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db.mycollection.find(HAS IMAGE URL)
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Short answer: the query { field : {$ne : null} } check for not-null docs.mongodb.org/manual/reference/operator/query/ne –  Jaider Jul 8 at 13:31

4 Answers 4

This will return all documents with a key called "IMAGE URL", but they may still have a null value.

db.mycollection.find({"IMAGE URL":{$exists:true}});

This will return all documents with both a key called "IMAGE URL" and a non-null value.

db.mycollection.find({"IMAGE URL":{$ne:null}});

Also, according to the docs, $exists currently can't use an index, but $ne can.

Edit: Adding some examples due to interest in this answer

Given these inserts:

db.test.insert({"num":1, "check":"check value"});
db.test.insert({"num":2, "check":null});
db.test.insert({"num":3});

This will return all three documents:

db.test.find();

This will return the first and second documents only:

db.test.find({"check":{$exists:true}});

This will return the first document only:

db.test.find({"check":{$ne:null}});

This will return the second and third documents only:

db.test.find({"check":null})
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3  
It's the correct answer! –  redice Dec 6 '13 at 6:54
4  
According to docs, $ne includes documents that do not contain the field. Has this changed since you posted the answer? docs.mongodb.org/manual/reference/operator/query/ne –  Andrew Mao Sep 24 '14 at 4:40
1  
I don't believe that has changed. When checking $ne, the value is checked in all documents, including those that don't contain the field, but $ne:null still will not match a document that does not contain the field since the value of the field is still null, even though the field doesn't exist in that document. –  Tim Gautier Sep 24 '14 at 17:39
    
@TimGautier, are you saying $ne:null will not match a document missing the field because the value is null? Shouldn't it not match the document because the value is not null? –  James M. Lay Feb 22 at 21:47
    
$ne:null will not match a document that does not have that field because the value of the non-existent field is null and $ne:null is looking for fields that are not equal to null. So the answer to your questions are yes for the first and no for the second. –  Tim Gautier Feb 24 at 17:43

In pymongo you can use:

db.mycollection.find({"IMAGE URL":{"$ne":None}});

Because pymongo represents mongo "null" as python "None".

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An alternative that has not been mentioned, but that may be a more efficient option for some (won't work with NULL entries) is to use a sparse index (entries in the index only exist when there is something in the field). Here is a sample data set:

db.foo.find()
{ "_id" : ObjectId("544540b31b5cf91c4893eb94"), "imageUrl" : "http://example.com/foo.jpg" }
{ "_id" : ObjectId("544540ba1b5cf91c4893eb95"), "imageUrl" : "http://example.com/bar.jpg" }
{ "_id" : ObjectId("544540c51b5cf91c4893eb96"), "imageUrl" : "http://example.com/foo.png" }
{ "_id" : ObjectId("544540c91b5cf91c4893eb97"), "imageUrl" : "http://example.com/bar.png" }
{ "_id" : ObjectId("544540ed1b5cf91c4893eb98"), "otherField" : 1 }
{ "_id" : ObjectId("544540f11b5cf91c4893eb99"), "otherField" : 2 }

Now, create the sparse index on imageUrl field:

db.foo.ensureIndex( { "imageUrl": 1 }, { sparse: true } )
{
    "createdCollectionAutomatically" : false,
    "numIndexesBefore" : 1,
    "numIndexesAfter" : 2,
    "ok" : 1
}

Now, there is always a chance (and in particular with a small data set like my sample) that rather than using an index, MongoDB will use a table scan, even for a potential covered index query. As it turns out that gives me an easy way to illustrate the difference here:

db.foo.find({}, {_id : 0, imageUrl : 1})
{ "imageUrl" : "http://example.com/foo.jpg" }
{ "imageUrl" : "http://example.com/bar.jpg" }
{ "imageUrl" : "http://example.com/foo.png" }
{ "imageUrl" : "http://example.com/bar.png" }
{  }
{  }

OK, so the extra documents with no imageUrl are being returned, just empty, not what we wanted. Just to confirm why, do an explain:

db.foo.find({}, {_id : 0, imageUrl : 1}).explain()
{
    "cursor" : "BasicCursor",
    "isMultiKey" : false,
    "n" : 6,
    "nscannedObjects" : 6,
    "nscanned" : 6,
    "nscannedObjectsAllPlans" : 6,
    "nscannedAllPlans" : 6,
    "scanAndOrder" : false,
    "indexOnly" : false,
    "nYields" : 0,
    "nChunkSkips" : 0,
    "millis" : 0,
    "server" : "localhost:31100",
    "filterSet" : false
}

So, yes, a BasicCursor equals a table scan, it did not use the index. Let's force the query to use our sparse index with a hint():

db.foo.find({}, {_id : 0, imageUrl : 1}).hint({imageUrl : 1})
{ "imageUrl" : "http://example.com/bar.jpg" }
{ "imageUrl" : "http://example.com/bar.png" }
{ "imageUrl" : "http://example.com/foo.jpg" }
{ "imageUrl" : "http://example.com/foo.png" }

And there is the result we were looking for - only documents with the field populated are returned. This also only uses the index (i.e. it is a covered index query), so only the index needs to be in memory to return the results.

This is a specialized use case and can't be used generally (see other answers for those options). In particular it should be noted that as things stand you cannot use count() in this way (for my example it will return 6 not 4), so please only use when appropriate.

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the Query Will be

db.mycollection.find({"IMAGE URL":{"$exists":"true"}})

it will return all documents having "IMAGE URL" as a key ...........

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6  
this does not work if doc['IMAGE URL'] = null –  kilianc Jul 8 '14 at 13:05

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