http://acm.hdu.edu.cn/showproblem.php?pid=3437AC牛的题目,精度比较恶心,最后一组数据一个误差是0.00006 我精度用了1e-8,而标程是1e-4,卡死在最后一组数据上了。。。 这题看起来是三维的几何,其实完全可以压缩到二维来做。
1// Author : AmazingCaddy 2// 3#include<iostream> 4#include<cstdio> 5#include<cstring> 6#include<algorithm> 7#include<vector> 8#include<cmath> 9#include<complex> 10using namespace std; 11 12typedef complex<double> point; 13const double eps = 1e-4; 14const double inf = 1e20; 15const double pi = acos( -1.0 ); 16const double g = 9.18; 17 18double operator ^ ( const point p1, const point p2 ) { return imag( conj( p1 ) * p2 ); } 19double operator & ( const point p1, const point p2 ) { return real( conj( p1 ) * p2 ); } 20int dblcmp( double x ) { return ( x < -eps ? -1 : x > eps ); } 21 22struct line 23{ 24 point a, b; 25 line( ){ } 26 line( point u, point v ) : a( u ) , b( v ) { } 27}; 28 29struct POLY 30{ 31 point p[12]; 32 int n, type; 33 double h, k; 34}poly[12]; 35 36bool cmp( const POLY & a, const POLY & b ) { return ( a.h == b.h && a.type < b.type ) || a.h > b.h; } 37 38point operator*( line l0, line l1 ) 39{ 40 double t = l0.a - l1.a^ l0.b - l1.a; 41 double s = l0.b - l1.b^ l0.a - l1.b; 42 return l1.a + ( l1.b - l1.a ) * t / ( t + s ); 43} 44 45// 不是逆时针,转化成逆时针的 46void changeclockwise( POLY & P ) 47{ 48 int pn = P.n; 49 if( ( P.p[1] - P.p[0] ^ P.p[2] - P.p[0] ) < 0 ) 50 for( int i = 0; i < pn / 2; i++ ) 51 swap( P.p[i], P.p[pn-1-i] ); 52} 53 54bool point_on_segment( const point & p, const line & l ) 55{ 56 if( dblcmp( l.a - p ^ l.b - p ) ) return false; 57 if( dblcmp( l.a - p & l.b - p ) <= 0 ) return true; 58 return false; 59} 60 61bool segment_cross( const line & l1, const line l2 ) 62{ 63 point p1 = l1.a, p2 = l1.b, p3 = l2.a, p4 = l2.b; 64 if( ( dblcmp( p2 - p1 ^ p3 - p1 ) ^ dblcmp( p2 - p1 ^ p4 - p1 ) ) == -2 && 65 ( dblcmp( p4 - p3 ^ p1 - p3 ) ^ dblcmp( p4 - p3 ^ p2 - p3 ) ) == -2 ) 66 return true; 67 return false; 68} 69 70bool PointInPoly( const point & p, const POLY & Q ) 71{ 72 int qn = Q.n; 73 double area1 = 0, area2 = 0; 74 for( int i = 0; i < qn; i++ ) 75 area1 = area1 + ( Q.p[i] ^ Q.p[i+1] ); 76 for( int i = 0; i < qn; i++ ) 77 area2 = area2 + fabs( Q.p[i] - p ^ Q.p[i+1] - p ); 78 if( dblcmp( fabs( area1 ) - area2 ) == 0 ) 79 return true; 80 return false; 81} 82 83point seg_cross_poly( line l, const POLY & Q ) 84{ 85 int qn = Q.n; 86 point s; 87 for( int i = 0; i < qn; i++ ) 88 { 89 line l1 = line( Q.p[i], Q.p[i+1] ); 90 if( dblcmp( l.a - l.b ^ l1.a - l1.b ) != 0 ) 91 { 92 s = l * l1; 93 if( point_on_segment( s, l1 ) && dblcmp( s - l.a & l.b - l.a ) > 0 && !point_on_segment( s, l ) ) 94 break; 95 } 96 } 97 return s; 98} 99 100void solve( ) 101{ 102 int n; 103 double vx, vy, H, x, y,TIME; 104 scanf("%lf%lf%lf",&vx,&vy,&H); 105 point v( vx, vy ), s( 0, 0 ); // v 速度矢量,s 位移矢量 106 point s0; 107 scanf("%d",&n); 108 for( int i = 0; i < n; i++ ) 109 { 110 scanf("%lf%d",&poly[i].h,&poly[i].n); 111 for( int j = 0; j < poly[i].n; j++ ) 112 { 113 scanf("%lf%lf",&x,&y); 114 poly[i].p[j] = point( x, y ); 115 } 116 changeclockwise( poly[i] ); 117 poly[i].p[poly[i].n] = poly[i].p[0]; 118 scanf("%d%lf",&poly[i].type,&poly[i].k); 119 } 120 121 poly[n].n = 4; poly[n].h = 0; poly[n].type = 3; poly[n].k = 0; 122 poly[n].p[0] = point( 1e8, 1e8 ); 123 poly[n].p[1] = point( -1e8, 1e8 ); 124 poly[n].p[2] = point( -1e8, -1e8 ); 125 poly[n].p[3] = point( 1e8, -1e8 ); 126 poly[n].p[4] = point( 1e8, 1e8 ); 127 n++; 128 sort( poly, poly + n, cmp ); 129 130 if( dblcmp( H ) < 0 ) 131 { 132 printf("Forever!\n"); 133 return ; 134 } 135 TIME = 0.0; 136 for( int i = 0; i < n; i++ ) 137 { 138 double h = poly[i].h; 139 double k = poly[i].k; 140 if( h == 0 ) 141 { 142 TIME += sqrt( 2 * ( H - h ) / g ); 143 printf("%.2lf\n",TIME); 144 return ; 145 } 146 if( H < h ) continue; 147 double time = sqrt( 2 * ( H - h ) / g ); 148 s0 = s + v * time; 149 if( PointInPoly( s0, poly[i] ) ) 150 { 151 s = s0; 152 TIME += time; 153 H = h; 154 switch( poly[i].type ) 155 { 156 case 0: 157 v = v * point( cos( k ), sin( k ) ); 158 break; 159 160 case 1: 161 v = point( k, imag( v ) ); 162 break; 163 164 case 2: 165 v = point( real( v ), k ); 166 break; 167 } 168 if( dblcmp( abs( v ) ) == 0 ) 169 { 170 printf("Forever!\n"); 171 return ; 172 } 173 point z = seg_cross_poly( line( s, s + v ), poly[i] ); 174 TIME = TIME + abs( z - s ) / abs( v ); 175 s = z; 176 } 177 } 178} 179 180int main( ) 181{ 182 int t; 183 //freopen("in","r",stdin); 184 //freopen("out.txt","w",stdout); 185 scanf("%d",&t); 186 for( int i = 1; i <= t; i++ ) 187 { 188 printf("Case %d: ",i); 189 solve( ); 190 } 191 return 0; 192}
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