我的程序将表达式简化为一个值。
我有一个改变“字符符号”作为动作特征的问题。您能告诉我一些简单的解决方案或想法吗?
我试过了:
(tab[i]-'0') 'sign' (tab[i+1]-'0');
这是完整的代码:
#include <cstdlib>
#include <iostream>
using namespace std;
int main(int argc, char *argv[])
{
char* tab = "12+";
int b = sizeof (tab);
char* tmp = new char[b] ;
tmp [b-1] = '\0';
int k = b/3;
for(int i=0; i<k; i++){
if(isdigit(tab[i]) && isdigit(tab[i+1]) ){
if(tab[i+2]=='+' || tab[i+2]=='-' || tab[i+2]=='*'){
char sign = tab[i+2];
int n = (tab[i]-'0') + (tab[i+1]-'0'); //here is a problem, i want to replice + as a char sign which will be recognized
tmp[i] = n+'0';
}
else goto LAB;
}
else if (isdigit(tab[i]) && isdigit(tab[i+2])){
}
else if (isdigit(tab[i+1]) && isdigit(tab[i+2])){
}
else
LAB:
tmp[i]= tab[i];
}
cout<<"Import "<<tmp[0]-'0'<<endl;
system("PAUSE");
return EXIT_SUCCESS;
}
最佳答案
您不能用用户给定的符号替换运算符或函数名,因为编译器必须知道应调用哪个函数,并且没有机制可以将“ +”字符转换为语言中嵌入的operator+(int, int)调用。您必须自己编写。
最简单的解决方案是显式地编写要支持的每个运算符:
int n;
switch(tab[i+2]){
case '+':
n = (tab[i]-'0') + (tab[i+1]-'0');
break;
case '-':
n = (tab[i]-'0') - (tab[i+1]-'0');
break;
// etc...
}