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I'm trying to create a heatmap for a planetwars bot which indicates which influence a planet is under. The initial map looks like: http://imgur.com/a/rPVnl#0

Ideally the Red planet should have a value of -1, the Blue planet should have a value of 1, and the planet marked 1 should have a value of 0. (Or 0 to 1, mean of 0.5 would work)

My initial analysis code is below, but the results it outputs are between 0.13 and 7.23.

for p in gameinfo.planets: #gameinfo.planets returns {pid:planet_object}
        planet = gameinfo.planets[p]
        own_value = 1
        for q in gameinfo.my_planets.values():
            if q != planet:
                q_value = q.num_ships / planet.distance_to(q)
                own_value = own_value + q_value

        enemy_value = 1
        for q in gameinfo.enemy_planets.values():
            if q != planet:
                q_value = q.num_ships / planet.distance_to(q)
                enemy_value = enemy_value + q_value

        self.heatmap[p] = own_value/enemy_value

I've also tried to add some code to curb the range from 0 to 1

highest = self.heatmap.keys()[0]
    lowest = self.heatmap.keys()[0]
    for p in gameinfo.planets.keys():
        if self.heatmap[p] > highest:
            highest = self.heatmap[p]
        elif self.heatmap[p] < lowest:
            lowest = self.heatmap[p]
    map_range = highest-lowest

    for p in gameinfo.planets.keys():
        self.heatmap[p] = self.heatmap[p]/map_range

    self.heatmap_mean = sum(self.heatmap.values(), 0.0) / len(self.heatmap)

The values ended up between 0 and 1, but the mean was 0.245? (Also the values actually ranged from 0.019 to 1.019).

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2 Answers

up vote 3 down vote accepted

I've solved my problem, this is what the solution looks like.

#HEATMAP ANALYSIS
    for p in gameinfo.planets:

        ave_self_value = 0
        for q in gameinfo.my_planets:
            if q != p:
                ave_self_value = ave_self_value + (self.planet_distances[p][q] * gameinfo.planets[q].num_ships / self.own_strength)

        ave_enemy_value = 0
        for q in gameinfo.enemy_planets:
            if q != p:
                ave_enemy_value = ave_enemy_value + (self.planet_distances[p][q] * gameinfo.planets[q].num_ships / self.enemy_strength)

        self.heatmap[p] = ave_enemy_value - ave_self_value

    hmin, hmax = min(self.heatmap.values()), max(self.heatmap.values())

    for h in self.heatmap.keys():
        self.heatmap[h] = 2 * (self.heatmap[h] - hmin) / (hmax - hmin) - 1

    self.heatmap_mean = sum(self.heatmap.values(), 0.0) / len(self.heatmap)
    #END HEATMAP ANALYSIS
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Congrats on the fix! When you are able, please make sure to mark your answer as 'accepted' so that others will be able to learn from your success. Cheers~ –  Andrew Kozak Apr 25 '12 at 16:19
    
@AndrewKozak Still another 12 hours to go! Sigh.... New to actually posting in stack overflow. For the last year or so I've just used it as a resource, but not actually signed up to post. I'll make sure I mark it as an answer when I can. –  Vikram Saran Apr 26 '12 at 16:47
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for p in foo:
    ...
    ...
    for q in bar:
        ...
        if q != p:
            q_value = some_value / another_value
            own_value = own_value + q_value

Apologies for the gross simplification. Say foo is [1, 2, 3, 4, 5] and bar is [1, 5].

First time through, p is 1. q takes 1, so q==p. Next, q takes 5, now q!=p, own_value accumulates the q_value which I presume is some positive number less than one.

But second time through, p is 2. q takes 1, so q!=p, so own_value goes up by some fraction of one. Then q takes 5, so q!=p still, so own_value goes up by that same fraction again. This is where the problem lies: (some_value / another_value) + (some_value / another_value) breaks the -1 to 1 scale. You get 7.23 sometimes because that's how many times q did not equal p.

There is nothing in the

for x in foo:
    for y in bar:

construction that cares about normalising for x in foo - just for q in bar.

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This explains what I'm doing wrong, unfortunately it doesn't help in how to do it right! :( –  Vikram Saran Apr 25 '12 at 14:48
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