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I would like to know what's the equivalent of this MySQL command in MongoDB.

INSERT INTO xyz (field1, field2, field3, field4)
SELECT,,, NOW() FROM t1, t2, t3

I've been using MongoDB for only 48 hours and I'm afraid I just can't figure that one out.

Thanks for everything :).

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1 Answer 1

up vote 1 down vote accepted

MongoDB doesn't do joins so your first three steps are:

  1. Grab from MongoDB and put it in t1_id.
  2. Grab from MongoDB and put it in t2_id.
  3. Grab from MongoDB and put it in t3_id.

Then, you can use new Timestamp() in place of NOW():{
    field1: t1_id,
    field2: t2_id,
    field3: t3_id,
    field4: new Timestamp()

If you're really doing a three way cross product, then you'll have to wrap the above in a triple nested loop something like this:

for(var i = 0; i < all_t1_ids.length; ++i) {
    for(var j = 0; j < all_t2_ids.length; ++j) {
        for(var k = 0; k < all_t3_ids.length; ++k) {
                field1: all_t1_ids[i],
                field2: all_t2_ids[j],
                field3: all_t3_ids[k],
                field4: new Timestamp()

You have to do a lot of traditional RDBMS things by hand with MongoDB.

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But if my original MySQL query inserted around 400K records, will the one you suggested do the same? From the look of it, it looks like it will only insert one. – Pierre May 29 '11 at 15:41
@Pierre: You'd have to wrap it in a loop, I'll add a little update to that effect. – mu is too short May 29 '11 at 17:54

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