LeetCode: First Missing Positive 解题报告

时间 2019-11-20

标签 leetcode missing positive 解题报告栏目应用数学繁體版

原文原文链接

First Missing Positive

Given an unsorted integer array, find the first missing positive integer.html

For example,
Given [1,2,0] return 3,
and [3,4,-1,1] return 2.java

Your algorithm should run in O(n) time and uses constant space.node

SOLUTION 1:

使用相似桶排序的方法：git

将值放在它应该在的位置，最后再扫描一次得出哪一个位置有缺乏值。github

引自：app

http://m.blog.csdn.net/blog/hellobinfeng/17348055ide

http://n00tc0d3r.blogspot.com/2013/03/find-first-missing-positive.htmlui

http://www.cnblogs.com/AnnieKim/archive/2013/04/21/3034631.htmlthis

A few quick thoughts:spa

Sort all numbers and iterate through to find the first missing integer? No, most sorting algorithms take time at least O(nlogn).
How about linear sorting algorithm? No, bucket sort requires O(n) space.
Mapping all positive integers to a hash table and iterate from 1 to the length of the array to find out the first missing one? No, hash table requires O(n) space.

Then, how to solve this?

Let's take another look at the problem. It is asking for the first missing POSITIVE integer.
So, given a number in the array,

if it is non-positive, ignore it;
if it is positive, say we have A[i] = x, we know it should be in slot A[x-1]! That is to say, we can swap A[x-1] with A[i] so as to place x into the right place.

We need to keep swapping until all numbers are either non-positive or in the right places. The result array could be something like [1, 2, 3, 0, 5, 6, ...]. Then it's easy to tell that the first missing one is 4 by iterate through the array and compare each value with their index.

解1：

 1 public int firstMissingPositive1(int[] A) {
 2         // bug 3: when length is 0, return 1;
 3         if (A == null) {
 4             return 0;
 5         }
 6         
 7         for (int i = 0; i < A.length; i++) {
 8             // BUG 1: TLE , should judge when A[i] - 1 == i;
 9             while (A[i] - 1 != i && A[i] > 0) {
10                 // bug 2: cant exchange a same node: A[A[i] - 1] != A[i]
11                 if (A[i] - 1 < A.length && A[A[i] - 1] != A[i]) {
12                     swap(A, i, A[i] - 1);    
13                 } else {
14                     // when the number is out of range, delete it.
15                     A[i] = 0;
16                 }
17             }
18         }
19         
20         for (int i = 0; i < A.length; i++) {
21             if (A[i] <= 0) {
22                 return i + 1;
23             }
24         }
25         
26         return A.length + 1;
27     }
28     
29     public void swap(int[] A, int l, int r) {
30         int tmp = A[l];
31         A[l] = A[r];
32         A[r] = tmp;
33     }

View Code

简化后，解2：

其实交换的条件就是3个：

1: A[i] is in the range;
2: A[i] > 0.
3: The target is different; （若是不判断这个，会形成死循环，由于你交换过来一个同样的值）

 1 // SOLUTION 2:
 2     public int firstMissingPositive(int[] A) {
 3         // bug 3: when length is 0, return 1;
 4         if (A == null) {
 5             return 0;
 6         }
 7         
 8         for (int i = 0; i < A.length; i++) {
 9             // 1: A[i] is in the range;
10             // 2: A[i] > 0.
11             // 3: The target is different;
12             while (A[i] <= A.length && A[i] > 0 && A[A[i] - 1] != A[i]) {
13                 swap(A, i, A[i] - 1);    
14             }
15         }
16         
17         for (int i = 0; i < A.length; i++) {
18             if (A[i] != i + 1) {
19                 return i + 1;
20             }
21         }
22         
23         return A.length + 1;
24     }

View Code

https://github.com/yuzhangcmu/LeetCode_algorithm/blob/master/array/FirstMissingPositive.java