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Can someone explain these portion of code to me please? Correct me if I am wrong.

int *longest = malloc(sizeof(int)); 
*longest =0;

Does this mean:

  1. Return a pointer points to the beginning of a memory block whose size is 4 byte (for 32bit machine)? Why not just write malloc(4)?
  2. For the second line, does it mean that longest is a pointer of 4 byte block, start at 0?
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Is this for C or C++? You should include one tag or the other with this question to make it clear, and make it show up in searches and the like. Also, if it is C++, you should use new instead. –  KRyan Aug 1 '12 at 18:56

1 Answer 1

  1. Yes, it gets exactly enough memory for one int. You should avoid explicitly assuming a given size - it makes it a nightmare to port to other platforms in the future. You spotted it yourself - sizeof(int) won't always be 4 everywhere.

  2. No, this assigns the value 0 to the newly allocated memory, which was pointed to by longest. The * here is the dereference operator, it informally says "I want to work with the thing this pointer points to".

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thank you very much. –  zijianz Aug 1 '12 at 19:04
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Just a little add on, there is even a better idiom for that particular allocation case: int *longest = malloc(sizeof(*longest)); This avoids to repeat the type, so if one day the type is change, everyting is still consistent. –  Jens Gustedt Aug 1 '12 at 20:16

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