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There seems to be almost no documentation about how to design databases for MongoDB. So I thought I'll start by posting my questions here.

Assume this collection (fruits_inventory) as an example:

{
    "name"      : "Orange",
    "type"      : "citric",
    "available" : 3
}
{
    "name"      : "Apple",
    "type"      : "pome",
    "available" : 0
    "note"      : "Not shipping this month"
}
{
    "name"      : "Pear",
    "type"      : "pome",
    "available" : 2
}

(No indexes set)

1) Field selection

db.fruits_inventory.findOne({name:"Orange"},{"note":1});

Will this query seek for a document containing only a field name with value Orange and return with the first hit, even if it has no note field set? Or will it keep searching for a document that does contains a note field?

2) With unique indexes

If I set a unique index on name, would the answer for the previous question change?

Only these two questions for now. Answers will be greatly appreciated.

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2  
What happens when you try it? –  beny23 Sep 23 '11 at 22:57
    
I really can't because the query will return NULL in either cases. How else could I test it? –  tomwilde Sep 23 '11 at 23:01
1  
there is no documentation about how to design: not true. but also quite irrelevant here. you need the docs about querying, and that's well documented. and btw.. no results for those queries.. does that tell you something? what else could you test? –  Karoly Horvath Sep 23 '11 at 23:10
    
> I really can't because the query will return NULL in either cases - You really should just try it... –  Bernie Hackett Sep 23 '11 at 23:20
    
@BernieHackett: Of course I tried it, I used the PHP driver and I just kept getting NULL which makes sense because the field I requested was not found in either cases. –  tomwilde Sep 23 '11 at 23:23

2 Answers 2

up vote 7 down vote accepted

I wrote the following script:

// sofruit.js
db = db.getSiblingDB('test');

db.fruits_inventory.drop();
db.fruits_inventory.save({
    "name"      : "Orange",
    "type"      : "citric",
    "available" : 3
});
db.fruits_inventory.save({
    "name"      : "Apple",
    "type"      : "pome",
    "available" : 0,
    "note"      : "Not shipping this month"
});
db.fruits_inventory.save({
    "name"      : "Pear",
    "type"      : "pome",
    "available" : 2 
});

var a1 = db.fruits_inventory.findOne({name:"Orange"},{"note":1});

db.fruits_inventory.ensureIndex({name:1}, {unique:true});

var a2 = db.fruits_inventory.findOne({name:"Orange"},{"note":1});

Then I ran it from the mongo shell and got:

> load('../mongojs/sofruit.js');
> a1
{ "_id" : ObjectId("4e7d119e9b3e59bf2e0c5199") }
> a2
{ "_id" : ObjectId("4e7d119e9b3e59bf2e0c5199") }  
>

So, the answer is "Yes," it will return the first hit, even if it has no "note" field set. Adding an index doesn't change that.

share|improve this answer
    
Thank you very much. –  tomwilde Sep 23 '11 at 23:16

You can connect directly to mongodb and check it:

MongoDB shell version: 2.0.0
connecting to: test
> use test
switched to db test
> db.fruits_inventory.save({
...     "name"      : "Orange",
...     "type"      : "citric",
...     "available" : 3
... });
> db.fruits_inventory.save({
...     "name"      : "Pear",
...     "type"      : "pome",
...     "available" : 2
... })
> db.fruits_inventory.save({
...     "name"      : "Apple",
...     "type"      : "pome",
...     "available" : 0,
...     "note"      : "Not shipping this month"
... })
> db.fruits_inventory.find()
{ "_id" : ObjectId("4e7d0fa5626e0ab7b5074bb0"), "name" : "Orange", "type" : "citric", "available" : 3 }
{ "_id" : ObjectId("4e7d101b626e0ab7b5074bb1"), "name" : "Pear", "type" : "pome", "available" : 2 }
{ "_id" : ObjectId("4e7d1059626e0ab7b5074bb2"), "name" : "Apple", "type" : "pome", "available" : 0, "note" : "Not shipping this month" }
> db.fruits_inventory.find({name: "Orange"},{"note":1})
{ "_id" : ObjectId("4e7d0fa5626e0ab7b5074bb0") }
> db.fruits_inventory.ensureIndex({name:1}, {unique:true})
> db.fruits_inventory.find({name: "Orange"},{"note":1})
{ "_id" : ObjectId("4e7d0fa5626e0ab7b5074bb0") }

So in answer to your question, when you query for the note field, it will just return the id and having a unique index makes no difference.

share|improve this answer
    
Not sure quite what you mean "it will just return the index" -- perhaps "it will use the index [to service the query]"? –  dcrosta Sep 23 '11 at 23:16
    
Thank you =) From the PHP API (That's what I used) I just kept getting NULL. –  tomwilde Sep 23 '11 at 23:17
    
@dcrosta He means the _id –  tomwilde Sep 23 '11 at 23:18
    
@Tom: thanks, fixed now. –  beny23 Sep 23 '11 at 23:21

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