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let's say that I have an Address model with a postcode field. I can lookup addresses with postcode starting with "123" with this line:

Address.objects.filter(postcode__startswith="123")

Now, I need to do this search the "other way around". I have an Address model with a postcode_prefix field, and I need to retrieve all the addresses for which postcode_prefix is a prefix of a given code, like "12345". So if in my db I had 2 addresses with postcode_prefix = "123" and "234", only the first one would be returned.

Something like:

Address.objects.filter("12345".startswith(postcode_prefix)) 

The problem is that this doesn't work. The only solution I can come up with is to perform a filter on the first char, like:

Address.objects.filter(postcode_prefix__startswith="12345"[0])

and then, when I get the results, make a list comprehension that filters them properly, like this:

results = [r for r in results if "12345".startswith(r.postcode_prefix)]

Is there a better way to do it in django? thank you, Fabrizio

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Is the length of the prefix fixed or does it have variable length? –  cyroxx Aug 10 '12 at 15:47
    
variable length :) –  sfabriz Aug 10 '12 at 16:22

4 Answers 4

up vote 5 down vote accepted

In SQL terms, what you want to achieve reads like ('12345' is the postcode you are searching for):

SELECT *
FROM address
WHERE '12345' LIKE postcode_prefix||'%'

This is not really a standard query and I do not see any possibility to achieve this in Django using only get()/filter().

However, Django offers a way to provide additional SQL clauses with extra():

postcode = '12345'
Address.objects.extra(where=["%s LIKE postcode_prefix||'%%'"], params=[postcode])

Please see the Django documentation on extra() for further reference. Also note that the extra contains pure SQL, so you need to make sure that the clause is valid for your database.

Hope this works for you.

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1  
Thank you. This is probably the best way of doing it, though, as you say, it becomes db dependent. I'm happy though that there is no quick django magic that I was missing. Thank you very much! Fabrizio –  sfabriz Aug 10 '12 at 20:03

I think what you are trying to do with your "something like" line is properly written as this:

Address.objects.filter(postcode__startswith=postcode_prefix)
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Actually OP wants it the other way round. –  cyroxx Aug 10 '12 at 16:09
    
Exactly. I need the other way around. I can do it with python, in more than one way, but I just needed to know if I was missing some proper django way to do it. :) –  sfabriz Aug 10 '12 at 16:24

A. If not the issue https://code.djangoproject.com/ticket/13363, you could do this:

queryset.extra(select={'myconst': "'this superstring is myconst value'"}).filter(myconst__contains=F('myfield'))

Maybe, they will fix an issue and it can work.

B. If not the issue 16731 (sorry not providing full url, not enough rep, see another ticket above) you could filter by fields that added with '.annotate', with creation of custom aggreation function, like here: http://coder.cl/2011/09/custom-aggregates-on-django/

C. Last and successful. I have managed to do this using monkeypatching of the following:

  1. django.db.models.sql.Query.query_terms
  2. django.db.models.fields.Field.get_prep_lookup
  3. django.db.models.fields.Field.get_db_prep_lookup
  4. django.db.models.sql.where.WhereNode.make_atom

Just defined custom lookup '_starts', which has reverse logic of '_startswith'

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A possible alternative. (Have no idea how it compares to the accepted solution with a column as the second param to like, in execution time)

q=reduce(lambda a,b:a|b, [Q(postcode__startswith=postcode[:i+1]) for i in range(len(postcode))])

Thus, you generate all prefixes, and or them together...

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