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I am trying to store an integer in a char array. How can I do that? This is my approach (by casting it the int to a char) but it does not work. What am I missing?

#include <stdio.h>

int main(int argc, char** argv) 
    char cArray[10] = {};

    // Store a character in the char array
    cArray[5] = 'c';
    printf("%c\n", cArray[5]);

    // Store an integer in the char array
    cArray[6] = (char) 0; // WHY DOES THIS NOT WORK???
    printf("%c\n", cArray[6]);
share|improve this question
What does "does not work" mean? Is it the fact that you always get the 'c' back? Well, have a look at your code. – glglgl Nov 18 '13 at 15:35
You've noticed that you're trying to print the cArray[5] not the 6? – Guilherme Nov 18 '13 at 15:36
You want to store a digit or an integer? – Seçkin Savaşçı Nov 18 '13 at 15:36
Are you trying to serialize something? Note that %c isn't going to show you your integer value, but the character represented by it. Also note your integers will be limited to 255 max. – kmort Nov 18 '13 at 15:37
@SeçkinSavaşçı:- OP has clearly mentioned in question that he wants to store Integer! – Rahul Tripathi Nov 18 '13 at 15:37

7 Answers 7

up vote 2 down vote accepted
cArray[6] = (char) 0; // WHY DOES THIS NOT WORK???
printf("%c\n", cArray[6]);

This code attempts to print a character with the encoding 0; assuming ASCII, nothing will get displayed because there is no printable character associated with that code.

If you intend to store the ASCII code for the character '0' and print it, then you need to write

cArray[6] = 48;               // same as writing cArray[6] = '0' (ASCII)
printf( "%c\n", cArray[6] );

This will print 0 to your console.

If, on the other hand, you want to store any arbitrary integer value1 to cArray[6] and display that value, then you need to use the %d conversion specifier:

cArray[6] = 48;
printf( "%d\n", cArray[6] );

This will print 48 to your console.

1. That is, any integer that fits into the range of char, anyway

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Let's start with the basics.

For x86 architecture(assuming you use it) a char variable is stored in 1 byte and an int variable is stored in 4 bytes.

It is IMPOSSIBLE to store a random integer value in a char variable unless you have some compression schema and know that some integer values will not occur(no random!) in your program. No exceptions.

In your case, you want to store integers in a char array. There are four options:

1.If you want to store a random integer in this char array, then you should get the pointer to the index that you want to store the integer and cast it to an integer pointer and use it like that.

char mychars[10];
int * intlocation = (int*)(&mychar[5]);
*intlocation = 3632; // stores 3632

Beware that this will write to 4 bytes(4 char locations in your array) starting from the index you have specified. You should always check you are not going out of array.Also you should do the same casting for retrieving the value when needed.

2.If your values are between [0,255] or [-128,127] you can safely store your integers in a char since these ranges can be represented using a byte. Beware that char being signed or unsigned is implementation-dependent. Check this out!

mychars[5] = 54;

3.If your integer is just a digit, you can use the char representation of the digit.

mychars[5] = your_digit + 48; // 48 is the ascii code for '0'

4.If you want to store the string representation of your integer, then you should use itoa() and write each char of the resulting string to your array one by one. In that case, you should always check that you are not going out of array.

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Normally, a computer exactly does what you tell it. The instruction DWIM (do what I mean) hasn't been invented yet.

cArray[6] = (char) 0; // WHY DOES THIS NOT WORK???

sets the index position 6, but

printf("%c\n", cArray[5]);

prints the index position 5.

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cArray[6] = (char) 0; // WHY DOES THIS NOT WORK???
printf("%c\n", cArray[5]);


cArray[6] = (char)51;
printf("%c\n", cArray[6]);

Should display '3'

I think you will understand your mistake... 0 as int does not represent the printable character '0', but the NULL termination string

51 as int represent the character '3'

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You may use itoa(0,&cArry[6],10).

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Use the correctly desired format specifier.

cArray[6] = (char) 0; does store an integer 0 into array element cArray[6]. Its the printf() that is fooling OP into thinking that did not work.

Using %c says OP wants the character that is encoded with a 0. (It usually not visible). Use %d to print the integer value of cArray[6].

printf("%d\n", cArray[6]);
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You can add the ASCII value of 0 to the value you want to store digit into the character array. For example if you want to store 0,1,...,9 into the character array A[10], you may use the following code.

     for(j = 0; j<k; j++)
          A[j] = j + '0';  // Same effect if you use A[j] = j + 0x30

This works only if the integer you want to store is less than 10. Otherwise you will have to extract the digits using modulo operator and store.

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