题解 | #表达式求值#
表达式求值
https://www.nowcoder.com/practice/c215ba61c8b1443b996351df929dc4d4
#include <cctype>
#include <string>
class Solution {
public:
/**
* 代码中的类名、方法名、参数名已经指定,请勿修改,直接返回方法规定的值即可
*
* 返回表达式的值
* @param s string字符串 待计算的表达式
* @return int整型
*/
int solve(string s) {
stack<char> operatorStack; //运算符栈
stack<int> numStack; //操作数栈
for (int i = 0; i < s.size(); ++i) {
if (isdigit(s[i])) {
int num = 0;
while (i < s.size() && isdigit(s[i])) {
num = num * 10 + (s[i] - '0');
i++;
}
numStack.push(num);
i--;
} else if (s[i] == '(') {
operatorStack.push(s[i]);
} else if (s[i] == ')') {
//计算括号内的运算
while (!operatorStack.empty() && operatorStack.top() != '(') {
int value1 = numStack.top();
numStack.pop();
int value2 = numStack.top();
numStack.pop();
char op = operatorStack.top();
operatorStack.pop();
numStack.push(calculate(value2, value1, op));
}
//将左括号出栈
operatorStack.pop();
} else {
//假如是运算符 并且当前运算符的优先级要小于等于运算符栈顶的运算符 弹出操作数栈的上面两个元素与运算符栈顶的运算符计算
while (!operatorStack.empty() &&
getPriority(operatorStack.top()) >= getPriority(s[i])) {
int value1 = numStack.top();
numStack.pop();
int value2 = numStack.top();
numStack.pop();
char op = operatorStack.top();
operatorStack.pop();
numStack.push(calculate(value2, value1, op));
}
operatorStack.push(s[i]);
}
}
//判读运算符栈是否还有运算符 如果还有就把剩余的计算完
while (!operatorStack.empty()) {
int value1 = numStack.top();
numStack.pop();
int value2 = numStack.top();
numStack.pop();
char op = operatorStack.top();
operatorStack.pop();
numStack.push(calculate(value2, value1, op));
}
return numStack.top();
}
//获取优先级
int getPriority(char ch) {
switch (ch) {
case '+':
case '-':
return 1;
case '*':
return 2;
default:
return 0;
}
}
//计算
int calculate(int value1, int value2, char op) {
switch (op) {
case '+':
return value1 + value2;
case '-':
return value1 - value2;
case '*':
return value1 * value2;
default:
return 0;
}
}
};
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