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What is the right "pythonic" way to do the following operation?

s = ""
for i in xrange(0, N):
    s += "0101"

E.g. in Perl it would be: $s = "0101" x $N

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2 Answers 2

up vote 9 down vote accepted

Nearly the same as Perl:

"0101" * N
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The most Pythonic way would be

s = "0101" * N

Other methods include:

  • use StringIO, which is a file-like object for building strings:

    from StringIO import StringIO
    
  • use "".join; that is

    `"".join("0101" for i in xrange(N)`
    
  • use your algorithm. In an unoptimised world this is less good, because it is quadratic in the length of the string. I believe recent versions of Python actually optimise this so that it is linear, but I can't find a reference for that.

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Let's not confuse the issue. After all, isn't the whole idea to get away from Perl-esque TIMTOWDI? :) –  Karl Knechtel Sep 27 '11 at 11:15
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