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I am trying to output an int the following way:

void the_int(int i)
{
     int lenghtOfInt = 0;
     int tempValue = i;
     while(tempValue >= 1)
     {
          tempValue/=10;
          lenghtOfInt++;
     }

     int currentDigit;
     char string[lengthOfInt];
     while(i>9)
     {
           currentDigit= i % 10;
           i = i/10;
           char ch = (char)(((int)'0')+currentDigit);

           string[lengthOfInt--] = ch;
     }
     string[lengthOfInt]= (char)(((int)'0')+i);
     function(str); //prints the string character by character
}

if i try this function with i = 12 I get à12ç. What am I doing wrong?

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closed as too localized by Lightness Races in Orbit, Jack Maney, BЈовић, EdChum, SWeko Jan 28 '13 at 9:26

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4  
First of all, function is a horrible choice for the name of a function. –  Jack Maney Jan 27 '13 at 3:55
1  
What are you trying to accomplish with this code? –  adamdunson Jan 27 '13 at 3:55
1  
Might have to have a look at how 'function' is working. Have you tried allocating an extra char in your array and null terminating(setting last value to a '\0')? –  Quirliom Jan 27 '13 at 3:57
1  
Not sure where to begin with this. Why not just do a printf? string array is never initialized, so filled w/garbage to begin with. –  OldProgrammer Jan 27 '13 at 3:58
1  
make it stoooooooooooop –  Lightness Races in Orbit Jan 27 '13 at 3:59

4 Answers 4

up vote 1 down vote accepted

You are accessing beyond the array bounds in the following line.

string[lengthOfInt--] = ch;

This tries to access index lengthofInt which is incorrect.

Now, ignoring the array declaration with a variable,

char string[lengthOfInt];

declares an array having indices from 0 to lengthofInt - 1

Also, depending on how you are printing your string, you might need a '\0' character at the end. Although, if you are going character by character and are sure of your bounds, then it is not needed, but is recommended nonetheless.

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-1: No it most certainly does not. C++ does not have VLAs. –  Lightness Races in Orbit Jan 27 '13 at 4:01
    
@Non-StopTimeTravel I dont understand what you are trying to point out. –  AsheeshR Jan 27 '13 at 4:03
1  
Using a variable to declare an array, e.g., char string[lengthOfInt] is a gcc extension and is not supported by the standard. –  adamdunson Jan 27 '13 at 4:09
    
@adamdunson Ok, so where am i going wrong in my answer ? –  AsheeshR Jan 27 '13 at 4:12
    
@AshRj: I'm pointing out that your answer is wrong. –  Lightness Races in Orbit Jan 27 '13 at 4:12

Join the 21st century and use a std::string.

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-1, Its a homework assignment and OP is using C not C++ –  Richard Schneider Jan 27 '13 at 4:08
2  
@RichardSchneider OP tagged it c++. –  adamdunson Jan 27 '13 at 4:10
    
@Non-stop, ur correct and I removed -1. In my defense, the title said C not C++. –  Richard Schneider Jan 27 '13 at 4:13

All strings in C must end with a nul byte (0). So first add 1 to the length of char array you alloc on the stack and then before you print add the nul byte to the string.

I assume this is a homework exercise. Otherwise, you should just use the itoa function.

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Ignoring the fact that you are declaring your array with a variable (you should be using dynamic allocation or at least a constant), char string[lengthOfInt]; needs to be char string[lengthOfInt+1]; and you need to string[lengthOfInt] = '\0'; before the while loop. C strings are NULL terminated.

Additionally, why not just printf("%d", i);?

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