1 /* Utility routines for data type conversion for GCC.
2 Copyright (C) 1987, 1988, 1991, 1992, 1993, 1994, 1995, 1997, 1998,
3 2000, 2001, 2002, 2003, 2004, 2005, 2006 Free Software Foundation, Inc.
5 This file is part of GCC.
7 GCC is free software; you can redistribute it and/or modify it under
8 the terms of the GNU General Public License as published by the Free
9 Software Foundation; either version 2, or (at your option) any later
12 GCC is distributed in the hope that it will be useful, but WITHOUT ANY
13 WARRANTY; without even the implied warranty of MERCHANTABILITY or
14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
17 You should have received a copy of the GNU General Public License
18 along with GCC; see the file COPYING. If not, write to the Free
19 Software Foundation, 51 Franklin Street, Fifth Floor, Boston, MA
23 /* These routines are somewhat language-independent utility function
24 intended to be called by the language-specific convert () functions. */
28 #include "coretypes.h"
34 #include "langhooks.h"
36 /* Convert EXPR to some pointer or reference type TYPE.
38 EXPR must be pointer, reference, integer, enumeral, or literal zero;
39 in other cases error is called. */
42 convert_to_pointer (tree type
, tree expr
)
44 if (integer_zerop (expr
))
45 return build_int_cst (type
, 0);
47 switch (TREE_CODE (TREE_TYPE (expr
)))
51 return build1 (NOP_EXPR
, type
, expr
);
56 if (TYPE_PRECISION (TREE_TYPE (expr
)) != POINTER_SIZE
)
57 expr
= fold_build1 (NOP_EXPR
,
58 lang_hooks
.types
.type_for_size (POINTER_SIZE
, 0),
60 return fold_build1 (CONVERT_EXPR
, type
, expr
);
64 error ("cannot convert to a pointer type");
65 return convert_to_pointer (type
, integer_zero_node
);
69 /* Avoid any floating point extensions from EXP. */
71 strip_float_extensions (tree exp
)
75 /* For floating point constant look up the narrowest type that can hold
76 it properly and handle it like (type)(narrowest_type)constant.
77 This way we can optimize for instance a=a*2.0 where "a" is float
78 but 2.0 is double constant. */
79 if (TREE_CODE (exp
) == REAL_CST
)
84 orig
= TREE_REAL_CST (exp
);
85 if (TYPE_PRECISION (TREE_TYPE (exp
)) > TYPE_PRECISION (float_type_node
)
86 && exact_real_truncate (TYPE_MODE (float_type_node
), &orig
))
87 type
= float_type_node
;
88 else if (TYPE_PRECISION (TREE_TYPE (exp
))
89 > TYPE_PRECISION (double_type_node
)
90 && exact_real_truncate (TYPE_MODE (double_type_node
), &orig
))
91 type
= double_type_node
;
93 return build_real (type
, real_value_truncate (TYPE_MODE (type
), orig
));
96 if (TREE_CODE (exp
) != NOP_EXPR
97 && TREE_CODE (exp
) != CONVERT_EXPR
)
100 sub
= TREE_OPERAND (exp
, 0);
101 subt
= TREE_TYPE (sub
);
102 expt
= TREE_TYPE (exp
);
104 if (!FLOAT_TYPE_P (subt
))
107 if (TYPE_PRECISION (subt
) > TYPE_PRECISION (expt
))
110 return strip_float_extensions (sub
);
114 /* Convert EXPR to some floating-point type TYPE.
116 EXPR must be float, integer, or enumeral;
117 in other cases error is called. */
120 convert_to_real (tree type
, tree expr
)
122 enum built_in_function fcode
= builtin_mathfn_code (expr
);
123 tree itype
= TREE_TYPE (expr
);
125 /* Disable until we figure out how to decide whether the functions are
126 present in runtime. */
127 /* Convert (float)sqrt((double)x) where x is float into sqrtf(x) */
129 && (TYPE_MODE (type
) == TYPE_MODE (double_type_node
)
130 || TYPE_MODE (type
) == TYPE_MODE (float_type_node
)))
134 #define CASE_MATHFN(FN) case BUILT_IN_##FN: case BUILT_IN_##FN##L:
171 tree arg0
= strip_float_extensions (TREE_VALUE (TREE_OPERAND (expr
, 1)));
174 /* We have (outertype)sqrt((innertype)x). Choose the wider mode from
175 the both as the safe type for operation. */
176 if (TYPE_PRECISION (TREE_TYPE (arg0
)) > TYPE_PRECISION (type
))
177 newtype
= TREE_TYPE (arg0
);
179 /* Be careful about integer to fp conversions.
