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I am trying to reverse the order of an Array in java.
What is the most efficient way to do so in O(n) with the least amount of memory used.
No need to answer with code, pseudo code will be fine.
Here is my thought process:

  create a new temp array //I think this is a waste of memory, 
                          //but I am not sure if there's a better way
 grab elements from the end of the original array -decrement this variable
 insert element in beginning of temp array -increment this variable
then make the original array point to the temp array? //I am not sure 
            //if I can do this in java; so let's say the 
            //original array is Object[] arr; and the temp array is 
            //Object[] temp. Can I do temp = arr; ?

Is there a better more efficient way to do this perhaps without using a temp array? and Lastly, assume that there are no nulls in the array, so everything can work. Thank you

Edit: no this is not homework.

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2  
Is this homework? If yes, please tagged as such. –  Aleks G Apr 3 '12 at 14:35
1  
consider swaping first and last items and then the second and second last items till you reach half the list... you will just need one temporary variable and will still go over the list once? –  Osama Javed Apr 3 '12 at 14:36
2  
    
your approach is fine –  Habib Apr 3 '12 at 14:36
1  
Can you use the java lib? Collections.reverseOrder() –  Churk Apr 3 '12 at 14:37

7 Answers 7

up vote 35 down vote accepted

If it's an Object array, then Collections.reverse(Arrays.asList(array)) will do the job with constant memory and linear time -- no temporary array required.

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4  
+1 Indeed, since the OP now says this is not homework, this is a great answer. –  Ernest Friedman-Hill Apr 3 '12 at 14:42
    
Love the solution. Just confirmed that no temporary array is required see: ideone.com/api/embed.js/link/xLLTpl ... click "Clone" and then "Run" –  eddyparkinson Jan 23 '13 at 4:22
    
Does not work, at least with Java 1.6: System.out.println( X[ 0 ] + " to " + X[ X.length - 1 ] ); Collections.reverse( Arrays.asList( X ) ); System.out.println( X[ 0 ] + " to " + X[ X.length - 1 ] ); prints: 2272.6270739116 to 186.704625250768 2272.6270739116 to 186.704625250768 –  Jean-Yves Aug 13 '14 at 20:51
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@Jean-Yves: What is the type of X? I strongly suspect it's not an object array, which I specified in my answer was necessary. –  Louis Wasserman Aug 13 '14 at 21:10
    
Shoot you are right, it is a double[]/. Apologies! –  Jean-Yves Aug 13 '14 at 21:36

You don't need to use a temporary array; just step through the array from the beginning to half-way through, swapping the element at i for the element at array.length-i-1. Be sure the handle the middle element correctly (not hard to do, but do make sure.)

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Use a single temp element.

int array[SIZE];
int temp;

for (int i = 0; i < SIZE/2; i++)
  {
     temp = array[i];
     array[i] = array[SIZE-1 - i];
     array[SIZE-1 - i] = temp;
  }
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Here's two solutions:

    loop to N/2
      swap each element at i with element at N - i

Another solution is (depending on your circumstances) fake reversing the array by indexing:

    GetValueAt(int i){return array[N - i];}
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you can do it without needing a temp array

  • loop from the beginning (or end doesn't matter) to the middle of the array
  • swap element with element at (last element - index) (so 0 and size - 1, 1 and size - 2 etc)
  • you'll do something like this to swap:
    temp = a[i];
    a[i] = a[end-i];
    a[end-i] = temp;
  • repeat
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pseudocode, assuming 0-based-index arrays:

for i in range(0, len(array)/2):
     swap(array[i], array[(len(array)-1)-i])
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This does not look like Java. –  ceving Dec 5 '13 at 10:10
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hence pseudocode –  mcfinnigan Dec 5 '13 at 14:01

Lets consider the array is of array of Integer then we could also look for a solution like this

arr - array of Integer

for(int i=0,int J<arr.length-1;i<j;i++,j--)
{
temp =a[i];
a[i]=a[j];
a[j]=temp;
 }
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