• NYOJ 298 点的变换


      题目链接:298 点的变换

      这题放在矩阵快速幂里,我一开始想不透它是怎么和矩阵搭上边的,然后写了个暴力的果然超时,上网看了题解后,发现竟然能够构造一些精巧的矩阵来处理,不得不说实在太强大了! http://blog.csdn.net/lyhvoyage/article/details/39755595

      然后我的代码是:

      1 #include<cstdio>
      2 #include<cstring>
      3 #include<cmath>
      4 #include<cstdlib>
      5 #include<iostream>
      6 using namespace std;
      7 #define For(i,s,t)    for(int i=s; i<=t; ++i)
      8 const double pi= acos(-1.0);
      9 
     10 struct matrix{
     11     int r,c;
     12     double a[5][5];
     13     matrix(): r(3),c(3){
     14         memset(a,0,sizeof(a));
     15         a[3][3]= 1.0;
     16     }
     17     matrix(char ch){
     18         new (this)matrix();
     19         if(ch=='x' || ch=='X'){
     20             a[1][1]= 1.0;
     21             a[2][2]= -1.0;
     22         }
     23         else if(ch=='y' || ch== 'Y'){
     24             a[2][2]= 1.0;
     25             a[1][1]= -1.0;
     26         }
     27         else if(ch=='E'){
     28             a[1][1]= a[2][2]= 1.0;
     29         }
     30     }
     31     matrix(double p, char ch){
     32         new (this)matrix();
     33         if(ch=='s' || ch== 'S'){
     34             a[1][1]= a[2][2]= p;
     35         }
     36         else if(ch=='r' || ch=='R'){
     37             a[1][1]= a[2][2]= cos(p);
     38             a[1][2]= sin(p);
     39             a[2][1]= -sin(p);
     40         }
     41     }
     42     matrix(double dx, double dy, char ch){
     43         if(ch=='p'|| ch=='P'){
     44             new (this)matrix();
     45             r= 1;
     46             a[1][1]= dx;
     47             a[1][2]= dy;
     48             a[1][3]= 1.0;
     49         }
     50         else if(ch=='M' || ch=='m'){
     51             new (this)matrix();
     52             a[1][1]= a[2][2]= 1.0;
     53             a[3][1]= dx;
     54             a[3][2]= dy;
     55         }
     56     }
     57     matrix operator *(const matrix &m2) const {
     58         matrix mul;
     59         mul.r= r;
     60         mul.c= m2.c;
     61         mul.a[3][3]= 0.0;
     62         For(i,1,r)    For(j,1,m2.c)    For(k,1,c)
     63             mul.a[i][j]+= a[i][k]*m2.a[k][j];
     64         return mul;    
     65     }
     66 } point[10005];
     67 
     68 int main()
     69 {
     70     int n,m;
     71     scanf("%d%d",&n,&m);
     72     double x,y;
     73     for(int i=1; i<=n; ++i){
     74         scanf("%lf %lf",&x,&y);
     75         point[i]= matrix(x,y,'p');
     76     }
     77     matrix ans('E');
     78     while(m--){
     79         char ch;
     80         cin>>ch;
     81         if(ch =='X')    ans= ans*matrix('X');
     82         else if(ch=='Y')    ans= ans*matrix('Y');
     83         else if(ch=='M'){
     84             double dx,dy;
     85             scanf("%lf %lf",&dx,&dy);
     86             ans= ans*matrix(dx,dy,'M');
     87         }
     88         else if(ch=='S'){
     89             double p;
     90             scanf("%lf",&p);
     91             ans= ans*matrix(p,'S');
     92         }
     93         else if(ch=='R'){
     94             double rad;
     95             scanf("%lf",&rad);
     96             rad= rad/180*pi;
     97             ans= ans*matrix(rad,'R');
     98         }
     99     }
    100     for(int i=1; i<=n; ++i){
    101         point[i]= point[i]*ans;
    102         printf("%.1f %.1f
    ",point[i].a[1][1],point[i].a[1][2]);
    103     }
    104     return 0;
    105 }
    View Code

