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I need help figuring out why I am getting a segmentation fault here. I have gone over it and I think I am doing something wrong with the pointers, but I can figure out what.

My Program:

#include <stdlib.h>
#include <stdio.h>

void encrypt(char* c);

//characters are shifted by 175

int main(){

char* a;
*a = 'a';


return 0;

void encrypt(char* c){
    char* result;
    int i=(int)(*c);

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3 Answers 3

up vote 7 down vote accepted

The problem is here:

char *a;
*a = 'a'

Since the variable "a" is not initialized, *a = 'a' is assigning to a random memory location.

You could do something like this:

char a[1];
a[0] = 'a';

Or even just use a single character in your case:

int main(){
  char a = 'a';


  return 0;
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That worked! Thanks! – spatara Mar 11 '12 at 19:46
char* a;
*a = 'a';

There isn't any "there" there. You've declared a and left it uninitialized. Then you tried to use it as an address. You need to make a point to something.

One example:

char buffer[512];
char *a = buffer;

(Note buffer has a maximum size and when it falls out of scope you cannot reference any pointers to it.)

Or dynamic memory:

char *a = malloc(/* Some size... */);

if (!a) { /* TODO: handle memory allocation failure */ }

// todo - do something with a.

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That pointer a does not get the actual space where to store the data. You just declare the pointer, but pointing to where? You can assign memory this way:

char *a = malloc(1);

Then it won't segfault. You have to free the variable afterwards:


But in this case, even better,

char a = 'a';
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malloc(1) seems like a heavy-weight way of dealing with this particular example. – Jonathan Leffler Mar 11 '12 at 19:45
Yes, well, you're right. Just wanted to show some patterns for assigning dynamic memory. – Diego Sevilla Mar 11 '12 at 19:45
Thanks! This is also a good solution :) – spatara Mar 11 '12 at 19:47

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