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I am new to mongodb and so stressed out because of mongodb's incomplete documentation leaving me for trial and error... sadly, all my attempts are not working with no error, leaving me confused about what was happening and what to debug...

I just need to update multiple records on the database matching certain criteria, and for the non existing records, create new entries for that. I believe I can do it with a single database access with update, upsert and multi. Here's what I've come up with:

dbschema.Person.update( { person_id: { $in: ["734533604" ,"701084015"] } }, { $set: {"scores": 1200} }, { options: { upsert: true, multi: true } } );

I've also tried multiple combinations or even the old version such as:

dbschema.Person.update( { person_id: { $in: ["734533604" ,"701084015"] } }, { $set: {"scores": 1200} }, { upsert: true }, { multi: true } );

none of them works...

Please help me with this so trivial stuff... I can easily do it in sql, but the nosql thingy is so limiting on me.. Thanks!

EDIT:

The same query on find works perfectly:

dbschema.Person.find( { person_id: { $in: ["734533604" ,"701084015"] } }, function ( err, results ) {
    console.log( 'result: ' + results );
    console.log( 'error: ' + err );
    console.log( 'result length: ' + results.length );
} );

EDIT:

I am expecting the "not found" record to be created, and the found record to be updated. my logic may be flawed and I am so much confused now.

Originally, I was find()-ing one record at a time, change the value, and called save() for each of the record modified, but when I deployed to live, the response time become hundreds of time slower especially when there's a few hundred records to be updated on each request.

Then I found find() + $in, and the performance is restored and even better than previous (when query), but the update is still unacceptably slow.. Therefore, now I am looking for ways to update all documents at one query..

what I normally do in SQL is using UPDATE WHEN CASE THEN... eg:

UPDATE person SET score = CASE
WHEN person_id = "734533604" THEN 1200
WHEN person_id = "701084015" THEN 1200
ELSE
score
END
share|improve this question
    
its not possible using upsert with $in because upsert can insert one personid at a time and it would be confused between first and second value –  Ajay Beniwal May 1 '13 at 18:02
    
you have several problems, some syntactical but others design. If you are looking for 2 matching records and none are found do you expect both to be created? If one of two is found, do you expect one to be updated and one created? Upsert can create at most one new record and this is why multi and upsert sometimes don't make sense together. –  Asya Kamsky May 1 '13 at 20:10
    
yes, I am expecting both to be created if not found, if one is found, it is to be updated, and those that not found be created.. You are right, I am a lot confused and maybe my logic is flawed as well.. but I'll explain why I am trying to do this way.. –  Zennichimaro May 2 '13 at 1:46

1 Answer 1

up vote 1 down vote accepted

You cannot update multiple records based on different criteria and expect "upsert" to figure out what you mean. Upsert flag can cause insertion of at most one document and if you check the documentation you'll see that it doesn't make sense to have a "compound" criteria for update in case of an upsert.

In your example, which of the two fbid values should the insert use?

I think in your case you can take several approaches (all involve more than a single operation). You can update using the upsert flag in a loop calling update once for each fbid value - this will work like you expect and if fbid is not found a new document for it will be created. Other ways involve querying before running the update but I think those ways may be more prone to race conditions.

Here is explanation of how update works - I find it pretty complete: http://docs.mongodb.org/manual/core/update/#update-operations-with-the-upsert-flag

share|improve this answer
1  
Thanks, I was expecting all records in $in to be updated or inserted. I am not sure whether this is the way to do it as I am trying to optimize the many insert/update that is killing my response time. Do you have any idea how I can insert/update a lot of records and preferably save it in one shot? –  Zennichimaro May 2 '13 at 2:00
    
there isn't a way to do that, if I understand your question. –  Asya Kamsky May 2 '13 at 16:00

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