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While using memcpy and free memory, free is giving a heap corruption. I don't understand why.

char *buff = malloc(20);
memset(buff,NULL,20);
strcpy(buff,"xvxvxvxxvx");
char*time =  malloc(20));
memset(time,NULL,20);//memcpy use
memcpy(time,buff,20);
free(time);//crashing here
return 0;
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1  
memset(buff, 0, 12); The second parameter of memset is an int not a pointer as NULL would suggest. –  tristopia Apr 11 '13 at 6:35
1  
And in C it is a bad habit to typecast the return value of malloc. In C++ it is bad style to even use malloc. So there is no excuse to typecast. –  tristopia Apr 11 '13 at 6:37
    
malloc return void pointer. if i will not do typecast, it will give error. its all depend compiler –  user2268978 Apr 11 '13 at 8:46
    
In C it doesn't. If you get a compiler error, you're using C++ (a different language) and shouldn't use malloc, freein the first place (new, delete is the C++ way). If you get a warning in C, it means you haven't included the right headers (stdlib.h or memory.h), which means you have a bug in your program that the typecast hid. –  tristopia Apr 11 '13 at 10:30
    
RANT: C and C++ are two very different languages. Learn C or learn C++, but never think that C is only a subset of C++, it is not. IMO it was the most retarded idea of Stroustrup to build a language on this idea. The confusion it generated has probably cost dearly to humanity. RANT OFF –  tristopia Apr 11 '13 at 10:35

2 Answers 2

sizeof(20) is the size of an int. You probably intended malloc(20) for 20 chars.

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To clarify: Instead of doing sizeof(20), do 20*sizeof(char) for example –  Patashu Apr 11 '13 at 6:30
    
´sizeof (char)´ is by definition always 1. So no need to multiply by 1. malloc(20)will do. –  tristopia Apr 11 '13 at 6:33
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@tristopia, Personally, if I saw a sizeof(char) rather than a magic number (1), it would be so much more readable. –  Anish Ramaswamy Apr 11 '13 at 7:03
    
Ok, but if I fixed that also it will crash due to memcpy and free..If i use strcpy and free. it will work fine. but my requirement is to use memcpy. –  user2268978 Apr 11 '13 at 8:44
    
@user2268978 the code in your question should not crash. Are you compiling different code than you posted? –  Pubby Apr 11 '13 at 8:47

second argument of memset expects int but is is receiving NULL.

void *memset(void *s, int c, size_t n);

The memset() function fills the first n bytes of the memory area pointed to by s with the constant byte c.

So you can use memset as memset(buff,0,20); now the program will not crash.

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