MongoDB "filtered" index: is it possible? - mongodb

Is it possible to index some documents of the collection "only if" one of the fields to be indexed has a particular value?
Let me explain with an example:
The collection "posts" has millions of documents, ALL defined as follows:
{
    "network": "network_1",
    "blogname": "blogname_1",
    "post_id": 1234,
    "post_slug": "abcdefg"
}
Let's assume that the distribution of the post is equally split on network_1 and network_2
My application OFTEN select the type of query based on the value of "network" (although sometimes I need the data from both networks):
For example:
www.test.it/network_1/blog_1/**postid**/1234/
-> db.posts.find ({network: "network_1" blogname "blog_1", post_id: 1234})
www.test.it/network_2/blog_4/**slug**/aaaa/
-> db.posts.find ({network: "network_2" blogname "blog_4" post_slug: "yyyy"})
I could create two separate indexes (network / blogname / post_id and network / blogname / post_slug) but I would get a huge waste of RAM, since 50% of the data in the index will never be used.
Is there a way to create an index "filtered"?
Example:
(Note the WHERE parameter)
db.posts.ensureIndex ({network: 1 blogname: 1, post_id: 1}, {where: {network: "network_1"}})
db.posts.ensureIndex ({network: 1 blogname: 1, post_slug: 1}, {where: {network: "network_2"}})

Indeed it's possible in MongoDB 3.2+ They call it partialFilterExpression where you can set a condition based on which index will be created.
Example
db.users.createIndex({ "userId": 1, "project": 1 },
{ unique: true, partialFilterExpression:{
userId: { $exists: true, $gt : { $type : 10 } } } })
Please see Partial Index documentation

As of MongoDB v3.2, partial indexes are supported. Documentation: https://docs.mongodb.org/manual/core/index-partial/

It's possible, but it requires a workaround which creates redundancy in your documents, requires you to rewrite your find-queries and limits find-queries to exact matches.
MongoDB supports sparse indexes which only index the documents where the given field exists. You can use this feature to only index a part of the collection by adding this field only to those documents you want to index.
The bad news is that sparse indexes can only include a single field. But the good news is, that this field can also contain an object with multiple fields, so you can still store all the data you want to search for in this field.
To do this, add a new field to the included documents which includes an object with the fields you search for:
{
"network": "network_1",
"blogname": "blogname_1",
"post_id": 1234,
"post_slug": "abcdefg"
"network_1_index_key": {
"blogname": "blogname_1",
"post_id": 1234
}
}
Your ensureIndex command would index the field network_1_index_key:
db.posts.ensureIndex( { network_1_index_key: 1 }, { sparse: true } )
A find-query which is supposed to use this index, must now query for the exact object of the field network_1_index_key:
db.posts.find ({
network_1_index_key: {
blogname: "blogname_1",
post_id: 1234
}
})
Doing this would likely only make sense when the documents you want to index are a very small part of the collection. When its about half, I would just create a regular index and live with it because the larger document-size could mitigate the gains from the reduced index size.

You can try create index on all field (network / blogname / post_id / post_slug)

Related

MongoDB: using indexes on multiple fields or an array

I'm new with mongo
Entity:
{
"sender": {
"id": <unique key inside type>,
"type": <enum value>,
},
"recipient": {
"id": <unique key inside type>,
"type": <enum value>,
},
...
}
I need to create effective seach by query "find entities where sender or recipient equal to user from collection" with paging
foreach member in memberIHaveAccessTo:
condition ||= member == recipient || member == sender
I have read some about mongo indexes. Probably my problem can be solve by storing addional field "members" which will be array contains sender and recipient and then create index on this array
Is it possible to build such an index with monga?
Is mongo good choise to create indexes like?
Some thoughts about the issues raised in the question about querying and the application of indexes on the queried fields.
(i) The $or and two indexes:
I need to create effective search by query "find entities where sender
or recipient equal to user from collection...
Your query is going to be like this:
db.test.find( { $or: [ { "sender.id": "someid" }, { "recipient.id": "someid" } ] } )
With indexes defined on "sender.id" and "recipient.id", two individual indexes, the query with the $or operator will use both the indexes.
From the docs ($or Clauses and Indexes):
When evaluating the clauses in the $or expression, MongoDB either
performs a collection scan or, if all the clauses are supported by
indexes, MongoDB performs index scans.
Running the query with an explain() and examining the query plan shows that indexes are used for both the conditions.
(ii) Index on members array:
Probably my problem can be solve by storing addtional field "members"
which will be array contains sender and recipient and then create
index on this array...
With the members array field, the query will be like this:
db.test.find( { members_array: "someid" } )
When an index is defined on members_array field, the query will use the index; the generated query plan shows the index usage. Note that an index defined on an array field is referred as Multikey Index.

