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I am trying to check if items in list-one are in list-two and if so then replace the item in list-one in place (by appending a '_' to it). The caveat is that the items in list-one have to remain in the original order. I have figured out a way to do this with a nested for loop and and enumerate, but I was wondering if there is a more efficient/quicker method, possibly a list comprehension or map if appropriate? Thanks in advance.

The lists are:

 headers = ['Date', 'Temp', 'Descrip', 'ID', 'Lat', 'Long', 'FID']
 replace = ['Date', 'ID', 'FID']

The code I am using is:

 for rep in replace:
         for index, head in enumerate(headers):
                 if rep == head:
                         headers[ index ] = headers[ index ] + '_'

The answer should be:

 ['Date_', 'Temp', 'Descrip', 'ID_', 'Lat', 'Long', 'FID_']
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4 Answers 4

If you don't need to modify the list in place, you can use a list comprehension:

headers = [s + "_" if s in replace else s for s in headers]

If replace contains more than 3 items, you want to use a set instead of a list. (If headers is a list, the test s in headers needs to iterate over the list, whereas if headers is a set, s in headers can be evaluated in constant time without iteration.)

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Thanks. Yes this works for me. I'm not too concerned about creating a new list, but it would be nice not to without having to use a long/explicit for loop. I wish Python had a bang method similar to that of Ruby. I do,however, have one question regarding your comment. Why would I need to use set? As I understand it 'set' gets rid of any redundancies. Is there something I am missing? – 9monkeys Jun 27 '11 at 20:05
Can we gain a significant extra performance if we replace s + "_" by "".join([s, "_"])? – riza Jun 27 '11 at 20:45
@9monkeys: membership test is considerably faster for big sets than for big lists -- I added a comment to my answer. – Sven Marnach Jun 27 '11 at 21:39
@Selinap: No, this would be considerably slower, even when using a tuple instead of a list. str.join() is only faster when you are joining more than two strings (and even then only when the strings are long or there are many strings). – Sven Marnach Jun 27 '11 at 21:43
Thanks. That makes sense. Good point. – 9monkeys Jun 28 '11 at 12:24
reps = set(replace)

for index, head in enumerate(headers):
    if head in reps:
        headers[index] += "_"

This will modify the list in place, as your original code did. List comprehensions are more compact, but will create a new list. I don't know whether that's a concern for you or not.

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List comprehensions is your best friend :).

>>> headers = ['Date', 'Temp', 'Descrip', 'ID', 'Lat', 'Long', 'FID']
>>> replace = ['Date', 'ID', 'FID']
>>> [i+"_" if i in replace else i for i in headers]
['Date_', 'Temp', 'Descrip', 'ID_', 'Lat', 'Long', 'FID_']

Of course you can change i+"_" to "".join((i, "_")) for performance reasons, I write it like this for readability.

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You can use one-liner - but note that it will create new list:

headers = ['Date', 'Temp', 'Descrip', 'ID', 'Lat', 'Long', 'FID']
rVals = ['Date', 'ID', 'FID']

res = [x if x not in rVals else x+'_' for x in headers]


map(lambda x: x if x not in rVals else x+'_', headers)


for x in (x for x in rVals if x in headers):
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