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I want to sort through lists of floats and take out all the values = 0, and keep the elements of the list as floats. Is this possible to do?


I have tried a[:] = [x for x in a if x != 0] but this gives me this error:

 a[:] = [x for x in a if x != 0]
TypeError: 'float' object is not iterable

So then I tried a[:] = [x for x in range(len(a)) if x != 0] but got a new error:

 a[:] = [x for x in range(len(a)) if x != 0]
TypeError: object of type 'float' has no len()

What is another way to go about this? Order does not have to be conserved and I don't need the index of the elements I want removed. Any help is appreciated.

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1  
Are you sure a is a list of floats? –  Haidro Jul 12 '13 at 13:41
    
yes, the list consists of -9999.0, -9999.0, 0.036885, 0.038996 -9999.0 –  KJo Jul 12 '13 at 13:56
1  
That's not what your error message suggests. print a right before the list comprehension - what appears? –  Haidro Jul 12 '13 at 13:58

3 Answers 3

up vote 0 down vote accepted
blacklist = [0]
blacklist = set(blacklist)
myList = [e for e in myList if int(e) not in blacklist]

Better yet, make your blacklist a collection of floats:

blacklist = [0]
blacklist = set([float(i) for i in blacklist])
myList = [e for e in myList if int(e) not in blacklist]
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Isn't that going to end up filtering out all float values in the range -1.0 to 1.0 (exclusive)? ... if e not in blacklist should be fine in both cases. –  Mark Dickinson Jul 12 '13 at 16:46

you a object is a float, not a list

>>> a=[1,2,3,0,4]
>>> a=[x for x in a if x!=0]
>>> a
[1, 2, 3, 4]
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If you are just removing 0 from the list, then Bruce's answer is more concise. However, if you want all non-floats removed from the list, you can do this:

>>> a = [1.2, 3, 4, 6, 0, 4.5, 3.2]
>>> a = [b for b in a if isinstance(b, float)]
>>> a
[1.2, 4.5, 3.2]
>>>
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