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just wondering if anyone can come up with a smarter way to do this...

Let's say I have some documents in MongoDB with a version property, for example something like { ..., version: { major: 1, minor: 2, patch: 13 } }, or { ..., version: "1.2.13" } if it is easier.

What's the easiest way to find all documents that have version X.Y.Z or above? The way I'm doing it now is basically a huge $and clause.

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up vote 0 down vote accepted

Your first design is actually very good. The reason is because you can index the fields major, minor and patch for fast reads.

Querying the data is actually much easier than using the $and query. You can just use a basic query on matching fields:

eg)

db.versions.find({major:1,minor:2,patch:20}) //give me documents of version 1.2.20 db.versions.find({major:1}) //give me all documents with major version 1 db.versions.find({major:1,minor:{$gte:2,$lte:5}}) //give me all documents of major version and minor versions between 2 and 5 inclusive.

You can create an index like db.versions.ensureIndex({major:1,minor:1,patch:1})

The $and query is mainly for the case where you want to run a more complex query on the same field multiple times. For instance, if you want to get major versions 1 and 2, you can use $and.

db.versions.find({major:1,major:2}) will actually only return documents with major version 2. However, db.versions.find({a:$all:[1,2]}) would work too in this case. You should ideally avoid using $and when you can because it actually spawns multiple queries for each expression in the $and array and performs a union. This is much expensive than the query samples I provided above.

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That's what I thought too. The problem with this approach is that 1.0.0 is actually bigger than 0.10.1. In that case the query with $lte and $gte is actually dependent on the major (or minor) version. For example, I would like to grab all documents 1.0.0 or below. – Leander Jul 22 '13 at 6:22
    
One query that would get all the documents 1.0.0 or below would be db.versions.find({major:{$lte:1}}). Since you broke out the fields, you can actually query them independently eg. db.versions.find({minor:$in[1,10]}) //give me all versions which have a minor version of 1 or 10. – Dylan Tong Jul 22 '13 at 13:21
    
Ah, maybe 1.0.0 is a bad example. If I chose 1.1.0 then it wouldn't work... – Leander Jul 23 '13 at 0:36
    
I see. You will need to use $or using one expression to handle the immediate version and one to handle the rest. eg) version < 1.1.1 $or:[{major:1,minor:{$lte:1},patch:{$lte:1}},{major:{$lt:1}}]. version > 2.2.2: $or:[{major:2,minor:{$gte:2},patch:{$gte:2}},{major:{gt:2}}]. Alternatively, you could do a hybrid approach where you store major,minor,patch in separate fields for equality matches and another field for ranges (eg. (major*10000)+(minor*100)+patch) – Dylan Tong Jul 23 '13 at 1:27
    
Yeah, I guess that's the easiest way. Thanks for your input. – Leander Jul 23 '13 at 9:06

If you use a fixed number of digits for the version number and store it as a string, you should be able to use $gte.

"001.002.0013" > "001.002.0011" = true
"001.003.0013" > "001.002.0013" = true
"002.000.0000" > "001.002.0013" = true
"001.002.0012" > "001.002.0013" = false
"001.001.0013" > "001.002.0013" = false
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