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I have a 2D list where each "row" has an index, name, and a path like [(1L, "bar", "foo/bar"), (2L, "app", "some/app"),] etc. I am trying to retrieve a "row" from this 2D list given and index. For example, an index of 1 should return (1L, "bar", "foo/bar"). I know I can loop through my whole list and compare the index until I find the object like so:

my_index = 1    
for row in my_list:
    if (row[0] == my_index)
        return row
return False

I was wondering if there is a cleaner/nicer way to do this in python, since I am new to python. I know there is an index method for a list that returns the index from a list but I'm not sure how I can use that with a 2D list. Thanks in advance! Oh and also, it can be assumed that there will only be one instance of each object (i.e: no duplicates)

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up vote 1 down vote accepted

It looks like you would be better off using a dictionary instead of a list, so your data would look like this:

my_dict = {1L: (1L, "bar", "foo/bar"),
           2L: (2L, "app", "some/app")}

This allows you to efficiently access each element by index:

>>> my_dict[1]
(1L, 'bar', 'foo/bar')

Here is how you could create the dictionary from the list:

my_dict = {row[0]: row for row in my_list}

Or on Python 2.6 and below:

my_dict = dict((row[0], row) for row in my_list)
share|improve this answer
    
the problem is the indices in my list aren't consecutive or in any order. For example, a 2D list of 5 objects can have an index of 3, 6, 1, 5, 11 respectively so I cant directly reference the object. – still.Learning Sep 17 '12 at 23:07
1  
If you convert your list into a dictionary that uses the index as the key, you can directly reference the object using the index. – Andrew Clark Sep 17 '12 at 23:09
    
Hmm that makes sense, I will give it a try. Thanks! – still.Learning Sep 17 '12 at 23:19

If your list is static (meaning you are not going to add/remove items from it) you might want to consider sorting your it.

By default, and if I'm not wrong, tuple are sorted by their first element and therefor you should have a sorted list where my_list[x-1] index is x

my_list.sort()
row = my_list[my_index - 1]
share|improve this answer
    
the indices aren't consecutive so I don't think this will work. For example, if the list has objects with indices 4,1,2, the sorted list will become 1,2,4 and accessing the row with [2] will return 4, which is incorrect. – still.Learning Sep 17 '12 at 23:11

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