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I have an array like this:

var a = [
  {id: 1, pid: 0},
  {id: 2, pid: 1},
  {id: 3, pid: 1},
  {id: 4, pid: 2},
  {id: 5, pid: 2},
  {id: 6, pid: 3},
  {id: 7, pid: 3}
]

And a map object like this:

var map = {
  "1": {id: 1, pid: 0},
  "2": {id: 2, pid: 1},
  "3": {id: 3, pid: 1},
  "4": {id: 4, pid: 2},
  "5": {id: 5, pid: 2},
  "6": {id: 6, pid: 3},
  "7": {id: 7, pid: 3}
}

I am trying to sort it to match this pattern:

var result = [
  {"id": 1, "pid": 0},
    {"id": 2, "pid": 1},
      {"id": 4, "pid": 2},
      {"id": 5, "pid": 2},
    {"id": 3, "pid": 1},
      {"id": 6, "pid": 3},
      {"id": 7, "pid": 3}
]

As you can see this is a nested tree structure. And I want to get pid under the matching id and the lowest id at the top.

Is there any way to sort an array like this using only one iteration? - if not, it would be nice to see an example on how to get around it.

So far I only have:

a.sort(function(q, w) { return q.pid - w.pid; });

And I'm thinking of using my map to find my parent using pid->id and then sort on that key. It's okay to store extra properties on my objects as well.

share|improve this question
1  
You're indenting it like it's nested, but you haven't actually nested any arrays or objects. – Barmar Apr 23 '13 at 10:12
    
You can't do that with a simple comparison function that only knows about two elements! – phant0m Apr 23 '13 at 10:14
    
@Barmar I think he's aware of that, basically, he wants to have a tree and then linearize with pre-order. – phant0m Apr 23 '13 at 10:15
    
@Barmar the reason why I'am indenting the result is just for clarity - at least i thought. – andlrc Apr 23 '13 at 10:16
2  
sort() looks at each pair of array elements and needs to know which one is higher or lower. But your ordering is based on parent-child relationships between specific elements. – Barmar Apr 23 '13 at 10:21
up vote 1 down vote accepted

Assuming that there is a single root with pid 0:

var children = {}
var root = null;
a.forEach(function(e) {
    children[e.id] = [];
});

a.forEach(function(e) {
    if (e.pid === 0) {
        root = e;
    }
    else {
        children[e.pid].push(e);
    }
});

var sorted = [];

function preorder(e) {
    sorted.push(e);
    if (children.hasOwnProperty(e.id)) {
        children[e.id].forEach(preorder);
    }
}
preorder(root);

Result:

[
  {"id":1,"pid":0},
    {"id":2,"pid":1},
    {"id":4,"pid":2},
      {"id":5,"pid":2},
    {"id":3,"pid":1},
      {"id":6,"pid":3},
      {"id":7,"pid":3}
]
share|improve this answer

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