180 These may overflow still. */
181 if (FLOAT_TYPE_P (TREE_TYPE (arg0
))
182 && TYPE_PRECISION (newtype
) < TYPE_PRECISION (itype
)
183 && (TYPE_MODE (newtype
) == TYPE_MODE (double_type_node
)
184 || TYPE_MODE (newtype
) == TYPE_MODE (float_type_node
)))
187 tree fn
= mathfn_built_in (newtype
, fcode
);
191 arglist
= build_tree_list (NULL_TREE
, fold (convert_to_real (newtype
, arg0
)));
192 expr
= build_function_call_expr (fn
, arglist
);
203 && (((fcode
== BUILT_IN_FLOORL
204 || fcode
== BUILT_IN_CEILL
205 || fcode
== BUILT_IN_ROUNDL
206 || fcode
== BUILT_IN_RINTL
207 || fcode
== BUILT_IN_TRUNCL
208 || fcode
== BUILT_IN_NEARBYINTL
)
209 && (TYPE_MODE (type
) == TYPE_MODE (double_type_node
)
210 || TYPE_MODE (type
) == TYPE_MODE (float_type_node
)))
211 || ((fcode
== BUILT_IN_FLOOR
212 || fcode
== BUILT_IN_CEIL
213 || fcode
== BUILT_IN_ROUND
214 || fcode
== BUILT_IN_RINT
215 || fcode
== BUILT_IN_TRUNC
216 || fcode
== BUILT_IN_NEARBYINT
)
217 && (TYPE_MODE (type
) == TYPE_MODE (float_type_node
)))))
219 tree fn
= mathfn_built_in (type
, fcode
);
224 = strip_float_extensions (TREE_VALUE (TREE_OPERAND (expr
, 1)));
226 /* Make sure (type)arg0 is an extension, otherwise we could end up
227 changing (float)floor(double d) into floorf((float)d), which is
228 incorrect because (float)d uses round-to-nearest and can round
229 up to the next integer. */
230 if (TYPE_PRECISION (type
) >= TYPE_PRECISION (TREE_TYPE (arg
)))
232 build_function_call_expr (fn
,
233 build_tree_list (NULL_TREE
,
234 fold (convert_to_real (type
, arg
))));
238 /* Propagate the cast into the operation. */
239 if (itype
!= type
&& FLOAT_TYPE_P (type
))
240 switch (TREE_CODE (expr
))
242 /* Convert (float)-x into -(float)x. This is always safe. */
245 if (TYPE_PRECISION (type
) < TYPE_PRECISION (TREE_TYPE (expr
)))
246 return build1 (TREE_CODE (expr
), type
,
247 fold (convert_to_real (type
,
248 TREE_OPERAND (expr
, 0))));
250 /* Convert (outertype)((innertype0)a+(innertype1)b)
251 into ((newtype)a+(newtype)b) where newtype
252 is the widest mode from all of these. */
258 tree arg0
= strip_float_extensions (TREE_OPERAND (expr
, 0));
259 tree arg1
= strip_float_extensions (TREE_OPERAND (expr
, 1));
261 if (FLOAT_TYPE_P (TREE_TYPE (arg0
))
262 && FLOAT_TYPE_P (TREE_TYPE (arg1
)))
266 if (TYPE_MODE (TREE_TYPE (arg0
)) == SDmode
267 || TYPE_MODE (TREE_TYPE (arg1
)) == SDmode
)
268 newtype
= dfloat32_type_node
;
269 if (TYPE_MODE (TREE_TYPE (arg0
)) == DDmode
270 || TYPE_MODE (TREE_TYPE (arg1
)) == DDmode
)
271 newtype
= dfloat64_type_node
;
272 if (TYPE_MODE (TREE_TYPE (arg0
)) == TDmode
273 || TYPE_MODE (TREE_TYPE (arg1
)) == TDmode
)
274 newtype
= dfloat128_type_node
;
275 if (newtype
== dfloat32_type_node
276 || newtype
== dfloat64_type_node
277 || newtype
== dfloat128_type_node
)
279 expr
= build2 (TREE_CODE (expr
), newtype
,
280 fold (convert_to_real (newtype
, arg0
)),
281 fold (convert_to_real (newtype
, arg1
)));
287 if (TYPE_PRECISION (TREE_TYPE (arg0
)) > TYPE_PRECISION (newtype
))
288 newtype
= TREE_TYPE (arg0
);
289 if (TYPE_PRECISION (TREE_TYPE (arg1
)) > TYPE_PRECISION (newtype
))
290 newtype
= TREE_TYPE (arg1
);
291 if (TYPE_PRECISION (newtype
) < TYPE_PRECISION (itype
))
293 expr
= build2 (TREE_CODE (expr
), newtype
,
294 fold (convert_to_real (newtype
, arg0
)),
295 fold (convert_to_real (newtype
, arg1
)));
306 switch (TREE_CODE (TREE_TYPE (expr
)))
309 return build1 (flag_float_store
? CONVERT_EXPR
: NOP_EXPR
,
315 return build1 (FLOAT_EXPR
, type
, expr
);
318 return convert (type
,
