Difference between revisions of "Euler problems/31 to 40"
(Removing category tags. See Talk:Euler_problems) 

Line 61:  Line 61:  
problem_33 = denominator (product $ rs ++ rs') 
problem_33 = denominator (product $ rs ++ rs') 

−  rs = [(x%y)  a < [0..9], b < [1..9], c < [1..9], let x = 10*a + c, let y = 10*c + b, x /= y, x%y < 1, x%y == a%b] 

+  rs = [(x%y)  

+  a < [0..9], 

+  b < [1..9], 

+  c < [1..9], 

+  let x = 10*a + c, 

+  let y = 10*c + b, 

+  x /= y, 

+  x%y < 1, 

+  x%y == a%b 

+  ] 

rs' = filter (<1) $ map (\x > denominator x % numerator x) rs 
rs' = filter (<1) $ map (\x > denominator x % numerator x) rs 

Line 130:  Line 139:  
isPalindrome x = x == reverse x 
isPalindrome x = x == reverse x 

−  problem_36 = sum [x  x < [1,3..1000000], isPalindrome (show x), isPalindrome (showBin x)] 

+  problem_36 = sum [x  

+  x < [1,3..1000000], 

+  isPalindrome (show x), 

+  isPalindrome (showBin x) 

+  ] 

</haskell> 
</haskell> 

Line 158:  Line 171:  
truncs :: Integer > [Integer] 
truncs :: Integer > [Integer] 

−  truncs n = nub . map read $ 
+  truncs n = nub . map read $ 
+  (take l . tail . tails) s ++ (take l . tail . inits) s 

where 
where 

−  +  l = length s  1 

−  +  s = show n 

−  problem_37 = sum $ take 11 [x  
+  problem_37 = sum $ take 11 [x  
+  x < dropWhile (<=9) primes, 

+  all isPrime (truncs x) 

+  ] 

</haskell> 
</haskell> 

Line 191:  Line 204:  
mult n i vs  length (concat vs) >= 9 = concat vs 
mult n i vs  length (concat vs) >= 9 = concat vs 

−   otherwise = mult n (i+1) (vs ++ [show (n * i)]) 
+   otherwise = mult n (i+1) (vs ++ [show (n * i)]) 
problem_38 :: Int 
problem_38 :: Int 

−  problem_38 = maximum $ map read $ filter 
+  problem_38 = maximum $ map read $ filter 
+  ((['1'..'9'] ==) .sort) $ 

+  [ mult n 1 []  n < [2..9999] ] 

</haskell> 
</haskell> 

Line 225:  Line 238:  
Solution: 
Solution: 

