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Suppose I have list given as:

x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']

How can I use the ''.join() function to ignore the newline characters and obtain 'abcd'?

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5 Answers 5

up vote 6 down vote accepted
''.join(c for c in x if c != '\n')
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''.join(filter('\n'.__ne__,x)) –  Yann Vernier May 22 '13 at 21:06
    
@YannVernier: that's not as readable as c != '\n'. –  Simeon Visser May 22 '13 at 21:51
    
@YannVernier, That's almost as fast as just doing the replace afterward. 0.769 vs 0.596 –  John La Rooy May 22 '13 at 22:15

You can do:

''.join(c for c in x if c.isalpha())

This way, you can remove \n, \t and any other special characters

>>> x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']
>>> ''.join(c for c in x if c.isalpha())
'abcd'
>>> 
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Can this be used in Python 2.7? –  James Hallen May 22 '13 at 21:09
    
yes. You can. I tested it out on 2.7 –  karthikr May 22 '13 at 21:09
    
This will remove digits and punctuation too. (That may work just fine for the OP's case, of course.) –  DSM May 22 '13 at 22:08

You can do it with filter

''.join(filter(lambda a: a != '\n', x))

or

''.join(filter(lambda a: a.isalpha(), x))
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''.join([x.strip() for x in ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']])
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Sometimes simple is not just simple it's much faster too

x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']
''.join(x).replace('\n', '')

for really long lists, this seems to be a little faster

''.join(x).translate(None, '\n')

Here are some timings.

$ python -m timeit -s"x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']" "''.join(c for c in x if c!='\n')"
100000 loops, best of 3: 1.9 usec per loop
$ python -m timeit -s"x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']" "''.join(c for c in x if c.isalpha())"
100000 loops, best of 3: 2.29 usec per loop
$ python -m timeit -s"x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']" "''.join(filter(lambda a: a != '\n', x))"
1000000 loops, best of 3: 1.9 usec per loop
$ python -m timeit -s"x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']" "''.join(x).replace('\n','')"
1000000 loops, best of 3: 0.593 usec per loop
$ python -m timeit -s"x = ['a', '\n', 'b', '\n', 'c', '\n', '\n', 'd']" "''.join(x).replace('\n','')"
1000000 loops, best of 3: 0.596 usec per loop
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Hello. I thought that ''.join(c for c in x if not(c is '\n')) could be faster than ''.join(c for c in x if c !='\n'). But it gives 'a\nb\nc\n\nd' as a result, and I don't understand why. Would you se better than me ? I am perplexd –  eyquem May 22 '13 at 22:36
    
By the way, there's an error of typing in the first timeit: must be for c != '\n' not for x != '\n' –  eyquem May 22 '13 at 22:38
    
@eyquem, interestingly it's now the same speed as filter+lambda –  John La Rooy May 22 '13 at 22:43
    
@eyquem, strings are immutable, but not all identical strings have to have the same id. Aside, Python lets you say if c is not '\n' which is easier to read but has the same problem –  John La Rooy May 22 '13 at 22:44
    
" not all identical strings have to have the same id" I'm surprised by this affirmation, I would like to know more. The problem is that if you run the code for c in ['a','\n','b']: print repr(c),not (c is '\n') you get a' True,'\n' False, 'b' True, however repr(''.join(c for c in ['a','\n','b'] if not(c is '\n'))) gives 'a\nb' –  eyquem May 22 '13 at 23:15

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