reference, declarationdefinition
definition → references, declarations, derived classes, virtual overrides
reference to multiple definitions → definitions
unreferenced
    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
// RUN: %clang_analyze_cc1 -analyzer-checker=core -analyzer-config suppress-null-return-paths=false -verify %s
// RUN: %clang_analyze_cc1 -analyzer-checker=core -verify -DSUPPRESSED=1 %s
// RUN: %clang_analyze_cc1 -analyzer-checker=core -analyzer-config avoid-suppressing-null-argument-paths=true -DSUPPRESSED=1 -DNULL_ARGS=1 -verify %s

int opaquePropertyCheck(void *object);
int coin();

int *getNull() {
  return 0;
}

int* getPtr();

int *dynCastToInt(void *ptr) {
  if (opaquePropertyCheck(ptr))
    return (int *)ptr;
  return 0;
}

int *dynCastOrNull(void *ptr) {
  if (!ptr)
    return 0;
  if (opaquePropertyCheck(ptr))
    return (int *)ptr;
  return 0;
}


void testDynCast(void *p) {
  int *casted = dynCastToInt(p);
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

void testDynCastOrNull(void *p) {
  int *casted = dynCastOrNull(p);
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}


void testBranch(void *p) {
  int *casted;

  // Although the report will be suppressed on one branch, it should still be
  // valid on the other.
  if (coin()) {
    casted = dynCastToInt(p);
  } else {
    if (p)
      return;
    casted = (int *)p;
  }

  *casted = 1; // expected-warning {{Dereference of null pointer}}
}

void testBranchReversed(void *p) {
  int *casted;

  // Although the report will be suppressed on one branch, it should still be
  // valid on the other.
  if (coin()) {
    if (p)
      return;
    casted = (int *)p;
  } else {
    casted = dynCastToInt(p);
  }

  *casted = 1; // expected-warning {{Dereference of null pointer}}
}

void testMultipleStore(void *p) {
  int *casted = 0;
  casted = dynCastToInt(p);
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

// Test that div by zero does not get suppressed. This is a policy choice.
int retZero() {
  return 0;
}
int triggerDivZero () {
  int y = retZero();
  return 5/y; // expected-warning {{Division by zero}}
}

// Treat a function-like macro similarly to an inlined function, so suppress
// warnings along paths resulting from inlined checks.
#define MACRO_WITH_CHECK(a) ( ((a) != 0) ? *a : 17)
void testInlineCheckInMacro(int *p) {
  int i = MACRO_WITH_CHECK(p);
  (void)i;

  *p = 1; // no-warning
}

#define MACRO_WITH_NESTED_CHECK(a) ( { int j = MACRO_WITH_CHECK(a); j; } )
void testInlineCheckInNestedMacro(int *p) {
  int i = MACRO_WITH_NESTED_CHECK(p);
  (void)i;

  *p = 1; // no-warning
}

#define NON_FUNCTION_MACRO_WITH_CHECK ( ((p) != 0) ? *p : 17)
void testNonFunctionMacro(int *p) {
  int i = NON_FUNCTION_MACRO_WITH_CHECK ;
  (void)i;

  *p = 1; // no-warning
}


// This macro will dereference its argument if the argument is NULL.
#define MACRO_WITH_ERROR(a) ( ((a) != 0) ? 0 : *a)
void testErrorInMacro(int *p) {
  int i = MACRO_WITH_ERROR(p); // expected-warning {{Dereference of null pointer (loaded from variable 'p')}}
  (void)i;
}

// Here the check (the "if") is not in a macro, so we should still warn.
#define MACRO_IN_GUARD(a) (!(a))
void testMacroUsedAsGuard(int *p) {
  if (MACRO_IN_GUARD(p))
    *p = 1; // expected-warning {{Dereference of null pointer (loaded from variable 'p')}}
}

// When a nil case split is introduced in a macro and the macro is in a guard,
// we still shouldn't warn.
int isNull(int *p);
int isEqual(int *p, int *q);
#define ISNULL(ptr)    ((ptr) == 0 || isNull(ptr))
#define ISEQUAL(a, b)    ((int *)(a) == (int *)(b) || (ISNULL(a) && ISNULL(b)) || isEqual(a,b))
#define ISNOTEQUAL(a, b)   (!ISEQUAL(a, b))
void testNestedDisjunctiveMacro(int *p, int *q) {
  if (ISNOTEQUAL(p,q)) {
    *p = 1; // no-warning
    *q = 1; // no-warning
  }

  *p = 1; // no-warning
  *q = 1; // no-warning
}

void testNestedDisjunctiveMacro2(int *p, int *q) {
  if (ISEQUAL(p,q)) {
    return;
  }

