Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Working with a Django app. I have a List of ads and I want to be able to filter on these in templates (eg, grab all ads of spot_id = 1, then pick a random one.

I'm using raw SQL via the cursor instead of Django's mysterious querying, so I already have my list (converted into a dict). Here's what I have so far:

# list/dict of ads
[
 {'filename': u'rc_ad_06_02_11.gif', 'spot_id': 1L }, 
 {'filename': u'k_banner.jpg', 'spot_id': 1L}, 
 {'filename': u'dwarves-banner.gif', 'spot_id': 1L}, 
 {'filename': u'k_skyscraper.jpg', 'spot_id': 2L }
]   

# attempt to group them somehow
final_ads = []

    last_spot_id = 0
    for a in ads:
        if a['spot_id'] != last_spot_id:
        final_ads[a['spot_id']][] = a # syntax error here
    last_spot_id = a['spot_id']

logger.info(final_ads)

This doesn't work. What I'm essentially trying to get to is a list of this kind of structure:

[
 1: [
     {'filename': u'rc_ad_06_02_11.gif', 'spot_id': 1L }, 
     {'filename': u'k_banner.jpg', 'spot_id': 1L}, 
     {'filename': u'dwarves-banner.gif', 'spot_id': 1L}
 ],
 2: [
     {'filename': u'k_skyscraper.jpg', 'spot_id': 2L }
 ]
]   

(couldn't think of a proper way of representing this, sorry if it doesn't look right).

If anyone can show me a smarter way of doing this I'd be very appreciative. Thanks.

share|improve this question

4 Answers 4

up vote 1 down vote accepted

I think this script is what you're looking for.

final_ads = {}
for a in ads:
    final_ads.setdefault(a['spot_id'], []).append(a)

Note setdefault that initializes the list if it doesn't exist.

share|improve this answer
    
Lots of good answers here but accepting this one as it's closest to the spirit of what I was trying to do (great tip on setdefault, was struggling with how to achieve that dynamically). –  Matt Andrews Aug 9 '12 at 21:40

defaultdict should handle this nice it will return a dict rather than a list

final_ads will be something like {1:[a1,a3,a4],2:[a2,a5]...}

from collections import defaultdict
final_ads = defaultdict(list)
for a in ads:
    final_ads[a['spot_id']].append(a)

print final_ads
for spot_id in sorted(final_ads.keys()):
    print "Spot %s=%s"%(spot_id,final_ads[spot_id])

above code with your list of dicts returns prints

defaultdict(<type 'list'>, {1L: [{'spot_id': 1L, 'filename': u'rc_ad_06_02_11.gif'}, {'spot_id': 1L, 'filename': u'k_banner.jpg'}, {'spot_id': 1L, 'filename': u'dwarves-banner.gif'}], 2L: [{'spot_id': 2L, 'filename': u'k_skyscraper.jpg'}]})
Spot 1=[{'spot_id': 1L, 'filename': u'rc_ad_06_02_11.gif'}, {'spot_id': 1L, 'filename': u'k_banner.jpg'}, {'spot_id': 1L, 'filename': u'dwarves-banner.gif'}]
Spot 2=[{'spot_id': 2L, 'filename': u'k_skyscraper.jpg'}]
share|improve this answer
    
Does it deal well with long such as 1L? –  Jill-Jênn Vie Aug 9 '12 at 21:14
    
sure its a dict ... 1L will probably down cast to 1 ... (or not see results above..its still 1L) –  Joran Beasley Aug 9 '12 at 21:15
import collections
final_ads = collections.defaultdict(list)
for ad in ads:
    final_ads[ad['spot_id']].append(ad)
logger.info(final_ads)
share|improve this answer
import itertools
grps = itertools.groupby(ads,lambda x:x['spot_id'])
final_ads = dict(map(lambda (k,g):(k,list(g)),grps)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.