How to get the particuler object fields using ReativeMongo without a case class [duplicate]

In my MongoDB, I have a student collection with 10 records having fields name and roll. One record of this collection is:
{
"_id" : ObjectId("53d9feff55d6b4dd1171dd9e"),
"name" : "Swati",
"roll" : "80",
}
I want to retrieve the field roll only for all 10 records in the collection as we would do in traditional database by using:
SELECT roll FROM student
I went through many blogs but all are resulting in a query which must have WHERE clause in it, for example:
db.students.find({ "roll": { $gt: 70 })
The query is equivalent to:
SELECT * FROM student WHERE roll > 70
My requirement is to find a single key only without any condition. So, what is the query operation for that.
From the MongoDB docs:
A projection can explicitly include several fields. In the following operation, find() method returns all documents that match the query. In the result set, only the item and qty fields and, by default, the _id field return in the matching documents.
db.inventory.find( { type: 'food' }, { item: 1, qty: 1 } )
In this example from the folks at Mongo, the returned documents will contain only the fields of item, qty, and _id.
Thus, you should be able to issue a statement such as:
db.students.find({}, {roll:1, _id:0})
The above statement will select all documents in the students collection, and the returned document will return only the roll field (and exclude the _id).
If we don't mention _id:0 the fields returned will be roll and _id. The '_id' field is always displayed by default. So we need to explicitly mention _id:0 along with roll.
get all data from table
db.student.find({})
SELECT * FROM student
get all data from table without _id
db.student.find({}, {_id:0})
SELECT name, roll FROM student
get all data from one field with _id
db.student.find({}, {roll:1})
SELECT id, roll FROM student
get all data from one field without _id
db.student.find({}, {roll:1, _id:0})
SELECT roll FROM student
find specified data using where clause
db.student.find({roll: 80})
SELECT * FROM students WHERE roll = '80'
find a data using where clause and greater than condition
db.student.find({ "roll": { $gt: 70 }}) // $gt is greater than
SELECT * FROM student WHERE roll > '70'
find a data using where clause and greater than or equal to condition
db.student.find({ "roll": { $gte: 70 }}) // $gte is greater than or equal
SELECT * FROM student WHERE roll >= '70'
find a data using where clause and less than or equal to condition
db.student.find({ "roll": { $lte: 70 }}) // $lte is less than or equal
SELECT * FROM student WHERE roll <= '70'
find a data using where clause and less than to condition
db.student.find({ "roll": { $lt: 70 }}) // $lt is less than
SELECT * FROM student WHERE roll < '70'
I think mattingly890 has the correct answer , here is another example along with the pattern/commmand
db.collection.find( {}, {your_key:1, _id:0})
> db.mycollection.find().pretty();
{
"_id": ObjectId("54ffca63cea5644e7cda8e1a"),
"host": "google",
"ip": "1.1.192.1"
}
db.mycollection.find({},{ "_id": 0, "host": 1 }).pretty();
Here you go , 3 ways of doing , Shortest to boring :
db.student.find({}, 'roll _id'); // <--- Just multiple fields name space separated
// OR
db.student.find({}).select('roll _id'); // <--- Just multiple fields name space separated
// OR
db.student.find({}, {'roll' : 1 , '_id' : 1 ); // <---- Old lengthy boring way
To remove specific field use - operator :
db.student.find({}).select('roll -_id') // <--- Will remove id from result
While gowtham's answer is complete, it is worth noting that those commands may differ from on API to another (for those not using mongo's shell).
Please refer to documentation link for detailed info.
Nodejs, for instance, have a method called `projection that you would append to your find function in order to project.
Following the same example set, commands like the following can be used with Node:
