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I am trying to write a function in javascript that from JSON input data returns the data belonging to a specific group, including the children of that group. The data looks like this:

            [
            {"id":"0", "name":"Person 0"},
            {"id":"1", "name":"Person 1","group":"0"},
            {"id":"2", "name":"Person 2","group":"0"},
            {"id":"3", "name":"Person 3","group":"2"},
            {"id":"4", "name":"Person 4","group":"2"},
            {"id":"5", "name":"Person 5","group":"4"},
            {"id":"6", "name":"Person 6","group":"4"},
            {"id":"7", "name":"Person 7","group":"0"},
            {"id":"8", "name":"Person 8","group":"7"}
            ]

Here, a person in group x belongs to the same group as person with id x.

For example: function(data, group) would return the following for function(data, 2):

            [
            {"id":"3", "name":"Person 3","group":"2"},
            {"id":"4", "name":"Person 4","group":"2"},
            {"id":"5", "name":"Person 5","group":"2"},
            {"id":"6", "name":"Person 6","group":"2"},
            ]

and function(data,0):

            [
            {"id":"1", "name":"Person 1","group":"1"},
            {"id":"2", "name":"Person 2","group":"2"},
            {"id":"3", "name":"Person 3","group":"2"},
            {"id":"4", "name":"Person 4","group":"2"},
            {"id":"5", "name":"Person 5","group":"2"},
            {"id":"6", "name":"Person 6","group":"2"},
            {"id":"7", "name":"Person 7","group":"7"},
            {"id":"8", "name":"Person 8","group":"7"}
            ]

I have tried to loop through the array but that doesn't deal with the subgroups, so I guess I have to do it in a recursive fashion?

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"but that doesn't deal with the subgroups" --- in your examples you don't deal with subgroups as well. –  zerkms Oct 8 '12 at 22:16
    
@zerkms Yes he does. The subgroup refers to the ID –  Rob W Oct 8 '12 at 22:17
1  
@Rob W: in which of 2 examples there is a recursive execution? –  zerkms Oct 8 '12 at 22:17
    
Yes, the group is associated with the ID. For example: sub group 4 is returned as group 2, because thats the parent group. –  graphmeter Oct 8 '12 at 22:18
1  
@zerkms The first example: Group 2 selects ID 3 and 4. Group 3 = nothing, Group 4 = id 5 and 6. I can imagine that the question is unclear though. graphmeter, can you edit your question to make the format of your expected result more obvious? Currently, we have to look at the code and find the pattern. Furthermore, what's the logic behind the renaming of the group properties? –  Rob W Oct 8 '12 at 22:19
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3 Answers

up vote 2 down vote accepted

You can .reduce() the data array and concatenate in the sub groups.

function dataForGroup(data, group, refs) {
    if (!refs)
        refs = {};

       // check if it's in the list
    if (refs[group] === true)
        return []; // or you can throw an Error
    else
        refs[group] = true; // first encounter, so add it to the list

    return data.reduce(function(res, obj) {
        return obj.group == group ? 
                   res.concat(obj, dataForGroup(data, obj.id, refs)) : res;
    }, []);
}

Hopefully there are no circular references!

Though I don't understand the group(data, 0) output, and I don't see any sub-group data.

share|improve this answer
    
Thanks. However, I get an error: Uncaught RangeError: Maximum call stack size exceeded, for some of the groups, e.g. 2. –  graphmeter Oct 8 '12 at 23:07
    
@graphmeter: I don't get that for group 2. jsfiddle.net/Kt7Ce but you will need to watch for circular references. –  I Hate Lazy Oct 8 '12 at 23:13
    
Now I got it to work, great! What is a good way to look out for circular references? –  graphmeter Oct 8 '12 at 23:23
    
@graphmeter: Whenever you make a call to dataForGroup, you would need to check a list to see if that ID is there. If not, add it to the list. If so, either return an empty Array, or throw an Error, depending on how you want to handle it. I'll give an update. –  I Hate Lazy Oct 8 '12 at 23:30
    
@graphmeter for info: .reduce is not supported by IE<= 8; –  Anoop Oct 9 '12 at 0:02
show 1 more comment

Iterate through entire data array and filter out items with same group.

    var newArr = [],
    isVisted = []; // using to prevent circular reference.

function getGroup(data, groupId, inside) {
    if (!inside) {
        newArr = [];
        isVisted = [];
    }
    if (isVisted.indexOf(groupId) !== -1) {
        return
    };
    for (var k = 0; k < data.length; k++) {
        if (data[k].group == groupId) {
            newArr.push(data[k])
            getGroup(data, data[k].id, true);
        }
    }

    return newArr;
}

jsfiddle demo

share|improve this answer
    
Not working. Recursion is required to solve this problem. –  Rob W Oct 8 '12 at 22:17
    
@Shusi Because the OP's examples show that the group-ID mapping are dynamic. –  Rob W Oct 8 '12 at 22:21
    
@Shusi Look closer to the question plus the discussion in the comments below to see what I mean. –  Rob W Oct 8 '12 at 22:24
    
@RobW I made changes based on requirement. –  Anoop Oct 8 '12 at 22:46
add comment

Because you said using javascript, I did it only with javascript. However there are more easier ways to do such a thing in jquery. I didn't test it, just wrote it, so if it was any problem do not hesitate to comment about it.

function Group(data)
{
    var result = [];

    for (var item in data)
    {
        var group = (item.group) ? item.group : -1;

        if (!result[group])

            result[group] = [];

        result[group].push(item);
    }

    return result;
}

var secondGroup = Group(
    [
        {"id":"0", "name":"Person 0"}, 
        {"id":"1", "name":"Person 1","group":"0"}, 
        {"id":"2", "name":"Person 2","group":"0"}, 
        {"id":"3", "name":"Person 3","group":"2"}, 
        {"id":"4", "name":"Person 4","group":"2"}, 
        {"id":"5", "name":"Person 5","group":"4"}, 
        {"id":"6", "name":"Person 6","group":"4"}, 
        {"id":"7", "name":"Person 7","group":"0"}, 
        {"id":"8", "name":"Person 8","group":"7"} 
    ]
)[2];

Cheers

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