简单计算器
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 19060 Accepted Submission(s): 6711
Problem Description
读入一个只包含 +, -, *, / 的非负整数计算表达式,计算该表达式的值。
Input
测试输入包含若干测试用例,每个测试用例占一行,每行不超过200个字符,整数和运算符之间用一个空格分隔。没有非法表达式。当一行中只有0时输入结束,相应的结果不要输出。
Output
对每个测试用例输出1行,即该表达式的值,精确到小数点后2位。
Sample Input
1 + 2
4 + 2 * 5 - 7 / 11
0
Sample Output
3.00
13.36
Source
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模拟计算
代码:
#include<iostream> #include<cstdio> #include<cstring> #include<stack> using namespace std; int main() { char ch[420]; while(gets(ch)&&strcmp(ch,"0")) { stack<char>s; stack<double>n; for(int i=0;ch[i];i++) { if(ch[i]>='0'&&ch[i]<='9') { double tem=0; while(ch[i]>='0'&&ch[i]<='9') { tem=tem*10+ch[i]-'0'; i++; } i--; n.push(tem); } else if(ch[i]=='+'||ch[i]=='-') { if(!s.empty()) { char c=s.top(); s.pop(); double x1=n.top(); n.pop(); double x2=n.top(); n.pop(); if(c=='+') x2+=x1; else x2-=x1; n.push(x2); } s.push(ch[i]); } else if(ch[i]=='*'||ch[i]=='/') { double x1=n.top(); n.pop(); double x2=0; int j=i; i+=2; while(ch[i]>='0'&&ch[i]<='9') { x2=x2*10+ch[i]-'0'; i++; } i--; if(ch[j]=='*') x1*=x2; else x1/=x2; n.push(x1); } } while(!s.empty()) { char c=s.top(); s.pop(); double x1=n.top(); n.pop(); double x2=n.top(); n.pop(); if(c=='+') x2+=x1; else x2-=x1; n.push(x2); } printf("%.2lf ",n.top()); } return 0; }