db.student.find({}).project({roll:1})
SELECT _id, roll FROM student
Or
db.student.find({}).project({roll:1, _id: 0})
SELECT roll FROM student
and so on.
Again for nodejs users, do not forget (what you should already be familiar with if you used this API before) to use toArray in order to append your .then command.
Try the following query:
db.student.find({}, {roll: 1, _id: 0});
And if you are using console you can add pretty() for making it easy to read.
db.student.find({}, {roll: 1, _id: 0}).pretty();
Hope this helps!!
Just for educational purposes you could also do it with any of the following ways:
1.
var query = {"roll": {$gt: 70};
var cursor = db.student.find(query);
cursor.project({"roll":1, "_id":0});
2.
var query = {"roll": {$gt: 70};
var projection = {"roll":1, "_id":0};
var cursor = db.student.find(query,projection);
`
db.<collection>.find({}, {field1: <value>, field2: <value> ...})
In your example, you can do something like:
db.students.find({}, {"roll":true, "_id":false})
Projection
The projection parameter determines which fields are returned in the
matching documents. The projection parameter takes a document of the
following form:
{ field1: <value>, field2: <value> ... }
The <value> can be any of the following:
1 or true to include the field in the return documents.
0 or false to exclude the field.
NOTE
For the _id field, you do not have to explicitly specify _id: 1 to
return the _id field. The find() method always returns the _id field
unless you specify _id: 0 to suppress the field.
READ MORE
For better understanding I have written similar MySQL query.
Selecting specific fields
MongoDB : db.collection_name.find({},{name:true,email:true,phone:true});
MySQL : SELECT name,email,phone FROM table_name;
Selecting specific fields with where clause
MongoDB : db.collection_name.find({email:'you#email.com'},{name:true,email:true,phone:true});
MySQL : SELECT name,email,phone FROM table_name WHERE email = 'you#email.com';
This works for me,
db.student.find({},{"roll":1})
no condition in where clause i.e., inside first curly braces.
inside next curly braces: list of projection field names to be needed in the result and 1 indicates particular field is the part of the query result
getting name of the student
student-details = db.students.find({{ "roll": {$gt: 70} },{"name": 1, "_id": False})
getting name & roll of the student
student-details = db.students.find({{ "roll": {$gt: 70}},{"name": 1,"roll":1,"_id": False})
I just want to add to the answers that if you want to display a field that is nested in another object, you can use the following syntax
db.collection.find( {}, {{'object.key': true}})
Here key is present inside the object named object
{ "_id" : ObjectId("5d2ef0702385"), "object" : { "key" : "value" } }
var collection = db.collection('appuser');
collection.aggregate(
{ $project : { firstName : 1, lastName : 1 } },function(err, res){
res.toArray(function(err, realRes){
console.log("response roo==>",realRes);
});
});
it's working
Use the Query like this in the shell:
1. Use database_name
e.g: use database_name
2. Which returns only assets particular field information when matched , _id:0 specifies not to display ID in the result
db.collection_name.find( { "Search_Field": "value" },
{ "Field_to_display": 1,_id:0 } )
If u want to retrieve the field "roll" only for all 10 records in the collections.
Then try this.
In MongoDb :
db.students.find( { } , { " roll " : { " $roll " })
In Sql :
select roll from students
The query for MongoDB here fees is collection and description is a field.
db.getCollection('fees').find({},{description:1,_id:0})
Apart from what people have already mentioned I am just introducing indexes to the mix.
So imagine a large collection, with let's say over 1 million documents and you have to run a query like this.
