2

As the title says I'm searching for the most efficient way to create a flat array output from a recursive function.

The following example produces the correct result but it is kind of slow as it has to create a temporary concatenated array of points for each level of recursion.

class QuadTree {

  // ...
  // some other methods
  // ...

  get points() {
    if (this.divided) {
      // concatenate and return points of all subtrees
      return this.subtrees[0].points.concat(
        this.subtrees[1].points,
        this.subtrees[2].points,
        this.subtrees[3].points
      );
    }
    // return _points array of this quadtree
    return this._points;
  }
}

Is there a way to speed this up?

I would think that this kind of problem is quite common when working with nested/treelike datastructures but I have not found a satisfying solution.

  • Maybe if you shoulded the code it would not need the temp arrays – epascarello Jul 15 at 18:06
  • If the code works, and you're willing to get a review of all of it, you can check the help center of Code Review to see if your question is on topic there. – Heretic Monkey Jul 15 at 18:09
  • switch from recursion to iteration using a stack, concat everything into one array. no more temp arrays. – Chris Rollins Jul 15 at 18:12
2

The only thing that I can think of is to replace your accessor property with a function (or perhaps add the function alongside it) and pass the target array in so that it can be filled in directly. Something like:

class QuadTree {

  // ...
  // some other methods
  // ...

  getDividedPoints(target = []) {
    this.subtrees[0].getDividedPoints(target);
    this.subtrees[1].getDivdedPoints(target);
    this.subtrees[2].getDivdedPoints(target);
    this.subtrees[3].getDivdedPoints(target);
    return target;
  }

  get points() {
    if (this.divided) {
      return this.getDividedPoints([]);
    }
    // return _points array of this quadtree
    return this._points;
  }
}

Or if subtrees is a normal array, getDividedPoints could be:

getDividedPoints(target = []) {
  this.subtrees.forEach(subtree => subtree.getDividedPoints(target));
  return target;
}

Otherwise, since I assume you want to copy this.subtrees[0].points (rather than inserting into it), concat's going to be pretty good.

If the subtrees may or may not be divided, you'll need the if in the function. And I just belatedly noticed the name of the class. :-) So I'd probably just make the four calls:

getPoints(target) {
  if (this.divided) {
    target = target || [];
    this.subtrees[0].getPoints(target);
    this.subtrees[1].getPoints(target);
    this.subtrees[2].getPoints(target);
    this.subtrees[3].getPoints(target);
    return target;
  }
  if (target) {
    target.push.apply(target, this._points);
    return target;
  }
  return this._points; // <== If you're really okay with giving this
                       // to the caller (you were in your original code)
}

get points() {
  return this.getDividedPoints([]);
}

...or any of several other spins on that basic idea.

| improve this answer | |
  • That getDividedPoints method does not handle the base case where the tree is not divided, it will fail when there is no subtree (unless this is multiple dispatch and there are separate implementations for the leaf nodes). Still, it should be called getPoints. – Bergi Jul 15 at 18:21
  • "if subtrees is a normal array" - it would need benchmarking of course, but I would expect that the loop unrolling is faster here - and it's not like the array size is dynamic in a quadtree. – Bergi Jul 15 at 18:22
  • @Bergi - Yes, that's an assumption in the code (about the trees). The OP will know whether that's something they need to handle and can move the if. Yeah, I thought about a for loop, seemed overkill but easily done. – T.J. Crowder Jul 15 at 18:48
  • 1
    Not sure if its the most efficient way but it in my case of the QuadTree it was 30-35% faster than my original method. Thanks. – icalvin102 Jul 16 at 11:44

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