; i
++)
463 const char *punctuator
= punctuators
[i
];
465 if (p
[0] == punctuator
[0])
467 int len
= strlen (punctuator
);
470 && ! memcmp (p
, punctuator
, len
))
472 set_token (tok
, p
, p
+ len
);
483 /* Peel the next preprocessor token off of SRC, and put it in TOK.
484 Mutate TOK to refer to the first token in SRC, and mutate SRC to
485 refer to the text after that token. The resulting TOK will point
486 into the same string SRC does. Initialize TOK's last_token field.
487 Return non-zero if we succeed, or 0 if we didn't find any more
491 get_token (shared_macro_buffer
*tok
, shared_macro_buffer
*src
)
493 const char *p
= src
->text
;
494 const char *end
= p
+ src
->len
;
496 /* From the ISO C standard, ISO/IEC 9899:1999 (E), section 6.4:
505 each non-white-space character that cannot be one of the above
507 We don't have to deal with header-name tokens, since those can
508 only occur after a #include, which we will never see. */
511 if (macro_is_whitespace (*p
))
513 else if (get_comment (tok
, p
, end
))
515 else if (get_pp_number (tok
, p
, end
)
516 || get_character_constant (tok
, p
, end
)
517 || get_string_literal (tok
, p
, end
)
518 /* Note: the grammar in the standard seems to be
519 ambiguous: L'x' can be either a wide character
520 constant, or an identifier followed by a normal
521 character constant. By trying `get_identifier' after
522 we try get_character_constant and get_string_literal,
523 we give the wide character syntax precedence. Now,
524 since GDB doesn't handle wide character constants
525 anyway, is this the right thing to do? */
526 || get_identifier (tok
, p
, end
)
527 || get_punctuator (tok
, p
, end
))
529 /* How many characters did we consume, including whitespace? */
530 int consumed
= p
- src
->text
+ tok
->len
;
532 src
->text
+= consumed
;
533 src
->len
-= consumed
;
538 /* We have found a "non-whitespace character that cannot be
539 one of the above." Make a token out of it. */
542 set_token (tok
, p
, p
+ 1);
543 consumed
= p
- src
->text
+ tok
->len
;
544 src
->text
+= consumed
;
545 src
->len
-= consumed
;
554 /* Appending token strings, with and without splicing */
557 /* Append the macro buffer SRC to the end of DEST, and ensure that
558 doing so doesn't splice the token at the end of SRC with the token
559 at the beginning of DEST. SRC and DEST must have their last_token
560 fields set. Upon return, DEST's last_token field is set correctly.
564 If DEST is "(" and SRC is "y", then we can return with
565 DEST set to "(y" --- we've simply appended the two buffers.
567 However, if DEST is "x" and SRC is "y", then we must not return
568 with DEST set to "xy" --- that would splice the two tokens "x" and
569 "y" together to make a single token "xy". However, it would be
570 fine to return with DEST set to "x y". Similarly, "<" and "<" must
571 yield "< <", not "<<", etc. */
573 append_tokens_without_splicing (growable_macro_buffer
*dest
,
574 shared_macro_buffer
*src
)
576 int original_dest_len
= dest
->len
;
577 shared_macro_buffer dest_tail
, new_token
;
579 gdb_assert (src
->last_token
!= -1);
580 gdb_assert (dest
->last_token
!= -1);
582 /* First, just try appending the two, and call get_token to see if
584 dest
->appendmem (src
->text
, src
->len
);
586 /* If DEST originally had no token abutting its end, then we can't
587 have spliced anything, so we're done. */
588 if (dest
->last_token
== original_dest_len
)
590 dest
->last_token
= original_dest_len
+ src
->last_token
;
594 /* Set DEST_TAIL to point to the last token in DEST, followed by
595 all the stuff we just appended. */
596 dest_tail
.set_shared (dest
->text
+ dest
->last_token
,
597 dest
->len
- dest
->last_token
);
599 /* Re-parse DEST's last token. We know that DEST used to contain
600 at least one token, so if it doesn't contain any after the
601 append, then we must have spliced "/" and "*" or "/" and "/" to
602 make a comment start. (Just for the record, I got this right
603 the first time. This is not a bug fix.) */
604 if (get_token (&new_token
