Difference between revisions of "Haskell Quiz/Geodesic Dome Faces/Solution Jkramar"
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-- where they use n+1 for some reason |
-- where they use n+1 for some reason |
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shatter :: Int -> [Vector Double] -> [[Vector Double]] |
shatter :: Int -> [Vector Double] -> [[Vector Double]] |
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| − | shatter n' t = |
+ | shatter n' t = map (fromColumns t*/n<>)<$>fwd++bwd where |
n = fromIntegral n'; basis = toColumns$ident 3 |
n = fromIntegral n'; basis = toColumns$ident 3 |
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fwd = [(fromList [k, j, n-1-k-j]+) <$> basis|k<-[0..n-1], j<-[0..n-1-k]] |
fwd = [(fromList [k, j, n-1-k-j]+) <$> basis|k<-[0..n-1], j<-[0..n-1-k]] |
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Latest revision as of 15:33, 18 November 2008
This problem seems to be strongly IO-bound, so actually computing the geodesic faces is not too time-sensitive. Hence there is time for computing the faces from the vertices by trying each triple of vertices to check if it's a face. (In the problem statement, the data for each polyhedron includes a list of the faces, not just the vertices.)
Originally this program represented vectors with ordinary tuples, and in some places that was definitely more understandable. But of course it's more fun this way.
import Prelude hiding (sum, foldr1, foldr, maximum, mapM_)
import Control.Applicative
import Data.Foldable
data V3 a = V !a !a !a deriving (Read,Show)
instance Foldable V3 where foldr f x (V a b c) = f a$f b$f c x
instance Functor V3 where fmap f (V a b c) = V (f a) (f b) (f c)
instance Applicative V3 where
pure a = V a a a
V f g h <*> V a b c = V (f a) (g b) (h c)
type Tri a = V3 (V3 a)
(.+) :: (Num a) => V3 a -> V3 a -> V3 a
(.+) = liftA2 (+)
(.-) :: (Num a) => V3 a -> V3 a -> V3 a
(.-) = liftA2 (-)
(.*) :: (Num a) => a -> V3 a -> V3 a
(.*) = fmap.(*)
dot :: (Num a) => V3 a -> V3 a -> a
dot = (sum.).liftA2 (*)
cross :: (Num a) => V3 a -> V3 a -> V3 a
cross (V x y z) (V x' y' z')=V (y*z'-z*y') (z*x'-x*z') (x*y'-y*x')
det :: (Num a) => V3 (V3 a) -> a
det (V a b c) = (a `cross` b) `dot` c
-- matrix multiplication
mmul :: (Num a) => V3 (V3 a) -> V3 (V3 a) -> V3 (V3 a)
mmul t = fmap$foldr1 (.+).(<*>t).fmap (.*)
-- chooses xs!!n gives the combinations of n elements from xs
chooses :: [a] -> [[[a]]]
chooses = foldr consider$[[]]:repeat [] where
consider x cs = zipWith (flip (++)) cs$map (x:)<$>[]:cs
-- inefficient function to generate all the positively-oriented faces of the
-- triangle-faced polyhedron with vertices at vs
faces :: (Real a) => [V3 a] -> [Tri a]
faces vs = filter isFace $ orient <$> tris where
orient t@(V a b c) = if (signum$det t)==1 then t else V a c b
tris = (\[a,b,c]->V a b c) <$> chooses vs!!3
farth (V a b c) = maximum.(dot ((a.-b) `cross` (a.-c))<$>)
isFace t = farth t (toList t) == farth t vs
