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I have a structure like this:

['a;1,2,3\n', 'b;abc\n', ...]

in other words: it is a List with items like this: 'id;element1,element2,...\n'

now I want to check if the List contains a element with the id = "b" and if it cotains the item "b" I want to return the whole element:

'b;abc\n'

how to do this with python? is it possible to do it with a in statement?

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2  
So many list comprehension questions recently. Four in a row. Does this seem odd to anyone else? –  TerryA Apr 30 '13 at 8:56
    
Level of list comprehension questions is too damn high. –  pivovarit Apr 30 '13 at 8:57
    
I swear I've seen this question before but maybe I'm imagining it –  jamylak Apr 30 '13 at 8:58
    
@Haidro yes it's weird –  jamylak Apr 30 '13 at 9:21

4 Answers 4

up vote 2 down vote accepted

This will return you a list of all items that match your criteria, I assumed it may have more than one result matching, if there is only 1 result, the result list will have 1 item.

>>> input = ['a;1,2,3\n', 'b;abc\n']
>>> filter(lambda item:item.find('b;') == 0 ,input)
['b;abc\n']
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This will check the entire list even when it finds the item –  jamylak Apr 30 '13 at 9:10
    
@jamylak I agree, but I made the assumption that instead of finding first occurence, the OP might be looking for all occurences of an item. –  DhruvPathak Apr 30 '13 at 9:11
    
ah ok that's possible as well –  jamylak Apr 30 '13 at 9:20
>>> L = ['a;1,2,3\n', 'b;abc\n']
>>> next((x for x in L if x.partition(';')[0] == 'b'), 'No match')
'b;abc\n'
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You can use the following function to extract a list of all matching elements from your structure:

def query(data, key):
    return [ x for x in data if x.startswith(key + ';') ]

Example use:

data = [
    'a;1,2,3\n',
    'b;abc\n',
    'c;4,5,6\n'
]
print query(data, 'b')

This gives the list ['b;abc\n']. If you ask for a key which isn't present, the result is the empty list.

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The other ways are most likely faster.

>>> L = ['a;1,2,3\n', 'b;abc\n']
>>> temp = [i.split(';') for i in L]
>>> ';'.join([x for x in temp if x[0] == 'b'][0])
'b;abc\n'
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