Implement Ada min and max operations
[deliverable/binutils-gdb.git] / gdb / std-operator.def
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1/* Standard language operator definitions for GDB, the GNU debugger.
2
3666a048 3 Copyright (C) 1986-2021 Free Software Foundation, Inc.
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4
5 This file is part of GDB.
6
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.
11
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.
16
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/>. */
19
20/* Used when it's necessary to pass an opcode which will be ignored,
21 or to catch uninitialized values. */
22OP (OP_NULL)
23
24/* BINOP_... operate on two values computed by following subexpressions,
25replacing them by one result value. They take no immediate arguments. */
26
27OP (BINOP_ADD) /* + */
28OP (BINOP_SUB) /* - */
29OP (BINOP_MUL) /* * */
30OP (BINOP_DIV) /* / */
31OP (BINOP_REM) /* % */
32OP (BINOP_MOD) /* mod (Knuth 1.2.4) */
33OP (BINOP_LSH) /* << */
34OP (BINOP_RSH) /* >> */
35OP (BINOP_LOGICAL_AND) /* && */
36OP (BINOP_LOGICAL_OR) /* || */
37OP (BINOP_BITWISE_AND) /* & */
38OP (BINOP_BITWISE_IOR) /* | */
39OP (BINOP_BITWISE_XOR) /* ^ */
40OP (BINOP_EQUAL) /* == */
41OP (BINOP_NOTEQUAL) /* != */
42OP (BINOP_LESS) /* < */
43OP (BINOP_GTR) /* > */
44OP (BINOP_LEQ) /* <= */
45OP (BINOP_GEQ) /* >= */
46OP (BINOP_REPEAT) /* @ */
47OP (BINOP_ASSIGN) /* = */
48OP (BINOP_COMMA) /* , */
49OP (BINOP_SUBSCRIPT) /* x[y] */
50OP (BINOP_EXP) /* Exponentiation */
51
52/* C++. */
53
54OP (BINOP_MIN) /* <? */
55OP (BINOP_MAX) /* >? */
56
57/* STRUCTOP_MEMBER is used for pointer-to-member constructs.
58 X . * Y translates into X STRUCTOP_MEMBER Y. */
59OP (STRUCTOP_MEMBER)
60
61/* STRUCTOP_MPTR is used for pointer-to-member constructs
62 when X is a pointer instead of an aggregate. */
63OP (STRUCTOP_MPTR)
64
65/* TYPE_INSTANCE is used when the user specifies a specific
66 type instantiation for overloaded methods/functions.
67
68 The format is:
69 TYPE_INSTANCE num_types type0 ... typeN num_types TYPE_INSTANCE. */
70OP (TYPE_INSTANCE)
71
72/* end of C++. */
73
74/* For Modula-2 integer division DIV. */
75OP (BINOP_INTDIV)
76
77/* +=, -=, *=, and so on. The following exp_element is another opcode,
78 a BINOP_, saying how to modify. Then comes another BINOP_ASSIGN_MODIFY,
79 making three exp_elements in total. */
80OP (BINOP_ASSIGN_MODIFY)
81
82/* Modula-2 standard (binary) procedures. */
83OP (BINOP_VAL)
84
85/* Concatenate two operands, such as character strings or bitstrings.
86 If the first operand is a integer expression, then it means concatenate
87 the second operand with itself that many times. */
88OP (BINOP_CONCAT)
89
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90/* This must be the highest BINOP_ value, for expprint.c. */
91OP (BINOP_END)
92
93/* Operates on three values computed by following subexpressions. */
94OP (TERNOP_COND) /* ?: */
95
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96/* A sub-string/sub-array. Ada syntax: OP1(OP2..OP3). Return
97 elements OP2 through OP3 of OP1. */
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98OP (TERNOP_SLICE)
99
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100/* Multidimensional subscript operator, such as Modula-2 x[a,b,...].
101 The dimensionality is encoded in the operator, like the number of
102 function arguments in OP_FUNCALL, I.E. <OP><dimension><OP>.
103 The value of the first following subexpression is subscripted
104 by each of the next following subexpressions, one per dimension. */
105OP (MULTI_SUBSCRIPT)
106
107/* The OP_... series take immediate following arguments.
108 After the arguments come another OP_... (the same one)
109 so that the grouping can be recognized from the end. */
110
111/* OP_LONG is followed by a type pointer in the next exp_element
112 and the long constant value in the following exp_element.
