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malloc() library function internally calls brk() or sbrk() system call,which allocates memory fo data region,so local static variables and global variables will have allocation of memory from heap increasing the effective size of data region.now my question is what exactly is happening when i allocate memory to int *a?which is local variable. i might have misconception please let me know if any.thanks

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You shouldn't have to allocate memory for local variables. The compiler will have done that for you. –  Marc B Apr 27 '11 at 18:22
    
what if i write int *p=malloc(..) –  sourabh Apr 27 '11 at 18:28
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then add that into your question. It is really ambiguous. Because the variable p (or a in the original question) would simply take up sizeof(int*) on the stack (or be in a register). So the question is what happens when you call malloc and assign that to a variable? You answered that question for the most part yourself. –  0xC0000022L Apr 27 '11 at 19:53

2 Answers 2

int *p itself is a local variable, which is a pointer (these days: usually four or eight bytes, usually on the stack or in a register). When you do p = malloc(...), you are allocating memory (on the heap - or what is these days conventionally called 'the heap' even if a heap is not the structure used to manage free memory) and assigning a pointer to that memory into p.

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When you call malloc() you get access to the amount of memory requested, or NULL is returned. That is all that is guaranteed. Everything else is implementation dependent. The mechanism by which you get access to that memory can be quite varied.

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