Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have been looking without much luck for an implementation of Python that converts infix to prefix that ranges on a sufficient amount of arithmetic and logic operators and care about its properties on a good python implementation. More specifically I am interested on the operators that would appear on a conditional clause of a C program. (e.g. it would transform a > 0 && b > 1 in prefix.

Since I am still newbie to Python I would appreciate if anyone could offer me the implementation or some tips on going about this.

I found an implementation around the internet that I lost the reference for (below), but it only cares about the more simple operators. I am a little clueless on how to do this on this version, and if anyone knew a version that already included all the operators I would appreciate to avoid any operator being ignored by accident.

Such implementation should also account for parenthesis.

Please comment if you need more details!

Thank you.

def parse(s):
for operator in ["+-", "*/"]:
    depth = 0
    for p in xrange(len(s) - 1, -1, -1):
        if s[p] == ')': depth += 1
        if s[p] == '(': depth -= 1
        if not depth and s[p] in operator:
            return [s[p]] + parse(s[:p]) + parse(s[p+1:])
s = s.strip()
if s[0] == '(':
    return parse(s[1:-1])
return [s]
share|improve this question

1 Answer 1

up vote 1 down vote accepted

I don't quite have time to write an implementation right now, but here is an implementation I wrote that converts infix to postfix (reverse polish) notation. It shouldn't be too hard to do the modify this algorithm to do prefix instead:

  • ops is the set() of operator tokens.
  • prec is a dict() containing operand tokens as keys and an integer for operator precedence as it's values (e.g { "+": 0, "-": 0, "*": 1, "/": 1})
  • Use regular expressions to parse a string into a list of tokens.

(really, ops and prec could just be combined)

def infix_postfix(tokens):
    output = []
    stack = []
    for item in tokens:
        #pop elements while elements have lower precedence
        if item in ops:
            while stack and prec[stack[-1]] >= prec[item]:
                output.append(stack.pop())
            stack.append(item)
        #delay precedence. append to stack
        elif item == "(":
            stack.append("(")
        #flush output until "(" is reached
        elif item == ")":
            while stack and stack[-1] != "(":
                output.append(stack.pop())
            #should be "("
            print stack.pop()
        #operand. append to output stream
        else:
            output.append(item)
    #flush stack to output
    while stack:
        output.append(stack.pop())
    return output
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.