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I have a list of objects appended from a mysql database and contain spaces. I wish to remove the spaces such as below, but the code im using doesnt work?

hello = ['999 ',' 666 ']

k = []

for i in hello:
    str(i).replace(' ','')
    k.append(i)

print k
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2  
Or fix the type of the database field ;-) –  ChristopheD Jul 12 '10 at 23:08
    
@ChristopheD: What database "field" type forces leading spaces? Better to fix the developer and tester. –  John Machin Jul 13 '10 at 1:51
1  
@Johan Machin: I did mis the leading space on the second entry (judged a little too fast, oops) –  ChristopheD Jul 13 '10 at 5:15
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6 Answers

up vote 15 down vote accepted

Strings in Python are immutable (meaning that their data cannot be modified) so the replace method doesn't modify the string - it returns a new string. You could fix your code as follows:

for i in hello:
    j = i.replace(' ','')
    k.append(j)

However a better way to achieve your aim is to use a list comprehension. For example the following code removes leading and trailing spaces from every string in the list using strip:

hello = [x.strip(' ') for x in hello]
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1  
+1 for strip. -1 for replace(' ','') –  S.Lott Jul 12 '10 at 23:07
    
OP wants to remove all spaces, not just trailers, so why -1 for replace(' ','')? None of the 'strip' methods, much less the other built-in str methods, do the job (ignoring Rube Goldbergs like ''.join(s.split())). –  Mike DeSimone Jul 12 '10 at 23:33
    
@Mike DeSimone: Judging from the OPs example data and question description it's quite likely that he defined his database type as a char(4) and that rstrip is a more suitable function than replace here. It could be that the downvote was for one of the numerous errors in the replace code in an earlier version of my post rather than choice of replace. It's fixed now though. –  Mark Byers Jul 12 '10 at 23:40
    
Ah, so it isn't a text field that used spaces to separate thousands, millions, etc. that is defined as text because it might contain the occasional keyword? OK, I missed that. –  Mike DeSimone Jul 12 '10 at 23:46
2  
The second element in the OP's list has 5 chars. Leading and trailing space –  gnibbler Jul 12 '10 at 23:59
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hello = ['999 ', '666 ']
result = map(lambda x: x.strip(), hello)
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There is no need to use the lambda; instead you could use: result = map(str.strip(), hello). However, As mentioned by @riza, in Python 3 map returns an iterator instead of a list. So best practice would be result = list(map(str.strip(), hello)). –  amicitas Dec 15 '12 at 6:16
    
Note that (in Python 3 at least) you must say map(str.strip, mylist) not map(str.strip(), mylist). –  William Mar 8 '13 at 16:25
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String methods return the modified string.

k = [x.replace(' ', '') for x in hello]
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replace() does not operate in-place, you need to assign its result to something. Also, for a more concise syntax, you could supplant your for loop with a one-liner: hello_no_spaces = map(lambda x: x.replace(' ', ''), hello)

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Presuming that you don't want to remove internal spaces:

def normalize_space(s):
    """Return s stripped of leading/trailing whitespace
    and with internal runs of whitespace replaced by a single SPACE"""
    # This should be a str method :-(
    return ' '.join(s.split())

replacement = [normalize_space(i) for i in hello]
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List comprehension [num.strip() for num in hello] is the fastest.

>>> import timeit
>>> hello = ['999 ',' 666 ']

>>> t1 = lambda: map(str.strip, hello)
>>> timeit.timeit(t1)
1.825870468015296

>>> t2 = lambda: list(map(str.strip, hello))
>>> timeit.timeit(t2)
2.2825958750515269

>>> t3 = lambda: [num.strip() for num in hello]
>>> timeit.timeit(t3)
1.4320335103944899

>>> t4 = lambda: [num.replace(' ', '') for num in hello]
>>> timeit.timeit(t4)
1.7670568718943969
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list(map(str.strip, hello)) doesn't make a whole lot of sense since map returns a list itself. –  ChristopheD Jul 13 '10 at 5:44
1  
@ChristopheD: In Python 3, map does not return a list. –  riza Jul 14 '10 at 0:24
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