-- each triangle side is broken into n pieces, unlike in the problem statement,
-- where they use n+1 for some reason
shatter :: (Fractional a) => Int -> Tri a -> [Tri a]
shatter n t = mmul t'<$>coords where
basis = V (V 1 0 0) (V 0 1 0) (V 0 0 1)
fwd = [(V k j (n-1-k-j).+) <$> basis|k<-[0..n-1], j<-[0..n-1-k]]
bwd = [(V k j (n+1-k-j).-) <$> basis|k<-[1..n], j<-[1..n-k]]
t' = ((1/fromIntegral n).*)<$>t
coords = (fmap fromIntegral<$>)<$>fwd++bwd
geode :: (RealFloat a) => [V3 a] -> Int -> [Tri a]
geode vs n = fmap normize<$>(shatter n=<<faces vs) where
normize v = (1/sqrt (dot v v)).*v
cyc :: V3 a -> [V3 a]
cyc (V a b c) = [V a b c, V b c a, V c a b]
tetrahed :: (Floating a) => [V3 a]
tetrahed = [V (x*sqrt 1.5) (-sqrt 2/3) (-1/3)|x<-[-1,1]]++
[V 0 (2*sqrt 2/3) (-1/3), V 0 0 1]
octahed :: (Num a) => [V3 a]
octahed = cyc =<< [V x 0 0|x<-[-1,1]]
icosahed :: (Floating a) => [V3 a]
icosahed = cyc =<< [V x (y*(1+sqrt 5/2)) 0|x<-[-1, 1], y<-[-1, 1]]
-- this is the test the Ruby Quiz people used
main :: IO ()
main = mapM_ print (geode octahed 51::[Tri Double])
Here is a reimplementation using the vector and matrix types from the hmatrix package:
import Numeric.LinearAlgebra
import Data.List
import Control.Applicative ((<$>))
cross :: Vector Double -> Vector Double -> Vector Double
cross v w = fromList$map (det.fromColumns.(:[v,w]))$toColumns$ident 3
-- chooses xs!!n gives the combinations of n elements from xs
chooses :: [a] -> [[[a]]]
chooses = foldr consider$[[]]:repeat [] where
consider x cs = zipWith (flip (++)) cs$map (x:)<$>[]:cs
cyc :: [a] -> [[a]]
cyc = map (take 3).take 3.tails.cycle
-- inefficient function to generate all the positively-oriented faces of the
-- triangle-faced polyhedron with vertices at vs
faces :: [Vector Double] -> [[Vector Double]]
faces vs = filter isFace $ orient <$> chooses vs!!3 where
orient t@[a,b,c] = if (signum$det$fromColumns t)==1 then t else [a,c,b]
farth = (maximum.).map.dot.sum.map (\(v:w:_)->cross v w).cyc
isFace ps = farth ps ps == farth ps vs
-- each triangle side is broken into n pieces, unlike in the problem statement,
-- where they use n+1 for some reason
shatter :: Int -> [Vector Double] -> [[Vector Double]]
shatter n' t = map (fromColumns t*/n<>)<$>fwd++bwd where
n = fromIntegral n'; basis = toColumns$ident 3
fwd = [(fromList [k, j, n-1-k-j]+) <$> basis|k<-[0..n-1], j<-[0..n-1-k]]
bwd = [(fromList [k, j, n+1-k-j]-) <$> basis|k<-[1..n], j<-[1..n-k]]
geode :: [Vector Double] -> Int -> [[Vector Double]]
geode vs n = map proj<$>(shatter n=<<faces vs) where proj v = v*/sqrt (v<.>v)
tetrahed :: [Vector Double]
tetrahed = map fromList$[[x*sqrt 1.5, -sqrt 2/3, -1/3]|x<-[-1, 1]]++
[[0, 2*sqrt 2/3, -1/3], [0, 0, 1]]
octahed :: [Vector Double]
octahed = map fromList$cyc =<< [[x, 0, 0]|x<-[-1, 1]]
icosahed :: [Vector Double]
icosahed = map fromList$cyc =<< [[x, y*(1+sqrt 5/2), 0]|x<-[-1, 1], y<-[-1, 1]]
-- this is the test the Ruby Quiz people used
main :: IO ()
main = mapM_ print$geode octahed 51