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I have been asked in an interview, there is an pointer to an array of 10 integers, something like this below.

 int (*p)[10];

How do you allocate it dynamically ??

This is something I have done

p=(int *)malloc(10*sizeof(int));

But it looks wrong because I am not doing the right typecast.

So I would like to know what's the type of *p ??

Like int *p ,p is of type int.

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1 Answer 1

Here is how to allocate:

p = malloc(sizeof *p);

or

p = malloc(sizeof (int [10]));

p is of type int (*)[10] and *p is of type int [10].

p is pointer to an array 10 of int and *p is an array 10 of int.

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p=(int (*)[10])malloc(10*sizeof(int); Is this gonna to be ok? –  Amit Singh Tomar Jan 21 '12 at 15:14
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sizeof (int (*)[10]) is the size of the pointer, not the size of the pointee, so that'll allocate too little. –  Daniel Fischer Jan 21 '12 at 15:32
    
@DanielFischer oh thank you, fixed in the answer. I fix it also in the comment. –  ouah Jan 21 '12 at 15:33
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@AmitSinghTomar in C you should not cast malloc return value. See c-faq.com/malloc/mallocnocast.html for the rationale. Otherwise malloc(10 * sizeof(int)) is not wrong but malloc(sizeof (int [10])) is more correct in this particular case. –  ouah Jan 21 '12 at 15:34
    
Happy to assist :) –  Daniel Fischer Jan 21 '12 at 15:38
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