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I am trying to take one string, and append it to every string contained in a list, and then have a new list with the completed strings. Example:

list = ['foo', 'fob', 'faz', 'funk']
string = 'bar'

*magic*

list2 = ['foobar', 'fobbar', 'fazbar', 'funkbar']

I tried for loops, and an attempt at list comprehension, but it was garbage. As always, any help, much appreciated.

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10  
It's unwise to assign to list since it's a builtin. –  Noufal Ibrahim Jan 12 '10 at 16:54

6 Answers 6

up vote 32 down vote accepted

The simplest way to do this is with a list comprehension:

[s + mystring for s in mylist]

Notice that I avoided using builtin names like list because that shadows or hides the builtin names, which is very much not good.

Also, if you do not actually need a list, but just need an iterator, a generator expression can be more efficient (although it does not likely matter on short lists):

(s + mystring for s in mylist)

These are very powerful, flexible, and concise. Every good python programmer should learn to wield them.

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3  
Or a genexp if you want it lazily (s + mystring for s in mylist) –  Noufal Ibrahim Jan 12 '10 at 16:54
    
That definitely did the trick, thank very much, still wrapping my head around list comprehension, if you know a good tutorial on it. before each item in the list, there is a u', is that for unicode? –  Kevin Jan 12 '10 at 16:58
    
@Kevin, yes, u'' indicates a Unicode string. –  Peter Hansen Jan 12 '10 at 17:02
2  
@Kevin, here's a tutorial for unicode strings, docs.python.org/tutorial/introduction.html#tut-unicodestrings –  tgray Jan 12 '10 at 17:04
my_list = ['foo', 'fob', 'faz', 'funk']
string = 'bar'
my_new_list = [x + string for x in my_list]
print my_new_list

This will print:

['foobar', 'fobbar', 'fazbar', 'funkbar']
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I havent found a way to comment on answers till now. So here it is. I support Ignacio Vazquez-Abrams's answer of list2 = ['%sbar' % x for x in list].

Others answers with [string + "bar" for string in list] would work for most of times, but if you accept a more general solution for the simplest case you're - IMHO - following Python Design Principles. There should be preferably one obvious way to do it. %sbar works all the time.

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StackOverflow restricts commenting on other posts until you're at 50 points –  Wallacoloo Jan 12 '10 at 23:43
1  
@jeffjose: Ignacio's answer was in fact list2 = ['%sbar' % (x,) for x in list]. Please give examples where x refers to a string and '%sbar' % x "works" and x + 'bar' doesn't. –  John Machin Jan 13 '10 at 0:03
1  
The original question specified two strings. s1+s2 will always work (and most efficiently) in that case. –  gahooa Jan 13 '10 at 1:37
    
@John Machin, Yes, what Ignacio said is correct and I merely added onto his post with my answer. And for your question as to why %sbar works all the time and x + "bar" in some cases .. True if x is a string there's absolutely no doubt, both answers are correct. But as soon as you get out strings you have to learn a new answer for concatenation. To me all concatenation goes like %sbar whether it is string or integer. I feel that would make the whole code more consistent. –  Jeffrey Jose Jan 13 '10 at 23:08
    
@jeffjose: (1) Correctness wasn't the issue. You said Ignacio used '%sbar' % x; he didn't; he used '%sbar' % (x,) -- re-read his answer. (2) You concatenate integers using '%sbar', do you? That's a strange notion of concatenation. Example, please -- I thought that string % expression was for formatting, not concatenation. To concatenate lists (consistent with concatenating strings) I use + e.g. a=[1,2];b=[3,4];c=a+b;print c -- how do you concatenate lists using "%sbar"? –  John Machin Jan 14 '10 at 1:40
new_list = [word_in_list + end_string for word_in_list in old_list]

Using names such as "list" for your variable names is bad since it will overwrite/override the builtins.

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map seems like the right tool for the job to me.

my_list = ['foo', 'fob', 'faz', 'funk']
string = 'bar'
list2 = map(lambda orig_string: orig_string + string, my_list)

See this section on functional programming tools for more examples of map.

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list2 = ['%sbar' % (x,) for x in list]

And don't use list as a name; it shadows the built-in type.

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Why '%sbar' % (x,) instead of '%sbar' % x? Why not x + 'bar'? –  John Machin Jan 12 '10 at 17:27
    
The second will fail if x happens to be a tuple. Obviously you plan to have every element be a string, but sometimes things go wrong. The difference between the first and the third is mostly taste, unless you get the string from an external source. –  Ignacio Vazquez-Abrams Jan 12 '10 at 17:29
1  
'raise exception' != 'fail'. If you have the wrong data type, you have already failed. My preferred expression raises an exception highlighting the failure; your preferred expression silently produces garbage. Taste: baroque slow expressions are not to my taste. –  John Machin Jan 12 '10 at 17:45

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