The WiredTiger Internal cache will have to keep all that data in the cache if you have to run this query on it, if not that data will be fed into the WT Internal Cache either from FS Cache or Disk before the retrieval from DB is done (in batches if being called for from a driver connected to database & given that 1 million documents are not returned in 1 go, cursor comes into play)
Covered query can be an alternative. Copying the text from docs directly.
When an index covers a query, MongoDB can both match the query conditions and return the results using only the index keys; i.e. MongoDB does not need to examine documents from the collection to return the results.
When an index covers a query, the explain result has an IXSCAN stage that is not a descendant of a FETCH stage, and in the executionStats, the totalDocsExamined is 0.
Query : db.getCollection('qaa').find({roll_no : {$gte : 0}},{_id : 0, roll_no : 1})
Index : db.getCollection('qaa').createIndex({roll_no : 1})
If the index here is in WT Internal Cache then it would be a straight forward process to get the values. An index has impact on the write performance of the system thus this would make more sense if the reads are a plenty compared to the writes.
If you are using the MongoDB driver in NodeJs then the above-mentioned answers might not work for you. You will have to do something like this to get only selected properties as a response.
import { MongoClient } from "mongodb";
// Replace the uri string with your MongoDB deployment's connection string.
const uri = "<connection string uri>";
const client = new MongoClient(uri);
async function run() {
try {
await client.connect();
const database = client.db("sample_mflix");
const movies = database.collection("movies");
// Query for a movie that has the title 'The Room'
const query = { title: "The Room" };
const options = {
// sort matched documents in descending order by rating
sort: { "imdb.rating": -1 },
// Include only the `title` and `imdb` fields in the returned document
projection: { _id: 0, title: 1, imdb: 1 },
};
const movie = await movies.findOne(query, options);
/** since this method returns the matched document, not a cursor,
* print it directly
*/
console.log(movie);
} finally {
await client.close();
}
}
run().catch(console.dir);
This code is copied from the actual MongoDB doc you can check here.
https://docs.mongodb.com/drivers/node/current/usage-examples/findOne/
db.student.find({}, {"roll":1, "_id":0})
This is equivalent to -
Select roll from student
db.student.find({}, {"roll":1, "name":1, "_id":0})
This is equivalent to -
Select roll, name from student
In mongodb 3.4 we can use below logic, i am not sure about previous versions
select roll from student ==> db.student.find(!{}, {roll:1})
the above logic helps to define some columns (if they are less)
Using Studio 3T for MongoDB, if I use .find({}, { _id: 0, roll: true }) it still return an array of objects with an empty _id property.
Using JavaScript map helped me to only retrieve the desired roll property as an array of string:
var rolls = db.student
.find({ roll: { $gt: 70 } }) // query where role > 70
.map(x => x.roll); // return an array of role
Not sure this answers the question but I believe it's worth mentioning here.
There is one more way for selecting single field (and not multiple) using db.collection_name.distinct();
e.g.,db.student.distinct('roll',{});
Or, 2nd way: Using db.collection_name.find().forEach(); (multiple fields can be selected here by concatenation)
e.g., db.collection_name.find().forEach(function(c1){print(c1.roll);});
_id = "123321"; _user = await likes.find({liker_id: _id},{liked_id:"$liked_id"}); ;
let suppose you have liker_id and liked_id field in the document so by putting "$liked_id" it will return _id and liked_id only.
For Single Update :
db.collection_name.update({ field_name_1: ("value")}, { $set: { field_name_2 : "new_value" }});
For MultiUpdate :
db.collection_name.updateMany({ field_name_1: ("value")}, { $set: {field_name_2 : "new_value" }});
Make sure indexes are proper.