, &dest_tail
)
605 && (new_token
.text
+ new_token
.len
606 == dest
->text
+ original_dest_len
))
608 /* No splice, so we're done. */
609 dest
->last_token
= original_dest_len
+ src
->last_token
;
613 /* Okay, a simple append caused a splice. Let's chop dest back to
614 its original length and try again, but separate the texts with a
616 dest
->len
= original_dest_len
;
618 dest
->appendmem (src
->text
, src
->len
);
620 dest_tail
.set_shared (dest
->text
+ dest
->last_token
,
621 dest
->len
- dest
->last_token
);
623 /* Try to re-parse DEST's last token, as above. */
624 if (get_token (&new_token
, &dest_tail
)
625 && (new_token
.text
+ new_token
.len
626 == dest
->text
+ original_dest_len
))
628 /* No splice, so we're done. */
629 dest
->last_token
= original_dest_len
+ 1 + src
->last_token
;
633 /* As far as I know, there's no case where inserting a space isn't
634 enough to prevent a splice. */
635 internal_error (_("unable to avoid splicing tokens during macro expansion"));
638 /* Stringify an argument, and insert it into DEST. ARG is the text to
639 stringify; it is LEN bytes long. */
642 stringify (growable_macro_buffer
*dest
, const char *arg
, int len
)
644 /* Trim initial whitespace from ARG. */
645 while (len
> 0 && macro_is_whitespace (*arg
))
651 /* Trim trailing whitespace from ARG. */
652 while (len
> 0 && macro_is_whitespace (arg
[len
- 1]))
655 /* Insert the string. */
659 /* We could try to handle strange cases here, like control
660 characters, but there doesn't seem to be much point. */
661 if (macro_is_whitespace (*arg
))
663 /* Replace a sequence of whitespace with a single space. */
665 while (len
> 1 && macro_is_whitespace (arg
[1]))
671 else if (*arg
== '\\' || *arg
== '"')
673 dest
->appendc ('\\');
674 dest
->appendc (*arg
);
677 dest
->appendc (*arg
);
682 dest
->last_token
= dest
->len
;
685 /* See macroexp.h. */
687 gdb::unique_xmalloc_ptr
<char>
688 macro_stringify (const char *str
)
690 int len
= strlen (str
);
691 growable_macro_buffer
buffer (len
);
693 stringify (&buffer
, str
, len
);
694 buffer
.appendc ('\0');
696 return buffer
.release ();
700 /* Expanding macros! */
703 /* A singly-linked list of the names of the macros we are currently
704 expanding --- for detecting expansion loops. */
705 struct macro_name_list
{
707 struct macro_name_list
*next
;
711 /* Return non-zero if we are currently expanding the macro named NAME,
712 according to LIST; otherwise, return zero.
714 You know, it would be possible to get rid of all the NO_LOOP
715 arguments to these functions by simply generating a new lookup
716 function and baton which refuses to find the definition for a
717 particular macro, and otherwise delegates the decision to another
718 function/baton pair. But that makes the linked list of excluded
719 macros chained through untyped baton pointers, which will make it
720 harder to debug. :( */
722 currently_rescanning (struct macro_name_list
*list
, const char *name
)
724 for (; list
; list
= list
->next
)
725 if (strcmp (name
, list
->name
) == 0)
732 /* Gather the arguments to a macro expansion.
734 NAME is the name of the macro being invoked. (It's only used for
735 printing error messages.)
737 Assume that SRC is the text of the macro invocation immediately
738 following the macro name. For example, if we're processing the
739 text foo(bar, baz), then NAME would be foo and SRC will be (bar,
742 If SRC doesn't start with an open paren ( token at all, return
743 false, leave SRC unchanged, and don't set *ARGS_PTR to anything.
745 If SRC doesn't contain a properly terminated argument list, then
748 For a variadic macro, NARGS holds the number of formal arguments to
749 the macro. For a GNU-style variadic macro, this should be the
750 number of named arguments. For a non-variadic macro, NARGS should
753 Otherwise, return true and set *ARGS_PTR to a vector of macro
754 buffers referring to the argument texts. The macro buffers share
755 their text with SRC, and their last_token fields are initialized.
