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I have the following data set:

import random

def get_data():
    data = []
    for a in xrange(10):
        serial_id = random.randint(0, 100)
        node_data = 'data-%d' % (a)
        data.append((serial_id, node_data))
    return data

Which gives (well, it is random, so ymmv):

[(58, 'data-0'), (37, 'data-1'), (68, 'data-2'), (80, 'data-3'), (89, 'data-4'), (42, 'data-5'), (2, 'data-6'), (90, 'data-7'), (53, 'data-8'), (7, 'data-9')]

I would like to order this data set by serial_id, implementing:

def order_data(data):
    ...
    return ordered

Where ordered would be:

[(2, 'data-6'), ... , (90, 'data-7')]

What would be the most pythonic/efficient way to do this?

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1 Answer

up vote 2 down vote accepted

Use sorted:

return sorted(data)

or, if you don't care about modifying data, you can just use .sort to do a (slightly more efficient) in-place sort:

data.sort()
return data

The comparison function for tuples orders them by their first element, then their second element, and so on.

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To explain: the default sort for tuples is to compare each element of the tuples in order. in this case the default sort wil sort on the first element of the tuples, which is the serial_id. If the serial_ids are equal then it'll compare on the node_data. –  Claudiu Sep 30 '13 at 17:03
    
I see. What if the instances of node_data are not comparable? –  jeckyll2hide Sep 30 '13 at 17:04
    
Then you can use .sort(key=lambda x: x[0]) (or key=operator.itemgetter(0)) to sort only on the first element. –  nneonneo Sep 30 '13 at 17:07
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