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Hello I am fairly new to python. I have a script that was given to me. I want to be able to identify the empty strings in a list. "print fileList" shows the following. Is this considered a list of lists, or strings within a list?

['C:/test\\07072013_0001.zip']
['C:/test\\07072013_0006.zip']
[]
['C:/test\\07072013_00018.zip']

There are hundreds of files. I would like it to print the name of the zip directly above the empty []. There could be multiple empties. E.g. just print:

['C:/test\\07072013_0006.zip']

I have tried a for loop but that seems to just bypass the empty strings and only lists the zip files present in the folder. Thank you for any help.

Actual output:

================================ RESTART ================================

['C:/Users/cb/Desktop/data/test\\07072013_0001.zip']
[]
['C:/Users/cb/Desktop/data/test\\08042013_0025.zip']
['C:/Users/cb/Desktop/data/test\\08042013_0031.zip']
['C:/Users/cb/Desktop/data/test\\08042013_0037.zip']
[]
['C:/Users/cb/Desktop/data/test\\08042013_0049.zip']
print type(fileList)
>>> ================================ RESTART ================================
>>> 
<type 'list'>
<type 'list'>
<type 'list'>
<type 'list'>
<type 'list'>
<type 'list'>
<type 'list'>
share|improve this question
2  
Please provide your code so far. –  ChrisProsser Aug 6 '13 at 16:18
    
Post the actual output of print fileList. –  Ashwini Chaudhary Aug 6 '13 at 16:19
    
What you've shown is just 4 individual lists, but I assume there are list braces around the whole thing that you removed. –  roippi Aug 6 '13 at 16:21
    
No that is the exact output, there are not braces around the whole thing. Thank you. –  Andrew Aug 6 '13 at 16:31
1  
@Andrew No it is not, you can't get this output with print fileList. It looks like you're iterating over fileList and printing individual items. –  Ashwini Chaudhary Aug 6 '13 at 16:35

5 Answers 5

Is this considered a list of lists, or strings within a list?

This is a list of list.

[
[element], 
[element], 
[element], 
[element], 
]

A list of strings would be this:

[
'element', 
'element', 
'element', 
'element', 
]

I have tried a for loop but that seems to just bypass the empty strings and only lists the zip files present in the folder.

Please post what you have tried so far, and the output it gives. I'll edit this answer with any corrections I can suggest.

share|improve this answer

You can use itertools.izip here. itertools.izip returns an iterator so it is memory efficient, if the list is not huge then you can also use the built-in function zip.

from itertools import izip, tee
lis = [['a'], [], ['b'], ['c'], [], [], ['d'], []]
it1, it2 = tee(lis)
next(it2)
for x, y in izip(it1, it2):
    if x and not y:
        print x

output:

['a']
['c']
['d']
share|improve this answer

You can use zip to get the previous filename:

fileList = [['C:/test\\07072013_0001.zip'],
            ['C:/test\\07072013_0006.zip'],
            [],
            ['C:/test\\07072013_00018.zip'],
           ]

for file, prev in zip(fileList[1:],fileList):
    if not file:
        print prev

This prints out:

['C:/test\\07072013_0006.zip']
share|improve this answer
# Old variable a replaced with fileList

for indx, x in enumerate(fileList):
        if len(x) == 0:
            if (indx > 0):
                print fileList[indx-1]     
share|improve this answer
2  
I think you mean enumerate. –  roippi Aug 6 '13 at 16:26
    
Yes! (and it's still cheesy, but at least it didn't drag out itertools). –  Jiminion Aug 6 '13 at 16:28
    
Hello thanks. What from your script would I replace fileList with? –  Andrew Aug 6 '13 at 16:47
    
a represents the fileList. –  Jiminion Aug 6 '13 at 16:48
    
upvote and accept if you like it (and it works....) –  Jiminion Aug 6 '13 at 16:49

First solution

ref = [
    ['a'],
    ['b'],
    [],
    [],
    ['d'],
    ['e'],
    ['f'],
    ['g'],
    [],
    ['i'],
    [],
    ['k'],
    ['l']
]

results = [ref[index - 1] for (index,item) in enumerate(ref) if (not item and index > 0 and ref[index - 1])]

print results

Output:

[['b'], ['g'], ['i']]

Second solution

ref = [
    ['a'],
    ['b'],
    [],
    ['d'],
    ['e'],
    ['f'],
    ['g'],
    [],
    [],
    ['i'],
    [],
    ['k'],
    ['l']
]


def test(l):
    for (index,item) in enumerate(ref):
        if not item and index > 0 and l[index - 1]:
            yield l[index - 1][0]

for i in test(ref):
    print i

# or
print list(test(ref))

Output:

b
g
i

['b', 'g', 'i']
share|improve this answer
1  
What if ref looks like: [[], ['a'], ...,['l']]? –  Ashwini Chaudhary Aug 6 '13 at 17:43
    
Good one, just updated my code –  Apero Aug 6 '13 at 17:46

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