-3

C novice here.
I am trying to write a program containing function that takes in an array pointer, and each element of the array passed in the main function is incremented by 1. This is what I have tried:

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

void array_incr(int8_t *, uint8_t);

int main (void){
    int8_t *arr[] = {0xAB, 0xCB, 0xC4, 0x84};
    array_incr(arr, sizeof(arr)/sizeof(arr[0]);
    int i;
    for (i = 0; i < 4; i++)
        printf("%d", arr[i]);
}

void array_incr(int8_t *arr, uint8_t len){
    int i;
    for(i=0; i<len; i++)
        arr[i]++;

}

This is compiling with a lot of warnings and errors. Could someone please tell me where I am going wrong, while maintaining the same format of implementation?

  • 1
    "Questions seeking debugging help ("why isn't this code working?") must include the desired behavior, a specific problem or error and the shortest code necessary to reproduce it in the question itself. Questions without a clear problem statement are not useful to other readers. See: How to create a Minimal, Complete, and Verifiable example." – Brynden Bielefeld Nov 2 '16 at 20:25
  • One pile of warnings is because int8_t *arr[] is an array of pointers, not an array of (small) integers. Drop the *. The variable min_ptr is unused and should be removed. You should probably not use both sizeof(arr)/sizeof(arr[0]) and 4 for the size of the array; the expression is better than number. – Jonathan Leffler Nov 2 '16 at 20:25
  • Why do you compute the size of the array to call array_mod, but hard-code it to print it? – Scott Hunter Nov 2 '16 at 20:26
  • 2
    The errors and warnings are telling you what's going wrong. Try reading them! (Also, when developing new code, always compile with all warnings enabled — add -Wall -pedantic to the command line.) – r3mainer Nov 2 '16 at 20:26
  • And 0xC4 exceds the range of int8_t (typicaly -128 ... 127) – David Ranieri Nov 2 '16 at 20:28
1

Multiple problems indeed:

  • Incorrect type in declaration int8_t *arr[] = {0xAB, 0xCB, 0xC4, 0x84};: you should remove the * as arr is an array of numbers, not an array of pointers. Furthermore, the values are larger than 127 which is the maximum value for type int8_t, you should use uint8_t or a larger type.

  • Missing ) at the end of array_incr(arr, sizeof(arr)/sizeof(arr[0]);

  • There is no \n in the printf("%d", arr[i]); output statement. The values will come out in a single sequence of digits (and negative signs, since the values are actually negative for type int8_t).

Here is a corrected version:

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

void array_incr(uint8_t *, uint8_t);

int main(void) {
    uint8_t arr[] = { 0xAB, 0xCB, 0xC4, 0x84 };
    array_incr(arr, sizeof(arr) / sizeof(arr[0]));
    int i;
    for (i = 0; i < 4; i++)
        printf("%d\n", arr[i]);
}

void array_incr(uint8_t *arr, uint8_t len) {
    int i;
    for (i = 0; i < len; i++)
        arr[i]++;
}
-2

First of all, it would be best to include said list of warnings and errors, but with such a small program it's mostly alright.

Into the matter, you declared your array wrong ; it should be int8_t arr[] (you included an extra *). You want an array of integers, not a pointer to an array of integers nor an array of pointers to integers (you can't initialise the former like that anyway).

sizeof doesn't work like you think it does. It returns the number of bytes taken up by the variable or type in memory. For example, on most modern system sizeof(int) returns 4, as would something like int a = 1; sizeof(a), and just like sizeof(arr) in your case. arr is not an array, it's a pointer to an array, so it's technically an int (thus 4 bytes). You would have to create an additional variable and manually hold the array's size if it were to change.

EDIT : tried it, seems to work. I remember that it doesn't but apparently it does ...

  • "on most modern system sizeof(int) returns 4" - wrong and dangerous to state to an obvious beginner. There are many modern 16 bit systems and some systems with e.g. 16 or 32 bits/byte. A pointer is not an int! It is not even an integer. Not sure what you mean with that extra variable. The sizeof? expression is the best part of that code. – too honest for this site Nov 2 '16 at 20:32
  • Right, I should change that. Also, it seems I'm double wrong since I tested and sizeof(arr) does yield the correct result. Don't know where I've got that from, I'm sorry ... – Matrefeytontias Nov 2 '16 at 20:33

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