757 NOTE WELL: if SRC starts with a open paren ( token followed
758 immediately by a close paren ) token (e.g., the invocation looks
759 like "foo()"), we treat that as one argument, which happens to be
760 the empty list of tokens. The caller should keep in mind that such
761 a sequence of tokens is a valid way to invoke one-parameter
762 function-like macros, but also a valid way to invoke zero-parameter
763 function-like macros. Eeew.
765 Consume the tokens from SRC; after this call, SRC contains the text
766 following the invocation. */
769 gather_arguments (const char *name
, shared_macro_buffer
*src
, int nargs
,
770 std::vector
<shared_macro_buffer
> *args_ptr
)
772 shared_macro_buffer tok
;
773 std::vector
<shared_macro_buffer
> args
;
775 /* Does SRC start with an opening paren token? Read from a copy of
776 SRC, so SRC itself is unaffected if we don't find an opening
779 shared_macro_buffer
temp (src
->text
, src
->len
);
781 if (! get_token (&tok
, &temp
)
783 || tok
.text
[0] != '(')
787 /* Consume SRC's opening paren. */
788 get_token (&tok
, src
);
792 shared_macro_buffer
*arg
;
795 /* Initialize the next argument. */
796 args
.emplace_back ();
798 set_token (arg
, src
->text
, src
->text
);
800 /* Gather the argument's tokens. */
804 if (! get_token (&tok
, src
))
805 error (_("Malformed argument list for macro `%s'."), name
);
807 /* Is tok an opening paren? */
808 if (tok
.len
== 1 && tok
.text
[0] == '(')
811 /* Is tok is a closing paren? */
812 else if (tok
.len
== 1 && tok
.text
[0] == ')')
814 /* If it's a closing paren at the top level, then that's
815 the end of the argument list. */
818 /* In the varargs case, the last argument may be
819 missing. Add an empty argument in this case. */
820 if (nargs
!= -1 && args
.size () == nargs
- 1)
822 args
.emplace_back ();
824 set_token (arg
, src
->text
, src
->text
);
827 *args_ptr
= std::move (args
);
834 /* If tok is a comma at top level, then that's the end of
835 the current argument. However, if we are handling a
836 variadic macro and we are computing the last argument, we
837 want to include the comma and remaining tokens. */
838 else if (tok
.len
== 1 && tok
.text
[0] == ',' && depth
== 0
839 && (nargs
== -1 || args
.size () < nargs
))
842 /* Extend the current argument to enclose this token. If
843 this is the current argument's first token, leave out any
844 leading whitespace, just for aesthetics. */
847 arg
->text
= tok
.text
;
853 arg
->len
= (tok
.text
+ tok
.len
) - arg
->text
;
854 arg
->last_token
= tok
.text
- arg
->text
;
861 /* The `expand' and `substitute_args' functions both invoke `scan'
862 recursively, so we need a forward declaration somewhere. */
863 static void scan (growable_macro_buffer
*dest
,
864 shared_macro_buffer
*src
,
865 struct macro_name_list
*no_loop
,
866 const macro_scope
&scope
);
868 /* A helper function for substitute_args.
870 ARGV is a vector of all the arguments; ARGC is the number of
871 arguments. IS_VARARGS is true if the macro being substituted is a
872 varargs macro; in this case VA_ARG_NAME is the name of the
873 "variable" argument. VA_ARG_NAME is ignored if IS_VARARGS is
876 If the token TOK is the name of a parameter, return the parameter's
877 index. If TOK is not an argument, return -1. */
880 find_parameter (const shared_macro_buffer
*tok
,
881 int is_varargs
, const shared_macro_buffer
*va_arg_name
,
882 int argc
, const char * const *argv
)
886 if (! tok
->is_identifier
)
889 for (i
= 0; i
< argc
; ++i
)
890 if (tok
->len
== strlen (argv
[i
])
891 && !memcmp (tok
->text
, argv
[i
], tok
->len
))
894 if (is_varargs
&& tok
->len
== va_arg_name
->len
895 && ! memcmp (tok
->text
, va_arg_name
->text
, tok
->len
))
901 /* Helper function for substitute_args that gets the next token and
902 updates the passed-in state variables. */
905 get_next_token_for_substitution (shared_macro_buffer
*replacement_list
,
906 shared_macro_buffer
*token
,
908 shared_macro_buffer
*lookahead
,
909 const char **lookahead_start
,
910 int *lookahead_valid
,
913 if (!*lookahead_valid
)
919 *start
= *lookahead_start
;
920 *lookahead_start
= replacement_list
->text
;
921 *lookahead_valid
= get_token (lookahead
, replacement_list
);
925 /* Given the macro definition DEF, being invoked with the actual
926 arguments given by ARGV, substitute the arguments into the
927 replacement list, and store the result in DEST.
