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I am trying to optimize my web application by using iterator() on my queryset in an attampt to save memory.

However if I do this:

q = (
    Q(longname__icontains = query) |
    Q(genus__icontains = query) |
    Q(specific_epithet__icontains = query) |
    Q(infraspecific_epithet__icontains = query) |
    Q(collectedby__personname__icontains = query) |
    Q(islandname__icontains = query) |
    Q(es_name__icontains = query) |
    Q(en_name__icontains = query) |
    Q(local_name__icontains = query)
)
query_set = Specimen.objects.filter(q).order_by('longname').iterator()[:1000]

I get the following error:

TypeError at /search/
'generator' object is not subscriptable

And if I try:

query_set.count()

I get:

AttributeError at /search/
'generator' object has no attribute 'count'

My question is - how can I use iterator on this type of query and is it really worth it?

Any help much appreciated.

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I am highly skeptical that the exception came from that code. –  Ignacio Vazquez-Abrams May 9 '12 at 21:40
    
Are you are right - I think it is some processing after that raises the exception. See my edit. –  Darwin Tech May 9 '12 at 21:48
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2 Answers

You can use itertools.islice() to slice a generator. You will need to perform a separate COUNT(*) query to get the total number of records returned.

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iterator() turns a QuerySet to a generator object, which is no longer subscriptable and does not have .count() method.
So do slice, and other QuerySet-specific operations, before turning the QuerySet into generator(after that you can only access the generator by iterating on it):

query_set = Specimen.objects.filter(q).order_by('longname')[:1000].iterator()

Or you could operate on the generator as Ignacio suggested

query_set = Specimen.objects.filter(q).order_by('longname').iterator()
from itertools import islice
g = islice(query_set, 1000)
share|improve this answer
    
Thankyou! I use the slice syntax to limit the query to a reasonable number to avoid large memory usage. So if I need to count the number of results following slicing, which is the best way to do that? Bare in mind I am shooting for the least memory-intensive option. –  Darwin Tech May 10 '12 at 14:18
    
@DarwinTech I'm not quite sure your meaning about count, could you provide some details? Or its something like qs[100:].count()? Furthermore, DB backend such as psycopg loads all of the result set into memory, you could check this to achieve less memory foodprint (remember to use iterator() in the loop line in the snippet) –  okm May 10 '12 at 16:07
    
I basically want to execute the query query_set = Specimen.objects.filter(q).order_by('longname')[:1000].iterator() and then get the number of items in the query_set. –  Darwin Tech May 10 '12 at 16:20
    
@DarwinTech you could maintain a counter when iterating through the generator, or simply Specimen.objects.filter(q).count() and compare the result w/ 1000 to get the minimum value. –  okm May 10 '12 at 16:44
    
If I do another query that means I am hitting the db again just to get the count? Isn't this a waste? –  Darwin Tech May 10 '12 at 17:16
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