16

I have User and Post table. User has Many Posts relationship. I want to query User and order the query by the number of posts that the users made. How do I write this sequelize query?

Post.belongsTo(User, {foreignKey: 'userId'});
User.hasMany(Post, {foreignKey: 'userId'});

User.findAll( {
  order: 'COUNT(Post) DESC', //???
  include: [Post]
});

How do I get this User query sorted by Post?

34
+50

There is probably a better way, but you can use a .literal() to create a subquery and assign an alias. Then, you can reference the alias when ordering, sample:

User.findAll({
    attributes: [
        'User.username',
        [sequelize.literal('(SELECT COUNT(*) FROM Posts WHERE Posts.userId = User.id)'), 'PostCount']
    ],
    order: [[sequelize.literal('PostCount'), 'DESC']]
});

This would produce the following SQL:

SELECT 
    `User`.`username`, 
    (SELECT COUNT(*) FROM Posts WHERE Posts.userId = User.id) AS `PostCount` 
FROM 
    `Users` AS `User` 
ORDER BY 
    PostCount DESC
| improve this answer | |
  • 3
    <snide-remark>I love it. A demonstration of how the intermediate language is (slightly) more verbose than the end result.</snide-remark> – Rick James Apr 30 '16 at 15:39
  • Thanks for this. Has anyone tried to do this when setting the defaultScope? It works fine when the model is being queried directly, but when I do a multilevel include, it cannot find the column as sequelize now doesn't use the raw table name e.g. 'Post', but instead uses 'User->Post'. So COUNT(*) FROM Post now fails as the table no longer is names the same – Patrick Geyer Nov 16 '18 at 9:59
-2

Turn it around so that sequelize gives you

SELECT  u.username,
        COUNT(*) AS PostCount
    FROM Users AS u
    JOIN Posts AS p  ON p.userId = u.userId
    GROUP BY u.userId, u.username
    ORDER BY PostCount DESC

That is, start with Post, not User.

| improve this answer | |
  • 3
    Can you clarify on turn it around, how should the JS code look like? – drinchev Apr 30 '16 at 8:49
  • Sorry, There are dozens of interfaces that generate SQL; I don't keep up with them all. Many fail to expose SQL well enough to let you get the optimizations you need. – Rick James Apr 28 '17 at 23:10
-2

May be this can work

var User = objAllTables.User.User();
var Post = objAllTables.Post.Post();

User.hasMany(Post, {foreignKey: 'userId'});
Post.belongsTo(User, {foreignKey: 'userId'});


         User.hasMany(Post, {foreignKey: 'userId'});
            Post.belongsTo(User, {foreignKey: 'userId'});

            User.findAndCountAll({
                attributes: ['User.username'],
                include: [{ model: Post }]
            }).then(function (result) {
                 console.log(result.count);
                 console.log(result.rows);
            })
| improve this answer | |
  • 1
    This will not order it by count. – drinchev Apr 30 '16 at 8:50

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