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Say I have:

char **search_terms = malloc(sizeof(char *) * number_search_terms);
for (i=0; i < number_search_terms; i++)
    search_terms[i] = malloc(MAX_LINE_LEN);

When I free this memory, is it enough to do


or do I have to free each element in the buffer first, like this:

for (i=0; i < number_search_terms; i++)
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Its just you have to free array of pointers first followed by pointers themselves. Simply undo how you have allocated memory. – Sunil Bojanapally Nov 1 '13 at 19:29

2 Answers 2

up vote 2 down vote accepted

free has no knowledge of your data structures. You pass it a block of memory that was previously allocated with malloc (or calloc or realloc), and it frees that block of memory and nothing else.

So, to avoid leaking memory, you must have exactly as many calls to free as to malloc. There are two reasons for this:

  1. In C, memory managed on the heap (with malloc and free) is largely treated as a black box. There is no mechanism in the language that allows the library functions to know what you've stored in the memory, so free cannot traverse your array for you.

  2. Automatically traversing a data structure makes a policy decision for you: the components of the data structure are treated as a whole and should be freed as a whole. In general, this is not true, and C avoids making these decisions for you. For example, your substrings may, for performance reasons, be allocated as a large, contiguous block that you free at one time. C allows you a great deal of flexibility in this, but it also requires that you actively manage heap memory.

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You have to free each buffer first, and then free the bigger buffer. free will never traverse a tree to see if part of your data happens to be a pointer to other malloced data.

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