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Hello) This is my code for converting from a infix expression to a postfix one , however I just can't understand how can I evaluate the postfix expression that I get and I will be very grateful for any tips. I am not asking for a code although that would be helpful.

#include <iostream> 
#include <stack> 
#include <string>

using namespace std; 
bool operation(char b) 
{
    return b=='+' || b=='-' || b=='*' || b=='/' ; 

} 

bool priority(char a, char b) 
{
    if(a=='(')
    {
        return true; 
    } 
    if(a=='+' || a=='-') 
    {
        return true; 

    } 
    if(b=='+' || b=='-') 
    {
        return false; 
    } 

    return true; 

} 
int main() 
{

    string a;
    string res; 
    stack<char> s; 
        cin>>a; 
    for(int i=0; i<a.size(); i++) 
    {
        if(a[i]!='(' && a[i]!=')' && operation(a[i])==false) 
        {

            res=res+a[i]; 
        } 
        if(a[i]=='(') 
        {
            s.push(a[i]) ; 
        } 
        if(a[i]==')') 
        {
            while(s.top()!='(') 
            {
                res+=s.top(); 
                s.pop();
            }
            s.pop(); 
        } 
        if(operation(a[i])==true) 
        {
            if(s.empty() || (s.empty()==false && priority(s.top(), a[i])) ) 
            {
                s.push(a[i]); 
            }
            else 
            {
                while(s.empty()==false && priority(s.top(),a[i])==false ) 
                { 
                    res+=s.top(); 
                    s.pop(); 
                }
                s.push(a[i]) ; 
            }

        } 

    } 
    while(s.empty()==false) 
    {
        res+=s.top(); 
        s.pop(); 
    } 
    cout<<res; 




    return 0; 
} 

P.S. I don't have any comments but I suppose that the code itself is self-explanatory))
P.P.S. Thank you in advance.

share|improve this question
2  
Typically, it's easier to learn something if you actually try. Maybe write down the steps on a piece of paper (or document in a text editor if you like), and follow the flow - start with something simple, then work your way up to (a + (b + c * d) / e) and such. –  Mats Petersson Mar 2 at 14:25
    
Tried, got it working only if I have two operands. I would not post this question here if I could figure it out on my own. –  David_D Mar 2 at 14:26
1  
But you are not showing what you have done so far... –  Mats Petersson Mar 2 at 14:28
    
Yeah, I posted the part that actually worked and did not look that awful. So can you help me or not ? –  David_D Mar 2 at 14:30
    
The idea is really that YOU do the work (this is clearly for learning purposes, so YOU are the one that needs to learn, and you don't really learn anything by reading/copying someone elses code!), we give you advice. Maybe you are looking for wedoyourhomeworkforyou.com? –  Mats Petersson Mar 2 at 14:42

1 Answer 1

If you form your posfix expression separated by space, following will be one of the easiest way to code the evaluator, just merely following the algorithm of evaluation

This assumes RPN like 5 1 2 + 4 * + 3 - (separated by space)

int evaluate_posfix ( const std::string& expression )
{

    int l,r,ans;
    std::stringstream postfix(expression);
    std::vector<int> temp;
    std::string s;
    while ( postfix >> s )
    {
        if( operation(s[0]) )
        {
            //Pull out top two elements
            r = temp.back();
            temp.pop_back();
            l = temp.back();
            temp.pop_back();
            // Perform the maths
            switch( s[0])
            {
                case '+': ans =  l + r ; break;
                case '-': ans =  l - r ; break;
                case '*': ans =  l * r ; break;
                case '/': ans =  l / r ; break; // check if r !=0
            }

            temp.push_back( ans ); // push the result of above operation
        }
        else
        {
            temp.push_back( std::stoi(s) );
        }
    }

    return temp[0] ; //last element is the answer
} 
share|improve this answer
    
This is untested code, you need to follow it and accordingly modify it as per your need. Its just basic approach. –  P0W Mar 2 at 14:46
    
Thank you !)) This is really helpful)) –  David_D Mar 2 at 14:48

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