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Description
Implement a basic calculator to evaluate a simple expression string.
The expression string may contain open ( and closing parentheses ), the plus + or minus sign -, non-negative integers and empty spaces .
Example 1:
Input: "1 + 1"
Output: 2
Example 2:
Input: " 2-1 + 2 "
Output: 3
Example 3:
Input: "(1+(4+5+2)-3)+(6+8)"
Output: 23
Note:
- You may assume that the given expression is always valid.
- Do not use the eval built-in library function.
分析
- 题目的大致意思是:实现一个加减运算,但是包含括号。
- 这是一道栈的题目,就是一个栈的模拟过程,把+,-符号当成数的正负值,然后依次相加就行,遇见左括号就数字和操作符号分别入栈,遇见右括号就出栈计算
- 如果不是很明白,这种题目,自己手工模拟一下就行了
代码
class Solution {
public:
int calculate(string s) {
stack<int> nums,ops;
int num=0;
int result=0;
int sign=1;
for(char c:s){
if(isdigit(c)){
num=num*10+c-'0';
}else{
result+=sign*num;
num=0;
switch(c){
case '+':
sign=1;
break;
case '-':
sign=-1;
break;
case '(':
nums.push(result);
ops.push(sign);
result=0;
sign=1;
break;
case ')':
if(ops.size()>0){
result=ops.top()*result+nums.top();
nums.pop();
ops.pop();
}
}
}
}
result+=sign*num;
return result;
}
};