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I just started Python classes and I'm really in need of some help. Please keep in mind that I'm new if you're answering this.

I have to make a program that takes the average of all the elements in a certain list "l". That is a pretty easy function by itself; the problem is that the teacher wants us to remove any empty string present in the list before doing the average.

So when I receive the list [1,2,3,'',4] I want the function to ignore the '' for the average, and just take the average of the other 4/len(l). Can anyone help me with this?

Maybe a cycle that keeps comparing a certain position from the list with the '' and removes those from the list? I've tried that but it's not working.

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6 Answers

You can use filter():

filter() returns a list in Python 2 if we pass it a list and an iterator in Python 3. As suggested by @PhilH you can use itertools.ifilter() in Python 2 to get an iterator.

To get a list as output in Python 3 use list(filter(lambda x:x != '', lis))

In [29]: lis = [1, 2, 3, '', 4, 0]

In [30]: filter(lambda x:x != '', lis)
Out[30]: [1, 2, 3, 4, 0]

Note to filter any falsy value you can simply use filter(None, ...):

>>> lis = [1, 2, 3, '', 4, 0]
>>> filter(None, lis)
[1, 2, 3, 4]
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This will also remove 0 were it an element in the list. –  Matt Oct 30 '12 at 12:51
    
@Matt you're right, solution edited. –  undefined is not a function Oct 30 '12 at 12:53
1  
I'd suggest using itertools.ifilter() as it is iterator based rather than creating a copy of the list just for an average. –  Phil H Oct 30 '12 at 12:56
    
@PhilH yes on python 2.x ifilter() should be preferred, on python 3.x filter() returns an iterator itself. –  undefined is not a function Oct 30 '12 at 12:58
    
This will be a fair bit slower than a listcomp. –  DSM Oct 30 '12 at 13:04
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itertools.ifilterfalse(lambda x: x=='', myList)

This uses iterators, so it doesn't create copies of the list and should be more efficient both in time and memory, making it robust for long lists.

JonClements points out that this means keeping track of the length separately, so to show that process:

def ave(anyOldIterator):
    elementCount = 0
    runningTotal = 0
    for element in anyOldIterator:
        runningTotal += element
        elementCount += 1
    return runningTotal/elementCount

Or even better

def ave(anyOldIterator):
    idx = None
    runningTotal = 0
    for idx,element in enumerate(anyOldIterator):
        runningTotal += element
    return runningTotal/(idx+1)

Reduce:

def ave(anyOldIterator):
    pieces = reduce(lambda x,y: (y[0],x[1]+y[1]), enumerate(anyOldIterator))
    return pieces[1]/(pieces[0]+1)

Timeit on the average of range(0,1000) run 10000 times gives the list comprehension a time of 0.9s and the reduce version 0.16s. So it's already 5x faster before we add in filtering.

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2  
Unfortunately with the side effect that the length will need to be tracked separately to compute an average... –  Jon Clements Oct 30 '12 at 12:56
    
@JonClements, why would that make a difference? I'll illuminate in an edit. –  Phil H Oct 30 '12 at 12:58
1  
@pistache how did you calculate the average from this in your speed test? –  Matt Oct 30 '12 at 13:01
1  
@pistache: surely the most appropriate timing is the calculation of an average? If you do it without any list() call as in my edit above, or using a reduce step, then it should be faster for large lists. –  Phil H Oct 30 '12 at 13:16
1  
JonClements suggests this makes the length a problem - to be fair, that's not what I said - my statement the length will need to be tracked separately was referring to the fact that extra work would need to be done (as you have shown) as sum(blah)/len(blah) isn't possible –  Jon Clements Oct 30 '12 at 13:29
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The other answers show you how to create a new list with the desired element removed (which is the usual way to do this in python). However, there are occasions where you want to operate on a list in place -- Here's a way to do it operating on the list in place:

while True:
    try:
        mylist.remove('')
    except ValueError:
        break

Although I suppose it could be argued that you could do this with slice assignment and a list comprehension:

mylist[:] = [i for i in mylist if i != '']

And, as some have raised issues about memory usage and the wonders of generators:

mylist[:] = (i for i in mylist if i != '')

works too.

