42

I am trying to query my database such that it retrieves an ordered list based on a child key. I do it as follows (see below), but nothing happens, meaning that it returns an object ordered exactly in the same way as it is stored in the Firebase database. What is going on?

self.getAllProfiles = function () {
    var qProfile = $q.defer();
    var ref = new Firebase(FBURL);
    ref.child("users").orderByChild('last_update').on("value", function (snapshot) {
        console.log(snapshot.val()) // HERE IS WHERE IT SHOULD BE ORDERED
        qProfile.resolve(snapshot.val());
    }, function (errorObject) {
        qProfile.reject(errorObject);
    });
    return qProfile.promise;
};

To add, my users node looks as follows:

users
   /$username
       /last_update
       /id
       /data
          /profile_image
          /display_name

Here is a snapshot:

Tester: Object
   github: Object
   last_update: 1447732462170
   userId: "github:12345"
5
  • Can you show your data unordered and then what it looks like when it comes back as a snapshot?
    – David East
    Nov 24, 2015 at 14:19
  • Updated the question with the snapshot Nov 24, 2015 at 14:37
  • 1
    It's hard to tell what's going on with the data you have provided. Can you create a JSBin that demonstrates your issue? That would make it much easier to troubleshoot what's going on.
    – David East
    Nov 24, 2015 at 14:59
  • Likely answer below. But as David said: consider creating a JSBin/JsFiddle next time, since it'll provide with a minimal, complete example. One thing now missing is enough data to understand what you're seeing and why that might be (the always tricky balance between 'minimal' and 'complete'). Nov 24, 2015 at 15:14
  • Make sure that you're actually looping through the snapshot children. If you just print the snapshot it's ordered like standard JSON and not the way it came back from the firebase server.
    – teradyl
    Jul 13, 2017 at 6:32

4 Answers 4

98

When you call snapshot.val(), you are getting back a JSON object. The order of keys in a JSON object is determined by your browser and not by Firebase.

To get the children in order use the built-in forEach method of the snapshot:

self.getAllProfiles = function () {
    var qProfile = $q.defer();
    var ref = new Firebase(FBURL);
    ref.child("users").orderByChild('last_update').on("value", function (snapshot) {
        snapshot.forEach(function(child) {
            console.log(child.val()) // NOW THE CHILDREN PRINT IN ORDER
        });
        qProfile.resolve(snapshot.val());
    }, function (errorObject) {
        qProfile.reject(errorObject);
    });
    return qProfile.promise;
};

You can leave the q.resolve() call where it is: snapshot.forEach() is not an asynchronous call.

9
  • 19
    So if we need the data sorted we have to create a new object with new keys or put each child.val() in an array. Isn't that terribly inefficient?
    – Pier
    Jun 17, 2016 at 13:33
  • 4
    Would you mind answering @Pier 's question? I have the same question.
    – Onichan
    Jul 20, 2016 at 7:19
  • 2
    @Onichan Please see my answer. Dec 8, 2016 at 4:17
  • 6
    I feel that they need to add this caveat into the official docs, because the fact that I had the query written out correctly, no errors but still getting the data in the order that's in the database stumped me until I came across this answer. Mar 30, 2017 at 15:34
  • 2
    You mean like the example in the docs here? firebase.google.com/docs/database/web/… Mar 31, 2017 at 0:06
19

I know this question has been answered and is more than 1 year old, but since there are still some confusion in the comment section, I would like to add some information.

The problem

The original problem is that the OP want to retrieve an ordered list based on a child key from Firebase realtime database, but the .orderByChild('arg') does not work as expected.

But what didn't work as expected is not .orderByChild('arg'), but .on("value", callback). Because .on("value", callback) works a bit of different from other eventTypes like .on("child_added", callback).

Example

Say we have a firebase realtime database as below:

{
    myData: {
        -KYNMmYHrzLcL-OVGiTU: {
             NO: 1,
             image: ...
        },
        -KYNMwNIz4ObdKJ7AGAL: {
             NO: 2,
             image: ...
        },
        -KYNNEDkLpuwqQHSEGhw: {
             NO: 3,
             image: ...
        },
    }
}

--

If we use .on("value", callback), the callback() will be called 1 time, and return an Object Array of 3 objects.

ref.on("value", function(snapshot) {
    console.log(snapshot.val());
    // Please see Frank van Puffelen's answer
}

enter image description here

--

If we use .on("child_added", callback), the callback() will be called 3 times, each time returns an Object, and they are returned in order.

ref.once("child_added", function(snapshot) { 
    console.log(snapshot.val());
    // The objects are returned in order, do whatever you like
}

enter image description here

Conclusion

If you only need to fetch ordered data from firebase (e.g. to initialize UI.) Then ref.orderByChild('arg').once("child_added", callback) suits you well, it is simple and easy to use.

However, if for some reason you need to use ref.orderByChild('arg').on("value", callback), then please see Frank van Puffelen's answer.

Reference

Please read Firebase Document for more information about on(eventType, callback, cancelCallbackOrContext, context), their arguments and their return values.

Another useful document: Work with Lists of Data on the Web

2
  • 3
    The real reason you see difference is that the type of the FIB query result is 'dictionary' where the 'key' (id) of the record is the 'key' of the dictionary. Hence, JS (browser) sorts this list by its key. That is why if u query as 'child_added' (one by one) or use 'snapshot.forEach' you'll workaround this phenomena. So that's more of JS thing rather than FIB thing. @frank-van-puffelen's answer is more correct for that reason. Dec 13, 2017 at 9:03
  • @user2875289 I am using nativescript+angular and it is giving me error when I use Frank's solution. TypeError: snapshot.forEach is not a function Jun 24, 2018 at 6:23
5

For ordering using the value event listener:

firebase.database().ref('/invoices').orderByChild('name').on('value', snapshot => {
    snapshot.forEach(child => {
        console.log(child.key, child.val());
    });
}

If you want to reverse the order, try:

function reverseSnapshotOrder (snapshot) {
  let reversed = [];

  snapshot.forEach(child => {
    reversed.unshift(child);
  });

  return reversed;
}

reverseSnapshotOrder(snapshot).forEach(child => {
  console.log(child.key, child.val());
});

Please see: https://firebase.google.com/docs/database/web/lists-of-data#listen_for_value_events

1
  • Thanks, I was looking for child.key. :D Nov 25, 2019 at 14:43
0

I struggled with the same problem in iOS. If you convert snapshot to NSDictionary object, it converts to unordered list. Objective-c version in case of need:

[[self.refChild queryOrderedByChild:@"date_created"] 
  observeEventType:FIRDataEventTypeValue 
         withBlock:^(FIRDataSnapshot * _Nonnull snapshot) {

     for (FIRDataSnapshot *child in snapshot.children) {  

          NSDictionary *anObject = child.value; 
          NSString *aKey         = child.key;      
     } 
}];

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