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i am learning pointers in c.
and i wrote this code below but it did not run.
what is the problem?

#include<stdio.h>
#include<conio.h>

int main()
{
    const int ARR_SIZE=5;
    int *arr;
    for(int i=0;i<ARR_SIZE;i++){
        *(arr+i) = i*10;
    }
    for(int i=0;i<ARR_SIZE;i++){
        printf("%d. Element is: %d\n",i+1,*(arr+i));
    }
    getch();
    return 0;
}
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closed as too localized by Oli Charlesworth, nneonneo, Celada, Paul R, qrdl Jan 31 '13 at 14:54

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

3  
arr is an uninitialised pointer; you need to allocate some memory using malloc. –  Oli Charlesworth Jan 31 '13 at 14:36
6  
You should learn to ask better questions. What didn't work? Did it compile? Did it crash? What was the output? What is your guess as to why it's not working? –  Jonathon Reinhart Jan 31 '13 at 14:36
3  
Is this Q only being close voted because "Oh, hell I don't like the question"?? Well, that is not valid enough reason to close vote a Q. There is a simplistic use compilable code example provided in the Q.So doesn't really call for a closure. –  Alok Save Jan 31 '13 at 14:41
    
@AlokSave I agree, but it could be closed as exact duplicate to countless other posts. And there is really no point of re-opening it just to close it for another reason. –  Lundin Jan 31 '13 at 16:08
    
@Lundin: So let it be closed as a duplicate, how does closing a valid Q as too localized help the OP? and what kind of precinct do we set here? Reopening the q and closing it as duplicate might seem pointless to you and lot of others but it is the right thing to do. The idea of an programming forum is to get help to people who need it and should not depend on convenience or likeness of people providing that help. –  Alok Save Feb 2 '13 at 12:13
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2 Answers

int *arr;

Is just an pointer, it's job is to point to another address. It should point to valid and sufficient memory so that you can write something at that memory.
Either,

  • Allocate an array on local storage and point the pointer to that array or
  • Allocate dynamic memory on heap and point the pointer to that memory.

Solution 1:

int array[ARR_SIZE];
int *arr = &array;

Solution 2:

int *arr = malloc(sizeof(int) * ARR_SIZE);
//...
//...
//Free the memory once done with usage
free(arr);

Note In solution 2, when you allocate memory using malloc you have to explicitly deallocate the memory by calling free on the address returned by malloc.
In solution 1, You do not have to deallocate anything explicitly because array is a local/automatic array, it automatically gets deallocated when the scope{,} in which it is declared ends.

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You should initialize arr:

int *arr = malloc(sizeof(int) * ARR_SIZE);
//... program
free(arr);
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1  
+1 but would also be worth mentioning that you now need to free(arr) later in the program –  simonc Jan 31 '13 at 14:39
    
Good point, updated –  Ari Jan 31 '13 at 14:41
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