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While working on a problem from Google Python class, I formulated following result by using 2-3 examples from Stack overflow-

def sort_last(tuples):
    return [b for a,b in sorted((tup[1], tup) for tup in tuples)]

print sort_last([(1, 3), (3, 2), (2, 1)])

I learned List comprehension yesterday, so know a little about list comprehension but I am confused how this solution is working overall. Please help me to understand this (2nd line in function).

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will you add a link to the 'Google Python class'? –  xtian May 31 '14 at 11:49
    

3 Answers 3

up vote 6 down vote accepted

That pattern is called decorate-sort-undecorate.

  1. You turn each (1, 3) into (3, (1, 3)), wrapping each tuple in a new tuple, with the item you want to sort by first.
  2. You sort, with the outer tuple ensuring that the second item in the original tuple is sorted on first.
  3. You go back from (3, (1, 3)) to (1, 3) while maintaining the order of the list.

In Python, explicitly decorating is almost always unnecessary. Instead, use the key argument of sorted:

sorted(list_of_tuples, key=lambda tup: tup[1]) # or key=operator.itemgetter(1)

Or, if you want to sort on the reversed version of the tuple, no matter its length:

sorted(list_of_tuples, key=lambda tup: tup[::-1]) 
                              # or key=operator.itemgetter(slice(None, None, -1))
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Thanks a lot, it is clear now, can you please tell me something about lambda (I know I can find about it on stack overflow, but want to know about your use of lambda here) –  Varun Apr 18 '12 at 16:53
2  
@Varun lambda just lets you declare a function inside an expression. It's the same as def first_item(tup): return tup[1] outside the function call, then key = first_item in the function call. See Lambda Forms in the Python Tutorial. –  agf Apr 18 '12 at 16:54
    
"That pattern is called decorate-sort-undecorate" .. never knew it has a name –  Abhijit Apr 18 '12 at 16:55

Lets break it down:

In : [(tup[1],tup) for tup in tuples]

Out: [(3, (1, 3)), (2, (3, 2)), (1, (2, 1))]

So we just created new tuple where its first value is the last value of inner tuple - this way it is sorted by the 2nd value of each tuple in 'tuples'.

Now we sort the returned list:

In: sorted([(3, (1, 3)), (2, (3, 2)), (1, (2, 1))])

Out: [(1, (2, 1)), (2, (3, 2)), (3, (1, 3))]

So we now have our list sorted by its 2nd value of each tuple. All that is remain is to extract the original tuple, and this is done by taking only b from the for loop.

The list comprehension iterates the given list (sorted([...] in this case) and returns the extracted values by order.

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Thanks a lot, nicely explained. –  Varun Apr 18 '12 at 17:07

Your example works by creating a new list with the element at index 1 followed by the original tuple for each tuple in the list. Eg. (3,(1,3)) for the first element. The sorted function sorts by each element starting from index 0 so the list is sorted by the second item. The function then goes through each item in the new list, and returns the orignal tuples.

Another way of doing this is by using the key parameter in the sorted function which sorts based on the value of the key. In this case you want the key to be the item in each tuple at index 1.

>>> from operator import itemgetter
>>> sorted([(1, 3), (3, 2), (2, 1)],key=itemgetter(1))
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It does not reverse each tuple in the list. It wraps each tuple in another tuple. –  agf Apr 18 '12 at 16:47
    
Oh right i missed that, i thought it was tup[1],tup[0] but now that i looked back on it i see i have misread it, i will edit my answer. –  jamylak Apr 18 '12 at 16:49

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