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I was trying to solve the following problem:

There is a monkey which can walk around on a planar grid. The monkey can move one space at a time left, right, up or down. That is, from (x, y) the monkey can go to (x+1, y), (x-1, y), (x, y+1), and (x, y-1). Points where the sum of the digits of the absolute value of the x coordinate plus the sum of the digits of the absolute value of the y coordinate are lesser than or equal to 19 are accessible to the monkey. For example, the point (59, 79) is inaccessible because 5 + 9 + 7 + 9 = 30, which is greater than 19. Another example: the point (-5, -7) is accessible because abs(-5) + abs(-7) = 5 + 7 = 12, which is less than 19. How many points can the monkey access if it starts at (0, 0), including (0, 0) itself?

I came up with the following brute force solution (pseudo code):

legitPoints = {}; // all the allowed points that monkey can goto
list.push( Point(0,0) ); // start exploring from origin

 Point p = list.pop_front(); // remove point

 // if p has been seen before; ignore p => continue;
 // else mark it and proceed further

 // since we are only exploring points in one quadrant, 
 // we don't need to check for -x direction and -y direction
 // hence explore the following: this is like Breadth First Search
  list.push(Point(p.x+1, p.y)); // explore x+1, y
  list.push(Point(p.x, p.y+1)); // explore x, y+1

  legitPoints.insert(p); // during insertion, ignore duplicates 
                         // (although no duplicates should come through after above check)
                         // count properly using multipliers
                         // Origin => count once x = 0 && y == 0 => mul : 1
                         // X axis => count twice x = 0 && y != 0 => mul : 2
                         // Y axis => count twice x != 0 && y = 0 => mul : 2
                         // All others => mul : 4

 return legitPoints.count();

This is a very brute force solution. One of the optimizations I used was to one scan one quadrant instead of looking at four. Another one was to ignore the points that we've already seen before.

However, looking at the final points, I was trying to find a pattern, perhaps a mathematical solution or a different approach that would be better than what I came up.

Any thoughts ?

PS: If you want, I can post the data somewhere. It is interesting to look at it with any one of the axis sorted.

First quadrant visual: enter image description here

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The output would be good to see. It might make it easier to see a pattern if it's there. – Geobits Aug 8 '13 at 19:03
To me, this looks it could be mapped onto any graph algorithm that detects connectedness of a graph. – Colin D Aug 8 '13 at 19:06
Looks somewhat related to the Sierpinsky and/or Pascal triangles... Perhaps there's a solution that has something to do with the related binomial series... – twalberg Aug 8 '13 at 19:36
You can actually narrow it done to an eighth rather than just a quadrant. eg 0<x<y since if (a,b) is valid and connected then (b,a) is also valid and connected. – Chris Aug 8 '13 at 20:14
@brainydexter: Essentially the idea is to notice that the pattern you get is a reflection in the line x=y. So essentially I'm saying divide your area into 8 pieces using th vertical cross and a diagonal cross and then you can just reflect the solution in any one of those quadrants to get all the solutions. Essentially given 2,1 is part of the solution then by reflection in x=y gives also that 1,2 is part of the solution. Reflect both of those two in the y axis gives -2,1 and -1,2 is a solution and reflect those in the x axis gives the last four components 2,-1; 1,-2; -2,-1; -1,-2. – Chris Aug 9 '13 at 13:07

4 Answers 4

up vote 6 down vote accepted

Here's what the whole grid looks like as an image:

enter image description here

The black squares are inaccessible, white accessible, gray accessible and reachable by movement from the center. There's a 600x600 bounding box of black because the digits of 299 add to 20, so we only have to consider that.

This exercise is basically a "flood fill", with a shape which is just about the worst case possible for a flood fill. You can do the symmetry speedup if you like, though that's not really where the meat of the issue is--my solution runs in 160 ms without it (under 50ms with it).

The big speed wins are (1) do a line-filling flood so you don't have to put every point on the stack, and (2) manage your own stack instead of doing recursion. I built my stack as two dynamically-allocated vectors of ints (for x and y), and they grow to about 16k, so building whole stack frames that deep would definitely be a huge loss.

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Can you please elaborate on this: "The big speed wins are (1) do a line-filling flood so you don't have to put every point on the stack, and (2) manage your own stack instead of doing recursion." I didn't understand the part, in how is this a flood fill... – brainydexter Aug 9 '13 at 8:56
Google "flood fill" and check out the methods. I don't want to do your project for you. It's clearly the same thing; I could have made this image exactly by doing it in just black and white, loading it into GIMP and telling it to gray fill the center. – Lee Daniel Crocker Aug 9 '13 at 11:38
@Lee May be I am missing something, but what if i have (x,y) as (1000,2000) . There can be infinite such points. How do you say there is a bounding box? – AKS Aug 9 '13 at 16:35
@Lee are you referring to scan line flood fill algorithm ? – brainydexter Aug 9 '13 at 18:54
Yes, a scanline flood fill helps speed things up. The digits of 299 add to 20, so it doesn't matter what the other index is: (299, y) is a solid line of black, as are (x, 299), (-299, y) and (x, -299). These cross to form a solid black border. Yes, there are white cells outside this border, but they can never be reached by movement. – Lee Daniel Crocker Aug 9 '13 at 19:33

Without looking for the ideal solution I had something similar. For each point the monkey is, I added the next 4 possibilities to a list and did the same for the next four recursively only if they had not been visited. This can be also done with multiprocessing to speed up the process.

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I actually considered the first quadrant and mirrored it across, so you don't need to check for 4 possibilities, only 2. – brainydexter Aug 8 '13 at 19:28

Here is my solution, more like a BFS:

int DigitSum(int num)
    int sum = 0;

    num = (num >= 0) ? num : -num;
    while(num) {
        sum += num % 10;
        num /= 10;
    return sum;

struct Point {
    int x,y;
    Point(): x(0), y(0) {}
    Point(int x1, int y1): x(x1), y(y1) {}

    friend bool operator<(const Point& p1, const Point& p2)
        if (p1.x < p2.x) {
            return true;
        } else if (p1.x == p2.x) {
            return (p1.y < p2.y);
        } else {
            return false;

void neighbor(vector<Point>& n, const Point& p)
    if (n.size() < 4) n.resize(4);

    n[0] = Point(p.x-1, p.y);
    n[1] = Point(p.x+1, p.y);
    n[2] = Point(p.x, p.y-1);
    n[3] = Point(p.x, p.y+1);

int numMoves(const Point& start)
    map<Point, bool> m;
    queue<Point> q;
    int count = 0;
    vector<Point> neigh;

    m[start] = true;
    while (! q.empty()) {
        Point c = q.front();
        neighbor(neigh, c);
        for (auto p: neigh) {
            if ((!m[p]) && (DigitSum(p.x) + DigitSum(p.y) <= 19)) {
                m[p] = true;
    return count;
share|improve this answer

I'm not sure how different this may be from brainydexter's idea... roaming the one quadrant, I instituted a single array hash (index = 299 * y + x) and built the result with another array, each index storing only the points that expand from its previous index, for example:

first iteration, result = [[(0,0)]]
second iteration, result = [[(0,0)],[(0,1),(1,0)]]

On an old IBM Thinkpad in JavaScript, the speed seemed to vary from 35-120 milliseconds (fiddle here).

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I briefly glanced and it looks similar to what I am doing. PS: The visual looks good :) – brainydexter Aug 12 '13 at 7:34
indeed. From what I can gather, a flood fill must also check for points already marked (i.e., is the node already the target-color) so I'm not sure how the efficiencies exactly compare. – גלעד ברקן Aug 12 '13 at 9:50

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