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Let's say I have a char pointer called string1 that points to the first character in the word "hahahaha". I want to create a char[] that contains the same string that string1 points to.

How come this does not work?

char string2[] = string1;
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There's an assumption implicit in the question that arrays and pointers are the same thing in C (trying to initialize a new array of char by reference to a char* pointer). This is not the case and it's important to understand the differences to avoid introducing subtle bugs into your program. –  Andrew Bissell Aug 24 '13 at 1:24

6 Answers 6

"How come this does not work?"

Because that's not how the C language was defined.

You can create a copy using strdup() [Note that strdup() is not ANSI C]

Refs:

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In C you can do something like this:

char string1[] = "hahahaha";
char string2[sizeof(string1)+1];
strcpy( string2, string1 );

When string1 is defined as above (an array) with a constant initializer, the compiler knows its length at compile time, and sizeof will return it's length including the null terminator (which is the size of the data).

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1) pointer string2 == pointer string1

change in value of either will change the other

From poster poida

char string1[] = "hahahahaha";
char* string2 = string1;

2) Make a Copy

char string1[] = "hahahahaha";
char string2[11]; /* allocate sufficient memory plus null character */
strcpy(string2, string1);

change in value of one of them will not change the other

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In C you have to reserve memory to hold a string.
This is done automatically when you define a constant string, and then assign to a char[].

On the other hand, when you write string2 = string1,
what you are actually doing is assigning the memory addresses of pointer-to-char objects. If string2 is declares as char* (pointer-to-char), then it is valid the assignment:

char* string2 = "Hello.";

The variable string2 now holds the address of the first character of the constanta array of char "Hello.".

It is fine, also, to write string2 = string1 when string2 is a char* and string1 is a char[].

However, it is supposed that a char[] has constant address in memory. Is not modifiable.
So, it is not allowed to write sentences like that:

 char string2[];
 string2 = (something...);

However, you are able to modify the individual characters of string2, because is an array of characters:

 string2[0] = 'x'; /* That's ok! */
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If you want to initialize 2 char arrays then the only way is assign them with the same string or copy from the first one.

#define HAHA "hahahahaha"
char string1[] = HAHA;
char string2[] = HAHA;
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You can assign the address of string1 to string2 using a pointer like this:

#include <stdio.h>

int main(int argc, char** argv) {
    char* string1 = "hahahahaha";
    char* string2 = string1;

    printf("%s\n", string2);
}
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poster said they want a copy. –  Mitch Wheat Aug 24 '13 at 1:17

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