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I'm in a situation where I must output a quite large list of objects by a CharField used to store street addresses.

My problem is, that obviously the data is ordered by ASCII codes since it's a Charfield, with the predictable results .. it sort the numbers like this;

1, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 2, 20, 21....

Now the obvious step would be to change the Charfield the proper field type (IntegerField let's say), however it cannot work since some address might have apartments .. like "128A".

I really don't know how I can order this properly ..

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Curious to know if you found a solution to this. Many thanks. N –  Nathan Keller Nov 11 '11 at 13:29

4 Answers 4

up vote 9 down vote accepted

If you're sure there are only integers in the field, you could get the database to cast it as an integer via the extra method, and order by that:

MyModel.objects.extra(
    select={'myinteger': 'CAST(mycharfield AS INTEGER)'}
).order_by('myinteger')
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Not all addresses start with a number. This approach works for special-case of "I have numbers in my char field", but will fail to sort mixed data. –  Dave W. Smith Jun 4 '10 at 0:29
    
Very interesting use of extra, I rarely play with that method.. But it doesn't seem to work in my situation unfortunately. –  h3. Jun 4 '10 at 12:31
1  
Use 'SIGNED' or 'UNSIGNED' instead of INTEGER if your MYSQL version doesn't support it. –  Adriaan Jul 6 '12 at 11:35
    
@Adriaan thnx for your comment, it worked for me !! –  Deepanshu Oct 22 '13 at 11:23

The problem you're up against is quite similar to how filenames get ordered when sorting by filename. There, you want "2 Foo.mp3" to appear before "12 Foo.mp3".

A common approach is to "normalize" numbers to expanding to a fixed number of digits, and then sorting based on the normalized form. That is, for purposes of sorting, "2 Foo.mp3" might expand to "0000000002 Foo.mp3".

Django won't help you here directly. You can either add a field to store the "normalized" address, and have the database order_by that, or you can do a custom sort in your view (or in a helper that your view uses) on address records before handing the list of records to a template.

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Great tip! It works for me! :) That's my code:

revisioned_objects = revisioned_objects.extra(select={'casted_object_id': 'CAST(object_id AS INTEGER)'}).extra(order_by = ['casted_object_id'])
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If you're using PostgreSQL (not sure about MySQL) you can safely use following code on char/text fields and avoid cast errors:

MyModel.objects.extra(
    select={'myinteger': "CAST(substring(charfield FROM '^[0-9]+') AS INTEGER)"}
).order_by('myinteger')
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This is an excellent suggestion! –  Maik Hoepfel Oct 29 at 13:38

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