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I'm trying to change some elements of a list based on the properties of previous ones. Because I need to assign an intermediate variable, I don't think this can be done as a list comprehension. The following code, with comment, is what I'm trying to achieve:

for H in header:
    if "lower" in H.lower():
        pref="lower"
    elif "higher" in H.lower():
        pref="higher"
    if header.count(H) > 1:
        # change H inplace
        H = pref+H

The best solution I've come up with is:

for ii,H in enumerate(header):
    if "lower" in H.lower():
        pref="lower"
    elif "higher" in H.lower():
        pref="higher"
    if header.count(H) > 1:
        header[ii] = pref+H

It doesn't quite work, and feels un-pythonic to me because of the indexing. Is there a better way to do this?

Concrete example:

header = ['LowerLevel','Term','J','UpperLevel','Term','J']

desired output:

header = ['LowerLevel','LowerTerm','LowerJ','UpperLevel','UpperTerm','UpperJ']

Note that neither of my solutions work: the former never modifies header at all, the latter only returns
header = ['LowerLevel','LowerTerm','LowerJ','UpperLevel','Term','J']
because count is wrong after the modifications.

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What's wrong with the first version? –  NPE Nov 22 '12 at 19:17
    
Doesn't work. The elements of header are never changed; H is overwritten each time. Actually, the 2nd way doesn't work either. –  keflavich Nov 22 '12 at 19:17
    
The second version is often the best way to modify a list in-place. This is one of the main uses for enumerate. It's perfectly pythonic. –  senderle Nov 22 '12 at 19:25
2  
Strings are immutable so you simply cannot change them in-place. You'll always have to reassign the elements to the list or create a new list. –  Bakuriu Nov 22 '12 at 19:26
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3 Answers

up vote 2 down vote accepted
header   = ['LowerLevel','Term','J','UpperLevel','Term','J']
prefixes = ['lower', 'upper']

def prefixed(header):
    prefix = ''

    for h in header:
        for p in prefixes:
            if h.lower().startswith(p):
                prefix, h = h[:len(p)], h[len(p):]
        yield prefix + h

print list(prefixed(header))

I don't really know that this is better than what you had. It's different...

$ ./lower.py
['LowerLevel', 'LowerTerm', 'LowerJ', 'UpperLevel', 'UpperTerm', 'UpperJ']
share|improve this answer
    
+1 for the attempt; I like the approach. However, it doesn't work on the concrete example I just added (made it because I saw your short-lived previous version). The problem with this - which I didn't make perfectly clear - is that it only considers 1 previous element, but I need to look back 2 for this case. –  keflavich Nov 22 '12 at 19:24
    
@keflavich I see, thanks for the update w/sample data. Back to the drawing board! –  John Kugelman Nov 22 '12 at 19:26
    
It's better because it works. –  keflavich Nov 23 '12 at 0:03
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This should work for the data you presented.

from collections import defaultdict

def find_dups(seq):
    '''Finds duplicates in a sequence and returns a dict
            of value:occurences'''
    seen = defaultdict(int)
    for curr in seq:
        seen[curr] += 1
    d = dict([(i, seen[i]) for i in seen if seen[i] > 1])
    return d

if __name__ == '__main__':
    header = ['LowerLevel','Term','J','UpperLevel','Term','J']
    d = find_dups(header)
    for i, s in enumerate(header):
        if s in d:
            if d[s] % 2:
                pref = 'Upper'
            else:
                pref = 'Lower'
            header[i] = pref + s
            d[s] -= 1       

But it give me the creeps to suggest anything, not knowing but a little about the entire set of data you will be working with.

good luck,

Mike

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something like this, using generator function:

In [62]: def func(lis):
    pref=""
    for x in lis:
        if "lower" in x.lower():
            pref="Lower"
        elif "upper" in x.lower():    
            pref="Upper"
        if header.count(x)>1:    
            yield pref+x
        else:      
            yield x
   ....:             

In [63]: list(func(header))
Out[63]: ['LowerLevel', 'LowerTerm', 'LowerJ', 'UpperLevel', 'UpperTerm', 'UpperJ']
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