113 Then comes another OP_LONG.
114 Thus, the operation occupies four exp_elements. */
115OP (OP_LONG)
116
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117/* OP_FLOAT is similar but takes a floating-point constant encoded in
118 the target format for the given type instead of a long. */
119OP (OP_FLOAT)
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120
121/* OP_VAR_VALUE takes one struct block * in the following element,
122 and one struct symbol * in the following exp_element, followed
123 by another OP_VAR_VALUE, making four exp_elements. If the
124 block is non-NULL, evaluate the symbol relative to the
125 innermost frame executing in that block; if the block is NULL
126 use the selected frame. */
127OP (OP_VAR_VALUE)
128
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129/* OP_VAR_ENTRY_VALUE takes one struct symbol * in the following element,
130 followed by another OP_VAR_ENTRY_VALUE, making three exp_elements.
131 somename@entry may mean parameter value as present at the entry of the
216f72a1 132 current function. Implemented via DW_OP_entry_value. */
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133OP (OP_VAR_ENTRY_VALUE)
134
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135/* OP_VAR_MSYM_VALUE takes one struct objfile * in the following
136 element, and one struct minimal_symbol * in the following
137 exp_element, followed by another OP_VAR_MSYM_VALUE, making four
138 exp_elements. */
139OP (OP_VAR_MSYM_VALUE)
140
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141/* OP_LAST is followed by an integer in the next exp_element.
142 The integer is zero for the last value printed,
143 or it is the absolute number of a history element.
144 With another OP_LAST at the end, this makes three exp_elements. */
145OP (OP_LAST)
146
147/* OP_REGISTER is followed by a string in the next exp_element.
148 This is the name of a register to fetch. */
149OP (OP_REGISTER)
150
151/* OP_INTERNALVAR is followed by an internalvar ptr in the next
152 exp_element. With another OP_INTERNALVAR at the end, this
153 makes three exp_elements. */
154OP (OP_INTERNALVAR)
155
156/* OP_FUNCALL is followed by an integer in the next exp_element.
157 The integer is the number of args to the function call.
158 That many plus one values from following subexpressions
159 are used, the first one being the function.
160 The integer is followed by a repeat of OP_FUNCALL,
161 making three exp_elements. */
162OP (OP_FUNCALL)
163
164/* OP_OBJC_MSGCALL is followed by a string in the next exp_element
165 and then an integer. The string is the selector string. The
166 integer is the number of arguments to the message call. That
167 many plus one values are used, the first one being the object
168 pointer. This is an Objective C message. */
169OP (OP_OBJC_MSGCALL)
170
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171/* OP_COMPLEX takes a type in the following element, followed by another
172 OP_COMPLEX, making three exp_elements. It is followed by two double
173 args, and converts them into a complex number of the given type. */
174OP (OP_COMPLEX)
175
176/* OP_STRING represents a string constant.
177 Its format is the same as that of a STRUCTOP, but the string
178 data is just made into a string constant when the operation
179 is executed. */
180OP (OP_STRING)
181
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182/* OP_ARRAY creates an array constant out of the following subexpressions.
183 It is followed by two exp_elements, the first containing an integer
184 that is the lower bound of the array and the second containing another
185 integer that is the upper bound of the array. The second integer is
186 followed by a repeat of OP_ARRAY, making four exp_elements total.
187 The bounds are used to compute the number of following subexpressions
188 to consume, as well as setting the bounds in the created array constant.
189 The type of the elements is taken from the type of the first subexp,
190 and they must all match. */
191OP (OP_ARRAY)
192
193/* UNOP_CAST is followed by a type pointer in the next exp_element.
194 With another UNOP_CAST at the end, this makes three exp_elements.
195 It casts the value of the following subexpression. */
196OP (UNOP_CAST)
197
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198/* Like UNOP_CAST, but the type is a subexpression. */
199OP (UNOP_CAST_TYPE)
200
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201/* The C++ dynamic_cast operator. */
202OP (UNOP_DYNAMIC_CAST)
203
204/* The C++ reinterpret_cast operator. */
205OP (UNOP_REINTERPRET_CAST)
