check-expression.cpp
18.4 KB
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
272
273
274
275
276
277
278
279
280
281
282
283
284
285
286
287
288
289
290
291
292
293
294
295
296
297
298
299
300
301
302
303
304
305
306
307
308
309
310
311
312
313
314
315
316
317
318
319
320
321
322
323
324
325
326
327
328
329
330
331
332
333
334
335
336
337
338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
394
395
396
397
398
399
400
401
402
403
404
405
406
407
408
409
410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
443
444
445
446
447
448
449
450
451
452
453
454
455
456
457
458
459
460
461
462
463
464
465
466
467
468
469
470
471
472
473
474
475
476
477
478
479
480
481
482
483
484
485
486
487
488
489
490
491
492
493
494
495
496
497
498
499
500
501
502
503
504
//===-- lib/Evaluate/check-expression.cpp ---------------------------------===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
#include "flang/Evaluate/check-expression.h"
#include "flang/Evaluate/intrinsics.h"
#include "flang/Evaluate/traverse.h"
#include "flang/Evaluate/type.h"
#include "flang/Semantics/symbol.h"
#include "flang/Semantics/tools.h"
#include <set>
#include <string>
namespace Fortran::evaluate {
// Constant expression predicate IsConstantExpr().
// This code determines whether an expression is a "constant expression"
// in the sense of section 10.1.12. This is not the same thing as being
// able to fold it (yet) into a known constant value; specifically,
// the expression may reference derived type kind parameters whose values
// are not yet known.
class IsConstantExprHelper : public AllTraverse<IsConstantExprHelper, true> {
public:
using Base = AllTraverse<IsConstantExprHelper, true>;
IsConstantExprHelper() : Base{*this} {}
using Base::operator();
bool operator()(const TypeParamInquiry &inq) const {
return IsKindTypeParameter(inq.parameter());
}
bool operator()(const semantics::Symbol &symbol) const {
const auto &ultimate{symbol.GetUltimate()};
return IsNamedConstant(ultimate) || IsImpliedDoIndex(ultimate) ||
IsInitialProcedureTarget(ultimate);
}
bool operator()(const CoarrayRef &) const { return false; }
bool operator()(const semantics::ParamValue ¶m) const {
return param.isExplicit() && (*this)(param.GetExplicit());
}
template <typename T> bool operator()(const FunctionRef<T> &call) const {
if (const auto *intrinsic{std::get_if<SpecificIntrinsic>(&call.proc().u)}) {
// kind is always a constant, and we avoid cascading errors by calling
// invalid calls to intrinsics constant
return intrinsic->name == "kind" ||
intrinsic->name == IntrinsicProcTable::InvalidName;
// TODO: other inquiry intrinsics
} else {
return false;
}
}
bool operator()(const StructureConstructor &constructor) const {
for (const auto &[symRef, expr] : constructor) {
if (!IsConstantStructureConstructorComponent(*symRef, expr.value())) {
return false;
}
}
return true;
}
bool operator()(const Component &component) const {
return (*this)(component.base());
}
// Forbid integer division by zero in constants.
template <int KIND>
bool operator()(
const Divide<Type<TypeCategory::Integer, KIND>> &division) const {
using T = Type<TypeCategory::Integer, KIND>;
if (const auto divisor{GetScalarConstantValue<T>(division.right())}) {
return !divisor->IsZero() && (*this)(division.left());
} else {
return false;
}
}
bool operator()(const Constant<SomeDerived> &) const { return true; }
private:
bool IsConstantStructureConstructorComponent(
const Symbol &component, const Expr<SomeType> &expr) const {
if (IsAllocatable(component)) {
return IsNullPointer(expr);
} else if (IsPointer(component)) {
return IsNullPointer(expr) || IsInitialDataTarget(expr) ||
IsInitialProcedureTarget(expr);
} else {
return (*this)(expr);
}
}
};
template <typename A> bool IsConstantExpr(const A &x) {
return IsConstantExprHelper{}(x);
}
template bool IsConstantExpr(const Expr<SomeType> &);
template bool IsConstantExpr(const Expr<SomeInteger> &);
template bool IsConstantExpr(const Expr<SubscriptInteger> &);
template bool IsConstantExpr(const StructureConstructor &);
// Object pointer initialization checking predicate IsInitialDataTarget().
