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So I know Python strings are immutable, but I have a string:

c['date'] = "20110104"

Which I would like to convert to

c['date'] = "2011-01-04"

My code:

c['date'] = c['date'][0:4] + "-" + c['date'][4:6] + "-" + c['date'][6:]

Seems a bit convoluted, no? Would it be best to save it as a separate variable and then do the same? Or would there basically be no difference?

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up vote 8 down vote accepted

You could use .join() to clean it up a little bit:

d = c['date']
'-'.join([d[:4], d[4:6], d[6:]])
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2  
If performance is what OP means by "faster", I've found that '-'.join((d[:4],d[4:6],d[6:])) is marginally faster (i.e. tuple instead of a list). – mgilson Jan 17 '13 at 21:00
    
This looks very clean and pythonic to me :) – LittleBobbyTables Jan 17 '13 at 21:02

You are better off using string formatting than string concatenation

c['date'] = '{}-{}-{}'.format(c['date'][0:4], c['date'][4:6], c['date'][6:])

String concatenation is generally slower because as you said above strings are immutable.

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s = '20110104'


def option_1():
    return '-'.join([s[:4], s[4:6], s[6:]])

def option_1a():
    return '-'.join((s[:4], s[4:6], s[6:]))

def option_2():
    return '{}-{}-{}'.format(s[:4], s[4:6], s[6:])

def option_3():
    return '%s-%s-%s' % (s[:4], s[4:6], s[6:])

def option_original():
    return s[:4] + "-" + s[4:6] + "-" + s[6:]

Running %timeit on each yields these results

  • option_1: 35.9 ns per loop
  • option_1a: 35.8 ns per loop
  • option_2: 36 ns per loop
  • option_3: 35.8 ns per loop
  • option_original: 36 ns per loop

So... pick the most readable because the performance improvements are marginal

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I'd probably do so this way, not that there's a great deal of gain:

d = c['date']
c['date'] = '%s-%s-%s' % (d[:4], d[4:6], d[6:])

The big improvement (imho) is avoiding string concatenation.

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Dates are first class objects in Python, with a rich interface for manipulating them. The library is datetime.

> import datetime
> datetime.datetime.strptime('20110503','%Y%m%d').date().isoformat()
'2011-05-03'

Don't reinvent the wheel!

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I am not sure if you want to convert it to a proper datetime object or rather just hard code the format, you can do the following:

from datetime import datetime
result = datetime.strptime(c['date'], '%Y%m%d')
print result.date().isoformat()

Input: '20110104'

Output: '2011-01-04'

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I'm not usually the guy saying "use regex," but this is a good use-case for it:

import re    
c['date']=re.sub(r'.*(\w{4})(\w{2})(\w{2}).*',r"\1-\2-\3",c['date'])
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