How to make a query without nested document in MongoDB? [duplicate]

In my MongoDB, I have a student collection with 10 records having fields name and roll. One record of this collection is:
{
"_id" : ObjectId("53d9feff55d6b4dd1171dd9e"),
"name" : "Swati",
"roll" : "80",
}
I want to retrieve the field roll only for all 10 records in the collection as we would do in traditional database by using:
SELECT roll FROM student
I went through many blogs but all are resulting in a query which must have WHERE clause in it, for example:
db.students.find({ "roll": { $gt: 70 })
The query is equivalent to:
SELECT * FROM student WHERE roll > 70
My requirement is to find a single key only without any condition. So, what is the query operation for that.
From the MongoDB docs:
A projection can explicitly include several fields. In the following operation, find() method returns all documents that match the query. In the result set, only the item and qty fields and, by default, the _id field return in the matching documents.
db.inventory.find( { type: 'food' }, { item: 1, qty: 1 } )
In this example from the folks at Mongo, the returned documents will contain only the fields of item, qty, and _id.
Thus, you should be able to issue a statement such as:
db.students.find({}, {roll:1, _id:0})
The above statement will select all documents in the students collection, and the returned document will return only the roll field (and exclude the _id).
If we don't mention _id:0 the fields returned will be roll and _id. The '_id' field is always displayed by default. So we need to explicitly mention _id:0 along with roll.
get all data from table
db.student.find({})
SELECT * FROM student
get all data from table without _id
db.student.find({}, {_id:0})
SELECT name, roll FROM student
get all data from one field with _id
db.student.find({}, {roll:1})
SELECT id, roll FROM student
get all data from one field without _id
db.student.find({}, {roll:1, _id:0})
SELECT roll FROM student
find specified data using where clause
db.student.find({roll: 80})
SELECT * FROM students WHERE roll = '80'
find a data using where clause and greater than condition
db.student.find({ "roll": { $gt: 70 }}) // $gt is greater than
SELECT * FROM student WHERE roll > '70'
find a data using where clause and greater than or equal to condition
db.student.find({ "roll": { $gte: 70 }}) // $gte is greater than or equal
SELECT * FROM student WHERE roll >= '70'
find a data using where clause and less than or equal to condition
db.student.find({ "roll": { $lte: 70 }}) // $lte is less than or equal
SELECT * FROM student WHERE roll <= '70'
find a data using where clause and less than to condition
db.student.find({ "roll": { $lt: 70 }}) // $lt is less than
SELECT * FROM student WHERE roll < '70'
I think mattingly890 has the correct answer , here is another example along with the pattern/commmand
db.collection.find( {}, {your_key:1, _id:0})
> db.mycollection.find().pretty();
{
"_id": ObjectId("54ffca63cea5644e7cda8e1a"),
"host": "google",
"ip": "1.1.192.1"
}
db.mycollection.find({},{ "_id": 0, "host": 1 }).pretty();
Here you go , 3 ways of doing , Shortest to boring :
db.student.find({}, 'roll _id'); // <--- Just multiple fields name space separated
// OR
db.student.find({}).select('roll _id'); // <--- Just multiple fields name space separated
// OR
db.student.find({}, {'roll' : 1 , '_id' : 1 ); // <---- Old lengthy boring way
To remove specific field use - operator :
db.student.find({}).select('roll -_id') // <--- Will remove id from result
While gowtham's answer is complete, it is worth noting that those commands may differ from on API to another (for those not using mongo's shell).
Please refer to documentation link for detailed info.
Nodejs, for instance, have a method called `projection that you would append to your find function in order to project.
Following the same example set, commands like the following can be used with Node:
