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When I do this:

main(){
   char* output[255];
   output[0] = '\0';
}

I get a segfault at output[0] = '\0'.

What am I doing wrong?

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5  
Wow, 6 answers and not a single person has pointed out that this should not segfault. –  Mysticial Mar 5 '12 at 6:49
    
@Mysticial Be the first one :-) –  Uwe Keim Mar 5 '12 at 6:51
    
@Mysticial And the one with the most upvotes uses a different language than the question! –  Andrew Marshall Mar 5 '12 at 6:51
    
I'll pass... I've got my "Legendary" badge already. So my rep-whoring days are over. :) –  Mysticial Mar 5 '12 at 6:52
    
I've already pointed this out –  peper0 Mar 5 '12 at 6:54

7 Answers 7

up vote 6 down vote accepted

The problem is probably somewhere else, this part of code shouldn't segfault. Maybe you try to print it somewhere?

However I'm not sure whether it does what you want. You declared array of char pointers:

char* output[255];

And write char there:

output[0] = '\0';

You probably wanted to declare array of chars:

char output[255];
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I complied the program that u have posted but apart from warning I was not getting any segfault. its gcc 4.1.2

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You are basically declaring an array of pointers (pointers to char). And '\0' is not a valid value for a pointer. If you intend to allocate 256 char memory then rewrite:

char* output = new char[256];
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1  
How exactly do you use new in C? This question isn't about C++. –  Andrew Marshall Mar 5 '12 at 6:48
4  
Why '\0' is not a valid value for pointer? It just evaluates to NULL which is valid (at least if not dereferenced). –  peper0 Mar 5 '12 at 6:50
    
Please use only c syntax –  noMAD Mar 5 '12 at 7:07
2  
-1, nothing in this answer is correct. new doesn't exist in C and '\0' is a valid value for a pointer in C (although writing a null pointer with '\0' is very obscure syntax). –  Lundin Mar 5 '12 at 7:39
    
ok my bad, I did not really see the 'C' tag. –  Sesh Mar 5 '12 at 16:20

You want to declare an array of characters, not POINTER to characters. It should be:

main(){
       char output[255];
       output[0] = '\0';
    }
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A better way of doing this is:

#include <stdlib.h>
main()
{
    char* output = malloc(255); // Allocates the pointer
    output[0] = '\0';
}

Sesh's answer is C++.

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You have created a char** type, not a char* type.

The correct syntax is char output[255];

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Your variable output is an array of pointers, not an array of char. Remove the asterisk.

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