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I am having trouble coming up with a recursive method that can solve fully parenthesized equations..such as ((3+2)/(1+4)). I was able to come up with a recursive solution for solving infix expressions like +*+3421 using recursion, but for something like ((3+2)/(1+4)) I am a little stuck.

def evalPrefix(exp):
    it = iter(exp)
    return evalPrefixInner(it)

def evalPrefixInner(it):
    item = it.next()
    if isInt(item):
        return int(item)
    else: 
        operand1 = evalPrefixInner(it)
        operand2 = evalPrefixInner(it)
        return execute(item, operand1, operand2)
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((3+2)/(1+4)) -> (5/(1+4)) -> (5/5) -> 1 ... this is how I am imagining the breaking down of the recursion should go? –  user1647372 Oct 27 '12 at 20:36
    
Glad to be of help. BTW, I rolled back question to include your original prefix-based source, as form of my answer makes more sense with it in the question. –  mackworth Oct 28 '12 at 21:29

3 Answers 3

up vote 2 down vote accepted

Your grammar is:

expr ::= int | ( expr op expr )

correct?

So, ignoring error checking, something like...

def evalExpr(it):
    item = it.next()
    if isInt(item):
        return int(item)
    else: 
        //item should = lparen
        operand1 = evalExpr(it)
        op = it.next()        
        operand2 = evalExpr(it)
        rparen = it.next() 
        return execute(op, operand1, operand2)
share|improve this answer
    
Yes this is exactly what I was looking for, ahh thanks! –  user1647372 Oct 27 '12 at 20:59

try the shunting-yard algorithm :

dic={"+":lambda x,y:x+y,
     "-":lambda x,y:x-y,
     "/":lambda x,y:x/y,
     "%":lambda x,y:x%y,
     "*":lambda x,y:x*y}

def algo(x,op=None,nums=None):
    if x != "":
        op=op if op else []
        nums=nums if nums else []
        item=x[0]
        if item in ("+","-","%","/","*"):
                op.append(item)
        if item.isdigit():
                nums.append(item)
        if item==")":
            operator=op.pop()
            opd1,opd2=int(nums.pop()),int(nums.pop())
            ans=dic[operator](opd1,opd2)
            nums.append(ans)
        return algo(x[1:],op,nums)
    else:
        if op and nums:
            operator=op.pop()
            opd1,opd2=int(nums.pop()),int(nums.pop())
            return dic[operator](opd1,opd2)
        else:
            return nums[-1]

print algo("((3+2)/(1+4))")  #output :1
print algo("((5+2)*3*(2+5))") #output :147
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Parse the input for valid data and then use the compiler module to parse the expression like so:

import compiler
expr = compiler.compile(r'((3+2)/(4+1))', 'err', 'eval')

and then you can use:

eval(expr)
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