929 IS_VARARGS should be true if DEF is a varargs macro. In this case,
930 VA_ARG_NAME should be the name of the "variable" argument -- either
931 __VA_ARGS__ for c99-style varargs, or the final argument name, for
932 GNU-style varargs. If IS_VARARGS is false, this parameter is
935 If it is necessary to expand macro invocations in one of the
936 arguments, use LOOKUP_FUNC and LOOKUP_BATON to find the macro
937 definitions, and don't expand invocations of the macros listed in
941 substitute_args (growable_macro_buffer
*dest
,
942 struct macro_definition
*def
,
943 int is_varargs
, const shared_macro_buffer
*va_arg_name
,
944 const std::vector
<shared_macro_buffer
> &argv
,
945 struct macro_name_list
*no_loop
,
946 const macro_scope
&scope
)
948 /* The token we are currently considering. */
949 shared_macro_buffer tok
;
950 /* The replacement list's pointer from just before TOK was lexed. */
951 const char *original_rl_start
;
952 /* We have a single lookahead token to handle token splicing. */
953 shared_macro_buffer lookahead
;
954 /* The lookahead token might not be valid. */
956 /* The replacement list's pointer from just before LOOKAHEAD was
958 const char *lookahead_rl_start
;
960 /* A macro buffer for the macro's replacement list. */
961 shared_macro_buffer
replacement_list (def
->replacement
,
962 strlen (def
->replacement
));
964 gdb_assert (dest
->len
== 0);
965 dest
->last_token
= 0;
967 original_rl_start
= replacement_list
.text
;
968 if (! get_token (&tok
, &replacement_list
))
970 lookahead_rl_start
= replacement_list
.text
;
971 lookahead_valid
= get_token (&lookahead
, &replacement_list
);
973 /* __VA_OPT__ state variable. The states are:
974 0 - nothing happening
976 >= 2 in __VA_OPT__, the value encodes the parenthesis depth. */
977 unsigned vaopt_state
= 0;
979 for (bool keep_going
= true;
981 get_next_token_for_substitution (&replacement_list
,
989 bool token_is_vaopt
= (tok
.len
== 10
990 && startswith (tok
.text
, "__VA_OPT__"));
995 error (_("__VA_OPT__ cannot appear inside __VA_OPT__"));
996 else if (tok
.len
== 1 && tok
.text
[0] == '(')
999 /* We just entered __VA_OPT__, so don't emit this
1003 else if (vaopt_state
== 1)
1004 error (_("__VA_OPT__ must be followed by an open parenthesis"));
1005 else if (tok
.len
== 1 && tok
.text
[0] == ')')
1008 if (vaopt_state
== 1)
1010 /* Done with __VA_OPT__. */
1017 /* If __VA_ARGS__ is empty, then drop the contents of
1019 if (argv
.back ().len
== 0)
1022 else if (token_is_vaopt
)
1025 error (_("__VA_OPT__ is only valid in a variadic macro"));
1027 /* Don't emit this token. */
1031 /* Just for aesthetics. If we skipped some whitespace, copy
1033 if (tok
.text
> original_rl_start
)
1035 dest
->appendmem (original_rl_start
, tok
.text
- original_rl_start
);
1036 dest
->last_token
= dest
->len
;
1039 /* Is this token the stringification operator? */
1041 && tok
.text
[0] == '#')
1045 if (!lookahead_valid
)
1046 error (_("Stringification operator requires an argument."));
1048 arg
= find_parameter (&lookahead
, is_varargs
, va_arg_name
,
1049 def
->argc
, def
->argv
);
1051 error (_("Argument to stringification operator must name "
1052 "a macro parameter."));
1054 stringify (dest
, argv
[arg
].text
, argv
[arg
].len
);
1056 /* Read one token and let the loop iteration code handle the