db.student.find({}).project({roll:1})
SELECT _id, roll FROM student
Or
db.student.find({}).project({roll:1, _id: 0})
SELECT roll FROM student
and so on.
Again for nodejs users, do not forget (what you should already be familiar with if you used this API before) to use toArray in order to append your .then command.
Try the following query:
db.student.find({}, {roll: 1, _id: 0});
And if you are using console you can add pretty() for making it easy to read.
db.student.find({}, {roll: 1, _id: 0}).pretty();
Hope this helps!!
Just for educational purposes you could also do it with any of the following ways:
1.
var query = {"roll": {$gt: 70};
var cursor = db.student.find(query);
cursor.project({"roll":1, "_id":0});
2.
var query = {"roll": {$gt: 70};
var projection = {"roll":1, "_id":0};
var cursor = db.student.find(query,projection);
`
db.<collection>.find({}, {field1: <value>, field2: <value> ...})
In your example, you can do something like:
db.students.find({}, {"roll":true, "_id":false})
Projection
The projection parameter determines which fields are returned in the
matching documents. The projection parameter takes a document of the
following form:
{ field1: <value>, field2: <value> ... }
The <value> can be any of the following:
1 or true to include the field in the return documents.
0 or false to exclude the field.
NOTE
For the _id field, you do not have to explicitly specify _id: 1 to
return the _id field. The find() method always returns the _id field
unless you specify _id: 0 to suppress the field.
READ MORE
For better understanding I have written similar MySQL query.
Selecting specific fields
MongoDB : db.collection_name.find({},{name:true,email:true,phone:true});
MySQL : SELECT name,email,phone FROM table_name;
Selecting specific fields with where clause
MongoDB : db.collection_name.find({email:'you#email.com'},{name:true,email:true,phone:true});
MySQL : SELECT name,email,phone FROM table_name WHERE email = 'you#email.com';
This works for me,
db.student.find({},{"roll":1})
no condition in where clause i.e., inside first curly braces.
inside next curly braces: list of projection field names to be needed in the result and 1 indicates particular field is the part of the query result
getting name of the student
student-details = db.students.find({{ "roll": {$gt: 70} },{"name": 1, "_id": False})
getting name & roll of the student
student-details = db.students.find({{ "roll": {$gt: 70}},{"name": 1,"roll":1,"_id": False})
I just want to add to the answers that if you want to display a field that is nested in another object, you can use the following syntax
db.collection.find( {}, {{'object.key': true}})
Here key is present inside the object named object
{ "_id" : ObjectId("5d2ef0702385"), "object" : { "key" : "value" } }
var collection = db.collection('appuser');
collection.aggregate(
{ $project : { firstName : 1, lastName : 1 } },function(err, res){
res.toArray(function(err, realRes){
console.log("response roo==>",realRes);
});
});
it's working
Use the Query like this in the shell:
1. Use database_name
e.g: use database_name
2. Which returns only assets particular field information when matched , _id:0 specifies not to display ID in the result
db.collection_name.find( { "Search_Field": "value" },
{ "Field_to_display": 1,_id:0 } )
If u want to retrieve the field "roll" only for all 10 records in the collections.
Then try this.
In MongoDb :
db.students.find( { } , { " roll " : { " $roll " })
In Sql :
select roll from students
The query for MongoDB here fees is collection and description is a field.
db.getCollection('fees').find({},{description:1,_id:0})
Apart from what people have already mentioned I am just introducing indexes to the mix.
So imagine a large collection, with let's say over 1 million documents and you have to run a query like this.
