<quiz display="simple"> {What will be the output of the following code? <syntaxhighlight lang="c">
int main() {
GATECSE int a = 5;
int* p = &a;
printf("%d", ++*p);
} </syntaxhighlight> |type="{}" /} { 6 } ||p is pointing to the address of a. *p will return the content of a which is 5 and ++ will increment it to 6.
{What will be the output of the following code?
<syntaxhighlight lang="c">
int main() {
char a[] = "Hello World";
char* p = &a;
printf("%s", p+2 );
} </syntaxhighlight> |type="()" /} -Compiler Error -World +llo World -Runtime Error
||Since p is a char pointer p+2 will add 2 to p (since sizeof(char) is 1). So, p+2 will be pointing to the string "llo World"
{What will be the output of the following code? <syntaxhighlight lang="c">
int main() {
int a;
int* p = &a;
printf("%zu", sizeof( *(char*)p ));
} </syntaxhighlight> |type="()" /}
+1 -2 -4 -Compile Error
||p is typecasted to char pointer and then dereferenced. So, returned type will be char and sizeof(char) is 1
{Is the following code legal? <syntaxhighlight lang="c">
int main() {
int a = 1;
if((char*) &a)
{
printf("My machine is little endian");
}
else
{
printf("My machine is big endian\n");
}
} </syntaxhighlight> |type="()" /} +Yes -No ||On a little endian machine the lower address will contain the least significant byte. Suppose a is stored at address 1000 and contains 1, then character at 1000 will be 1, if the machine is little endian
{Assuming a little endian machine, what will be the output of the following program?
<syntaxhighlight lang="c">
fun(int a) {
char *arr[] = {"0000", "0001","0010","0011","0100","0101","0110","0111","1000","1001","1010","1011","1100","1101","1110","1111"};
unsigned char* p = (unsigned char*) &a ;
p+=3;
int i;
for(i = 0; i < sizeof a; i++)
{
int d = (*p)>>4;
printf("%s", arr[d]);
d = (*p) & 0xf;
printf("%s ", arr[d]);
p--;
}
}
int main() {
int a;
scanf("%d", &a);
fun(a);
} </syntaxhighlight> |type="()" /} +Print the binary of the input number -Compile error -Runtime error -Compiler dependent output ||The code is printing the binary equivalent of the input number. Suppose a is stored starting from address 1000. Since, we assume a little endian machine, the LSB of a will be stored at address 1000 and MSB will be stored at address 1003. So, we make a char pointer to 1003 and take out the MSB. Then using shift operator we get the most significant 4 bits from it and then the lest significant 4 bits. We repeat the same for the other three bytes of a. </quiz>
<quiz display="simple"> {What will be the output of the following code? <syntaxhighlight lang="c">
int main() {
int a = 5;
int* p = &a;
printf("%d", ++*p);
} </syntaxhighlight> |type="{}" /} { 6 } ||p is pointing to the address of a. *p will return the content of a which is 5 and ++ will increment it to 6.
{What will be the output of the following code?
<syntaxhighlight lang="c">
int main() {
char a[] = "Hello World";
char* p = &a;
printf("%s", p+2 );
} </syntaxhighlight> |type="()" /} -Compiler Error -World +llo World -Runtime Error
||Since p is a char pointer p+2 will add 2 to p (since sizeof(char) is 1). So, p+2 will be pointing to the string "llo World"
{What will be the output of the following code? <syntaxhighlight lang="c">
int main() {
int a;
int* p = &a;
printf("%zu", sizeof( *(char*)p ));
} </syntaxhighlight> |type="()" /}
+1 -2 -4 -Compile Error
||p is typecasted to char pointer and then dereferenced. So, returned type will be char and sizeof(char) is 1
{Is the following code legal? <syntaxhighlight lang="c">
int main() {
int a = 1;
if((char*) &a)
{
printf("My machine is little endian");
}
else
{
printf("My machine is big endian\n");
}
} </syntaxhighlight> |type="()" /} +Yes -No ||On a little endian machine the lower address will contain the least significant byte. Suppose a is stored at address 1000 and contains 1, then character at 1000 will be 1, if the machine is little endian
{Assuming a little endian machine, what will be the output of the following program?
<syntaxhighlight lang="c">
fun(int a) {
char *arr[] = {"0000", "0001","0010","0011","0100","0101","0110","0111","1000","1001","1010","1011","1100","1101","1110","1111"};
unsigned char* p = (unsigned char*) &a ;
p+=3;
int i;
for(i = 0; i < sizeof a; i++)
{
int d = (*p)>>4;
printf("%s", arr[d]);
d = (*p) & 0xf;
printf("%s ", arr[d]);
p--;
}
}
int main() {
int a;
scanf("%d", &a);
fun(a);
} </syntaxhighlight> |type="()" /} +Print the binary of the input number -Compile error -Runtime error -Compiler dependent output ||The code is printing the binary equivalent of the input number. Suppose a is stored starting from address 1000. Since, we assume a little endian machine, the LSB of a will be stored at address 1000 and MSB will be stored at address 1003. So, we make a char pointer to 1003 and take out the MSB. Then using shift operator we get the most significant 4 bits from it and then the lest significant 4 bits. We repeat the same for the other three bytes of a. </quiz>