319 fold_build1 (REALPART_EXPR
,
320 TREE_TYPE (TREE_TYPE (expr
)), expr
));
324 error ("pointer value used where a floating point value was expected");
325 return convert_to_real (type
, integer_zero_node
);
328 error ("aggregate value used where a float was expected");
329 return convert_to_real (type
, integer_zero_node
);
333 /* Convert EXPR to some integer (or enum) type TYPE.
335 EXPR must be pointer, integer, discrete (enum, char, or bool), float, or
336 vector; in other cases error is called.
338 The result of this is always supposed to be a newly created tree node
339 not in use in any existing structure. */
342 convert_to_integer (tree type
, tree expr
)
344 enum tree_code ex_form
= TREE_CODE (expr
);
345 tree intype
= TREE_TYPE (expr
);
346 unsigned int inprec
= TYPE_PRECISION (intype
);
347 unsigned int outprec
= TYPE_PRECISION (type
);
349 /* An INTEGER_TYPE cannot be incomplete, but an ENUMERAL_TYPE can
350 be. Consider `enum E = { a, b = (enum E) 3 };'. */
351 if (!COMPLETE_TYPE_P (type
))
353 error ("conversion to incomplete type");
354 return error_mark_node
;
357 /* Convert e.g. (long)round(d) -> lround(d). */
358 /* If we're converting to char, we may encounter differing behavior
359 between converting from double->char vs double->long->char.
360 We're in "undefined" territory but we prefer to be conservative,
361 so only proceed in "unsafe" math mode. */
363 && (flag_unsafe_math_optimizations
364 || (long_integer_type_node
365 && outprec
>= TYPE_PRECISION (long_integer_type_node
))))
367 tree s_expr
= strip_float_extensions (expr
);
368 tree s_intype
= TREE_TYPE (s_expr
);
369 const enum built_in_function fcode
= builtin_mathfn_code (s_expr
);
374 CASE_FLT_FN (BUILT_IN_CEIL
):
375 /* Only convert in ISO C99 mode. */
376 if (!TARGET_C99_FUNCTIONS
)
378 if (TYPE_MAIN_VARIANT (type
) == TYPE_MAIN_VARIANT (long_long_integer_type_node
))
379 fn
= mathfn_built_in (s_intype
, BUILT_IN_LLCEIL
);
381 fn
= mathfn_built_in (s_intype
, BUILT_IN_LCEIL
);
384 CASE_FLT_FN (BUILT_IN_FLOOR
):
385 /* Only convert in ISO C99 mode. */
386 if (!TARGET_C99_FUNCTIONS
)
388 if (TYPE_MAIN_VARIANT (type
) == TYPE_MAIN_VARIANT (long_long_integer_type_node
))
389 fn
= mathfn_built_in (s_intype
, BUILT_IN_LLFLOOR
);
391 fn
= mathfn_built_in (s_intype
, BUILT_IN_LFLOOR
);
394 CASE_FLT_FN (BUILT_IN_ROUND
):
395 if (TYPE_MAIN_VARIANT (type
) == TYPE_MAIN_VARIANT (long_long_integer_type_node
))
396 fn
= mathfn_built_in (s_intype
, BUILT_IN_LLROUND
);
398 fn
= mathfn_built_in (s_intype
, BUILT_IN_LROUND
);
401 CASE_FLT_FN (BUILT_IN_RINT
):
402 /* Only convert rint* if we can ignore math exceptions. */
403 if (flag_trapping_math
)
405 /* ... Fall through ... */
406 CASE_FLT_FN (BUILT_IN_NEARBYINT
):
407 if (TYPE_MAIN_VARIANT (type
) == TYPE_MAIN_VARIANT (long_long_integer_type_node
))
408 fn
= mathfn_built_in (s_intype
, BUILT_IN_LLRINT
);
410 fn
= mathfn_built_in (s_intype
, BUILT_IN_LRINT
);
413 CASE_FLT_FN (BUILT_IN_TRUNC
):
415 tree arglist
= TREE_OPERAND (s_expr
, 1);
416 return convert_to_integer (type
, TREE_VALUE (arglist
));
425 tree arglist
= TREE_OPERAND (s_expr
, 1);
426 tree newexpr
= build_function_call_expr (fn
, arglist
);
427 return convert_to_integer (type
, newexpr
);
431 switch (TREE_CODE (intype
))
435 if (integer_zerop (expr
))
436 return build_int_cst (type
, 0);
438 /* Convert to an unsigned integer of the correct width first,
439 and from there widen/truncate to the required type. */
440 expr
= fold_build1 (CONVERT_EXPR
,
441 lang_hooks
.types
