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Good-morning one and all! This is going to end up being one of those blindingly-easy questions in hindsight, but for the life of me I'm stumped. I'm going through some of the exercises in The C Programming Language, and I've managed to write some code to initialize a loop. After some Googling, I found better ways of initializing a loop to 0, but I don't understand why the loop that I wrote to do it doesn't finish. I've used the debugger to find out that it's because the 'c' variable never reaches 50, it gets to 49 and then rolls over to 0, but I can't figure out why it's rolling over. The code is attached below, does anyone know what's going on here?

#include <stdio.h>
#define IN 1
#define OUT 0

/* Write a program to print a histogram of the lengths of words in
    itsinput. */
main()
{
    int c=0;
    int histogram[50]={0}
    int current_length=0;
    int state=OUT;

    //Here we borrow C so we don't have to use i
    printf("Initializing...\n");
    while(c<51){
        histogram[c] =0;
        c=c+1;
    }
    c=0;
    printf("Done\n");

    while( (c=getchar()) != EOF){
        if( (c==32 || c==10) && state==IN ){
            //End of word
            state=OUT;
            histogram[current_length++];
        }else if( (c>=33 && c<=126) && state==OUT ){
            //Start of word
            state=IN;
            current_length=0;
        }else if( (c>=33 && c<=126) && state==IN ){
            //In a word
            current_length++;
        } else {
            //Not in a word
            //Example, "  " or " \n "
            ;
        }
    }

    //Print the histogram
    //Recycle current_length to hold the length of the longest word
    //Find longest word
    for( c=0; c<50; c++){
        if( c>histogram[c] )
            current_length=histogram[c];
    }
    for( c=current_length; c>=0; c--){
        for( state=0; state<=50; state++){
            if( histogram[c]>=current_length )
                printf("_");
            else
                printf(" ");
        }
    }
}
share|improve this question
1  
Note this line: while(c<51)! –  Till Mar 24 '12 at 12:22
1  
A semicolon is missing after the declaration int histogram[50] = {0}. Since you've initialized histogram in the declaration, you don't need to do it again in the loop, which should check for c<50, not c<51. –  Adam Liss Mar 24 '12 at 12:23
    
Never recycle variables. Make their scope as local (small) as possible and declare new ones when needed. The compiler will optimise this anyway. –  bitmask Mar 24 '12 at 12:29

3 Answers 3

up vote 5 down vote accepted

It's because histogram[c] = 0 writes past the histogram memory when c = 50. So essentially histogram[50] overwrites c and makes it 0.

This happens because arrays start from 0 in C. So the last valid index in a 50-element array is 49.

Technically, while interesting and exploitable you can't rely on this. It's a manifestation of undefined behavior. The memory could easily have another layout causing things to "just work" or do something funnier.

share|improve this answer

histogram has 50 elements: from index 0 to index 49.
You attempt to write to index 50. ALL BETS ARE OFF

do

while (c < 50)

or, to avoid magic constants

while (c < sizeof histogram / sizeof *histogram)
share|improve this answer
    
Not all constants are magic. A simple const int histogram_size = 50; would work as well and (IMO) be more readable than sizeof histogram / sizeof *histogram. –  Caleb Mar 24 '12 at 12:43
    
@Caleb: in C, a const int definition creates a read-only object, not a constant. Sometimes you really need a constant: sizeof arr / sizeof *arr is such a constant. –  pmg Mar 24 '12 at 12:47
    
You get the same number either way. If you use the sizeof math, you still have to specify the array size somewhere. So, you can give a name to the value and say int histogram[histogram_size]; to declare histogram, or you can say int histogram[50];. I think the former better addresses the "magic constant" issue that you raised. –  Caleb Mar 24 '12 at 13:01
    
@Caleb: C89 doesn't have VLAs (they suck by the way). I agree with you, but you need to #define rather than declare a read only object with const int. –  pmg Mar 24 '12 at 13:05

You are accessing elements 0 to 50 in histogram, which only contains elements 0 to 49 (C/C++ use zero-indexing, so the maximum element of an array will always be size-1).

To avoid errors like this, you could define the histogram size as a constant, and use that for all operations relating to the histogram array:

#define HISTOGRAM_SIZE 50

Or (only works for C99 or C++, see below comment):

const int HISTOGRAM_SIZE = 50;

Then:

int histogram[HISTOGRAM_SIZE];

And:

while(c<HISTOGRAM_SIZE)

'#define' is a C-preprocessor statement, and will be processed before compilation. To the compiler, it will just look as if you've written 50 everywhere where HISTOGRAM_SIZE is used, so you wont get any extra overhead.

'const int' gives you a similar solution, which in many cases will give the same result as with the define (I'm not 100% certain under which circumstances though, others are free to elaborate), but will also give you the added bonus of type-checking.

share|improve this answer
1  
In C89, the const int definition does not define a constant usable in array dimensions (it defines a read-only object). C99 allows VLAs (Variable Length Arrays) which don't need constants to specify the size. –  pmg Mar 24 '12 at 12:36
    
Ah, thanks! I've edited the above to reflect that. –  sonicwave Mar 24 '12 at 12:43

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