206
207/* UNOP_MEMVAL is followed by a type pointer in the next exp_element
208 With another UNOP_MEMVAL at the end, this makes three exp_elements.
209 It casts the contents of the word addressed by the value of the
210 following subexpression. */
211OP (UNOP_MEMVAL)
212
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213/* Like UNOP_MEMVAL, but the type is supplied as a subexpression. */
214OP (UNOP_MEMVAL_TYPE)
215
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216/* UNOP_... operate on one value from a following subexpression
217 and replace it with a result. They take no immediate arguments. */
218
219OP (UNOP_NEG) /* Unary - */
220OP (UNOP_LOGICAL_NOT) /* Unary ! */
221OP (UNOP_COMPLEMENT) /* Unary ~ */
222OP (UNOP_IND) /* Unary * */
223OP (UNOP_ADDR) /* Unary & */
224OP (UNOP_PREINCREMENT) /* ++ before an expression */
225OP (UNOP_POSTINCREMENT) /* ++ after an expression */
226OP (UNOP_PREDECREMENT) /* -- before an expression */
227OP (UNOP_POSTDECREMENT) /* -- after an expression */
228OP (UNOP_SIZEOF) /* Unary sizeof (followed by expression) */
007e1530 229OP (UNOP_ALIGNOF) /* Unary alignof (followed by expression) */
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230
231OP (UNOP_PLUS) /* Unary plus */
232
233OP (UNOP_CAP) /* Modula-2 standard (unary) procedures */
234OP (UNOP_CHR)
235OP (UNOP_ORD)
236OP (UNOP_ABS)
237OP (UNOP_FLOAT)
238OP (UNOP_HIGH)
239OP (UNOP_MAX)
240OP (UNOP_MIN)
241OP (UNOP_ODD)
242OP (UNOP_TRUNC)
243
244OP (OP_BOOL) /* Modula-2 builtin BOOLEAN type */
245OP (OP_M2_STRING) /* Modula-2 string constants */
246
247/* STRUCTOP_... operate on a value from a following subexpression
248 by extracting a structure component specified by a string
249 that appears in the following exp_elements (as many as needed).
250 STRUCTOP_STRUCT is used for "." and STRUCTOP_PTR for "->".
251 They differ only in the error message given in case the value is
252 not suitable or the structure component specified is not found.
253
254 The length of the string follows the opcode, followed by
255 BYTES_TO_EXP_ELEM(length) elements containing the data of the
256 string, followed by the length again and the opcode again. */
257
258OP (STRUCTOP_STRUCT)
259OP (STRUCTOP_PTR)
260
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261/* Anonymous field access, e.g. "foo.3". Used in Rust. */
262OP (STRUCTOP_ANONYMOUS)
263
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264/* C++: OP_THIS is just a placeholder for the class instance variable.
265 It just comes in a tight (OP_THIS, OP_THIS) pair. */
266OP (OP_THIS)
267
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268/* Objective C: "@selector" pseudo-operator. */
269OP (OP_OBJC_SELECTOR)
270
271/* OP_SCOPE surrounds a type name and a field name. The type
272 name is encoded as one element, but the field name stays as
273 a string, which, of course, is variable length. */
274OP (OP_SCOPE)
275
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276/* OP_FUNC_STATIC_VAR refers to a function local static variable. The
277 function is taken from the following subexpression. The length of
278 the variable name as a string follows the opcode, followed by
279 BYTES_TO_EXP_ELEM(length) elements containing the data of the
280 string, followed by the length again and the opcode again.
281
282 Note this is used by C++, but not C. The C parser handles local
283 static variables in the parser directly. Also, this is only used
284 in C++ if the function/method name is not quoted, like e.g.:
285
286 p S:method()::var
287 p S:method() const::var
288
289 If the function/method is quoted like instead:
290
291 p 'S:method() const'::var
292
293 then the C-specific handling directly in the parser takes over (see
6fdcd7cc 294 block/variable productions).
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295
296 Also, if the whole function+var is quoted like this:
297
298 p 'S:method() const::var'
299
300 then the whole quoted expression is interpreted as a single symbol
301 name and we don't use OP_FUNC_STATIC_VAR either. In that case, the
302 C++-specific symbol lookup routines take care of the
303 function-local-static search. */
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304OP (OP_FUNC_STATIC_VAR)
305
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306/* OP_TYPE is for parsing types, and used with the "ptype" command
307 so we can look up types that are qualified by scope, either with
308 the GDB "::" operator, or the Modula-2 '.' operator. */
309OP (OP_TYPE)
310
311/* An un-looked-up identifier. */
312OP (OP_NAME)
313
314/* An Objective C Foundation Class NSString constant. */
315OP (OP_OBJC_NSSTRING)
316
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317/* An array range operator (in Fortran 90, for "exp:exp", "exp:",
318 ":exp" and ":"). */
319OP (OP_RANGE)
56c12414 320
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321/* OP_ADL_FUNC specifies that the function is to be looked up in an
322 Argument Dependent manner (Koenig lookup). */
323OP (OP_ADL_FUNC)
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324
325/* The typeof operator. This has one expression argument, which is
326 evaluated solely for its type. */
327OP (OP_TYPEOF)