.type_for_size (POINTER_SIZE
, 0),
443 return fold_convert (type
, expr
);
448 /* If this is a logical operation, which just returns 0 or 1, we can
449 change the type of the expression. */
451 if (TREE_CODE_CLASS (ex_form
) == tcc_comparison
)
453 expr
= copy_node (expr
);
454 TREE_TYPE (expr
) = type
;
458 /* If we are widening the type, put in an explicit conversion.
459 Similarly if we are not changing the width. After this, we know
460 we are truncating EXPR. */
462 else if (outprec
>= inprec
)
466 /* If the precision of the EXPR's type is K bits and the
467 destination mode has more bits, and the sign is changing,
468 it is not safe to use a NOP_EXPR. For example, suppose
469 that EXPR's type is a 3-bit unsigned integer type, the
470 TYPE is a 3-bit signed integer type, and the machine mode
471 for the types is 8-bit QImode. In that case, the
472 conversion necessitates an explicit sign-extension. In
473 the signed-to-unsigned case the high-order bits have to
475 if (TYPE_UNSIGNED (type
) != TYPE_UNSIGNED (TREE_TYPE (expr
))
476 && (TYPE_PRECISION (TREE_TYPE (expr
))
477 != GET_MODE_BITSIZE (TYPE_MODE (TREE_TYPE (expr
)))))
482 return fold_build1 (code
, type
, expr
);
485 /* If TYPE is an enumeral type or a type with a precision less
486 than the number of bits in its mode, do the conversion to the
487 type corresponding to its mode, then do a nop conversion
489 else if (TREE_CODE (type
) == ENUMERAL_TYPE
490 || outprec
!= GET_MODE_BITSIZE (TYPE_MODE (type
)))
491 return build1 (NOP_EXPR
, type
,
492 convert (lang_hooks
.types
.type_for_mode
493 (TYPE_MODE (type
), TYPE_UNSIGNED (type
)),
496 /* Here detect when we can distribute the truncation down past some
497 arithmetic. For example, if adding two longs and converting to an
498 int, we can equally well convert both to ints and then add.
499 For the operations handled here, such truncation distribution
501 It is desirable in these cases:
502 1) when truncating down to full-word from a larger size
503 2) when truncating takes no work.
504 3) when at least one operand of the arithmetic has been extended
505 (as by C's default conversions). In this case we need two conversions
506 if we do the arithmetic as already requested, so we might as well
507 truncate both and then combine. Perhaps that way we need only one.
509 Note that in general we cannot do the arithmetic in a type
510 shorter than the desired result of conversion, even if the operands
511 are both extended from a shorter type, because they might overflow
512 if combined in that type. The exceptions to this--the times when
513 two narrow values can be combined in their narrow type even to
514 make a wider result--are handled by "shorten" in build_binary_op. */
519 /* We can pass truncation down through right shifting
520 when the shift count is a nonpositive constant. */
521 if (TREE_CODE (TREE_OPERAND (expr
, 1)) == INTEGER_CST
522 && tree_int_cst_sgn (TREE_OPERAND (expr
, 1)) <= 0)
527 /* We can pass truncation down through left shifting
528 when the shift count is a nonnegative constant and
529 the target type is unsigned. */
530 if (TREE_CODE (TREE_OPERAND (expr
, 1)) == INTEGER_CST
531 && tree_int_cst_sgn (TREE_OPERAND (expr
, 1)) >= 0
532 && TYPE_UNSIGNED (type
)
533 && TREE_CODE (TYPE_SIZE (type
)) == INTEGER_CST
)
535 /* If shift count is less than the width of the truncated type,
537 if (tree_int_cst_lt (TREE_OPERAND (expr
, 1), TYPE_SIZE (type
)))
538 /* In this case, shifting is like multiplication. */
542 /* If it is >= that width, result is zero.
