3

I have a question to the conversion of int array to char*. The following code has the output 23. But I don't really understand why. Can someone explain it to me?

#include <stdio.h>
#include <stdint.h>
#include <stdlib.h>

int main(){
    uint32_t x;
    uint32_t* p = (uint32_t*) malloc(sizeof(uint32_t));    
    uint32_t array[9] = {42, 5, 23, 82, 127, 21, 324, 3, 8};

    *p = *((char*)array+8);
    printf("1: %d\n", *p);
    return 0;
}
6

The size of a uint32 is 32 bits, or 4 bytes. When you do (char*)array+8, you cast the array into an array of char, and take the eighth character. Here, the eighth character contains the beginning of the integer 23, which fits into a char.

4
*p = *((char*)array+8*sizeof(uint32_t)

to move to array[8] in your example you are only moving 8 bytes forward

3

If you think about it, you have casted the array to char*. Where sizeof char is 1B. Which means usage pointer arithmetics in this case +8 doesnt move you 8*sizeof(uint32_t) to nineth element of array, but only 8 Bytes (8*sizeof(char)).

Since uint32_t has 4 Bytes, you have moved to first byte of 3rd element 23.

First you have to use pointer arithmetics on uint32_t array and after that cast it to char, like

*p = (char)*(array+8);  // Prints 8

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