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I get a bad error when I put name as a char pointer. It is fine when I put it as an array but the same situation is with *p3 without problem. Why do I get an error only for name? Even the initialization did not work.

#include <stdio.h>
#include <conio.h>
#include <string.h>
int main()
{
    int dex;
    const int k = 5;
    char *name;
    char *p3 = "happy world";
    char *list[k]={"kamy",
        "frank",
        "chris",
        "sara",
        "ricky"};

    scanf("%s",name);
    //or gets(name);
    printf("printed name is <%s>", name);
    getch();
    return 0;
}
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closed as too localized by WhozCraig, Jonathan Leffler, Jan Hančič, Anand, RivieraKid Dec 31 '12 at 8:47

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6 Answers 6

up vote 0 down vote accepted

Increase your compiler warnings and it'll point out your error. name is an uninitialised pointer, so it could be pointing anywhere and trying to write to where it points will cause undefined behaviour and if you're lucky a seg fault.

Either declare name as an array, or initialise it using malloc to allocate a block of memory.

You should also use fgets over scanf with the %s specifier to avoid buffer overflows, or at least pass in a width specifier to scanf so you don't overflow the buffer. Note that if you use fgets it'll also store the '\n' in the buffer.

ie.

char name1[30];
char *name2 = malloc(30 * sizeof(*name2));

fgets(name1, 30, stdin); // TODO - check return values
scanf("%29s", name2); // 30 - 1
//...
free(name2);
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You need to allocate memory for name first using malloc

name = malloc(20);
scanf("%19s", name);

And then when you're done you should free the memory allocated:

free(name);
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char *name =(char *) malloc(sizeof(char) * 10); –  maziar parsaeian Dec 30 '12 at 22:20
    
@maziarparsaeian sizeof(char) is always one –  mux Dec 31 '12 at 7:19

scanf is able to fetch input from stdin and place it in a char* but it won't allocate memory for you.

Try with:

char name[64];
scanf("%s",name);

Mind that char *name doesn't initialize the memory for characters. You need either to use automatic allocation as with char name[64] or allocate it dynamically with char *name = calloc(64, sizeof(char)). If you choose the latter approach you also have to release the memory when you don't need it anymore with free(name).

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i know if i change it to array it works but why with that notation doesnt though it is fine with p3 if i write printf("\n p3 = [%s] \n",p3); –  maziar parsaeian Dec 30 '12 at 22:03

You declare name as a pointer, but you never initialize it. This means that when you try to write to in in the scanf call you write to a seemingly random memory location. This is undefined behavior and will most definitely lead to weird things happening.

You should create an array to hold the string:

char name[32];

Also, to not write beyond the end of the string, you should probably change the scanf call to so it knows the length:

scanf("%31s", name);

If you are getting a line, you should use fgets instead:

fgets(name, sizeof(name), stdin);

And as a little tip: Don't forget to check the values returned from the functions you call, they may fail!

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p3[] allocs memory automaticaly, *p3 does not.

To use *p3 you must user malloc function.

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p3 is working fine ,the problem is getting a name –  maziar parsaeian Dec 30 '12 at 22:00
    
@maziarparsaeian yup, I did miss the point. –  Helio Santos Dec 30 '12 at 22:04

name has not been initialised to point to anything, and thus points at some random location in memory. Using it invokes undefined behaviour.

Either declare it as an array, or allocate some memory.

You shouldn't be passing p3 into scanf() either, as it's been assigned to point to a static string.

And don't ever use gets(). Ever.

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