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How about: idx = [idx for idx, val in enumerate(x) if val=='']; for i in reversed(idx): x.pop(i) ? - more efficient than .remove... –  Jon Clements Oct 30 '12 at 12:49
    
@JonClements -- You're right, it is more efficient, but it's also less explicit. (and performs slightly slower than the easier to read slice-assignment version for a list set up like lst = [1,2,3,'',4]*20) –  mgilson Oct 30 '12 at 13:00
    
If you explain how I could improve this answer, I'd be happy to edit (or if you have appropriate privileges yourself, feel free to edit) –  mgilson Oct 30 '12 at 13:03
    
Umm, well +1 from me anyway for alternate solutions - not sure why you got -1 though... –  Jon Clements Oct 30 '12 at 13:16
    
@JonClements -- I don't know either, that's how it goes sometimes :-). (I liked your clever use of reversed and pop by the way -- I would have added it if it did better than the in place version with slice assignment) –  mgilson Oct 30 '12 at 13:20
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You can use a list comprehension to remove all elements that are '':

mylist = [1, 2, 3, '', 4]
mylist = [i for i in mylist if i != '']

Then you can calculate the average by taking the sum and dividing it by the number of elements in the list:

avg = sum(mylist)/len(mylist)

Floating Point Average (Assuming python 2)

Depending on your application you may want your average to be a float and not an int. If that is the case, cast one of these values to a float first:

avg = float(sum(mylist))/len(mylist)

Alternatively you can use python 3's division:

from __future__ import division
avg = sum(mylist)/len(mylist)
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2  
As the OP specifically wants to get rid of empty strings, I think this is the best solution, it's clear and concise. –  Lattyware Oct 30 '12 at 12:36
    
An equivalent generator solution would be icing on the cake, to prevent extra copies of the lists. –  Phil H Oct 30 '12 at 12:52
1  
@PhilH I thought about that, but you can't get the length of generator expressions so it would make this much more complicated. –  Matt Oct 30 '12 at 12:55
    
@Matt -- If we're interested in keeping py2k compatability, you may want to consider dividing by float(len(mylist)) -- just to make sure you do "true division" here, but +1 from me –  mgilson Oct 30 '12 at 13:05
    
@mgilson For some applications that may be what you want, for others you may need an integer average. Ill include it –  Matt Oct 30 '12 at 13:10
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'' is equivalent to False. If we filter the 0 case out (because 0 is equivalent to False), we can use list comprehension :

[x for x in a if x or x == 0]

Or if we strictly want to filter out empty strings :

[x for x in a if x != '']

This may not be the fastest way.

Edit, added some bench results comparing with the other solutions (not for the sake of comparing myself to others, but I was curious too of what method was the fastest)

ragsagar>
6.81217217445
pistache>
1.0873541832
cerealy>
1.07090902328
Matt>
1.40736508369
Ashwini Chaudhary>
2.04662489891
Phil H (just the generator) >
0.935978889465
Phil H with list() >
3.58926296234

I made the script quickly, using timeit(), I used [0,1,2,0,3,4,'',5,8,0,'',4] as the list. I ran multiple tests, results did not vary.

NOTE: I'm not trying to put my solution on top using speed as a criteria. I know OP didn't specifically ask for speed, but I was curious and maybe some other are.

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3  
Is there a reason you can't just do [x for x in a if a != '']? –  Matt Oct 30 '12 at 12:35
2  
@Matt This potentially strips out [] and other similar things too, but to be honest, if you want that extra functionality, I'd go with ragsagar's updated answer as it'll handle more cases. –  Lattyware Oct 30 '12 at 12:37
    
@Matt it is [x for x in a if x != ''] –  ragsagar Oct 30 '12 at 12:38
2  
Comparing to false is decidedly different then comparing for equality to '', and obscures the actual intent (which is specifically to strip out '') –  Bryan Oakley Oct 30 '12 at 12:39
    
@ragsagar yes, I mistyped that, you have what I meant. –  Matt Oct 30 '12 at 13:03
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mylist = [1, 2, 3, '', 4]
newlist = []
for i in mylist:
    try:
        newlist.append(int(i))
    except ValueError:
        pass
avg = sum(newlist)/len(newlist)
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5  
This is a little dangerous as 0 could get stripped out too. –  Lattyware Oct 30 '12 at 12:31
1  
With the update, this becomes a good all-round solution, however it may be overkill for the asker's use case. –  Lattyware Oct 30 '12 at 12:36
    
Updated to consider 0 as Lattyware said. But i too think it is an overkill. –  ragsagar Oct 30 '12 at 12:41
    
Too complex for a case where a simple list comprehension will suffice. –  Bryan Oakley Oct 30 '12 at 12:41
    
By the time i was about answer Matt asnwered. Thought let it be there as an alternative. –  ragsagar Oct 30 '12 at 12:45
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