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I have a field in mongodb that's a string. {"field": "some text"}, I want to convert them all into arrays. {"field": ["some text"]}

I know I can just loop through all the documents, get the field, then update, but I'm wondering if there's a cleaner way.

Thanks.

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5 Answers 5

up vote 2 down vote accepted

You could do it in a Reduce function of map/reduce to keep all the processing in mongodb. Essentially you would use map/reduce to put the results into a new collection and then you could copy them back to the old collection (or delete old one and rename the new one). This has the advantage of keeping everything inside of mongo.

Update: Another option might be for you to use db.eval for this. db.eval lets at least do all the updates on the server without any traffic/latency.

I think the only other option is as you described - do it on the client by querying and updating each one.

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Do you think the map reduce in mongo will be faster? –  Harry Sep 13 '11 at 18:58
    
Mostly it depends on how many documents and how much data you're moving between the server & client. If there is a lot of data moving between server/client then you want to keep the processing inside of MongoDB with mapReduce or try db.eval (as I just added in an edit above). –  activescott Sep 13 '11 at 19:48
    
thanks for db.eval, always happy to learn something new. –  Harry Sep 14 '11 at 13:29

Nitin Garg's answer above almost works, except his example converts from a string to a hash, NOT a string to an array.

Taking into account Joel Harris's comments, the proper solution would look like:

db.jobs.find( { "jobLocationCity" : { $type : 2 } } ).snapshot().forEach( function (x) {
    x.jobLocationCity = [ jobLocationCity ];
    db.jobs.save(x);
});

Or if using db.eval:

function f() {
    db.jobs.find( { "jobLocationCity" : { $type : 2 } } ).snapshot().forEach( function (x) {
        x.jobLocationCity = [ jobLocationCity ];
        db.jobs.save(x);
    });
}
db.eval(f);
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1  
small fix: x.jobLocationCity = [ x.jobLocationCity ]; –  Vitamon Jan 12 '13 at 15:22
    
Why save and not update? –  nilskp May 3 '13 at 20:10

try this instead

This is to change the type of a field from string to array in mongoDB

db.jobs.find( { "jobLocationCity" : { $type : 2 } } ).forEach( function (x) {
    x.jobLocationCity = {"Location":x.jobLocationCity};
    db.jobs.save(x);
});

see the link for $type's possible values

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This answer led me to a solution that I feel is very succinct. The problem I had with the sample provided here is that because a call to save() is being made within the forEach loop, the cursor was getting messed up and the function would get called multiple times for the same document. The solution is to call snapshot() before the foreach: db.jobs.find(blah).snapshot().forEach() –  Joel Harris Aug 3 '12 at 19:00

Actually, the find( { "jobLocationCity" : { $type : 2 } } ) will not work properly, because if you'll run update script next time, it will treat ['mystring'] elements again as string type.

You should use something like this to prevent it:

db.message_info.find( { "jobLocationCity" : { $type : 2 } }  ).snapshot().forEach(
  function (x) {
    if (!Array.isArray(x.jobLocationCity)){
        x.jobLocationCity = [ x.jobLocationCity  ];
        db.jobs.save(x);
    }
  }
)

see http://docs.mongodb.org/manual/reference/operators/

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but I'm wondering if there's a cleaner way..

The short answer is no.

MongoDB does not have any single operation or command to perform a "change type".

The quickest way to do this is likely to use one of the drivers and make the change. You can use the shell and write a for loop, but in terms of raw speed, the other drivers may be faster.

That stated, the slowest part of the process is going to be loading all of the data from disk into memory to be changed and then flushing that data back to disk. This would be true even with a magic "change type" command.

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