1. 题目
三合一。描述如何只用一个数组来实现三个栈。
你应该实现push(stackNum, value)、pop(stackNum)、isEmpty(stackNum)、peek(stackNum)方法。stackNum 表示栈下标,value 表示压入的值。
构造函数会传入一个stackSize参数,代表每个栈的大小。
示例1:输入:
["TripleInOne", "push", "push", "pop", "pop", "pop", "isEmpty"]
[[1], [0, 1], [0, 2], [0], [0], [0], [0]]输出:
[null, null, null, 1, -1, -1, true]
说明:当栈为空时`pop, peek`返回-1,当栈满时`push`不压入元素。示例2:输入:
["TripleInOne", "push", "push", "push", "pop", "pop", "pop", "peek"]
[[2], [0, 1], [0, 2], [0, 3], [0], [0], [0], [0]]输出:
[null, null, null, null, 2, 1, -1, -1]
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/three-in-one-lcci
著作权归领扣网络所有。商业转载请联系官方授权,非商业转载请注明出处。
2. 解题
class TripleInOne {int n, v;int size;vector<int> tail;//尾指针位置vector<int> stk;
public:TripleInOne(int stackSize) {n = stackSize;size = 3*stackSize;stk.resize(size);tail.resize(3);tail[0] = 0, tail[1] = stackSize, tail[2] = 2*stackSize;}void push(int stackNum, int value) {if(tail[stackNum] < (stackNum+1)*n ){stk[tail[stackNum]] = value;tail[stackNum]++;}}int pop(int stackNum) {if(tail[stackNum] == stackNum*n)return -1;v = stk[tail[stackNum]-1];tail[stackNum]--;return v;}int peek(int stackNum) {if(tail[stackNum] == stackNum*n)return -1;return stk[tail[stackNum]-1];}bool isEmpty(int stackNum) {return tail[stackNum]==stackNum*n;}
};
/ LeetCode 37. 解数独)
)
)
))
)
)
