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Why is my printed out Array not sorted in the below code?

public class BubbleSort {

   public void sortArray(int[] x) {//go through the array and sort from smallest to highest
      for(int i=1; i<x.length; i++) {
         int temp=0;
         if(x[i-1] > x[i]) {
            temp = x[i-1];
            x[i-1] = x[i];
            x[i] = temp;
         }
      }
   }

   public void printArray(int[] x) {
      for(int i=0; i<x.length; i++)
        System.out.print(x[i] + " ");
   }

   public static void main(String[] args) {
      // TestBubbleSort
      BubbleSort b = new BubbleSort();
      int[] num = {5,4,3,2,1};
      b.sortArray(num);
      b.printArray(num);   
   }
}
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1  
Your bubble sort implementation is not correct. It requires nested loops. Check the pseudo code of bubble sort on wikipedia for reference. –  prashant Apr 18 '13 at 17:01
1  
num[] is passed by call by value... when you sort the Array Copy of num get sorted.. You sholud return the Array to the Caller then need to print the new array with Print Array –  Akshay Joy Apr 18 '13 at 17:01
    
@AkshayJoy Passing an array to a method does not create a copy. Half the methods in java.util.Arrays would be useless if it were so. –  Philipp Reichart Apr 18 '13 at 17:05
    
en.wikipedia.org/wiki/Bubble_sort <-- Will give you the proper logic –  VenomFangs Apr 18 '13 at 17:05
    

5 Answers 5

up vote 2 down vote accepted

You need two loops to implement the Bubble Sort .

Sample code :

public static void bubbleSort(int[] numArray) {

    int n = numArray.length;
    int temp = 0;

    for (int i = 0; i < n; i++) {
        for (int j = 1; j < (n - i); j++) {

            if (numArray[j - 1] > numArray[j]) {
                temp = numArray[j - 1];
                numArray[j - 1] = numArray[j];
                numArray[j] = temp;
            }

        }
    }
}
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Thank you for the answer. –  Phong Apr 18 '13 at 17:24

Your sort logic is wrong. This is the pseudo-code for bubble sort:

for i = 1:n,
    swapped = false
    for j = n:i+1, 
        if a[j] < a[j-1], 
            swap a[j,j-1]
            swapped = true
    → invariant: a[1..i] in final position
    break if not swapped
end

See this sorting web site for good tutorial on all the various sorting methods.

share|improve this answer
    
Thank you so much for the answer. –  Phong Apr 18 '13 at 17:16
    
Thank you so much for the answer. I just started programming, so this method of your is new for me. –  Phong Apr 18 '13 at 17:33

This isn't the bubble sort algorithm, you need to repeat until you have nothing to swap :

public void sortArray(int[] x) {//go through the array and sort from smallest to highest
  for(;;) {
      boolean s = false;
      for(int i=1; i<x.length; i++) {
         int temp=0;
         if(x[i-1] > x[i]) {
            temp = x[i-1];
            x[i-1] = x[i];
            x[i] = temp;
            s = true;
         }
      }
      if (!s) return;
  }
}
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Bubble sort nested loops should be written like this:

int n = intArray.length;
int temp = 0;

for(int i=0; i < n; i++){
   for(int j=1; j < (n-i); j++){                        
       if(intArray[j-1] > intArray[j]){
            //swap the elements!
            temp = intArray[j-1];
            intArray[j-1] = intArray[j];
            intArray[j] = temp;
       }                    
   }
}
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You're only making one pass through your array! Bubble sort requires you to keep looping until you find that you are no longer doing any swapping; hence the running time of O(n^2).

Try this:

public void sortArray(int[] x) {
    boolean swapped = true;
    while (swapped) {
       swapped = false;
       for(int i=1; i<x.length; i++) {
           int temp=0;
           if(x[i-1] > x[i]) {
               temp = x[i-1];
                x[i-1] = x[i];
                x[i] = temp;
                swapped = true;
            }
        }
    }
}

Once swapped == false at the end of a loop, you have made a whole pass without finding any instances where x[i-1] > x[i] and, hence, you know the array is sorted. Only then can you terminate the algorithm.

You can also replace the outer while loop with a for loop of n+1 iterations, which will guarantee that the array is in order; however, the while loop has the advantage of early termination in a better-than-worst-case scenario.

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BTW you can replace while (swapped == true) with while (swapped) –  Steve Kuo Apr 18 '13 at 17:14
    
@SteveKuo Done ;) –  Ant P Apr 18 '13 at 17:19

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