// This code determines whether an expression is allowable as the static
// data address used to initialize a pointer with "=> x". See C765.
class IsInitialDataTargetHelper
: public AllTraverse<IsInitialDataTargetHelper, true> {
public:
using Base = AllTraverse<IsInitialDataTargetHelper, true>;
using Base::operator();
explicit IsInitialDataTargetHelper(parser::ContextualMessages *m)
: Base{*this}, messages_{m} {}
bool emittedMessage() const { return emittedMessage_; }
bool operator()(const BOZLiteralConstant &) const { return false; }
bool operator()(const NullPointer &) const { return true; }
template <typename T> bool operator()(const Constant<T> &) const {
return false;
}
bool operator()(const semantics::Symbol &symbol) {
const Symbol &ultimate{symbol.GetUltimate()};
if (IsAllocatable(ultimate)) {
if (messages_) {
messages_->Say(
"An initial data target may not be a reference to an ALLOCATABLE '%s'"_err_en_US,
ultimate.name());
emittedMessage_ = true;
}
return false;
} else if (ultimate.Corank() > 0) {
if (messages_) {
messages_->Say(
"An initial data target may not be a reference to a coarray '%s'"_err_en_US,
ultimate.name());
emittedMessage_ = true;
}
return false;
} else if (!ultimate.attrs().test(semantics::Attr::TARGET)) {
if (messages_) {
messages_->Say(
"An initial data target may not be a reference to an object '%s' that lacks the TARGET attribute"_err_en_US,
ultimate.name());
emittedMessage_ = true;
}
return false;
} else if (!IsSaved(ultimate)) {
if (messages_) {
messages_->Say(
"An initial data target may not be a reference to an object '%s' that lacks the SAVE attribute"_err_en_US,
ultimate.name());
emittedMessage_ = true;
}
return false;
}
return true;
}
bool operator()(const StaticDataObject &) const { return false; }
bool operator()(const TypeParamInquiry &) const { return false; }
bool operator()(const Triplet &x) const {
return IsConstantExpr(x.lower()) && IsConstantExpr(x.upper()) &&
IsConstantExpr(x.stride());
}
bool operator()(const Subscript &x) const {
return std::visit(common::visitors{
[&](const Triplet &t) { return (*this)(t); },
[&](const auto &y) {
return y.value().Rank() == 0 &&
IsConstantExpr(y.value());
},
},
x.u);
}
bool operator()(const CoarrayRef &) const { return false; }
bool operator()(const Substring &x) const {
return IsConstantExpr(x.lower()) && IsConstantExpr(x.upper()) &&
(*this)(x.parent());
}
bool operator()(const DescriptorInquiry &) const { return false; }
template <typename T> bool operator()(const ArrayConstructor<T> &) const {
return false;
}
bool operator()(const StructureConstructor &) const { return false; }
template <typename T> bool operator()(const FunctionRef<T> &) {
return false;
}
template <typename D, typename R, typename... O>
bool operator()(const Operation<D, R, O...> &) const {
return false;
}
template <typename T> bool operator()(const Parentheses<T> &x) const {
return (*this)(x.left());
}
bool operator()(const Relational<SomeType> &) const { return false; }
private:
parser::ContextualMessages *messages_;
bool emittedMessage_{false};
};
bool IsInitialDataTarget(
const Expr<SomeType> &x, parser::ContextualMessages *messages) {
IsInitialDataTargetHelper helper{messages};
bool result{helper(x)};
if (!result && messages && !helper.emittedMessage()) {
messages->Say(
"An initial data target must be a designator with constant subscripts"_err_en_US);
}
return result;
}
bool IsInitialProcedureTarget(const semantics::Symbol &symbol) {
const auto &ultimate{symbol.GetUltimate()};
return std::visit(
common::visitors{
[](const semantics::SubprogramDetails &) { return true; },
[](const semantics::SubprogramNameDetails &) { return true; },
[&](const semantics::ProcEntityDetails &proc) {
return !semantics::IsPointer(ultimate) && !proc.isDummy();
},
[](const auto &) { return false; },
},
ultimate.details());
}
bool IsInitialProcedureTarget(const ProcedureDesignator &proc) {
if (const auto *intrin{proc.GetSpecificIntrinsic()}) {
return !intrin->isRestrictedSpecific;
} else if (proc.GetComponent()) {
return false;
} else {
return IsInitialProcedureTarget(DEREF(proc.GetSymbol()));
}
}
bool IsInitialProcedureTarget(const Expr<SomeType> &expr) {
if (const auto *proc{std::get_if<ProcedureDesignator>(&expr.u)}) {
return IsInitialProcedureTarget(*proc);
} else {
return IsNullPointer(expr);
}
}
