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I'm trying to print an array of characters in C but i can't print everything. I want to print : b1 b2 My code:

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

int main() {
  char def[3][10];     //define a multidimensional array of characters 
  strcpy(def[0],"b1"); //insert "b1" at first line
  strcpy(def[1],"b2"); //insert "b2" at first line
  printf("%s",def);    //print everything?
}

The above code prints just b1. I already tried :

printf("%s",def[0]);
printf("%s",def[1]);

But i have error "invalid use of array with unspecified bounds"

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closed as too localized by David Heffernan, Jonathan Leffler, Wouter J, Soner Gönül, RivieraKid Dec 16 '12 at 0:24

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1  
You can't just print a multidimensional array of characters. What do you want it to print? – Linuxios Dec 15 '12 at 15:05
    
i tried to print each line separately but i couldn't. – Dchris Dec 15 '12 at 15:07
    
@Dchris: Then, why don't you post the code you tried? – bitmask Dec 15 '12 at 15:07
    
What do you want to print? – Linuxios Dec 15 '12 at 15:07
1  
@Dchris Show your real code and your real error. – melpomene Dec 15 '12 at 15:12
up vote 1 down vote accepted
printf("%s", def);

%s conversion specification expects a string. def is an array of strings and not a string.

To print the first string do this:

printf("%s", def[0]);

if you want to print the second string then do this:

printf("%s", def[1]);

and if you want to print both strings:

printf("%s%s", def[0], def[1]);

To print all strings in your array:

for (i = 0; i < sizeof def / sizeof *def; i++)
{
    printf("%s", def[i]); 
}
share|improve this answer

You first initialize array with syntax like so whole array gets null value. and then do the same procedure you are able to get your strings at output.

syntax: char def[3][10]={};

or first define this array and then by bzero function make whole array to zero value.

bzero(def,sizeof(def));

you need to include stdlib.h header file in your program.

share|improve this answer
    
Empty initializer and bzero are not standard C, and these don't solve the problem because strcpy adds a termination null character at the end of the destination string, stopping *printf. Anyway, it's not so efficient to fill an array of something if it's not really needed. You just need a single '\0' to stop. – effeffe Dec 15 '12 at 16:03

You could print a whole multi-dimensional array of char as a single string, with a single call:

printf("%s", (char*) multiDimensionalArray);

Because elements of a multi-dimensional array are contiguos. But, exactly as simple arrays, printf stops at the first termination character, so it's usually pointless because we almost always have a termination character at the end of each "row" just like you, or some uninitialized garbage.

char def[3][2];

memcpy(def[0], "b1", 2);
memcpy(def[1], "b2", 2);

def[2][0] = '\0';

printf("%s", (char*) def);  // print everything

But use arrays this way is painful, what you need is a loop over the array.

(you can simply use *puts to print strings)

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