      还是第一次写了超过100行的代码,调试了好久了,唉~~

      然后,稍微作了下更改,还有另一个版本的:

      1 #include<cstdio>
      2 #include<cstring>
      3 #include<cmath>
      4 #include<cstdlib>
      5 using namespace std;
      6 #define For(i,s,t)    for(int i=s; i<=t; ++i)
      7 const double pi= acos(-1.0);
      8 
      9 struct matrix{
     10     int r,c;
     11     double a[5][5];
     12     void init(int r=3, int c=3){
     13         this->r = r;
     14         this->c = c;
     15         memset(a,0,sizeof(a));
     16         a[3][3]= 1.0;
     17     }
     18     matrix() {    init();    }
     19     matrix(char ch){
     20         init();
     21         if(ch=='x' || ch=='X'){
     22             a[1][1]= 1.0;
     23             a[2][2]= -1.0;
     24         }
     25         else if(ch=='y' || ch== 'Y'){
     26             a[2][2]= 1.0;
     27             a[1][1]= -1.0;
     28         }
     29         else if(ch=='E'){
     30             a[1][1]= a[2][2]= 1.0;
     31         }
     32     }
     33     matrix(double p, char ch){
     34         init();
     35         if(ch=='s' || ch== 'S'){
     36             a[1][1]= a[2][2]= p;
     37         }
     38         else if(ch=='r' || ch=='R'){
     39             a[1][1]= a[2][2]= cos(p);
     40             a[1][2]= sin(p);
     41             a[2][1]= -sin(p);
     42         }
     43     }
     44     matrix(double dx, double dy, char ch){
     45         if(ch=='p'|| ch=='P'){
     46             init(1,3);
     47             a[1][1]= dx;
     48             a[1][2]= dy;
     49             a[1][3]= 1.0;
     50         }
     51         else if(ch=='M' || ch=='m'){
     52             init();
     53             a[1][1]= a[2][2]= 1.0;
     54             a[3][1]= dx;
     55             a[3][2]= dy;
     56         }
     57     }
     58     matrix operator *(const matrix &m2) const {
     59         matrix mul;
     60         mul.init(r,m2.c);
     61         mul.a[3][3]= 0.0;
     62         For(i,1,r)    For(j,1,m2.c)    For(k,1,c)
     63             mul.a[i][j]+= a[i][k]*m2.a[k][j];
     64         return mul;    
     65     }
     66 } point[10005];
     67 
     68 int main()
     69 {
     70     int n,m;
     71     scanf("%d%d",&n,&m);
     72     double x,y;
     73     for(int i=1; i<=n; ++i){
     74         scanf("%lf %lf",&x,&y);
     75         point[i]= matrix(x,y,'p');
     76     }
     77     matrix ans('E');
     78     while(m--){
     79         getchar();
     80         char ch= getchar();
     81         if(ch =='X')    ans= ans*matrix('X');
     82         else if(ch=='Y')    ans= ans*matrix('Y');
     83         else if(ch=='M'){
     84             double dx,dy;
     85             scanf("%lf %lf",&dx,&dy);
     86             ans= ans*matrix(dx,dy,'M');
     87         }
     88         else if(ch=='S'){
     89             double p;
     90             scanf("%lf",&p);
     91             ans= ans*matrix(p,'S');
     92         }
     93         else if(ch=='R'){
     94             double rad;
     95             scanf("%lf",&rad);
     96             rad= rad/180*pi;
     97             ans= ans*matrix(rad,'R');
     98         }
     99     }
    100     for(int i=1; i<=n; ++i){
    101         point[i]= point[i]*ans;
    102         printf("%.1f %.1f
    ",point[i].a[1][1],point[i].a[1][2]);
    103     }
    104     return 0;
    105 }
    View Code
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  • 原文地址:https://www.cnblogs.com/Newdawn/p/4445533.html
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