328
329/* The decltype operator. This has one expression argument, which is
330 evaluated solely for its type. This is similar to typeof, but has
331 slight different semantics. */
332OP (OP_DECLTYPE)
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333
334/* The typeid operator. This has one expression argument. */
335OP (OP_TYPEID)
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336
337/* This is used for the Rust [expr; N] form of array construction. It
338 takes two expression arguments. */
339OP (OP_RUST_ARRAY)
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340
341/* First extension operator. Some language modules define extra
342 operators below with numbers higher than OP_EXTENDED0. */
343OP (OP_EXTENDED0)
344
345/* ================ Ada operators ================ */
346
347/* X IN A'RANGE(N). N is an immediate operand, surrounded by
348 BINOP_IN_BOUNDS before and after. A is an array, X an index
349 value. Evaluates to true iff X is within range of the Nth
350 dimension (1-based) of A. (A multi-dimensional array
351 type is represented as array of array of ...) */
352OP (BINOP_IN_BOUNDS)
353
354/* X IN L .. U. True iff L <= X <= U. */
355OP (TERNOP_IN_RANGE)
356
357/* Ada attributes ('Foo). */
358OP (OP_ATR_FIRST)
359OP (OP_ATR_LAST)
360OP (OP_ATR_LENGTH)
361OP (OP_ATR_IMAGE)
362OP (OP_ATR_MAX)
363OP (OP_ATR_MIN)
364OP (OP_ATR_MODULUS)
365OP (OP_ATR_POS)
366OP (OP_ATR_SIZE)
367OP (OP_ATR_TAG)
368OP (OP_ATR_VAL)
369
370/* Ada type qualification. It is encoded as for UNOP_CAST, above,
371 and denotes the TYPE'(EXPR) construct. */
372OP (UNOP_QUAL)
373
374/* X IN TYPE. The `TYPE' argument is immediate, with
375 UNOP_IN_RANGE before and after it. True iff X is a member of
376 type TYPE (typically a subrange). */
377OP (UNOP_IN_RANGE)
378
379/* An aggregate. A single immediate operand, N>0, gives
380 the number of component specifications that follow. The
381 immediate operand is followed by a second OP_AGGREGATE.
382 Next come N component specifications. A component
383 specification is either an OP_OTHERS (others=>...), an
384 OP_CHOICES (for named associations), or other expression (for
385 positional aggregates only). Aggregates currently
386 occur only as the right sides of assignments. */
387OP (OP_AGGREGATE)
388
389/* An others clause. Followed by a single expression. */
390OP (OP_OTHERS)
391
392/* An aggregate component association. A single immediate operand, N,
393 gives the number of choices that follow. This is followed by a second
394 OP_CHOICES operator. Next come N operands, each of which is an
395 expression, an OP_DISCRETE_RANGE, or an OP_NAME---the latter
396 for a simple name that must be a record component name and does
397 not correspond to a single existing symbol. After the N choice
398 indicators comes an expression giving the value.
399
400 In an aggregate such as (X => E1, ...), where X is a simple
401 name, X could syntactically be either a component_selector_name
402 or an expression used as a discrete_choice, depending on the
403 aggregate's type context. Since this is not known at parsing
404 time, we don't attempt to disambiguate X if it has multiple
405 definitions, but instead supply an OP_NAME. If X has a single
406 definition, we represent it with an OP_VAR_VALUE, even though
407 it may turn out to be within a record aggregate. Aggregate
408 evaluation can use either OP_NAMEs or OP_VAR_VALUEs to get a
409 record field name, and can evaluate OP_VAR_VALUE normally to
410 get its value as an expression. Unfortunately, we lose out in
411 cases where X has multiple meanings and is part of an array
412 aggregate. I hope these are not common enough to annoy users,
413 who can work around the problem in any case by putting
414 parentheses around X. */
415OP (OP_CHOICES)
416
417/* A positional aggregate component association. The operator is
418 followed by a single integer indicating the position in the
419 aggregate (0-based), followed by a second OP_POSITIONAL. Next
420 follows a single expression giving the component value. */
421OP (OP_POSITIONAL)
422
423/* A range of values. Followed by two expressions giving the
424 upper and lower bounds of the range. */
425OP (OP_DISCRETE_RANGE)
426
427/* ================ Fortran operators ================ */
428
429/* This is EXACTLY like OP_FUNCALL but is semantically different.
430 In F77, array subscript expressions, substring expressions and
431 function calls are all exactly the same syntactically. They
432 may only be disambiguated at runtime. Thus this operator,
433 which indicates that we have found something of the form
434 <name> ( <stuff> ). */
435OP (OP_F77_UNDETERMINED_ARGLIST)
436
437/* Single operand builtins. */
438OP (UNOP_FORTRAN_KIND)
439OP (UNOP_FORTRAN_FLOOR)
440OP (UNOP_FORTRAN_CEILING)
96df3e28 441OP (UNOP_FORTRAN_ALLOCATED)
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442
443/* Two operand builtins. */
444OP (BINOP_FORTRAN_CMPLX)
445OP (BINOP_FORTRAN_MODULO)
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446
447/* Builtins that take one or two operands. */
448OP (FORTRAN_LBOUND)
449OP (FORTRAN_UBOUND)
faeb9f13 450OP (FORTRAN_ASSOCIATED)
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