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Is there a way to convert an int into a char ?

Edit:

Here's the problem with Jeff Johnson's answer (it shows weird characters): image

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put on hold as off-topic by Bill the Lizard 2 days ago

This question appears to be off-topic. The users who voted to close gave this specific reason:

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2  
Is this a real Q? –  LeakyCode Jul 11 '09 at 21:59
49  
@Mehrdad : no you are dreaming ! –  Hannoun Yassir Jul 11 '09 at 22:19
1  
Do you want to convert an int into a char, like others are posting, or do you want to convert an int into a character stream for printing? –  GManNickG Jul 11 '09 at 22:23
1  
Edit your question where you state you want to display the digit '1' –  nos Jul 11 '09 at 22:40
4  
I strongly recommend you read The C Programming Language by Brian Kernighan and Dennis Ritchie. While introducing all important concepts of the language these kinds of things show up in numerous examples in the book. Examples related to your question show up on p.22-23 and p.43. –  cschol Jul 11 '09 at 23:03
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13 Answers

up vote 67 down vote accepted

Are you looking for the char equivalent of a single digit number? For example, converting 5 to '5'? If so then you can do the following, assuming of course the char is 9 or less.

char dig = (char)(((int)'0')+i);
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1  
the character codes for '0' through '9' are guaranteed to be sequential and properly ordered by the ISO C standard. –  Daniel Earwicker Jul 11 '09 at 22:03
    
@Earwicker, thanks (updated answer). –  JaredPar Jul 11 '09 at 22:05
6  
Remember, in C, the only difference between char and int is that one is 8-bit and one is 32-bit. Thus, it can simply be written: char dig = '0'+i; –  Zarel Jul 11 '09 at 22:36
2  
That's an assumption. Integers don't have to be 32-bit. –  GManNickG Jul 12 '09 at 5:10
3  
What this has to do with bit widths? I think if both char and int has the same width, then casting to int won't guarantee success either. In fact, it's the case when both char and int have the same width, when '0'+i is more portable (because it will automatically convert the '0' to unsigned int then, instead of risking an overflow when casting to int). But srsly, i've never seen this to be the case, and i expect it never to be the case (for this, char and int has to have the same width, and the code for '0' has to overflow int (char would be unsigned) - weird!). –  Johannes Schaub - litb Jul 12 '09 at 11:23
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There's the good old:

int n = 123;

char c[20];
sprintf(c, "%d", n);

It's nasty because how long should the array c be? But it's extremely common in C code in the wild.

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1  
"how long should the array c be?" (sizeof(int)*CHAR_BIT-1)/3 + 3 is long enough. But I do wonder whether there should just have been a constant for it somewhere –  Steve Jessop Jul 12 '09 at 9:02
    
This is definitely the simplest and best way to get a number or anything into a char array. –  Jona May 3 '12 at 12:49
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// an example knowing that 32 is the value for a space character    
int i = 32;
char c = (char)i;

// an example where you want to turn a single digit number into a single char
int i = 1 + (int)'0'; // we want the number one turned into a character, adding the ascii value of 0 starts us off at zero and then we add the single digit. This takes advantage of the fact that 0 to 9 are sequential in the ascii table.

char c = (char)i; // now we have a character that is the single digit representation of the number.
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this doesn't work it shows weired characters –  Hannoun Yassir Jul 11 '09 at 22:20
6  
Shows? So is this converting or displaying? This is the perfect answer for your current question, so you need to edit your question telling us what is is you're really looking for. –  GManNickG Jul 11 '09 at 22:23
    
@GMan Good point! –  Secko Jul 11 '09 at 23:03
    
It shows the characters that have the value of the integer you provided. In your question, you forgot to explain that you want to lexically convert an integer into a character that lexically represents that same number, to the human eye, when printed assuming an ASCII encoding. –  Lightness Races in Orbit May 16 '13 at 7:28
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In response to your edit, just use printf and specify an integer:

int i = 10;
printf("%d", i);

The reason for this is 0 represents the number 0. The ASCII character "0" is not at zero, but at 48.

This is why Jared's Answer will work: char dig = (char)(((int)'0')+i);

It takes "0" (which is 48), and adds your number to it. 0 + 48 is 48, so 0 becomes "0". If you are converting a 1, it will be 48 + 1, or 49, which corresponds to "1" on the ASCII chart.

This only works for numbers 0 through 9, as "10" is not an ASCII character, but rather "1" followed by a "0".

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What if the integer number is larger than 9? int i= 10; How can we convert it to '10'? Thanks. –  Stallman Feb 3 at 14:59
1  
@Stallman: This answer covers that: stackoverflow.com/a/1114752/87234. Note that you cannot convert to a single character, though, but a string. –  GManNickG Feb 3 at 19:02
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Try looking up sprintf. Also, for numbers less than 8 bits resolution or 256, you can cast it explicitly from int to char.

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Just do this

int x=9;
char c;
c = char(x+'0');
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Actually this is what worked for me (but only works for numbers 0-9): c = (char)(x+'0'); –  Lacho Tomov Aug 17 '13 at 21:16
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If you dont want to use any of the other answers, you can try:

int intNum = 1;
char chString[2];

//convert to string
itoa(intNum, chString, 10); //stdlib.h
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Are 2 characters really enough? –  GManNickG Jul 11 '09 at 22:20
    
@GMan In this case yes. Anyway it's just an example. –  Secko Jul 11 '09 at 23:01
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Try to use itoa() function :

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

int main ()
{
  int i;
  char buffer [33];
  printf ("Enter a number: ");
  scanf ("%d",&i);
  itoa (i,buffer,10);
  printf ("decimal: %s\n",buffer);
  itoa (i,buffer,16);
  printf ("hexadecimal: %s\n",buffer);
  itoa (i,buffer,2);
  printf ("binary: %s\n",buffer);
  return 0;
}

Output:

Enter a number: 1750
decimal: 1750
hexadecimal: 6d6
binary: 11011010110

itoa() reference

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sprintf(c, "%d", n);

This is working, but if you are using code size limited debuggers ( for MCUs) it fills a lot of bytes because of library. I simply suggest that

char dig = (char)(((int)'0')+i);

as JaredPar does... ( if you are using this code in MCU)
Regards

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Why doesn't this work for you? (assuming C is the language in question)?

char c;

int  x;

...

c = (char) x;
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Taking it's a number from 0 to 9 you can also do:

int num=3;
char numchar;
c = numchar+48;

When you assign an integer value to a char variable, that takes the corresponding char indexed in the ASCII table with the value you assign. e.g. char c=3; //thats char ETX (see ascii table).

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Several above answers mentioned sprintf. This is indeed a good choise. But snprintf is a more secure solution because it can prevent buffer overflow if the converted integer is too big.

int n = 123;

char c[20];
snprintf(c, sizeof(c), "%d", n);
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here is the answer--

int i=250;
unsigned char ch=0;
ch=i;
printf("%d",ch);

Output: 250

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