1058 lookahead_rl_start
= replacement_list
.text
;
1059 lookahead_valid
= get_token (&lookahead
, &replacement_list
);
1061 /* Is this token the splicing operator? */
1062 else if (tok
.len
== 2
1063 && tok
.text
[0] == '#'
1064 && tok
.text
[1] == '#')
1065 error (_("Stray splicing operator"));
1066 /* Is the next token the splicing operator? */
1067 else if (lookahead_valid
1068 && lookahead
.len
== 2
1069 && lookahead
.text
[0] == '#'
1070 && lookahead
.text
[1] == '#')
1073 int prev_was_comma
= 0;
1075 /* Note that GCC warns if the result of splicing is not a
1076 token. In the debugger there doesn't seem to be much
1077 benefit from doing this. */
1079 /* Insert the first token. */
1080 if (tok
.len
== 1 && tok
.text
[0] == ',')
1084 int arg
= find_parameter (&tok
, is_varargs
, va_arg_name
,
1085 def
->argc
, def
->argv
);
1088 dest
->appendmem (argv
[arg
].text
, argv
[arg
].len
);
1090 dest
->appendmem (tok
.text
, tok
.len
);
1093 /* Apply a possible sequence of ## operators. */
1096 if (! get_token (&tok
, &replacement_list
))
1097 error (_("Splicing operator at end of macro"));
1099 /* Handle a comma before a ##. If we are handling
1100 varargs, and the token on the right hand side is the
1101 varargs marker, and the final argument is empty or
1102 missing, then drop the comma. This is a GNU
1103 extension. There is one ambiguous case here,
1104 involving pedantic behavior with an empty argument,
1105 but we settle that in favor of GNU-style (GCC uses an
1106 option). If we aren't dealing with varargs, we
1107 simply insert the comma. */
1111 && tok
.len
== va_arg_name
->len
1112 && !memcmp (tok
.text
, va_arg_name
->text
, tok
.len
)
1113 && argv
.back ().len
== 0))
1114 dest
->appendmem (",", 1);
1118 /* Insert the token. If it is a parameter, insert the
1119 argument. If it is a comma, treat it specially. */
1120 if (tok
.len
== 1 && tok
.text
[0] == ',')
1124 int arg
= find_parameter (&tok
, is_varargs
, va_arg_name
,
1125 def
->argc
, def
->argv
);
1128 dest
->appendmem (argv
[arg
].text
, argv
[arg
].len
);
1130 dest
->appendmem (tok
.text
, tok
.len
);
1133 /* Now read another token. If it is another splice, we
1135 original_rl_start
= replacement_list
.text
;
1136 if (! get_token (&tok
, &replacement_list
))
1143 && tok
.text
[0] == '#'
1144 && tok
.text
[1] == '#'))
1150 /* We saw a comma. Insert it now. */
1151 dest
->appendmem (",", 1);
1154 dest
->last_token
= dest
->len
;
1156 lookahead_valid
= 0;
1159 /* Set up for the loop iterator. */
1161 lookahead_rl_start
= original_rl_start
;
1162 lookahead_valid
= 1;
1167 /* Is this token an identifier? */
1168 int substituted
= 0;
1169 int arg
= find_parameter (&tok
, is_varargs
, va_arg_name
,
1170 def
->argc
, def
->argv
);
1174 /* Expand any macro invocations in the argument text,
1175 and append the result to dest. Remember that scan
1176 mutates its source, so we need to scan a new buffer
1177 referring to the argument's text, not the argument
1179 shared_macro_buffer
arg_src (argv
[arg
].text
, argv
[arg
].len
);
1180 scan (dest
, &arg_src
, no_loop
, scope
);
1184 /* If it wasn't a parameter, then just copy it across. */
1186 append_tokens_without_splicing (dest
, &tok
);
1190 if (vaopt_state
> 0)
1191 error (_("Unterminated __VA_OPT__"));
