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I'm making a mini twitter clone in Flask + MongoDB (w/ pymongo) as a learning exercise and I need some help joining data from two collections. I know and understand joins can't be done in MongoDB, that's why I'm asking how do it in Python.

I have a collection to store user information. Documents look like this:

{
    "_id" : ObjectId("51a6c4e3eedc89e34ee46e32"),
    "email" : "alex@email.com",
    "message" : [
        ObjectId("51a6c5e1eedc89e34ee46e36")
    ],
    "pw_hash" : "alexhash",
    "username" : "alex",
    "who_id" : [
        ObjectId("51a6c530eedc89e34ee46e33"),
        ObjectId("51a6c54beedc89e34ee46e34")
    ],
    "whom_id" : [ ]
}

and another collection to store messages (tweets):

{
    "_id" : ObjectId("51a6c5e1eedc89e34ee46e36"),
    "author_id" : ObjectId("51a6c4e3eedc89e34ee46e32"),
    "text" : "alex first twit",
    "pub_date" : ISODate("2013-05-30T03:22:09.462Z")
}

As you can see, the message contains a reference to the user's "_id" in "author_id" in the message document and vice versa for the message's "_id" in "message" in the user document.

Basically, what I want to do is take every message's "author_id", get the corresponding username from the user collection and make a new dictionary containing the "username" + "text" + "pub_date". With that, I could easily render the data in my Jinja2 template.

I have the following code that sorta do what I want:

def getMessageAuthor():
    author_id = []
    # get a list of author_ids for every message
    for author in coll_message.find():
        author_id.append(author['author_id'])
    # iterate through every author_ids to find the corresponding username
    for item in author_id:
        message = coll_message.find_one({"author_id": item}, {"text": 1, "pub_date": 1})
        author = coll_user.find_one({"_id": item}, {"username": 1})
        merged = dict(chain((message.items() + author.items())))

Output looks this:

{u'username': u'alex', u'text': u'alex first twit', u'_id': ObjectId('51a6c4e3eedc89e34ee46e32'), u'pub_date': datetime.datetime(2013, 5, 30, 3, 22, 9, 462000)}

Which is exactly what I want.

The code doesn't work though because I'm doing .find_one() so I always get the first message even if a user has two or more. Doing .find() might resolve this issue, but .find() returns a cursor and not a dictionary like .find_one(). I haven't figured out how to convert cursors to the same dictionary format as the output from .find_one() and merge them to get the same output as above.

This is where I'm stuck. I don't know how I should proceed to fix this. Any help is appreciated.

Thank you.

share|improve this question
    
Have you considered embedding the user name in the message? It makes reads easier, and you might not allow the user to change his name anyway. Even if you do, you can update all documents on name change. –  Thomas Fenzl May 31 '13 at 5:48
    
Yes, I did. I actually tried several different schemas before settling on this one. One of the reasons I settled on this one was that if this was more than an a learning exercise, I would want users to be able to changed their username so I figured might as well learn how to do it now. Also, I choose this because ObjectIds are quite small (only 12 bytes) compared to storing strings. More info about that here: stackoverflow.com/a/7767394/1234135 Cheers! –  admiralobvious May 31 '13 at 15:39
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1 Answer 1

up vote 1 down vote accepted

Append ("_id", "author_id") so that this id is used to retrive the corresponding message as expected and author_id to get username.

You just need unique key to do that :

def getMessageAuthor():
    author_id = []
    # get a list of ids and author_ids for every message
    for author in coll_message.find():
        author_id.append( (author['_id'], author['author_id']))
    # iterate through every author_ids to find the corresponding username
    for id, item in author_id:
        message = coll_message.find_one({"_id": id}, {"text": 1, "pub_date": 1})
        author = coll_user.find_one({"_id": item}, {"username": 1})
        merged = dict(chain((message.items() + author.items())))
share|improve this answer
    
Wow! I confirm this works. I can't believe the fix was so simple. Thank you very much. –  admiralobvious May 31 '13 at 5:49
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