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I am using mongodb and flask. I have the following model:

class Post(db.Document):
    properties = db.ListField(db.EmbeddedDocumentField('Properties'))


class Properties(db.EmbeddedDocument):
    title = db.StringField(max_length=255, required=True)
    types = db.StringField(max_length=255, required=True)
    location_name = db.StringField(max_length=255, required=True)
    url = db.StringField(max_length=255, required=True)
    feed_url = db.StringField(max_length=255, required=True)
    content_url = db.StringField(max_length=255, required=True)
    date_added = db.StringField(max_length=255, required=True)
    date_crawled = db.StringField(max_length=255, required=True)

When i do Post.properties i get returned a list field. I was wondering if anyone knew how to access the url attribute in the properties class. Preferably i want to get the listfield where properties.url is equal for example "abc"

I have tried Post.properties.url and i get the following error

AttributeError: 'ListField' object has no attribute 'url'

Many thanks

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1 Answer 1

Post.properties has ListField type. So for Post instance properties has list type.

At first you must get Post instance (not class):

post_1 = Post.objects.first()  # get first from database
post_2 = Post().save()  # create and save

With Post instance you can get propery by index:

post = Post.objects.firts()
print post.properties[0].url if post.properties else None

But better iterate for properties:

post = Post.objects.firts()
for property in post.properties:
    print property.url

Also look to mongoengine tutorial and user guide.

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Thanks to get all objects from the database do i just do Post.objects. I can seem to find where all these methods i can call are in the documentation. –  Kimmy Jun 30 '13 at 11:29

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