543 Handling this with trunc1 would give the wrong result:
544 (int) ((long long) a << 32) is well defined (as 0)
545 but (int) a << 32 is undefined and would get a
548 tree t
= build_int_cst (type
, 0);
550 /* If the original expression had side-effects, we must
552 if (TREE_SIDE_EFFECTS (expr
))
553 return build2 (COMPOUND_EXPR
, type
, expr
, t
);
564 tree arg0
= get_unwidened (TREE_OPERAND (expr
, 0), type
);
565 tree arg1
= get_unwidened (TREE_OPERAND (expr
, 1), type
);
567 /* Don't distribute unless the output precision is at least as big
568 as the actual inputs. Otherwise, the comparison of the
569 truncated values will be wrong. */
570 if (outprec
>= TYPE_PRECISION (TREE_TYPE (arg0
))
571 && outprec
>= TYPE_PRECISION (TREE_TYPE (arg1
))
572 /* If signedness of arg0 and arg1 don't match,
573 we can't necessarily find a type to compare them in. */
574 && (TYPE_UNSIGNED (TREE_TYPE (arg0
))
575 == TYPE_UNSIGNED (TREE_TYPE (arg1
))))
587 tree arg0
= get_unwidened (TREE_OPERAND (expr
, 0), type
);
588 tree arg1
= get_unwidened (TREE_OPERAND (expr
, 1), type
);
590 if (outprec
>= BITS_PER_WORD
591 || TRULY_NOOP_TRUNCATION (outprec
, inprec
)
592 || inprec
> TYPE_PRECISION (TREE_TYPE (arg0
))
593 || inprec
> TYPE_PRECISION (TREE_TYPE (arg1
)))
595 /* Do the arithmetic in type TYPEX,
596 then convert result to TYPE. */
599 /* Can't do arithmetic in enumeral types
600 so use an integer type that will hold the values. */
601 if (TREE_CODE (typex
) == ENUMERAL_TYPE
)
602 typex
= lang_hooks
.types
.type_for_size
603 (TYPE_PRECISION (typex
), TYPE_UNSIGNED (typex
));
605 /* But now perhaps TYPEX is as wide as INPREC.
606 In that case, do nothing special here.
607 (Otherwise would recurse infinitely in convert. */
608 if (TYPE_PRECISION (typex
) != inprec
)
610 /* Don't do unsigned arithmetic where signed was wanted,
612 Exception: if both of the original operands were
613 unsigned then we can safely do the work as unsigned.
614 Exception: shift operations take their type solely
615 from the first argument.
616 Exception: the LSHIFT_EXPR case above requires that
617 we perform this operation unsigned lest we produce
618 signed-overflow undefinedness.
