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Given a struct such as this:

struct a {
    int b;
    int c;
    my_t d[];
}

What do I have to pass to malloc to allocate enough memory for a struct a where d has n elements?

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3 Answers 3

up vote 9 down vote accepted
struct a *var = malloc(sizeof(*var) + n*sizeof(var->d[0]))

Using the variables for sizeof will ensure the size is updated if the types change. Otherwise, if you change the type of d or var you risk introducing silent and potentially difficult-to-find runtime issues by not allocating enough memory if you forget to update any of the corresponding allocations.

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I like this answer most as it avoids repeating the type name. Repeating type names causes suspicious errors when refactoring. –  FUZxxl Nov 17 '12 at 21:22
    
I agree in principle but I have to point out that you are repeating a variable name, causing breakage if the variable name is changed, and a member name, causing … –  Pascal Cuoq Nov 17 '12 at 21:24
3  
@pascual better compiler errors when you change things and forget to update rather than silent run-time errors when you change types. –  Kevin Nov 17 '12 at 21:26
1  
@Pascal You raise a valid point. The difference in repeating the member name is however that your code fails to compile if you change the members name. If you change the type, nothing fails at compile time, but you might get errors at runtime. –  FUZxxl Nov 17 '12 at 21:27
    
Okay, I am convinced. –  Pascal Cuoq Nov 17 '12 at 21:27

You can use for instance: sizeof(struct a) + sizeof(my_t [n]).

typedef int my_t;

struct a {
  int b;
  int c;
  my_t d[];
};

int n = 3;

main(){
  printf("%zu %zu\n", sizeof(struct a), sizeof(my_t [n]));
}

Result: 8 12

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This should be enough:

sizeof(a) + n * sizeof(my_t)
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