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how do I check if an ListField() attribute of a Mongo Class is not set or empty?

Thanks!

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2 Answers 2

up vote 4 down vote accepted

Hi you can use $exists and $size:

import unittest
from mongoengine import *

class Test(unittest.TestCase):

    def setUp(self):
        conn = connect(db='mongoenginetest')

    def test_list_exists_or_has_size(self):

        class Post(Document):
            title = StringField(required=True)
            tags = ListField(StringField())

        Post.drop_collection()

        Post(title="Hello Stackoverflow").save()
        Post(title="Hello twitter", tags=[]).save()
        Post(title="Hello world", tags=['post', 'blog']).save()

        self.assertEqual(2, Post.objects(
                                Q(tags__exists=False) |
                                Q(tags__size=0)).count())
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sounds good! but its "exists" and not "exist" in the final query, isn't it? I'm not allowed to do a change with less than 6 chars... –  Ron Aug 14 '12 at 7:28

Not sure entirely sure if this is what you mean by empty or not set ListField this:

from mongoengine import *

connect('tumblelog')


class Post(Document):
    title = StringField(required=True)
    tags = ListField(StringField())


post1 = Post(title='Fun with MongoEngine', tags=['mongodb', 'mongoengine'])
post1.save()

for post in Post.objects:
    print post.title
    if not post.tags:
        print '-post has no tags'
    else:
        print post.tags

This will output:

Fun with MongoEngine
[u'mongodb', u'mongoengine']
Fun with MongoEngine no tags
-post has no tags
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