1195 /* Expand a call to a macro named ID, whose definition is DEF. Append
1196 its expansion to DEST. SRC is the input text following the ID
1197 token. We are currently rescanning the expansions of the macros
1198 named in NO_LOOP; don't re-expand them. Use LOOKUP_FUNC and
1199 LOOKUP_BATON to find definitions for any nested macro references.
1201 Return 1 if we decided to expand it, zero otherwise. (If it's a
1202 function-like macro name that isn't followed by an argument list,
1203 we don't expand it.) If we return zero, leave SRC unchanged. */
1205 expand (const char *id
,
1206 struct macro_definition
*def
,
1207 growable_macro_buffer
*dest
,
1208 shared_macro_buffer
*src
,
1209 struct macro_name_list
*no_loop
,
1210 const macro_scope
&scope
)
1212 struct macro_name_list new_no_loop
;
1214 /* Create a new node to be added to the front of the no-expand list.
1215 This list is appropriate for re-scanning replacement lists, but
1216 it is *not* appropriate for scanning macro arguments; invocations
1217 of the macro whose arguments we are gathering *do* get expanded
1219 new_no_loop
.name
= id
;
1220 new_no_loop
.next
= no_loop
;
1222 /* What kind of macro are we expanding? */
1223 if (def
->kind
== macro_object_like
)
1225 shared_macro_buffer
replacement_list (def
->replacement
,
1226 strlen (def
->replacement
));
1228 scan (dest
, &replacement_list
, &new_no_loop
, scope
);
1231 else if (def
->kind
== macro_function_like
)
1233 shared_macro_buffer va_arg_name
;
1238 if (strcmp (def
->argv
[def
->argc
- 1], "...") == 0)
1240 /* In C99-style varargs, substitution is done using
1242 va_arg_name
.set_shared ("__VA_ARGS__", strlen ("__VA_ARGS__"));
1247 int len
= strlen (def
->argv
[def
->argc
- 1]);
1250 && strcmp (def
->argv
[def
->argc
- 1] + len
- 3, "...") == 0)
1252 /* In GNU-style varargs, the name of the
1253 substitution parameter is the name of the formal
1254 argument without the "...". */
1255 va_arg_name
.set_shared (def
->argv
[def
->argc
- 1], len
- 3);
1261 std::vector
<shared_macro_buffer
> argv
;
1262 /* If we couldn't find any argument list, then we don't expand
1264 if (!gather_arguments (id
, src
, is_varargs
? def
->argc
: -1,
1268 /* Check that we're passing an acceptable number of arguments for
1270 if (argv
.size () != def
->argc
)
1272 if (is_varargs
&& argv
.size () >= def
->argc
- 1)
1276 /* Remember that a sequence of tokens like "foo()" is a
1277 valid invocation of a macro expecting either zero or one
1279 else if (! (argv
.size () == 1
1282 error (_("Wrong number of arguments to macro `%s' "
1283 "(expected %d, got %d)."),
1284 id
, def
->argc
, int (argv
.size ()));
1287 /* Note that we don't expand macro invocations in the arguments
1288 yet --- we let subst_args take care of that. Parameters that
1289 appear as operands of the stringifying operator "#" or the
1290 splicing operator "##" don't get macro references expanded,
1291 so we can't really tell whether it's appropriate to macro-
1292 expand an argument until we see how it's being used. */
1293 growable_macro_buffer
substituted (0);
1294 substitute_args (&substituted
, def
, is_varargs
, &va_arg_name
,
1295 argv
, no_loop
, scope
);
1297 /* Now `substituted' is the macro's replacement list, with all
1298 argument values substituted into it properly. Re-scan it for
1299 macro references, but don't expand invocations of this macro.
1301 We create a new buffer, `substituted_src', which points into
1302 `substituted', and scan that. We can't scan `substituted'
1303 itself, since the tokenization process moves the buffer's
1304 text pointer around, and we still need to be able to find
1305 `substituted's original text buffer after scanning it so we
1307 shared_macro_buffer
substituted_src (substituted
.text
, substituted
.len
);
1308 scan (dest
, &substituted_src
, &new_no_loop
, scope
);
1313 internal_error (_("bad macro definition kind"));
1317 /* If the single token in SRC_FIRST followed by the tokens in SRC_REST
1318 constitute a macro invocation not forbidden in NO_LOOP, append its
1319 expansion to DEST and return non-zero. Otherwise, return zero, and
1320 leave DEST unchanged.
