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  • 【POJ3414】Pots

    本题传送门

    本题知识点:宽度优先搜素 + 字符串

    题意很简单,如何把用两个杯子,装够到第三个杯子的水。

    操作有六种,这样就可以当作是bfs的搜索方向了

    // FILL(1) 把第一个杯子装满
    // FILL(2) 把第二个杯子装满
    // POUR(1,2) 把第一个杯子的水倒进第二个杯子
    // POUR(2,1) 把第二个杯子的水倒进第一个杯子
    // DROP(1) 把第一个杯子的水都倒掉
    // DROP(2) 把第二个杯子的水都倒掉
    

    本题的难点是如何记录路径,我们可以用一个巧妙的方法去解决掉,详细请看代码

    // POJ 3414
    #include<iostream>
    #include<cstdio>
    #include<string>
    #include<queue>
    using namespace std;
    
    bool take[102][102], ok;
    int A, B, C;
    struct node{
        string str;
        int l, r, pla[102], cnt; // cnt 记录有多少条路径
    };
    queue<node> que;
    string str[] = {
        "FILL(1)",
        "FILL(2)",
        "POUR(1,2)",
        "POUR(2,1)",
        "DROP(1)",
        "DROP(2)"
    };
    
    void show(int len, int pla[]){
        printf("%d
    ", len);
        for(int i = 1; i <= len; i++){
            cout << str[pla[i]] << endl;
        }
    }
    
    void bfs(){
        ok = false;
        take[0][0] = true;
        node a;
        a.str = "NONE";
        a.l = a.r = a.cnt = 0;
        que.push(a);
    
        while(!que.empty()){
            node next, now = que.front(); que.pop();
    
    //        cout << now.str << " ";
    //        printf("l:%d r:%d cnt:%d
    ", now.l, now.r, now.cnt);
    //        show(now.cnt, now.pla);
    //        cout << endl;
    
            if(now.l == C || now.r == C){
                show(now.cnt, now.pla);
                ok = true;
                break;
            }
    
            // FILL(1)
            if(now.l < A && !take[A][now.r]){
                next.str = str[0];
                next.l = A;
                next.r = now.r;
                // 这句循环是为了保存之前的路径 下同
                for(int i = 1; i <= now.cnt; i++){
                    next.pla[i] = now.pla[i];
                }
                next.pla[now.cnt + 1] = 0;
                next.cnt = now.cnt + 1;
                take[A][now.r] = true;
                que.push(next);
            }
    
            // FILL(2)
            if(now.r < B && !take[now.l][B]){
                next.str = str[1];
                next.l = now.l;
                next.r = B;
                for(int i = 1; i <= now.cnt; i++){
                    next.pla[i] = now.pla[i];
                }
                next.pla[now.cnt + 1] = 1;
                next.cnt = now.cnt + 1;
                take[now.l][B] = true;
                que.push(next);
            }
    
            // POUR(1, 2)
            if(0 < now.l && now.r < B){
                int R = now.l + now.r >= B ? B : now.l + now.r;
                int L = R - now.r >= now.l ? 0 : now.l - (R - now.r);
                if(!take[L][R]){
                    next.str = str[2];
                    next.l = L;
                    next.r = R;
                    for(int i = 1; i <= now.cnt; i++){
                        next.pla[i] = now.pla[i];
                    }
                    next.pla[now.cnt + 1] = 2;
                    next.cnt = now.cnt + 1;
                    take[L][R] = true;
                    que.push(next);
                }
            }
    
            // POUR(2,1)
            if(now.l < A && 0 < now.r){
                int L = now.l + now.r >= A ? A : now.l + now.r;
                int R = L - now.l >= now.r ? 0 : now.r - (L - now.l);
                if(!take[L][R]){
                    next.str = str[3];
                    next.l = L;
                    next.r = R;
                    for(int i = 1; i <= now.cnt; i++){
                        next.pla[i] = now.pla[i];
                    }
                    next.pla[now.cnt + 1] = 3;
                    next.cnt = now.cnt + 1;
                    take[L][R] = true;
                    que.push(next);
                }
            }
    
            // DROP(1)
            if(!take[0][now.r]){
                next.str = str[4];
                next.l = 0;
                next.r = now.r;
                for(int i = 1; i <= now.cnt; i++){
                    next.pla[i] = now.pla[i];
                }
                next.cnt = now.cnt + 1;
                next.pla[now.cnt + 1] = 4;
                take[0][now.r] = true;
                que.push(next);
            }
    
            // DROP(2)
            if(!take[now.l][0]){
                next.str = str[5];
                next.l = now.l;
                next.r = 0;
                for(int i = 1; i <= now.cnt; i++){
                    next.pla[i] = now.pla[i];
                }
                next.cnt = now.cnt + 1;
                next.pla[now.cnt + 1] = 5;
                take[now.l][0] = true;
                que.push(next);
            }
    
        }
    
        if(!ok) printf("impossible
    ");
    }
    
    int main()
    {
        scanf("%d %d %d", &A, &B, &C);
    
        bfs();
    
        return 0;
    }
    
    
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  • 原文地址:https://www.cnblogs.com/Ayanowww/p/11576026.html
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