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快速排序算法
快速排序一直是各大IT公司面试上机题的常考题目,如何破解一直很困惑,或者说一直忘记。下面用一种简单而且形象的描素来解决战斗。
该思想是基于填坑法和分治法的思想。下面先写算法:
填坑法:
head,tail,key
(1) set key=A[head],so A[head] is the first “empty”(当然不是真正的空)
(2) do tail--until find a data which is not bigger (==or <)than key, than do A[head](“empty”)=A[tail], now A[tail] is “empty”;
(3) do head++ until find a data which is bigger than key, than do A[tail](“empty”)=A[head], so now A[head] is “empty”
(4) do (2),(3) until head==tail;
Example:
Input: 3,2,6,5,9,0,4;
(1) Now head=0, tail=6,key=A[head];A[head](A[0]) is “empty”
(2) Tail--,when tail==5,A[tail]==0<key; so A[head](A[0])=A[tail]; now A[tail] is “empty”, 0,2,6,5,9,0,4;
(3) Do head++ until head ==2,A[head]=6>key; so A[tail]()=A[head];now A[head] is “empty”;0,2,6,5,9,6,4;
(4) Do (2),(3) until head==tail;
Followed by: 0,2,3,5,9,6,4;
然后分治法,将上一次的key所在位置分成两个部分,分别对这两个部分再先填坑,然后分治。显然是一个迭代的过程。不多赘述。
光说不干,等于扯淡,直接上代码。
1 // try.cpp : Defines the entry point for the console application. 2 // 3 4 #include "stdafx.h" 5 #define FOR(n) for (int i=0;i<n;i++) 6 //快速排序 7 int A[100]; 8 int adjust(int *a,int head,int tail){ 9 int key; 10 key=a[head];//head 为坑了 11 while(head<tail)//先让tail--找,找到小于key的,用该找到的来填坑。填完坑后tail指向新形成的坑。同理head 12 { 13 while (tail!=head) 14 { 15 if(a[tail]<=key){ 16 a[head]=a[tail];//tail为坑了 17 break; 18 } 19 tail--; 20 } 21 while (tail!=head) 22 { 23 if(a[head]>key){ 24 a[tail]=a[head];//head为坑了 25 break; 26 } 27 head++; 28 } 29 } 30 a[tail]=key;//用key填最后重合的坑 31 return tail; 32 } 33 void divide(int *point ,int tail,int head){ 34 35 int p; 36 if(tail>head){ 37 p=adjust(point,head,tail); 38 divide(point,p-1,head); 39 divide(point,tail,p+1); 40 } 41 } 42 int main(int argc, char* argv[]) 43 { 44 int n; 45 while(scanf("%d",&n)!=EOF){//input n digits 46 FOR(n){ 47 scanf("%d",A+i); 48 } 49 divide(A,n-1,0); 50 FOR(n){ 51 printf("%d",A[i]); 52 } 53 printf("\n"); 54 55 } 56 57 return 0; 58 }
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原文地址:http://www.cnblogs.com/xuexiaohei/p/4149199.html