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Below is the code used for sorting numbers in non-decreasing order:

#include<stdio.h>
#include<stdlib.h>
# define size 1000001
static int a[size];
int main()
{
  int t, k, i;
  scanf("%d", &t);
  for(i = 0; i < t; i++)
  {
    scanf("%d", &k);
    a[k] += 1;
  }
  for(i = 0; i < 1000001; i++)
  {
    while(a[i]-- != 0)
      printf("%d\n", i);
  }
  return 0;
}

It would be really of great help if someone could explain the code to me. I have gone through the code and I have no idea as to how it can sort numbers. There is no swapping done at any place but still it works in c++ editor.

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2  
The first step to understanding it - indent it properly. – Dukeling Jul 2 '13 at 11:03
2  
This looks like a simple Counting Sort and it will overwrite innocent memory if you input a value greater than 1000000. – Blastfurnace Jul 2 '13 at 11:14
    
I would have simply written while(a[i]--) rather than while(a[i]-- != 0). But I personally prefer while(a[i]-- >= 0). Because, with while(a[i]-- != 0) I have run into infinite loop issues when the input values have negative integers. – thefourtheye Jul 2 '13 at 12:49
    
I find that if you don't understand the program, a debugger will shed some light. Of course you need to understand the language. The point is here that first the comparison is done, then a decrement of the value because it is postfix decrement. The fact that it is an array element just makes it look more complicated than that. – Philip Stuyck Jul 2 '13 at 14:14

This program doesn't sort numbers in a mathematical sense, but that isn't important since it gives you the illusion of doing it.

The program asks for t, which would be better named numberOfValues... the number of values you will input.

The array a[size] can be thought of as size buckets of values. In your program, these buckets are simply counters. Each bucket has a number, 0 through size. When value 5 is input, bucket a[5] has its count increased. This continues until all buckets are set.

The program then works through the buckets. Most of your buckets will be empty, but when a bucket is non-zero (while a[i] != 0 -- ignore the missing -- for now), the bucket needs to be "emptied" while at the same time, its contents need to be accounted for. The bucket a[i] holds the count of i elements, so the loop prints that a value of i is next in the sort, while also decrementing the count (a[i]--). This continues until the bucket is empty (== 0) and the program moves to the next bucket.

Eventually all of your buckets have been emptied and the sort is completed.

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@all Thank you, I can understand it now. – aelor Jul 2 '13 at 11:21

Decrements variable a[i] until it's 0 while printing it out every time

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There is no swapping because is not needed: numbers are not stored as usual, it uses a huge array to mark which number has been entered:

If you add the number 200, it stores array[200]=1. If you add again 200, then array[200]=2.

Then, it prints the array in the following way: imagine you have [0,1,2,1,0,0...], so there is one 1, two 2, one 3... So it just shows 1,2,2,3

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The code iterates for each value in the array a. Each value a[i] in the array is iterated in the while loop. while(a[i]--!=0) checks if the value of a[i] is zero. If not, the loop body is executed. When the control enters the loop body, decrementing the a[i] value. Eg) If a[i]=6, the output will be:

5
4
3
2
1
0
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Consider for i=0; Then a[i]--!=0 will get executed till value at a[i] does not become zero.When value at a[i] becomes zero while loop will get terminated and next iteration of for loop will start.

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