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I tried following instructions:

>>> values ['9', '31', '32']
>>> map('abc'.join, values)
and got:
['9', '3abc1', '3abc2']

but i expected:

['abc9', 'abc31', 'abc32']

why am i mistaken?

Just for the record i circumvented it with:

>>> map(lambda x: 'abc%s' % x, values)

But i'm still puzzled by the behaviour of the 1st map-construct!

Thanks for all the insightful answers. They are all correct and helpful, so i had to threw the dice to choose which to accept - i would have accepted any of them ;-)

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The latter can be also written simpler as map('abc{0}'.format, values) –  gdbdmdb Feb 24 '12 at 15:33
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5 Answers

up vote 1 down vote accepted

This will call subsequently

'abc'.join('9')

which gives '9' since there is only one element in the given argument to join, then

'abc'.join('31')

since '31' is similar to ['3', '1'] the result is '3abc1' and so on.

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What you want is

["abc" + x for x in values]

The method str.join() uses the part before the dot as the string by which to join an iterable of other strings. That's why

"abc".join(["12", "34"])

results in

"12abc34"

If you simply pass in a string as iterable, the individual characters are the items of this iterable:

"abc".join("1234")

results in

"1abc2abc3abc4"
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'abc'.join(l) uses abc as a delimiter when joining the items in l

When mapping it with your values list, the method is called once for every item in values. As strings are iterable in Python, every char is then used as an item.

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Not sure why you expected that. You're asking to run 'abc'.join(x) for each of the elements in values. Each of those elements is a string, which is iterable: in effect, it's a list of its characters. So 'abc'.join('31') is the same as 'abc'.join(['3', '1']) which gives the result you get.

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in the case you just want to concat string, use str + str, or str.format() with a correct {} inside string

values = ['9', '31', '32']
map('abc{}'.format, values)

or more simply with list comprehension:

values = ['9', '31', '32']
['abc{}'.format(v) for v in values]
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