1322 SRC_FIRST must be a string built by get_token. */
1324 maybe_expand (growable_macro_buffer
*dest
,
1325 shared_macro_buffer
*src_first
,
1326 shared_macro_buffer
*src_rest
,
1327 struct macro_name_list
*no_loop
,
1328 const macro_scope
&scope
)
1330 /* Is this token an identifier? */
1331 if (src_first
->is_identifier
)
1333 /* Make a null-terminated copy of it, since that's what our
1334 lookup function expects. */
1335 std::string
id (src_first
->text
, src_first
->len
);
1337 /* If we're currently re-scanning the result of expanding
1338 this macro, don't expand it again. */
1339 if (! currently_rescanning (no_loop
, id
.c_str ()))
1341 /* Does this identifier have a macro definition in scope? */
1342 macro_definition
*def
= standard_macro_lookup (id
.c_str (), scope
);
1344 if (def
&& expand (id
.c_str (), def
, dest
, src_rest
, no_loop
, scope
))
1353 /* Expand macro references in SRC, appending the results to DEST.
1354 Assume we are re-scanning the result of expanding the macros named
1355 in NO_LOOP, and don't try to re-expand references to them. */
1358 scan (growable_macro_buffer
*dest
,
1359 shared_macro_buffer
*src
,
1360 struct macro_name_list
*no_loop
,
1361 const macro_scope
&scope
)
1366 shared_macro_buffer tok
;
1367 const char *original_src_start
= src
->text
;
1369 /* Find the next token in SRC. */
1370 if (! get_token (&tok
, src
))
1373 /* Just for aesthetics. If we skipped some whitespace, copy
1375 if (tok
.text
> original_src_start
)
1377 dest
->appendmem (original_src_start
, tok
.text
- original_src_start
);
1378 dest
->last_token
= dest
->len
;
1381 if (! maybe_expand (dest
, &tok
, src
, no_loop
, scope
))
1382 /* We didn't end up expanding tok as a macro reference, so
1383 simply append it to dest. */
1384 append_tokens_without_splicing (dest
, &tok
);
1387 /* Just for aesthetics. If there was any trailing whitespace in
1388 src, copy it to dest. */
1391 dest
->appendmem (src
->text
, src
->len
);
1392 dest
->last_token
= dest
->len
;
1397 gdb::unique_xmalloc_ptr
<char>
1398 macro_expand (const char *source
, const macro_scope
&scope
)
1400 shared_macro_buffer
src (source
, strlen (source
));
1402 growable_macro_buffer
dest (0);
1403 dest
.last_token
= 0;
1405 scan (&dest
, &src
, 0, scope
);
1407 dest
.appendc ('\0');
1409 return dest
.release ();
1413 gdb::unique_xmalloc_ptr
<char>
1414 macro_expand_once (const char *source
, const macro_scope
&scope
)
1416 error (_("Expand-once not implemented yet."));
1419 gdb::unique_xmalloc_ptr
<char>
1420 macro_expand_next (const char **lexptr
, const macro_scope
&scope
)
1422 shared_macro_buffer tok
;
1424 /* Set up SRC to refer to the input text, pointed to by *lexptr. */
1425 shared_macro_buffer
src (*lexptr
, strlen (*lexptr
));
1427 /* Set up DEST to receive the expansion, if there is one. */
1428 growable_macro_buffer
dest (0);
1429 dest
.last_token
= 0;
1431 /* Get the text's first preprocessing token. */
1432 if (! get_token (&tok
, &src
))
1435 /* If it's a macro invocation, expand it. */
1436 if (maybe_expand (&dest
, &tok
, &src
, 0, scope
))
1438 /* It was a macro invocation! Package up the expansion as a
1439 null-terminated string and return it. Set *lexptr to the
1440 start of the next token in the input. */
1441 dest
.appendc ('\0');
1443 return dest
.release ();
1447 /* It wasn't a macro invocation. */