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I am trying to understand this piece of code. What it does it postfix expression evaluation. I am having problems understanding the code. I will be very thankful if anyone can help me out.

#include <iostream>
#include <cstring>
#include <stack>
using namespace std;
int main()
{


    //suppose a contains the string..
    //n is the length of string...
    char a[10]="A+B/C";
    int n = strlen(a)
    stack<int>s;
    for (int i=0;i<n;i++)
    {
        if (a[i]=='+')
        {
            s.push(s.pop()+s.pop());
            int temp1 = s.top();
            s.pop();
            int temp2 = s.top();
            s.pop();
            s.push(temp1 * temp2);
        }
        if (a[i]=='*')
            s.push(s.pop() * s.pop());

        if ((a[i]>='0') && (a[i]<='9'))
            s.push(0);
        while ((a[i]>='0') && (a[i]<='9'))
            s.push(10*s.pop()+(a[i++]-'0'));
    }

    cout<<s.pop()<<endl;

    return 0;
}

Thanks in advance.

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1  
have you wrote that example for a? because it's not postfix. –  Karoly Horvath Oct 11 '11 at 22:20
    
What's the question? –  AJG85 Oct 11 '11 at 22:30
    
stack::pop() is a void function. <whistle/> This code is a mess. Just search for postfix calculator on SO and you'll find a few dozen (better) snippets of this –  sehe Oct 11 '11 at 22:44
1  
for fun and giggles, here's one I wrote up long time ago: stackoverflow.com/questions/5631345/… –  sehe Oct 11 '11 at 22:46
    
I fixed the indentation (it looked like the result of mixed spaces and tabs being expanded incorrectly), but there's still a missing semicolon and of course the incorrect use of pop(). –  Keith Thompson Oct 16 '11 at 7:02

1 Answer 1

This site looks to be a good resource on what's happening here, but the expression should use numbers, not letters.

Say you have the infix expression 1+2*3-4*5. The corresponding postfix would be 123*+45*-. First, you start by scanning the string from left to right. The first three numbers are operands so they will be stored on the stack in the order 1 (bottom), 2 (middle), 3 (top). Next, there is a * operator. To deal with this, pop the first two operands off of the stack and multiply them (the first one popped is the right operand and the second is the left). This will evaluate to 2*3=6, and 6 will be stored on the stack, making it 1, 6.

Next, there is a + operator. 1 and 6 are popped and added and 7 is stored on the stack. After this, 4 and 5 are pushed on the stack as well (7, 4, 5). The next character is another * operator, so it evaluates 4*5=20 and pushes 20 onto the stack (7, 20).

Finally, there is a - operator. 7 and 20 are popped and evaluated as 7-20=(-13). This is pushed onto the stack and is ready to be popped as your final answer.

Hope that helps clear up any confusion (assuming I read your question correctly).

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