Given a sorted array and a target value, return the index if the target is found. If not, return the index where it would be if it were inserted in order.
You may assume no duplicates in the array.
Here are few examples.[1,3,5,6], 5 → 2[1,3,5,6], 2 → 1[1,3,5,6], 7 → 4[1,3,5,6], 0 → 0
1 public class Solution { 2 public int searchInsert(int[] nums, int target) { 3 int len=nums.length; 4 for(int i =0;i<len;i++){ 5 if(nums[i]==target){ 6 return i; 7 } 8 else if(nums[i]<target&&i+1<len&&nums[i+1]>target){ 9 return i+1; 10 } 11 else if(nums[len-1]<target){ 12 return len; 13 14 } 15 else if(nums[0]>target){ 16 return 0; 17 } 18 } 19 return 0; 20 } 21 }
解题思路:
// version 1: find the first position >= target public class Solution { public int searchInsert(int[] A, int target) { if (A == null || A.length == 0) { return 0; } int start = 0, end = A.length - 1; while (start + 1 < end) { int mid = start + (end - start) / 2; if (A[mid] == target) { return mid; } else if (A[mid] < target) { start = mid; } else { end = mid; } } if (A[start] >= target) { return start; } else if (A[end] >= target) { return end; } else { return end + 1; } } } // version 2: find the last position < target, return +1, 要特判一下target小于所有数组里面的元素 public class Solution { public int searchInsert(int[] A, int target) { if (A == null || A.length == 0) { return 0; } int start = 0; int end = A.length - 1; int mid; if (target < A[0]) { return 0; } // find the last number less than target while (start + 1 < end) { mid = start + (end - start) / 2; if (A[mid] == target) { return mid; } else if (A[mid] < target) { start = mid; } else { end = mid; } } if (A[end] == target) { return end; } if (A[end] < target) { return end + 1; } if (A[start] == target) { return start; } return start + 1; } }
35. Search Insert Position【leetcode】
原文:http://www.cnblogs.com/haoHaoStudyShare/p/7337069.html