619 And we may need to do it as unsigned
620 if we truncate to the original size. */
621 if (TYPE_UNSIGNED (TREE_TYPE (expr
))
622 || (TYPE_UNSIGNED (TREE_TYPE (arg0
))
623 && (TYPE_UNSIGNED (TREE_TYPE (arg1
))
624 || ex_form
== LSHIFT_EXPR
625 || ex_form
== RSHIFT_EXPR
626 || ex_form
== LROTATE_EXPR
627 || ex_form
== RROTATE_EXPR
))
628 || ex_form
== LSHIFT_EXPR
629 /* If we have !flag_wrapv, and either ARG0 or
630 ARG1 is of a signed type, we have to do
631 PLUS_EXPR or MINUS_EXPR in an unsigned
632 type. Otherwise, we would introduce
633 signed-overflow undefinedness. */
635 && (ex_form
== PLUS_EXPR
636 || ex_form
== MINUS_EXPR
)
637 && (!TYPE_UNSIGNED (TREE_TYPE (arg0
))
638 || !TYPE_UNSIGNED (TREE_TYPE (arg1
)))))
639 typex
= lang_hooks
.types
.unsigned_type (typex
);
641 typex
= lang_hooks
.types
.signed_type (typex
);
642 return convert (type
,
643 fold_build2 (ex_form
, typex
,
644 convert (typex
, arg0
),
645 convert (typex
, arg1
)));
653 /* This is not correct for ABS_EXPR,
654 since we must test the sign before truncation. */
658 /* Don't do unsigned arithmetic where signed was wanted,
660 if (TYPE_UNSIGNED (TREE_TYPE (expr
)))
661 typex
= lang_hooks
.types
.unsigned_type (type
);
663 typex
= lang_hooks
.types
.signed_type (type
);
664 return convert (type
,
665 fold_build1 (ex_form
, typex
,
667 TREE_OPERAND (expr
, 0))));
672 "can't convert between vector values of different size" error. */
673 if (TREE_CODE (TREE_TYPE (TREE_OPERAND (expr
, 0))) == VECTOR_TYPE
674 && (GET_MODE_SIZE (TYPE_MODE (TREE_TYPE (TREE_OPERAND (expr
, 0))))
675 != GET_MODE_SIZE (TYPE_MODE (type
))))
677 /* If truncating after truncating, might as well do all at once.
678 If truncating after extending, we may get rid of wasted work. */
679 return convert (type
, get_unwidened (TREE_OPERAND (expr
, 0), type
));
682 /* It is sometimes worthwhile to push the narrowing down through
683 the conditional and never loses. */
684 return fold_build3 (COND_EXPR
, type
, TREE_OPERAND (expr
, 0),
685 convert (type
, TREE_OPERAND (expr
, 1)),
686 convert (type
, TREE_OPERAND (expr
, 2)));
692 return build1 (CONVERT_EXPR
, type
, expr
);
695 return build1 (FIX_TRUNC_EXPR
, type
, expr
);
698 return convert (type
,
699 fold_build1 (REALPART_EXPR
,
700 TREE_TYPE (TREE_TYPE (expr
)), expr
));
703 if (!tree_int_cst_equal (TYPE_SIZE (type
), TYPE_SIZE (TREE_TYPE (expr
))))
705 error ("can't convert between vector values of different size");
706 return error_mark_node
;
708 return build1 (VIEW_CONVERT_EXPR
, type
, expr
);
711 error ("aggregate value used where an integer was expected");
712 return convert (type
, integer_zero_node
);
716 /* Convert EXPR to the complex type TYPE in the usual ways. */
719 convert_to_complex (tree type
, tree expr
)
721 tree subtype
= TREE_TYPE (type
);
723 switch (TREE_CODE (TREE_TYPE (expr
)))
729 return build2 (COMPLEX_EXPR
, type
, convert (subtype
, expr
),
730 convert (subtype
, integer_zero_node
));
734 tree elt_type
= TREE_TYPE (TREE_TYPE (expr
));
736 if (TYPE_MAIN_VARIANT (elt_type
) == TYPE_MAIN_VARIANT (subtype
))
738 else if (TREE_CODE (expr
) == COMPLEX_EXPR
)
739 return fold_build2 (COMPLEX_EXPR
, type
,
740 convert (subtype
, TREE_OPERAND (expr
, 0)),
741 convert (subtype
, TREE_OPERAND (expr
, 1)));
744 expr
= save_expr (expr
);
746 fold_build2 (COMPLEX_EXPR
, type
,
748 fold_build1 (REALPART_EXPR
,
749 TREE_TYPE (TREE_TYPE (expr
)),
752 fold_build1 (IMAGPART_EXPR
,
753 TREE_TYPE (TREE_TYPE (expr
)),
760 error ("pointer value used where a complex was expected");
761 return convert_to_complex (type
, integer_zero_node
);
764 error ("aggregate value used where a complex was expected");
765 return convert_to_complex (type
, integer_zero_node
);
769 /* Convert EXPR to the vector type TYPE in the usual ways. */
772 convert_to_vector (tree type
, tree expr
)
774 switch (TREE_CODE (TREE_TYPE (expr
)))
778 if (!tree_int_cst_equal (TYPE_SIZE (type
), TYPE_SIZE (TREE_TYPE (expr
))))
780 error ("can't convert between vector values of different size");
781 return error_mark_node
;
783 return build1 (VIEW_CONVERT_EXPR
, type
, expr
);
786 error ("can't convert value to a vector");
787 return error_mark_node
;