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Editorial Team
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Asked: 2026-06-18T12:26:41+00:00

Have a look at the following piece of code: #include <stdio.h> int main(void) {

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Have a look at the following piece of code:

#include <stdio.h>

int main(void)  
{  
int a;

a = 2147483647;
printf("a + 1 = %d \t sizeof (a + 1) = %lu\n", a + 1, sizeof (a + 1));
printf("a + 1L = %ld \t sizeof (a + 1L) = %lu\n", a + 1L, sizeof (a + 1L));

a = -1;
printf("a + 1 = %d \t sizeof (a + 1) = %lu\n", a + 1, sizeof (a + 1));
printf("a + 1L = %ld \t sizeof (a + 1) = %lu\n", a + 1L, sizeof (a + 1L));  //why a + 1L does not yield long integer ?

return 0;
}

This results in the following output: 

a + 1 = -2147483648   sizeof (a + 1) = 4  
a + 1L = 2147483648   sizeof (a + 1L) = 8  
a + 1 = 0    sizeof (a + 1) = 4  
a + 1L = 0   sizeof (a + 1) = 8

Why does a + 1L in last line yield 0 instead of a long integer as 4294967296 ?

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1 Answer

  1. Editorial Team

    why a + 1L in last line does not yield long integer as 4294967296 ?

    Because converting the int -1 to a long int results in the long int with value -1, and -1 + 1 = 0.

    Converting -1 to another type would only result in 4294967295 if the target type is an unsigned 32-bit type (usually, unsigned int is such, generally, uint32_t, if provided). But then, adding 1 to the value would wrap to 0.

    Thus to obtain 4294967296, you would need an intermediate cast,

    (uint32_t)a + 1L

    so that -1 is first converted to the uint32_t with value 4294967295, and that is then converted to long.

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