Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i need to sort the following list of Tuples in Python:

ListOfTuples = [('10', '2010 Jan 1;', 'Rapoport AM', 'Role of antiepileptic drugs as preventive agents for migraine', '20030417'), ('21', '2009 Nov;', 'Johannessen SI', 'Antiepilepticdrugs in epilepsy and other disorders--a population-based study of prescriptions', '19679449'),...]

My purpose is to order it by Descending year (listOfTuples[2]) and by Ascending Author (listOfTuples[2]):

sorted(result, key = lambda item: (item[1], item[2]))

But it doesn't work. How can i obtain sort stability?

share|improve this question
    
Which are the possible date formats? here we see "year/monthabbr/day" and "year/monthabbr". Is it possible to encounter only "year"? –  tokland Jul 24 '10 at 15:41
    
Yes it's possible as data format is not regular. –  Gianluca Bargelli Jul 26 '10 at 8:23

5 Answers 5

up vote 4 down vote accepted
def descyear_ascauth(atup):
  datestr = atup[1]
  authstr = atup[2]
  year = int(datestr.split(None, 1)[0])
  return -year, authstr

... sorted(result, key=descyear_ascauth) ...

Notes: you need to extract the year as an integer (not as a string), so that you can change its sign -- the latter being the key trick in order to satisfy the "descending" part of the specifications. Squeezing it all within a lambda would be possible, but there's absolutely no reason to do so and sacrifice even more readability, when a def will work just as well (and far more readably).

share|improve this answer
    
Grazie mille, sei sempre gentilissimo! :) What approach should i use to add another order key such as "month"? Should i map month's names to a dict ('jan':1, 'feb:2')? –  Gianluca Bargelli Jul 24 '10 at 15:39
    
@Gianluca, using an explicit dict gives you full control, and is therefore what I would recommend. You could play with list(calendar.month_name) to build the dict e.g. in a locale-dependent ways, but it's far more complication than warranted unless you have very specific needs in this direction. –  Alex Martelli Jul 24 '10 at 17:55
    
Thanks for answering :) . Right now i can't decide which answer pick because also @Duncan posted a working approach on my problem. So far it's a matter of taste (Readability vs. Compactness) and performance (Using "tricks" vs "Doing the Python way")... –  Gianluca Bargelli Jul 24 '10 at 18:14
    
Both doing two sorts (per @Duncan's idea) and doing a single one with a composite key (my answer) are really perfectly Pythonic ways (no tricks involved); however, doing a single sort will save about half the running time. (the old-fashioned, near-deprecated cmp, as in @THC4k's answer, can be much slower still). Readability and compactness are about the choice of lambda (which Duncan mis-spelled) versus def (as in my answer) which does not affect speed (as I mentioned you can squeeze my approach into a lambda, it's just a very bad idea to do so). –  Alex Martelli Jul 25 '10 at 1:56
    
The lambda was added as a late edit (hence the typo) when I realised I couldn't just use itemgetter because the year was part of a longer date. Your answer is probably almost always faster, but if, for example, instead of a year you wanted to reverse sort string in a locale aware manner it could be messy working out how to do that. Sorting on multiple keys is slower but has the advantage of being clear and straightforward. I think Gianluca should keep both options in his toolbox. –  Duncan Jul 25 '10 at 8:59

Here is the lambda version of Alex's answer. I think it looks more compact than Duncan's answer now, but obviously a lot of the readability of Alex's answer has been lost.

sorted(ListOfTuples, key=lambda atup: (-int(atup[1].split(None, 1)[0]), atup[2]))

Readability and efficiency should usually be preferred to compactness.

share|improve this answer

The easiest way is to sort on each key value separately. Start at the least significant key and work your way up to the most significant.

So in this case:

import operator
ListOfTuples.sort(key=operator.itemgetter(2))
ListOfTuples.sort(key=lambda x: x[1][:4], reverse=True)

This works because Python's sorting is always stable even when you use the reverse flag: i.e. reverse doesn't just sort and then reverse (which would lose stability, it preserves stability after reversing.

Of course if you have a lot of key columns this can be inefficient as it does a full sort several times.

You don't have to convert the year to a number this way as its a genuine reverse sort, though you could if you wanted.

share|improve this answer
    
Your solution is compact and pythonic but @Alex's is faster. Can't decide who's the winner :) –  Gianluca Bargelli Jul 24 '10 at 18:07

Here's a rough solution that takes month abbreviature and day (if found) in account:

import time
import operator

def sortkey(seq):
    strdate, author = seq[1], seq[2]
    spdate = strdate[:-1].split()
    month = time.strptime(spdate[1], "%b").tm_mon
    date = [int(spdate[0]), month] + map(int, spdate[2:])
    return map(operator.neg, date), author  

print sorted(result, key=sortkey)

"%b" is locale's abbreviated month name, you can use a dictionary if you prefer not to deal with locales.

share|improve this answer

Here is a idiom that works for everything, even thing you can't negate, for example strings:

data = [ ('a', 'a'), ('a', 'b'), ('b','a') ]

def sort_func( a, b ):
    # compare tuples with the 2nd entry switched
    # this inverts the sorting on the 2nd entry
    return cmp( (a[0], b[1]), (b[0], a[1]) ) 

print sorted( data )                    # [('a', 'a'), ('a', 'b'), ('b', 'a')]
print sorted( data, cmp=sort_func )     # [('a', 'b'), ('a', 'a'), ('b', 'a')]
share|improve this answer
    
cmp no longer works in Python 3, although there is cmp_to_key in functools. –  KennyTM Jul 24 '10 at 15:56

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.