Arjun Suresh (talk | contribs) (→Other Examples for Undefined behaviour) |
Arjun Suresh (talk | contribs) (→Other Examples for Undefined behaviour) |
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Line 95: | Line 95: | ||
j = (i++) * (++i); | j = (i++) * (++i); | ||
printf("%d", j); | printf("%d", j); | ||
− | Possible | + | Possible outputs: 6, 9 |
int i = 2; | int i = 2; | ||
printf("%d %d", i, i++); | printf("%d %d", i, i++); | ||
− | Possible | + | Possible outputs: (2,3), (2,2) |
{{Template:FBD}} | {{Template:FBD}} |
<syntaxhighlight lang="c" name="undefined_value" >
int main() {
int x=10, y; y = (x++) + (++x); printf("%d %d %d %d ", y, x++, x, ++x);
} </syntaxhighlight>
a) 22,10,11,13
b) 22,11,11,11
c) 12,10,11,13
d) 22 13 13 13
None of the choices are correct as per C standard. This is because the statement
y = (x++) + (++x);
can causes undefined behavior, so does the statement
printf("%d %d %d %d ", y, x++, x, ++x);
C standard says that the side effects of an operation (for ++a; modification of a is a side-effect and return of a+1 is main effect) need to be completed only before the next sequence point. This relaxation is given so that the compiler would be able to generate the most optimal code (which run faster). But as a consequence, programmer shouldn't do a read and a write from a memory location between two consecutive sequence points or otherwise the result would be undefined.
In the statement,
y = (x++) + (++x);
There are 2 reads to the memory location of x and 2 writes to the same between two consecutive sequence points. So, the result of this statement has no guarantee as per C standard.
Similarly, the statement
printf("%d %d %d %d ", y, x++, x, ++x);
is undefined. In a function call in C, the order in which the argument expressions are processed is not defined. The only thing defined is that all arguments must be processed before the next sequence point- which here is the start of execution of the called function.
Undefined value means compiler can give any value. i.e.; different compilers or even different versions of the same compiler can give different answers. As per C standard, no programmer should write this code. This is different from compiler dependent, in which case the output is clearly defined by the compiler and programmer can write those code as long as he is aware of the compiler. Example of compiler dependent code is sizeof(int).
<syntaxhighlight lang="c" name="undefined" >
#include<stdio.h>
int main() {
int x=10; printf("%d %d %d\n", x++, x, ++x);
} </syntaxhighlight>
asuresh@parambara:~$ gcc undefined.c asuresh@parambara:~$ ./a.out 11 12 12 asuresh@parambara:~$ icc undefined.c asuresh@parambara:~$ ./a.out 10 12 12 asuresh@parambara:~$ clang undefined.c asuresh@parambara:~$ ./a.out 10 11 12
<syntaxhighlight lang="c" name="undefined" >
#include<stdio.h>
int main() {
int x=10; printf("%d %d %d\n", x=1, x, x=2);
} </syntaxhighlight>
asuresh@parambara:~$ gcc -Wall undefined.c undefined.c: In function ‘main’: undefined.c:6:35: warning: operation on ‘x’ may be undefined [-Wsequence-point] printf("%d %d %d\n", x=1, x, x=2); ^ undefined.c:6:35: warning: operation on ‘x’ may be undefined [-Wsequence-point] asuresh@parambara:~$ ./a.out 1 1 1 asuresh@parambara:~$ icc -Wall undefined.c asuresh@parambara:~$ ./a.out 1 2 2 asuresh@parambara:~$ clang -Wall undefined.c asuresh@parambara:~$ ./a.out 1 1 2
int i = 2; i = i++; printf("%d\n", i); Possible outputs: 3, 2
int i = 2; a[i] = i++; Possible Results: a[2] = 2, a[3] = 2
int i = 2, j; j = (i++) * (++i); printf("%d", j); Possible outputs: 6, 9 int i = 2; printf("%d %d", i, i++); Possible outputs: (2,3), (2,2)
<syntaxhighlight lang="c" name="undefined_value" >
int main() {
int x=10, y; y = (x++) + (++x); printf("%d %d %d %d ", y, x++, x, ++x);
} </syntaxhighlight>
a) 22,10,11,13
b) 22,11,11,11
c) 12,10,11,13
d) 22 13 13 13
None of the choices are correct as per C standard. This is because the statement
y = (x++) + (++x);
can causes undefined behavior, so does the statement
printf("%d %d %d %d ", y, x++, x, ++x);
C standard says that the side effects of an operation (for ++a; modification of a is a side-effect and return of a+1 is main effect) need to be completed only before the next sequence point. This relaxation is given so that the compiler would be able to generate the most optimal code (which run faster). But as a consequence, programmer shouldn't do a read and a write from a memory location between two consecutive sequence points or otherwise the result would be undefined.
In the statement,
y = (x++) + (++x);
There are 2 reads to the memory location of x and 2 writes to the same between two consecutive sequence points. So, the result of this statement has no guarantee as per C standard.
Similarly, the statement
printf("%d %d %d %d ", y, x++, x, ++x);
is undefined. In a function call in C, the order in which the argument expressions are processed is not defined. The only thing defined is that all arguments must be processed before the next sequence point- which here is the start of execution of the called function.
Undefined value means compiler can give any value. i.e.; different compilers or even different versions of the same compiler can give different answers. As per C standard, no programmer should write this code. This is different from compiler dependent, in which case the output is clearly defined by the compiler and programmer can write those code as long as he is aware of the compiler. Example of compiler dependent code is sizeof(int).
<syntaxhighlight lang="c" name="undefined" >
#include<stdio.h>
int main() {
int x=10; printf("%d %d %d\n", x++, x, ++x);
} </syntaxhighlight>
asuresh@parambara:~$ gcc undefined.c asuresh@parambara:~$ ./a.out 11 12 12 asuresh@parambara:~$ icc undefined.c asuresh@parambara:~$ ./a.out 10 12 12 asuresh@parambara:~$ clang undefined.c asuresh@parambara:~$ ./a.out 10 11 12
<syntaxhighlight lang="c" name="undefined" >
#include<stdio.h>
int main() {
int x=10; printf("%d %d %d\n", x=1, x, x=2);
} </syntaxhighlight>
asuresh@parambara:~$ gcc -Wall undefined.c undefined.c: In function ‘main’: undefined.c:6:35: warning: operation on ‘x’ may be undefined [-Wsequence-point] printf("%d %d %d\n", x=1, x, x=2); ^ undefined.c:6:35: warning: operation on ‘x’ may be undefined [-Wsequence-point] asuresh@parambara:~$ ./a.out 1 1 1 asuresh@parambara:~$ icc -Wall undefined.c asuresh@parambara:~$ ./a.out 1 2 2 asuresh@parambara:~$ clang -Wall undefined.c asuresh@parambara:~$ ./a.out 1 1 2
int i = 2; i = i++; printf("%d\n", i); Possible outputs: 3, 2
int i = 2; a[i] = i++; Possible Results: a[2] = 2, a[3] = 2
int i = 2, j; j = (i++) * (++i); printf("%d", j); Possible results: 6, 9 int i = 2; printf("%d %d", i, i++); Possible results: (2,3), (2,2)