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int main(void){
    char *p[]={};
    char *temp=NULL;
    int end=0;
    char y_n=0;
    int w=0; //pointer array subscript 
    int gc=1;

    printf("enter content:\n");
            p[w]=(char *)calloc(gc,sizeof(char));
            strcat(p[w],(char *)&end);
            temp=(char *)realloc(p[w],gc*sizeof(char));
                printf("memory fail\n");
            /*here temp and p[w] reference same address
            so temp pointer set value is NULL break reference address
            so temp pointer not use free function.
            if temp pointer use free function,at the same time clean p[w] in memory address.
            strcat(p[w],(char *)&end);
    printf("p[%d]:%s\n", w,p[w]);

    printf("continue y or n:");
printf("w:%d\n", w);

        printf("p[%d]:%s\n", w,p[w]);
    return 0;


inital value w=0, cycle to p[w=0] error:Segmentation fault (core dumped)

inital value w=1 start

cycle p pointer array no problem

why? no inital value pointer array,subscript can not start at 0?

share|improve this question
char *p[]={}; is not valid C. You need at least one initialiser inside the braces. –  Daniel Fischer Jun 23 '13 at 10:30
@alk Yes, but not one of the good ones, IMO. I bet the OP didn't expect a 0-sized array here. –  Daniel Fischer Jun 23 '13 at 10:40
@DanielFischer: I agree. However, I was fooled by my standard make: gcc (4.4.5) fails, it's a clang extension. –  alk Jun 23 '13 at 10:41
@alk My gcc-4.7.2 accepts it without complaint in default mode. –  Daniel Fischer Jun 23 '13 at 10:44

1 Answer 1

up vote 4 down vote accepted
char *p[]={};

is not valid C, but it is a GNU extension (also accepted by clang), hence gcc accepts the code.

However, what it does is declare a 0-sized array p of char*s. So using any p[w] invokes undefined behaviour. Whether it crashes or not depends on your luck. If you are lucky, it crashes always.

You need to declare p with the required size. If you don't know how many elements you need, make it a char** and malloc/realloc it.

share|improve this answer
The interessting thing is that if I pass char * p[] = {} to clang it produces the same as char * p[1] = {0}. –  alk Jun 23 '13 at 10:54
My clang makes it a zero-sized array, like gcc: extension.c:4:17: warning: zero size arrays are an extension. Did you perchance put the char *p[] = {}; at file scope? –  Daniel Fischer Jun 23 '13 at 10:56
No difference if at file or function scope. I get warning: zero size arrays are an extension [-pedantic] but code as mentioned using clang version 1.1 (Debian 2.7-3). –  alk Jun 23 '13 at 10:59
@alk printf("%zu\n", sizeof p);? Prints 0 for me. –  Daniel Fischer Jun 23 '13 at 11:01
(gdb) p sizeof p gives me $1 = 8. –  alk Jun 23 '13 at 11:03

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