<haskell> 
<haskell> 

⚫  
+  problem_40 = 

⚫  
⚫  
⚫  
+  where 

⚫  
⚫  
</haskell> 
</haskell> 
Revision as of 01:54, 6 January 2008
Contents
Problem 31
Investigating combinations of English currency denominations.
Solution:
This is the naive doubly recursive solution. Speed would be greatly improved by use of memoization, dynamic programming, or the closed form.
problem_31 = pence 200 [1,2,5,10,20,50,100,200]
where pence 0 _ = 1
pence n [] = 0
pence n denominations@(d:ds)
 n < d = 0
 otherwise = pence (n  d) denominations
+ pence n ds
A beautiful solution, making usage of laziness and recursion to implement a dynamic programming scheme, blazingly fast despite actually generating the combinations and not only counting them :
coins = [1,2,5,10,20,50,100,200]
combinations = foldl (\without p >
let (poor,rich) = splitAt p without
with = poor ++
zipWith (++) (map (map (p:)) with)
rich
in with
) ([[]] : repeat [])
problem_31 = length $ combinations coins !! 200
Problem 32
Find the sum of all numbers that can be written as pandigital products.
Solution:
problem_32 = sum $ nub $ map (\(a, b) > a * b) multiplicands
where
multiplicands =
[(a,b) a < [2..5000], b < [a..(9999 `div` a)], check a b]
check a b =
no_zero s
&& (length ss) == 9
&& foldr (\x y > length x == 1 && y) True ss
where
s = show a ++ show b ++ show (a*b)
ss = group $ sort s
no_zero (x:xs)
 x == '0' = False
 null xs = True
 otherwise = no_zero xs
Problem 33
Discover all the fractions with an unorthodox cancelling method.
Solution:
import Ratio
problem_33 = denominator (product $ rs ++ rs')
rs = [(x%y) 
a < [0..9],
b < [1..9],
c < [1..9],
let x = 10*a + c,
let y = 10*c + b,
x /= y,
x%y < 1,
x%y == a%b
]
rs' = filter (<1) $ map (\x > denominator x % numerator x) rs
Problem 34
Find the sum of all numbers which are equal to the sum of the factorial of their digits.
Solution:
import Data.Char
problem_34 = sum [ x  x < [3..100000], x == facsum x ]
where facsum = sum . map (product . enumFromTo 1 . digitToInt) . show
Problem 35
How many circular primes are there below one million?
Solution:
import Data.List (tails, (\\))
primes :: [Integer]
primes = 2 : filter ((==1) . length . primeFactors) [3,5..]
primeFactors :: Integer > [Integer]
primeFactors n = factor n primes
where
factor _ [] = []
factor m (p:ps)  p*p > m = [m]
 m `mod` p == 0 = p : factor (m `div` p) (p:ps)
 otherwise = factor m ps
isPrime :: Integer > Bool
isPrime 1 = False
isPrime n = case (primeFactors n) of
(_:_:_) > False
_ > True
permutations :: Integer > [Integer]
permutations n = take l $ map (read . take l) $ tails $ take (2*l 1) $ cycle s
where
s = show n
l = length s
circular_primes :: [Integer] > [Integer]
circular_primes [] = []
circular_primes (x:xs)
 all isPrime p = x : circular_primes xs
 otherwise = circular_primes xs
where
p = permutations x
problem_35 :: Int
problem_35 = length $ circular_primes $ takeWhile (<1000000) primes
Problem 36
Find the sum of all numbers less than one million, which are palindromic in base 10 and base 2.
Solution:
import Numeric
import Data.Char
showBin = flip (showIntAtBase 2 intToDigit) ""
isPalindrome x = x == reverse x
problem_36 = sum [x 
x < [1,3..1000000],
isPalindrome (show x),
isPalindrome (showBin x)
]
Problem 37
Find the sum of all eleven primes that are both truncatable from left to right and right to left.
Solution:
import Data.List (tails, inits, nub)
primes :: [Integer]
primes = 2 : filter ((==1) . length . primeFactors) [3,5..]
primeFactors :: Integer > [Integer]
primeFactors n = factor n primes
where
factor _ [] = []
factor m (p:ps)  p*p > m = [m]
 m `mod` p == 0 = p : factor (m `div` p) (p:ps)
 otherwise = factor m ps
isPrime :: Integer > Bool
isPrime 1 = False
isPrime n = case (primeFactors n) of
(_:_:_) > False
_ > True
truncs :: Integer > [Integer]
truncs n = nub . map read $
(take l . tail . tails) s ++ (take l . tail . inits) s
where
l = length s  1
s = show n
problem_37 = sum $ take 11 [x 
x < dropWhile (<=9) primes,
all isPrime (truncs x)
]
Problem 38
What is the largest 1 to 9 pandigital that can be formed by multiplying a fixed number by 1, 2, 3, ... ?
Solution:
problem_38 = maximum $ catMaybes [result  j < [1..9999],
let p2 = show j ++ show (2*j),
let p3 = p2 ++ show (3*j),
let p4 = p3 ++ show (4*j),
let p5 = p4 ++ show (5*j),
let result
 isPan p2 = Just p2
 isPan p3 = Just p3
 isPan p4 = Just p4
 isPan p5 = Just p5
 otherwise = Nothing]
where isPan s = sort s == "123456789"
Other solution:
import Data.List
mult n i vs  length (concat vs) >= 9 = concat vs
 otherwise = mult n (i+1) (vs ++ [show (n * i)])
problem_38 :: Int
problem_38 = maximum $ map read $ filter
((['1'..'9'] ==) .sort) $
[ mult n 1 []  n < [2..9999] ]
Problem 39
If p is the perimeter of a right angle triangle, {a, b, c}, which value, for p ≤ 1000, has the most solutions?
Solution: We use the well known formula to generate primitive Pythagorean triples. All we need are the perimeters, and they have to be scaled to produce all triples in the problem space.
problem_39 = head $ perims !! indexMax
where perims = group
$ sort [n*p  p < pTriples, n < [1..1000 `div` p]]
counts = map length perims
Just indexMax = findIndex (== (maximum counts)) $ counts
pTriples = [p 
n < [1..floor (sqrt 1000)],
m < [n+1..floor (sqrt 1000)],
even n  even m,
gcd n m == 1,
let a = m^2  n^2,
let b = 2*m*n,
let c = m^2 + n^2,
let p = a + b + c,
p < 1000]
Problem 40
Finding the nth digit of the fractional part of the irrational number.
Solution:
problem_40 =
(d 1)*(d 10)*(d 100)*(d 1000)*(d 10000)*(d 100000)*(d 1000000)
where
n = concat [show n  n < [1..]]
d j = Data.Char.digitToInt (n !! (j1))