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Kind of like this question, but in reverse.

Given a string like 1, 1/2, or 1 2/3, what's the best way to convert it into a float? I'm thinking about using regexes on a case-by-case basis, but perhaps someone knows of a better way, or a pre-existing solution. I was hoping I could just use eval, but I think the 3rd case prevents that.

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maybe something like this (2.6+)

from fractions import Fraction
float(sum(Fraction(s) for s in '1 2/3'.split()))
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Some of these other solutions work too, but this one looks the most elegant. Works great! Thanks a ton. – mpen Nov 27 '09 at 1:14
    
Not only more elegant, but the most accurate too – Nadia Alramli Nov 27 '09 at 1:20
    
As Shnaader's answer pointed out, beware of negative signs. – jprete Nov 27 '09 at 1:38
3  
This won't handle negative numbers correctly. e.g., -1 2/3 should be -1.666 not -0.333. – mpen Sep 25 '14 at 21:54

Though you should stear clear of eval completely. Perhaps some more refined version of:

num,den = s.split( '/' )
wh, num = num.split()
result = wh + (float(num)/float(den))

Sorry, meant to be num.split not s.split, and casts. Edited.

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That might be a dirty workaround, but you could convert spaces to a + sign to solve the 3rd case (or to a - if your fraction is negative).

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def fractionToFloat(fraction):

    num = 0
    mult = 1

    if fraction[:1] == "-":
        fraction = fraction[1:]     
        mult = -1

    if " " in fraction:
        a = fraction.split(" ")
        num = float(a[0])
        toSplit = a[1]
    else:
        toSplit = fraction

    frac = toSplit.split("/")
    num += float(frac[0]) / float(frac[1])

    return num * mult

It can also handle "2 1/1e-8", "-1/3" and "1/5e3".

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Does not cover one of the examples in my question, 1 1/2 (one and a half). – mpen Sep 24 '14 at 15:32
    
Edited now to handle that. – nvd Sep 25 '14 at 10:22
    
Looks like you broke the 'just a fraction' case, e.g. 1/3. ideone.com/pa5cAg – mpen Sep 25 '14 at 16:11
    
Updated again... – nvd Sep 25 '14 at 20:12
    
That looks a bit better. – mpen Sep 25 '14 at 21:53

I see there are already several good answers here, but I've had good luck with this. It also has the benefit that it will tolerate non-fraction strings if you're parsing mixed sets of data, so there's no need to check if it's a fraction string or not upfront.

def convert_to_float(frac_str):
    try:
        return float(frac_str)
    except ValueError:
        try:
            num, denom = frac_str.split('/')
        except ValueError:
            return None
        try:
            leading, num = num.split(' ')
        except ValueError:
            return float(num) / float(denom)        
        if float(leading) < 0:
            sign_mult = -1
        else:
            sign_mult = 1
        return float(leading) + sign_mult * (float(num) / float(denom))

>>> convert_to_float('3')
3.0
>>> convert_to_float('1/4')
0.25
>>> convert_to_float('1 2/3')
1.6666666666666665
>>> convert_to_float('-2/3')
-0.6666666666666666
>>> convert_to_float('-3 1/2')
-3.5
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1  
Hey...you lied about your last test case. '-3 1/2' results in -2.5. – mpen Sep 25 '14 at 21:51
    
Thanks Mark, all fixed up! – James Errico Sep 25 '14 at 22:11
    
No sir, you broke the positive whole+fraction case. When leading is positive you get whole + (frac * -1 * 0) which of course erases the fractional part. – mpen Sep 26 '14 at 1:33
1  
Ok Mark, I think I got it, for real this time (although now I'm paranoid that I'm still missing something. Thanks for checking my work! – James Errico Sep 26 '14 at 13:24
1  
convert_to_float('x') returns None, while convert_to_float('x/y') raises ValueError. I'd take out the try/except` around the split('/') so that it's consistent. Also instead of introducing the sign_mult variable just have two return statements with simpler calculations. – Mark Ransom Oct 7 '14 at 21:21
up vote 2 down vote accepted

I tweaked James' answer a bit.

def convert_to_float(frac_str):
    try:
        return float(frac_str)
    except ValueError:
        num, denom = frac_str.split('/')
        try:
            leading, num = num.split(' ')
            whole = float(leading)
        except ValueError:
            whole = 0
        frac = float(num) / float(denom)
        return whole - frac if whole < 0 else whole + frac


print convert_to_float('3') # 3.0
print convert_to_float('3/2') # 1.5
print convert_to_float('1 1/2') # 1.5
print convert_to_float('-1 1/2') # -1.5

http://ideone.com/ItifKv

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This implementation avoids using eval and works on pre-2.6 versions of Python.

# matches a string consting of an integer followed by either a divisor
# ("/" and an integer) or some spaces and a simple fraction (two integers
# separated by "/")
FRACTION_REGEX = re.compile(r'^(\d+)(?:(?:\s+(\d+))?/(\d+))?$')

def parse(x):
  i, n, d = FRACTION_REGEX.match(x).groups()
  if d is None: return i  # if d is None, then n is also None
  if n is None: i, n = 0, i
  return float(i) + float(n) / float(d)

To test:

>>> for x in ['1', '1/2', '1 2/3']: print parse(x)
... 
1
0.5
1.66666666667
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Depending on what syntax you want to support for your fractions, eval('+'.join(s.split())) (with true division in place -- i.e., Python 3 or from __future__ import division in Python 2 -- might work. It would cover all the cases you mention, in particular.

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>>> s="1/2"
>>> eval('/'.join(map(str,map(float,s.split("/")))))
0.5

>>> s="3/5"
>>> eval('/'.join(map(str,map(float,s.split("/")))))
0.59999999999999998
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1) eval is dangerous overkill for this. 2) Why split and convert the string just to join it back together? Why not use eval(s)? – Ned Batchelder Oct 8 '14 at 14:36

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