// Specification expression validation (10.1.11(2), C1010)
class CheckSpecificationExprHelper
: public AnyTraverse<CheckSpecificationExprHelper,
std::optional<std::string>> {
public:
using Result = std::optional<std::string>;
using Base = AnyTraverse<CheckSpecificationExprHelper, Result>;
explicit CheckSpecificationExprHelper(
const semantics::Scope &s, const IntrinsicProcTable &table)
: Base{*this}, scope_{s}, table_{table} {}
using Base::operator();
Result operator()(const ProcedureDesignator &) const {
return "dummy procedure argument";
}
Result operator()(const CoarrayRef &) const { return "coindexed reference"; }
Result operator()(const semantics::Symbol &symbol) const {
if (semantics::IsNamedConstant(symbol)) {
return std::nullopt;
} else if (scope_.IsDerivedType() && IsVariableName(symbol)) { // C750, C754
return "derived type component or type parameter value not allowed to "
"reference variable '"s +
symbol.name().ToString() + "'";
} else if (IsDummy(symbol)) {
if (symbol.attrs().test(semantics::Attr::OPTIONAL)) {
return "reference to OPTIONAL dummy argument '"s +
symbol.name().ToString() + "'";
} else if (symbol.attrs().test(semantics::Attr::INTENT_OUT)) {
return "reference to INTENT(OUT) dummy argument '"s +
symbol.name().ToString() + "'";
} else if (symbol.has<semantics::ObjectEntityDetails>()) {
return std::nullopt;
} else {
return "dummy procedure argument";
}
} else if (symbol.has<semantics::UseDetails>() ||
symbol.has<semantics::HostAssocDetails>() ||
symbol.owner().kind() == semantics::Scope::Kind::Module) {
return std::nullopt;
} else if (const auto *object{
symbol.detailsIf<semantics::ObjectEntityDetails>()}) {
// TODO: what about EQUIVALENCE with data in COMMON?
// TODO: does this work for blank COMMON?
if (object->commonBlock()) {
return std::nullopt;
}
}
for (const semantics::Scope *s{&scope_}; !s->IsGlobal();) {
s = &s->parent();
if (s == &symbol.owner()) {
return std::nullopt;
}
}
return "reference to local entity '"s + symbol.name().ToString() + "'";
}
Result operator()(const Component &x) const {
// Don't look at the component symbol.
return (*this)(x.base());
}
Result operator()(const DescriptorInquiry &) const {
// Subtle: Uses of SIZE(), LBOUND(), &c. that are valid in specification
// expressions will have been converted to expressions over descriptor
// inquiries by Fold().
return std::nullopt;
}
Result operator()(const TypeParamInquiry &inq) const {
if (scope_.IsDerivedType() && !IsConstantExpr(inq) &&
inq.base() /* X%T, not local T */) { // C750, C754
return "non-constant reference to a type parameter inquiry not "
"allowed for derived type components or type parameter values";
}
return std::nullopt;
}
template <typename T> Result operator()(const FunctionRef<T> &x) const {
if (const auto *symbol{x.proc().GetSymbol()}) {
if (!semantics::IsPureProcedure(*symbol)) {
return "reference to impure function '"s + symbol->name().ToString() +
"'";
}
if (semantics::IsStmtFunction(*symbol)) {
return "reference to statement function '"s +
symbol->name().ToString() + "'";
}
if (scope_.IsDerivedType()) { // C750, C754
return "reference to function '"s + symbol->name().ToString() +
"' not allowed for derived type components or type parameter"
" values";
}
// TODO: other checks for standard module procedures
} else {
const SpecificIntrinsic &intrin{DEREF(x.proc().GetSpecificIntrinsic())};
if (scope_.IsDerivedType()) { // C750, C754
if ((table_.IsIntrinsic(intrin.name) &&
badIntrinsicsForComponents_.find(intrin.name) !=
badIntrinsicsForComponents_.end()) ||
IsProhibitedFunction(intrin.name)) {
return "reference to intrinsic '"s + intrin.name +
"' not allowed for derived type components or type parameter"
" values";
}
if (table_.GetIntrinsicClass(intrin.name) ==
IntrinsicClass::inquiryFunction &&
!IsConstantExpr(x)) {
return "non-constant reference to inquiry intrinsic '"s +
intrin.name +
"' not allowed for derived type components or type"
" parameter values";
}
} else if (intrin.name == "present") {
return std::nullopt; // no need to check argument(s)
}
if (IsConstantExpr(x)) {
// inquiry functions may not need to check argument(s)
return std::nullopt;
}
}
return (*this)(x.arguments());
}
private:
const semantics::Scope &scope_;
const IntrinsicProcTable &table_;
const std::set<std::string> badIntrinsicsForComponents_{