The WiredTiger Internal cache will have to keep all that data in the cache if you have to run this query on it, if not that data will be fed into the WT Internal Cache either from FS Cache or Disk before the retrieval from DB is done (in batches if being called for from a driver connected to database & given that 1 million documents are not returned in 1 go, cursor comes into play)
Covered query can be an alternative. Copying the text from docs directly.
When an index covers a query, MongoDB can both match the query conditions and return the results using only the index keys; i.e. MongoDB does not need to examine documents from the collection to return the results.
When an index covers a query, the explain result has an IXSCAN stage that is not a descendant of a FETCH stage, and in the executionStats, the totalDocsExamined is 0.
Query : db.getCollection('qaa').find({roll_no : {$gte : 0}},{_id : 0, roll_no : 1})
Index : db.getCollection('qaa').createIndex({roll_no : 1})
If the index here is in WT Internal Cache then it would be a straight forward process to get the values. An index has impact on the write performance of the system thus this would make more sense if the reads are a plenty compared to the writes.
If you are using the MongoDB driver in NodeJs then the above-mentioned answers might not work for you. You will have to do something like this to get only selected properties as a response.
import { MongoClient } from "mongodb";
// Replace the uri string with your MongoDB deployment's connection string.
const uri = "<connection string uri>";
const client = new MongoClient(uri);
async function run() {
try {
await client.connect();
const database = client.db("sample_mflix");
const movies = database.collection("movies");
// Query for a movie that has the title 'The Room'
const query = { title: "The Room" };
const options = {
// sort matched documents in descending order by rating
sort: { "imdb.rating": -1 },
// Include only the `title` and `imdb` fields in the returned document
projection: { _id: 0, title: 1, imdb: 1 },
};
const movie = await movies.findOne(query, options);
/** since this method returns the matched document, not a cursor,
* print it directly
*/
console.log(movie);
} finally {
await client.close();
}
}
run().catch(console.dir);
This code is copied from the actual MongoDB doc you can check here.
https://docs.mongodb.com/drivers/node/current/usage-examples/findOne/
db.student.find({}, {"roll":1, "_id":0})
This is equivalent to -
Select roll from student
db.student.find({}, {"roll":1, "name":1, "_id":0})
This is equivalent to -
Select roll, name from student
In mongodb 3.4 we can use below logic, i am not sure about previous versions
select roll from student ==> db.student.find(!{}, {roll:1})
the above logic helps to define some columns (if they are less)
Using Studio 3T for MongoDB, if I use .find({}, { _id: 0, roll: true }) it still return an array of objects with an empty _id property.
Using JavaScript map helped me to only retrieve the desired roll property as an array of string:
var rolls = db.student
.find({ roll: { $gt: 70 } }) // query where role > 70
.map(x => x.roll); // return an array of role
Not sure this answers the question but I believe it's worth mentioning here.
There is one more way for selecting single field (and not multiple) using db.collection_name.distinct();
e.g.,db.student.distinct('roll',{});
Or, 2nd way: Using db.collection_name.find().forEach(); (multiple fields can be selected here by concatenation)
e.g., db.collection_name.find().forEach(function(c1){print(c1.roll);});
_id = "123321"; _user = await likes.find({liker_id: _id},{liked_id:"$liked_id"}); ;
let suppose you have liker_id and liked_id field in the document so by putting "$liked_id" it will return _id and liked_id only.
For Single Update :
db.collection_name.update({ field_name_1: ("value")}, { $set: { field_name_2 : "new_value" }});
For MultiUpdate :
db.collection_name.updateMany({ field_name_1: ("value")}, { $set: {field_name_2 : "new_value" }});
Make sure indexes are proper.

