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Suppose chest is a list of coordinates that are two item lists.

For example chest = [[2,4], [4,5], [1,3]]

With the function below, I want the distance between the point (x,y) and each of the chest points. So as it is, the function would return these three distances, right? But my question is, how do I return only the smallest (or largest) result from these three values? Is there any way to do this without creating a new list of distances?

def makeMove(board, chest, x, y):

for cx, cy in chests:
    distance = sqrt(abs((x-cx)**2) + abs((y-cy)**2)))
    return distance
share|improve this question
    
Shouldn't you use abs(x - cx) instead of abs(x) - abs(cx) (and respectively for y)? The latter is guaranteed to give a non-negative value while the latter is incorrect for negative values and crashes if the difference is < 0. Also, stylistic nitpicking: Use tuples for fixed-length immutable sequences such as points and don't put spaces around function invokation parens (as in the second abs call). – delnan Apr 14 '11 at 17:04
up vote 7 down vote accepted

You could use max() or min() plus a generator expression...

return max(
    sqrt( abs(x - cx) + abs(y - cy) )
    for cx, cy in chests)

Also note that as an optimization, you may prefer to do this instead (since if sqrt(x) > sqrt(y), then x > y) to reduce the number of sqrt calls:

return sqrt(max(
    abs(x - cx) + abs(y - cy)
    for cx, cy in chests))

(Also, are you sure you don't want to be squaring the distances instead of abs()ing them? The normal distance formula is sqrt((x-x')^2 + (y-y')^2)...)

share|improve this answer

As it is, your function returns only the first distance. When the return statement is encountered during the first loop iteration, the function returns, and that's it.

Furthermore, your formula for the distance is probably wrong, since the argument of sqrt() can get negative. In the code below, I'm assuming you want the Euclidean distance instead.

While you can get the minimum and the maximum using generator expressions, this would require to compute all the distances twice. Building on the loop you wrote, you could do

def distance_squared(p0, p1):
    return sum((x0 - x1) ** 2 for x0, x1 in zip(p0, p1))

def makeMove(board, chest, x, y):
    chest_iter = iter(chest)
    min_dist = distance_squared(next(chest_iter), (x, y))
    max_dist = min_dist
    for c in chest_iter:
        dist2 = distance_squared(c, (x, y))
        min_dist = min(min_dist, dist2)
        max_dist = max(max_dist, dist2)
    return sqrt(min_dist), sqrt(max_dist)
share|improve this answer
max_distance = max([sqrt((abs(x) - abs (cx)) + (abs(y) - abs(cy))) for cx, cy in chests])
min_distance = min([sqrt((abs(x) - abs (cx)) + (abs(y) - abs(cy))) for cx, cy in chests])

Basically you turn the loop into a list comprehension, (so you are in fact creating a new list), and call max and min to get the smallest members from the new list of distances.

share|improve this answer
3  
No reason to use a list comprehension when a generator expression would suffice. – Amber Apr 14 '11 at 17:02

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