Aragorn’s Story
Time Limit: 10000/3000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 1321 Accepted Submission(s): 344
Problem Description Our protagonist is the handsome human prince Aragorn comes from The Lord of the Rings. One day Aragorn finds a lot of enemies who want to invade his kingdom. As Aragorn knows, the enemy has N camps out of his kingdom and M edges connect them. It is guaranteed that for any two camps, there is one and only one path connect them. At first Aragorn know the number of enemies in every camp. But the enemy is cunning , they will increase or decrease the number of soldiers in camps. Every time the enemy change the number of soldiers, they will set two camps C1 and C2. Then, for C1, C2 and all camps on the path from C1 to C2, they will increase or decrease K soldiers to these camps. Now Aragorn wants to know the number of soldiers in some particular camps real-time.
Input Multiple test cases, process to the end of input.
For each case, The first line contains three integers N, M, P which means there will be N(1 ≤ N ≤ 50000) camps, M(M = N-1) edges and P(1 ≤ P ≤ 100000) operations. The number of camps starts from 1.
The next line contains N integers A1, A2, …AN(0 ≤ Ai ≤ 1000), means at first in camp-i has Ai enemies.
The next M lines contains two integers u and v for each, denotes that there is an edge connects camp-u and camp-v.
The next P lines will start with a capital letter ‘I’, ‘D’ or ‘Q’ for each line.
‘I’, followed by three integers C1, C2 and K( 0≤K≤1000), which means for camp C1, C2 and all camps on the path from C1 to C2, increase K soldiers to these camps.
‘D’, followed by three integers C1, C2 and K( 0≤K≤1000), which means for camp C1, C2 and all camps on the path from C1 to C2, decrease K soldiers to these camps.
‘Q’, followed by one integer C, which is a query and means Aragorn wants to know the number of enemies in camp C at that time.
Output For each query, you need to output the actually number of enemies in the specified camp.
Sample Input 3 2 5 1 2 3 2 1 2 3 I 1 3 5 Q 2 D 1 2 2 Q 1 Q 3
Sample Output 7 4 8
Hint 1.The number of enemies may be negative. 2.Huge input, be careful.
Source
2011 Multi-University Training Contest 13 – Host by HIT
裸的树链剖分的入门题;
我是套的树状数组实现的
1 /* *********************************************** 2 Author :kuangbin 3 Created Time :2013/8/14 23:14:27 4 File Name :F:\2013ACM练习\专题学习\数链剖分\HDU3966.cpp 5 ************************************************ */ 6 #pragma comment(linker, "/STACK:1024000000,1024000000") 7 #include <stdio.h> 8 #include <string.h> 9 #include <iostream> 10 #include <algorithm> 11 #include <vector> 12 #include <queue> 13 #include <set> 14 #include <map> 15 #include <string> 16 #include <math.h> 17 #include <stdlib.h> 18 #include <time.h> 19 using namespace std; 20 const int MAXN = 50010; 21 struct Edge 22 { 23 int to,next; 24 }edge[MAXN*2]; 25 int head[MAXN],tot; 26 int top[MAXN]; 27 int fa[MAXN]; 28 int deep[MAXN]; 29 int num[MAXN]; 30 int p[MAXN]; 31 int fp[MAXN]; 32 int son[MAXN]; 33 int pos; 34 void init() 35 { 36 tot = 0; 37 memset(head,-1,sizeof(head)); 38 pos = 1;//使用树状数组,编号从头1开始 39 memset(son,-1,sizeof(son)); 40 } 41 void addedge(int u,int v) 42 { 43 edge[tot].to = v; edge[tot].next = head[u]; head[u] = tot++; 44 } 45 void dfs1(int u,int pre,int d) 46 { 47 deep[u] = d; 48 fa[u] = pre; 49 num[u] = 1; 50 for(int i = head[u];i != -1; i = edge[i].next) 51 { 52 int v = edge[i].to; 53 if(v != pre) 54 { 55 dfs1(v,u,d+1); 56 num[u] += num[v]; 57 if(son[u] == -1 || num[v] > num[son[u]]) 58 son[u] = v; 59 } 60 } 61 } 62 void getpos(int u,int sp) 63 { 64 top[u] = sp; 65 p[u] = pos++; 66 fp[p[u]] = u; 67 if(son[u] == -1) return; 68 getpos(son[u],sp); 69 for(int i = head[u];i != -1;i = edge[i].next) 70 { 71 int v = edge[i].to; 72 if( v != son[u] && v != fa[u]) 73 getpos(v,v); 74 } 75 } 76 77 //树状数组 78 int lowbit(int x) 79 { 80 return x&(-x); 81 } 82 int c[MAXN]; 83 int n; 84 int sum(int i) 85 { 86 int s = 0; 87 while(i > 0) 88 { 89 s += c[i]; 90 i -= lowbit(i); 91 } 92 return s; 93 } 94 void add(int i,int val) 95 { 96 while(i <= n) 97 { 98 c[i] += val; 99 i += lowbit(i); 100 } 101 } 102 void Change(int u,int v,int val)//u->v的路径上点的值改变val 103 { 104 int f1 = top[u], f2 = top[v]; 105 int tmp = 0; 106 while(f1 != f2) 107 { 108 if(deep[f1] < deep[f2]) 109 { 110 swap(f1,f2); 111 swap(u,v); 112 } 113 add(p[f1],val); 114 add(p[u]+1,-val); 115 u = fa[f1]; 116 f1 = top[u]; 117 } 118 if(deep[u] > deep[v]) swap(u,v); 119 add(p[u],val); 120 add(p[v]+1,-val); 121 } 122 int a[MAXN]; 123 int main() 124 { 125 //freopen("in.txt","r",stdin); 126 //freopen("out.txt","w",stdout); 127 int M,P; 128 while(scanf("%d%d%d",&n,&M,&P) == 3) 129 { 130 int u,v; 131 int C1,C2,K; 132 char op[10]; 133 init(); 134 for(int i = 1;i <= n;i++) 135 { 136 scanf("%d",&a[i]); 137 } 138 while(M--) 139 { 140 scanf("%d%d",&u,&v); 141 addedge(u,v); 142 addedge(v,u); 143 } 144 dfs1(1,0,0); 145 getpos(1,1); 146 memset(c,0,sizeof(c)); 147 for(int i = 1;i <= n;i++) 148 { 149 add(p[i],a[i]); 150 add(p[i]+1,-a[i]); 151 } 152 while(P--) 153 { 154 scanf("%s",op); 155 if(op[0] == 'Q') 156 { 157 scanf("%d",&u); 158 printf("%d\n",sum(p[u])); 159 } 160 else 161 { 162 scanf("%d%d%d",&C1,&C2,&K); 163 if(op[0] == 'D') 164 K = -K; 165 Change(C1,C2,K); 166 } 167 } 168 } 169 return 0; 170 }
