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What is the problem with the code shown below.

char filter[2] = {'\0'};
*filter = (char *)calloc((unsigned int)buf.st_size + 1, sizeof(unsigned char));

As per my understanding, there is no problem changing the array location right? Why I ask this is because of a warning,

Warning 1   warning C4047: '=' : 'char' differs in levels of indirection from 'char *'

Any idea?

Got it, changed the code to. Thanks @ouah

char *filter = {'\0'};
filter = (char *)calloc((unsigned int)buf.st_size + 1, sizeof(unsigned char));
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"As per my understanding, there is no problem changing the array location right?" There is, it's impossible. But that's not what the code is trying to do. –  Daniel Fischer Mar 31 '13 at 15:27
    
Now C or C++? If C, then don't case the return value of malloc(). –  user529758 Mar 31 '13 at 15:28
    
@DanielFischer I meant to say, even though I allocated a two byte char array initially, I could allocate a chunk of memory later and point the array to it. Isn't it possible? –  Aczire Mar 31 '13 at 15:40
    
char *filter = {'\0'}; -> char *filter = NULL; –  BLUEPIXY Mar 31 '13 at 15:42
    
@Aczire No. An array has fixed size and location. You can declare a pointer and malloc/realloc memory for that. –  Daniel Fischer Mar 31 '13 at 15:45

1 Answer 1

up vote 7 down vote accepted

*filter is a char and you are assigning it a char * value.

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yup, got it. Question updated. Thanks. –  Aczire Mar 31 '13 at 15:34

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