LintCode-Interleaving Positive and Negative Numbers.

Given an array with positive and negative integers. Re-range it to interleaving with positive and negative integers.

Note

You are not necessary to keep the original order or positive integers or negative integers.

Example

Given [-1, -2, -3, 4, 5, 6], after re-range, it will be [-1, 5, -2, 4, -3, 6] or any other legal answer.

Challenge

Do it in-place and without extra memory.

Analysis:

We need figure how to address the cases that one kind of numbers is more than the other kind of numbers.

In LintCode, if postive numbers are more than negtive numbers, the array then start with positive numbers.

Solution:

 1 class Solution {
 2     /**
 3      * @param A: An integer array.
 4      * @return an integer array
 5      */
 6     public int[] rerange(int[] A) {
 7         if (A.length==0 || A.length==1) return A;
 8         
 9         int posNum = 0;
10         for (int i : A) if (i>=0) posNum++;
11         int negP = (posNum>(A.length-posNum)) ? 1 : 0;
12         int posP = (posNum>(A.length-posNum)) ? 0 : 1;
13 
14     int p = A.length-1;
15     while (negP<A.length && A[negP]<0) negP += 2;
16     while (posP<A.length && A[posP]>=0) posP += 2;
17     while (p>=posP || p>=negP){    
18         if (A[p]<0){
19             if (negP>=A.length) p--;
20             else {
21                 int temp = A[negP];
22                 A[negP] = A[p];
23                 A[p] = temp;
24                 negP += 2;
25             }
26         } else {
27             if (posP >= A.length) p--;
28             else {
29                 int temp = A[posP];
30                 A[posP] = A[p];
31                 A[p] = temp;
32                 posP += 2;
33             }  
34         }
35     }
36 
37     return A;
38 
39      }
40 }

 

posted @ 2014-12-27 00:52  LiBlog  阅读(293)  评论(0编辑  收藏  举报