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I'm new to Python but I have gone thru the syntax. Here's my scenario:

I have two instances of Cursors AllImages & AllAlbums (I'm getting the data from a db & I'm getting them like this:

AllImages = Images.find()
AllAlbums = Albums.find()

)

[Edit: I'm using the PyMongo API]

Inside every dictionary in AllAlbums I have an array of numbers called images = [1234,2234,16363]

Inside every dictionary in All Images I have a field called _id

Here's how both dicts look like:

From AllAlbums:

{ _id:23
  images:[1123,6643,4,9087]
}

From AllImages:

{ _id:6643}

Now, I need to see if this _id is present in images

This is what I've written so far:

for img in AllImages:
    for alAl in AllAlbums:
        alIm = alAl['images']
        for qq in alIm:
            if qq==img['_id']:
                print 'Here!',img['_id'],' with',alAl['_id']

Now here's what I get for output:

The program correctly matches _id = 0 in images for a dictionary in AllAlbums with _id of 69.

However, after that (for the rest of the _ids like 1,2,3...8899...9999) it does not enter into the second for loop to iterate. Yes, I know my approach is probably crude and all, but I just need this basic code to run.

How do I re-iterate this cursor for AllAlbums ?

Apologies if I've not formatted the code properly. I'm on Python 2.7

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How are AllImages and AllAlbums created ? Can you print list(AllImages) and and print list(AllAlbums) and show us the output ? Or at least part of it ? –  ddelemeny Mar 23 '14 at 13:13
    
The only conditional is inside the third loop, so it should always enter the second loop, unless AllAlbums is empty. There are obvious problems with the code, but it should work; I don't see what would cause the behaviour you describe. Could you give us a real example of inputs and outputs, if you can demonstrate the problem with a small collection? –  SpoonMeiser Mar 23 '14 at 13:14
    
I know, right! Well, I have provided with real examples of results. However, I'll post another one: {_id:6809} and {_id:29, images:[6809,2234,6709,9985]} I know it should print 'Here!' for this condition as well BUT it does NOT do the iteration after it's done with _id:0 –  Saturnian Mar 23 '14 at 13:16
    
@ddelemeny - Hi! I realized my mistake - AllImages & AllAlbums are instances of Cursor (since I obtained them from the Database) - which is probably the reason this is happening! How would I re-iterate over a cursor? –  Saturnian Mar 23 '14 at 13:28
1  
@Saturnian the usual way is to turn them into lists, which do support multiple iterations - if your initial assignment of AllImages looks like AllImages = some_magic(), change it to AllImages = list(some_magic()). –  lvc Mar 23 '14 at 13:32

2 Answers 2

A definition of a dictionary from AllAlbums should be something like this:

album = {'_id': 23, 'images': [1123, 6643, 4, 9087]}

(It could have more fields, of course.)

Assuming that AllImages and AllAlbums are lists, you could use a list comprehension.

with_image = [a for a in AllAlbums if 6643 in a[`images`]]
share|improve this answer
    
I think I realised my mistake. AllAlbums & AllImages are instances of Cursor ! So obviously when it's done cruising over all dicts for the first iteration of AllImages I believe it won't set itself back to point to the beginning. By any chance would you know how to re-iterate over a cursor? –  Saturnian Mar 23 '14 at 13:26
    
@Saturnian: which database are we talking about here? There are several that have Python interfaces... –  Roland Smith Mar 23 '14 at 13:48
    
MongoDB; using the PyMongo API. I resolved the issue by making a list of the cursor - AllAlbumsList = list(AllAlbums) That worked for me, thanks so much! (: –  Saturnian Mar 23 '14 at 14:17
    
I feel like there must he a query syntax that will do this for you in a non O(n^2) way... –  aruisdante Mar 23 '14 at 14:22
up vote 0 down vote accepted

Solution is very simple.

I simply made a list out of the cursor instance AllAlbums and was able to re-iterate multiple times. Thanks a lot to those who pointed this out to me (:

AllAlbumList = list(AllAlbums)

share|improve this answer
1  
you don't need a list, you could use for img, alAl itertools.product(AllImages, AllAlbums): –  J.F. Sebastian Mar 23 '14 at 17:02
    
I could try this out. Thanks (: –  Saturnian Mar 24 '14 at 5:53

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