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I have a string such as '(((a+b)+a)+c)' which I'd like to break into two parts, the result would be ('((a+b)+a)','c').

If I were to run it again on the first element of the result it would give me ('(a+b)', 'a')

and if I ran it again on '(a+b)' it would return ('a', 'b').

I was thinking I could do this via a regular expression but I couldn't figure this out and went down the path of having many if statements checking for opening and closing brackets but it gets a bit messy

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  • not sure how this is too broad... – WeakLearner May 26 '17 at 7:05
  • Spontaneously I'd say you need a parser. – klutt May 26 '17 at 7:06
  • @dimebucker91 what you really want to do is to solve the operation or simply split the string? – Alberto May 26 '17 at 7:24
  • @AlbertoLópezPérez just split the string – WeakLearner May 26 '17 at 7:52
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Here is an example that works on examples such as yours:

def breakit(s):
    count = 0
    for i, c in enumerate(s):
        if count == 1 and c in '+-':
            return s[1:i].strip(), s[i+1:-1].strip()
        if c == '(': count +=1
        if c == ')': count -= 1
    return s

breakit(s)
>> ('((a+b)+a)', 'c')
breakit(_[0])
('(a+b)', 'a')
breakit(_[0])
('a', 'b')
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voila:

#!/usr/bin/python3.5
def f(s):
    p=s.rsplit('+',1)
    return [p[0][1:],p[1][:-1]]

s='(((a+b)+a)+c)'

for i in range(3):
    k=f(s)
    s=k[0]
    print(k)

output:

['((a+b)+a)', 'c']
['(a+b)', 'a']
['a', 'b']
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  • that doesn't work for all cases.. for example (((a+b)+c) + (a+b)) – WeakLearner May 26 '17 at 7:29
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I thought I'd post my answer as well, not quite as elegant as the chosen solution but it works

def break_into_2(s):

    if len(s) == 1: 
        # limiting case
        return s

    # s[0] can either be a digit or '('
    if s[0].isdigit():
        # digit could be 10,100,1000,...
        idx = 0
        while s[idx].isdigit():
            idx += 1
        a = s[:idx]
        b = s[idx+1:]
        return a, b
    # otherwise, s[0] = '('
    idx = 1
    counter = 1
    # counter tracks opening and closing parenthesis
    # when counter = 0, the left side expression has
    # been found, return the idx at which this happens
    while counter:
        if s[idx] == '(':
            counter+=1
        elif s[idx] == ')':
            counter -=1
        idx +=1
    if s[:idx] == s:
        # this case occurs when brackets enclosing entire expression, s
        # runs the function again with the same expression from idxs 1:-1
        return break_into_2(s[1:-1])
    return s[:idx], s[idx+1:]

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