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Aim to Achieve:

I want all objects where name attribute contains any word from the list.

I have:

list = ['word1','word2','word3']
ob_list = data.objects.filter( // What to write here ?  )
// or any other way to get the objects where any word in list is contained, in 
// the na-me attribute of data.

For example:

if name="this is word2": Then object with such a name should be returned since word2 is in the list.

Please help!

58

You could use Q objects to constuct a query like this:

from django.db.models import Q

ob_list = data.objects.filter(reduce(lambda x, y: x | y, [Q(name__contains=word) for word in list]))

Edit:

reduce(lambda x, y: x | y, [Q(name__contains=word) for word in list]))

is a fancy way to write

Q(name__contains=list[0]) | Q(name__contains=list[1]) | ... | Q(name__contains=list[-1])

You could also use an explicit for loop to construct the Q object.

6
  • can you explaing.. reduce and lambda...? Your solution is working fine. – Yugal Jindle Aug 17 '11 at 5:18
  • 3
    I'm not the one who posted this, but lambda is just a way of defining a function right there instead of defining it elsewhere, and reduce repeatedly applies an operation repeatedly on a list: reduce(lambda x, y: x+y, [1, 2, 3, 4, 5]) does ((((1+2)+3)+4)+5). The reduction by bitwise OR over the list of Qs is the same as the any over the list in my answer. – agf Aug 17 '11 at 5:22
  • @agf The difference is here the OR is performed at the database level instead of fetching all the records and filtering them in python. – Ismail Badawi Aug 17 '11 at 5:28
  • 1
    @agf Sorry, by the OR I meant the actual filtering (i.e. the WHERE clause has name LIKE ... OR name LIKE ... and so on). The reduce only constructs the Q object, which doesn't hit the database. – Ismail Badawi Aug 17 '11 at 5:37
  • 5
    Note: If you're using Python > 3, you must import reduce with from functools import reduce – primoz Jan 5 '17 at 10:01
29
ob_list = data.objects.filter(name__in=my_list)

And BTW, avoid using the variable name "list" (Or any other python standard keyword), lest you get into some weird bugs later.

Update: (I guess your question was updated too, because when I wrote the answer, I didn't see the part where you wrote you need a contains match and not an exact match)

You can do that using the regex search too, avoiding many Q expressions (which end up using that many where "and" clauses in the SQL, possibly dampening the performance), as follows:

data.objects.filter(name__regex=r'(word1|word2|word3)')
1
  • 4
    for my purposes the regex approach was much faster than using Q expressions. And made for a much more readable query. Thank you Lakshman Prasad – Ryder Brooks Jun 13 '14 at 3:10
2
obj_list = [obj for obj in data.objects.all() if any(name in obj.name for name in list)]

Edit: Just re-read your question. Don't know if you can do that with filter but you can do it with a list comprehension or generator expression.

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  • Name should not be in the list, but any word in the list that is contained in the name. – Yugal Jindle Aug 17 '11 at 5:11
  • I already edited my answer -- it now does what you want (in the idiomatic Python way, non-Django specific). – agf Aug 17 '11 at 5:13
1

For anyone comparing Arrays, you could use Django's Overlap filter to achieve this.

From the docs:

Returns objects where the data shares any results with the values passed. Uses the SQL operator &&.

So, you would simply write:

ob_list = data.objects.filter(name__overlap=my_list)

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