"allocated", "associated", "extends_type_of", "present", "same_type_as"};
static bool IsProhibitedFunction(std::string name) { return false; }
};
template <typename A>
void CheckSpecificationExpr(const A &x, parser::ContextualMessages &messages,
const semantics::Scope &scope, const IntrinsicProcTable &table) {
if (auto why{CheckSpecificationExprHelper{scope, table}(x)}) {
messages.Say("Invalid specification expression: %s"_err_en_US, *why);
}
}
template void CheckSpecificationExpr(const Expr<SomeType> &,
parser::ContextualMessages &, const semantics::Scope &,
const IntrinsicProcTable &);
template void CheckSpecificationExpr(const Expr<SomeInteger> &,
parser::ContextualMessages &, const semantics::Scope &,
const IntrinsicProcTable &);
template void CheckSpecificationExpr(const Expr<SubscriptInteger> &,
parser::ContextualMessages &, const semantics::Scope &,
const IntrinsicProcTable &);
template void CheckSpecificationExpr(const std::optional<Expr<SomeType>> &,
parser::ContextualMessages &, const semantics::Scope &,
const IntrinsicProcTable &);
template void CheckSpecificationExpr(const std::optional<Expr<SomeInteger>> &,
parser::ContextualMessages &, const semantics::Scope &,
const IntrinsicProcTable &);
template void CheckSpecificationExpr(
const std::optional<Expr<SubscriptInteger>> &, parser::ContextualMessages &,
const semantics::Scope &, const IntrinsicProcTable &);
// IsSimplyContiguous() -- 9.5.4
class IsSimplyContiguousHelper
: public AnyTraverse<IsSimplyContiguousHelper, std::optional<bool>> {
public:
using Result = std::optional<bool>; // tri-state
using Base = AnyTraverse<IsSimplyContiguousHelper, Result>;
explicit IsSimplyContiguousHelper(const IntrinsicProcTable &t)
: Base{*this}, table_{t} {}
using Base::operator();
Result operator()(const semantics::Symbol &symbol) const {
if (symbol.attrs().test(semantics::Attr::CONTIGUOUS) ||
symbol.Rank() == 0) {
return true;
} else if (semantics::IsPointer(symbol)) {
return false;
} else if (const auto *details{
symbol.detailsIf<semantics::ObjectEntityDetails>()}) {
// N.B. ALLOCATABLEs are deferred shape, not assumed, and
// are obviously contiguous.
return !details->IsAssumedShape() && !details->IsAssumedRank();
} else {
return false;
}
}
Result operator()(const ArrayRef &x) const {
const auto &symbol{x.GetLastSymbol()};
if (!(*this)(symbol)) {
return false;
} else if (auto rank{CheckSubscripts(x.subscript())}) {
// a(:)%b(1,1) is not contiguous; a(1)%b(:,:) is
return *rank > 0 || x.Rank() == 0;
} else {
return false;
}
}
Result operator()(const CoarrayRef &x) const {
return CheckSubscripts(x.subscript()).has_value();
}
Result operator()(const Component &x) const {
return x.base().Rank() == 0 && (*this)(x.GetLastSymbol());
}
Result operator()(const ComplexPart &) const { return false; }
Result operator()(const Substring &) const { return false; }
template <typename T> Result operator()(const FunctionRef<T> &x) const {
if (auto chars{
characteristics::Procedure::Characterize(x.proc(), table_)}) {
if (chars->functionResult) {
const auto &result{*chars->functionResult};
return !result.IsProcedurePointer() &&
result.attrs.test(characteristics::FunctionResult::Attr::Pointer) &&
result.attrs.test(
characteristics::FunctionResult::Attr::Contiguous);
}
}
return false;
}
private:
// If the subscripts can possibly be on a simply-contiguous array reference,
// return the rank.
static std::optional<int> CheckSubscripts(
const std::vector<Subscript> &subscript) {
bool anyTriplet{false};
int rank{0};
for (auto j{subscript.size()}; j-- > 0;) {
if (const auto *triplet{std::get_if<Triplet>(&subscript[j].u)}) {
if (!triplet->IsStrideOne()) {
return std::nullopt;
} else if (anyTriplet) {
if (triplet->lower() || triplet->upper()) {
// all triplets before the last one must be just ":"
return std::nullopt;
}
} else {
anyTriplet = true;
}
++rank;
} else if (anyTriplet || subscript[j].Rank() > 0) {
return std::nullopt;
}
}
return rank;
}
const IntrinsicProcTable &table_;
};
template <typename A>
bool IsSimplyContiguous(const A &x, const IntrinsicProcTable &table) {
if (IsVariable(x)) {
auto known{IsSimplyContiguousHelper{table}(x)};
return known && *known;
} else {
return true; // not a variable
}
}
template bool IsSimplyContiguous(
const Expr<SomeType> &, const IntrinsicProcTable &);
} // namespace Fortran::evaluate