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everyone,I need your help with python list sort.

Here is the thing:

I have two lists: one is a list of integers, the other is a list of objects, and the second object list has the attribute id which is also an integer, I want to sort the object list based on the id attribute, in the order of the same id appears in the first list, well,this is an example:

I got a = [1,2,3,4,5]

and b = [o,p,q,r,s],where o.id = 2, p.id = 1, q.id = 3, r.id = 5, s.id = 4

and I want my list b to be sorted in the order of its id appears in list a, which is like this: sorted_b = [p, o, q, s, r]

of course, I can achieve this by using nested loops:

sorted_b = []
for i in a:
    for j in b:
        if j.id == i:
            sorted_b.append(j)
            break

but this is a classic ugly and none-python way to solve a problem, I wonder if there is a way to solve this in a rather neat way, like using the sort method, but I don't know how. I googled my question, but can't find the exact answer, so I need your help, thanks:)

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4 Answers

up vote 4 down vote accepted
>>> from collections import namedtuple
>>> Foo = namedtuple('Foo', 'name id') # this represents your class with id attribute
>>> a = [1,2,3,4,5]
>>> b = [Foo(name='o', id=2), Foo(name='p', id=1), Foo(name='q', id=3), Foo(name='r', id=5), Foo(name='s', id=4)]
>>> sorted(b, key=lambda x: a.index(x.id))
[Foo(name='p', id=1), Foo(name='o', id=2), Foo(name='q', id=3), Foo(name='s', id=4), Foo(name='r', id=5)]
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This is the exact answer I want to find, many thanks fellow! –  Roger Liu Mar 29 '13 at 11:07
    
@user2172901: it's common to accept helpful answers around these parts –  thg435 Mar 29 '13 at 13:21
    
@thg435 Thanks man, I accepted it: ) –  Roger Liu Mar 30 '13 at 2:23
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You can do it with a list comprehension, but in general is it the same.

sorted_b = [ y for x in a for y in b if y.id == x ]
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I think jamylak's answer is what I'm looking for, but thanks anyway:) –  Roger Liu Mar 29 '13 at 11:10
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This is a simple way to do it:

# Create a dictionary that maps from an ID to the corresponding object
object_by_id = dict((x.id, x) for x in b)

sorted_b = [object_by_id[i] for i in a]

If the list gets big, it's probably the fastest way, too.

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Cool! I like your way to tackle with this problem, many thanks! –  Roger Liu Mar 29 '13 at 11:29
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There is a sorted function in Python. It takes optional keyword argument cmp. You can pass there your customized function for sorting.

cmp definition from the docs:

custom comparison should return a negative, zero or positive number depending on whether the first argument is considered smaller than, equal to, or larger than the second argument

a = [1,2,3,4,5]
def compare(el1, el2):
   if a.index(el1.id) < a.index(el2.id): return -1
   if a.index(el1.id) > a.index(el2.id): return 1
   return 0

sorted(b, cmp=compare)

This is more straightforward however I would encourage you to use the key argument as jamylak described in his answer, because it's more pythonic and in Python 3 the cmp is not longer supported.

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Thanks anyway:) –  Roger Liu Mar 29 '13 at 11:13
    
But I got a little bit confused with the two if statements in the compare function, can you explain that to me? I'm not familiar with the cmp argument, thanks. –  Roger Liu Mar 29 '13 at 11:15
    
I edited the answer, hope it's more clear now :) –  davekr Mar 29 '13 at 11:20
    
Then I think the second if statement should be if a.index(el1.id) > a.index(el2.id). Now I got it, thank you fellow. –  Roger Liu Mar 29 '13 at 11:27
    
Yep, you're right, there was a typo. –  davekr Mar 29 '13 at 11:28
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