  *p = 1; // no-warning
  *q = 1; // no-warning
}



// Here the check is entirely in non-macro code even though the code itself
// is a macro argument.
#define MACRO_DO_IT(a) (a)
void testErrorInArgument(int *p) {
  int i = MACRO_DO_IT((p ? 0 : *p)); // expected-warning {{Dereference of null pointer (loaded from variable 'p')}}c
  (void)i;
}

// No warning should be emitted if dereference is performed from a different
// macro.
#define MACRO_CHECK(a) if (a) {}
#define MACRO_DEREF(a) (*a)
int testDifferentMacro(int *p) {
  MACRO_CHECK(p);
  return MACRO_DEREF(p); // no-warning
}

// --------------------------
// "Suppression suppression"
// --------------------------

void testDynCastOrNullOfNull() {
  // Don't suppress when one of the arguments is NULL.
  int *casted = dynCastOrNull(0);
  *casted = 1;
#if !SUPPRESSED || NULL_ARGS
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

void testDynCastOfNull() {
  // Don't suppress when one of the arguments is NULL.
  int *casted = dynCastToInt(0);
  *casted = 1;
#if !SUPPRESSED || NULL_ARGS
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

int *lookUpInt(int unused) {
  if (coin())
    return 0;
  static int x;
  return &x;
}

void testZeroIsNotNull() {
  // /Do/ suppress when the argument is 0 (an integer).
  int *casted = lookUpInt(0);
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

void testTrackNull() {
  // /Do/ suppress if the null argument came from another call returning null.
  int *casted = dynCastOrNull(getNull());
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

void testTrackNullVariable() {
  // /Do/ suppress if the null argument came from another call returning null.
  int *ptr;
  ptr = getNull();
  int *casted = dynCastOrNull(ptr);
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

void inlinedIsDifferent(int inlined) {
  int i;

  // We were erroneously picking up the inner stack frame's initialization,
  // even though the error occurs in the outer stack frame!
  int *p = inlined ? &i : getNull();

  if (!inlined)
    inlinedIsDifferent(1);

  *p = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

void testInlinedIsDifferent() {
  // <rdar://problem/13787723>
  inlinedIsDifferent(0);
}


// ---------------------------------------
// FALSE NEGATIVES (over-suppression)
// ---------------------------------------

void testNoArguments() {
  // In this case the function has no branches, and MUST return null.
  int *casted = getNull();
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

int *getNullIfNonNull(void *input) {
  if (input)
    return 0;
  static int x;
  return &x;
}

void testKnownPath(void *input) {
  if (!input)
    return;

  // In this case we have a known value for the argument, and thus the path
  // through the function doesn't ever split.
  int *casted = getNullIfNonNull(input);
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

int *alwaysReturnNull(void *input) {
  if (opaquePropertyCheck(input))
    return 0;
  return 0;
}

void testAlwaysReturnNull(void *input) {
  // In this case all paths out of the function return 0, but they are all
  // dominated by a branch whose condition we don't know!
  int *casted = alwaysReturnNull(input);
  *casted = 1;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

int derefArg(int *p) {
	return *p;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}
void ternaryArg(char cond) {
	static int x;
	derefArg(cond ? &x : getNull());
}

int derefArgCast(char *p) {
	return *p;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}
void ternaryArgCast(char cond) {
	static int x;
	derefArgCast((char*)((unsigned)cond ? &x : getNull()));
}

int derefAssignment(int *p) {
	return *p;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

void ternaryAssignment(char cond) {
  static int x;
  int *p = cond ? getNull() : getPtr();
  derefAssignment(p);
}

int *retNull(char cond) {
  static int x;
  return cond ? &x : getNull();
}
int ternaryRetNull(char cond) {
  int *p = retNull(cond);
  return *p;
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}

// Test suppression of nested conditional operators.
int testConditionalOperatorSuppress(int x) {
  return *(x ? getNull() : getPtr());
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}
int testNestedConditionalOperatorSuppress(int x) {
  return *(x ? (x ? getNull() : getPtr()) : getPtr());
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}
int testConditionalOperator(int x) {
  return *(x ? 0 : getPtr()); // expected-warning {{Dereference of null pointer}}
}
int testNestedConditionalOperator(int x) {
  return *(x ? (x ? 0 : getPtr()) : getPtr()); // expected-warning {{Dereference of null pointer}}
}

int testConditionalOperatorSuppressFloatCond(float x) {
  return *(x ? getNull() : getPtr());
#ifndef SUPPRESSED
  // expected-warning@-2 {{Dereference of null pointer}}
#endif
}