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I'm sure this must be simple, but I'm a python noob, so I need some help. I have a list that looks the following way:

foo = [['0.125', '0', 'able'], ['', '0.75', 'unable'], ['0', '0', 'dorsal'], ['0', '0', 'ventral'], ['0', '0', 'acroscopic']]

Notice that every word has 1 or 2 numbers to it. I want to substract number 2 from number 1 and then come with a dictionary that is: word, number. Foo would then look something like this:

foo = {'able','0.125'},{'unable', '-0.75'}...

it tried doing:

bar=[]
for a,b,c in foo:
   d=float(a)-float(b)
   bar.append((c,d))

But I got the error:

ValueError: could not convert string to float: 
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7  
That's from the entry ['', '0.75', 'unable']. Try float(a or 0) to treat empty strings as 0 –  Dan Lecocq Jul 31 '13 at 16:25
    
The result foo in your example appears to actually be a tuple of sets, not a dictionary. A dictionary is {key: value, key2: value} not {key, value}, {key2, value2} –  sweeneyrod Jul 31 '13 at 16:30

5 Answers 5

'' cannot be converted to string.

bar = []
for a,b,c in foo:
    d = float(a or 0) - float(b or 0)
    bar.append((c,d))

However, that will not make a dictionary. For that you want:

bar = {}
for a,b,c in foo:
    d = float(a or 0)-float(b or 0)
    bar[c] = d

Or a shorter way using dictionary comprehensions:

bar = {sublist[2]: float(sublist[0] or 0) - float(sublist[1] or 0) for sublist in foo}
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this seems to work perfectly, only when I attempt to use bar outside the for loop, it gives me a "ValueError: need more than 1 value to unpack" error, any ideas? –  Shifu Jul 31 '13 at 16:30
    
How are you using bar? –  sweeneyrod Jul 31 '13 at 16:34
    
Dictionaries should be used like this: var = dictionary[key] and dictionary[key] = value –  sweeneyrod Jul 31 '13 at 16:37
    
Or if you want to use map, dict(map(lambda x: (x[2], float(x[1] or 0)-float(x[0] or 0), foo))). –  Sukrit Kalra Jul 31 '13 at 16:42
    
well in the next step, i'd like to enter a string, and look it up word for word in bar, if it's in there, the value of bar needs to be added to a grand counter. –  Shifu Jul 31 '13 at 16:47

Add a condition to verify if the string is empty like that '' and convert it to 0

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float('') doesn't work. Assuming you want 0 in that case, I recommend a helper function:

def safefloat(s):
    if not s: 
        return 0.0
    return float(s)

res = {}
for a, b, c in foo:
    res[c] = safefloat(a) - safefloat(b)

Note you can make the dictionary in one line with a comprehension:

res = dict((c, safefloat(a) - safefloat(b)) for a, b, c in foo)

or a dict comprehension in Python 2.7+:

res = {c: safefloat(a) - safefloat(b) for a, b, c in foo}
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that happens because in some cases their is an empty string you could write

d = float(a or '0') - float(b or '0')
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>>> foo = [['0.125', '0', 'able'], ['', '0.75', 'unable'],
           ['0', '0', 'dorsal'], ['0', '0', 'ventral'],
           ['0', '0', 'acroscopic']]
>>> dict((i[2], float(i[0] or 0) - float(i[1])) for i in foo)
{'acroscopic': 0.0, 'ventral': 0.0, 'unable': -0.75, 'able': 0.125,
 'dorsal': 0.0}
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