126

I got this list:

words = ['how', 'much', 'is[br]', 'the', 'fish[br]', 'no', 'really']

What I would like is to replace [br] with some fantastic value similar to <br /> and thus getting a new list:

words = ['how', 'much', 'is<br />', 'the', 'fish<br />', 'no', 'really']
216
words = [w.replace('[br]', '<br />') for w in words]

This is called List Comprehensions.

  • 5
    Performing a comparison between this list comprehension method and the map method (posted by @Anthony Kong), this list method was roughly 2x faster. Also it allowed for inserting multiple replacements into the same call, e.g. resname = [name.replace('DA', 'ADE').replace('DC', 'CYT').replace('DG', 'GUA').replace('DT', 'THY') for name in ncp.resname()] – Steven C. Howell Apr 20 '15 at 18:50
  • @sberry I have a list ['word STRING', 'word_count BIGINT', 'corpus STRING', 'corpus_date BIGINT'] where I am trying to replace ' with empty but this is not working. how can we replace this using this? – Sandeep Singh Jun 27 '18 at 10:56
  • What if one of the items is a float/integer? – Patriots299 Dec 31 '18 at 20:38
31

Beside list comprehension, you can try map

>>> map(lambda x: str.replace(x, "[br]", "<br/>"), words)
['how', 'much', 'is<br/>', 'the', 'fish<br/>', 'no', 'really']
28

You can use, for example:

words = [word.replace('[br]','<br />') for word in words]
  • 1
    Same as accepted answer, above. – macetw Jan 4 '17 at 18:20
  • @macetw In fact the first answer. – CodeIt Mar 2 at 12:32
14

In case you're wondering about the performance of the different approaches, here are some timings:

In [1]: words = [str(i) for i in range(10000)]

In [2]: %timeit replaced = [w.replace('1', '<1>') for w in words]
100 loops, best of 3: 2.98 ms per loop

In [3]: %timeit replaced = map(lambda x: str.replace(x, '1', '<1>'), words)
100 loops, best of 3: 5.09 ms per loop

In [4]: %timeit replaced = map(lambda x: x.replace('1', '<1>'), words)
100 loops, best of 3: 4.39 ms per loop

In [5]: import re

In [6]: r = re.compile('1')

In [7]: %timeit replaced = [r.sub('<1>', w) for w in words]
100 loops, best of 3: 6.15 ms per loop

as you can see for such simple patterns the accepted list comprehension is the fastest, but look at the following:

In [8]: %timeit replaced = [w.replace('1', '<1>').replace('324', '<324>').replace('567', '<567>') for w in words]
100 loops, best of 3: 8.25 ms per loop

In [9]: r = re.compile('(1|324|567)')

In [10]: %timeit replaced = [r.sub('<\1>', w) for w in words]
100 loops, best of 3: 7.87 ms per loop

This shows that for more complicated substitutions a pre-compiled reg-exp (as in 9-10) can be (much) faster. It really depends on your problem and the shortest part of the reg-exp.

0

An example with for loop (I prefer List Comprehensions).

a, b = '[br]', '<br />'
for i, v in enumerate(words):
    if a in v:
        words[i] = v.replace(a, b)
print(words)
# ['how', 'much', 'is<br/>', 'the', 'fish<br/>', 'no', 'really']

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