Can we apply index to match a certain value in mongoDB

i have a collection named users as shown below .
db.users.find().pretty()
{
"_id" : ObjectId("512efc206074b0e4bbdce792"),
"login_id" : "dutchuser",
"isBroker" : false
}
I want to apply index for this users collection with the login_id and isBroker field also .
db.users.ensureIndex( { "login_id": 1, "isBroker": 1 }, { unique: false } )
My concern is that most of the isBroker field has got a value of false .
So is there any possibility that i can apply index in that way ??
You cannot conditionally apply a filter to an index in MongoDB. While you could potentially restructure your data or introduce additional, potentially duplicate fields in your schema, I'm not convinced it's a reasonable "optimization."
Use db.stats() to actually measure the size of the database and db.{collectionname}.totalIndexSize() to see what the impact of having the index you proposed really is.
By using this index:
db.users.ensureIndex( { "login_id": 1, "isBroker": 1 }, { unique: false } )
You can only use queries that involve login_id and isBroker or just login_id. Depending on the types of queries that you run, you may also run into this currently open issue that might make a simple grouping/sorting on isBroker inefficient (or if at some point it becomes broker_type for example).

How to remove duplicates based on a key in Mongodb?

I have a collection in MongoDB where there are around (~3 million records). My sample record would look like,
{ "_id" = ObjectId("50731xxxxxxxxxxxxxxxxxxxx"),
"source_references" : [
"_id" : ObjectId("5045xxxxxxxxxxxxxx"),
"name" : "xxx",
"key" : 123
]
}
I am having a lot of duplicate records in the collection having same source_references.key. (By Duplicate I mean, source_references.key not the _id).
I want to remove duplicate records based on source_references.key, I'm thinking of writing some PHP code to traverse each record and remove the record if exists.
Is there a way to remove the duplicates in Mongo Internal command line?
This answer is obsolete : the dropDups option was removed in MongoDB 3.0, so a different approach will be required in most cases. For example, you could use aggregation as suggested on: MongoDB duplicate documents even after adding unique key.
If you are certain that the source_references.key identifies duplicate records, you can ensure a unique index with the dropDups:true index creation option in MongoDB 2.6 or older:
db.things.ensureIndex({'source_references.key' : 1}, {unique : true, dropDups : true})
This will keep the first unique document for each source_references.key value, and drop any subsequent documents that would otherwise cause a duplicate key violation.
Important Note: Any documents missing the source_references.key field will be considered as having a null value, so subsequent documents missing the key field will be deleted. You can add the sparse:true index creation option so the index only applies to documents with a source_references.key field.
Obvious caution: Take a backup of your database, and try this in a staging environment first if you are concerned about unintended data loss.
This is the easiest query I used on my MongoDB 3.2
db.myCollection.find({}, {myCustomKey:1}).sort({_id:1}).forEach(function(doc){
db.myCollection.remove({_id:{$gt:doc._id}, myCustomKey:doc.myCustomKey});
})
Index your customKey before running this to increase speed
While #Stennie's is a valid answer, it is not the only way. Infact the MongoDB manual asks you to be very cautious while doing that. There are two other options
Let the MongoDB do that for you using Map Reduce
Another way
You do programatically which is less efficient.
Here is a slightly more 'manual' way of doing it:
Essentially, first, get a list of all the unique keys you are interested.
Then perform a search using each of those keys and delete if that search returns bigger than one.
db.collection.distinct("key").forEach((num)=>{
var i = 0;
db.collection.find({key: num}).forEach((doc)=>{
if (i) db.collection.remove({key: num}, { justOne: true })
i++
})
});
I had a similar requirement but I wanted to retain the latest entry. The following query worked with my collection which had millions of records and duplicates.
/** Create a array to store all duplicate records ids*/
var duplicates = [];
/** Start Aggregation pipeline*/
db.collection.aggregate([
{
$match: { /** Add any filter here. Add index for filter keys*/
filterKey: {
$exists: false
}
}
},
{
$sort: { /** Sort it in such a way that you want to retain first element*/
createdAt: -1
}
},
{
$group: {
_id: {
key1: "$key1", key2:"$key2" /** These are the keys which define the duplicate. Here document with same value for key1 and key2 will be considered duplicate*/
},
dups: {
$push: {
_id: "$_id"
}
},
count: {
$sum: 1
}
}
},
{
$match: {
count: {
"$gt": 1
}
}
}
],
{
allowDiskUse: true
}).forEach(function(doc){
doc.dups.shift();
doc.dups.forEach(function(dupId){
duplicates.push(dupId._id);
})
})
/** Delete the duplicates*/
var i,j,temparray,chunk = 100000;
for (i=0,j=duplicates.length; i<j; i+=chunk) {
temparray = duplicates.slice(i,i+chunk);
db.collection.bulkWrite([{deleteMany:{"filter":{"_id":{"$in":temparray}}}}])
}
Expanding on Fernando's answer, I found that it was taking too long, so I modified it.
var x = 0;
db.collection.distinct("field").forEach(fieldValue => {
var i = 0;
db.collection.find({ "field": fieldValue }).forEach(doc => {
if (i) {
db.collection.remove({ _id: doc._id });
}
i++;
x += 1;
if (x % 100 === 0) {
print(x); // Every time we process 100 docs.
}
});
});
The improvement is basically using the document id for removing, which should be faster, and also adding the progress of the operation, you can change the iteration value to your desired amount.
Also, indexing the field before the operation helps.
pip install mongo_remove_duplicate_indexes
create a script in any language
iterate over your collection
create new collection and create new index in this collection with unique set to true ,remember this index has to be same as index u wish to remove duplicates from in ur original collection with same name
for ex-u have a collection gaming,and in this collection u have field genre which contains duplicates,which u wish to remove,so just create new collection
db.createCollection("cname")
create new index
db.cname.createIndex({'genre':1},unique:1)
now when u will insert document with similar genre only first will be accepted,other will be rejected with duplicae key error
now just insert the json format values u received into new collection and handle exception using exception handling
for ex pymongo.errors.DuplicateKeyError
check out the package source code for the mongo_remove_duplicate_indexes for better understanding
If you have enough memory, you can in scala do something like that:
cole.find().groupBy(_.customField).filter(_._2.size>1).map(_._2.tail).flatten.map(_.id)
.foreach(x=>cole.remove({id $eq x})