Archive for Le Monde

Le Monde puzzle [#940]

Posted in Kids, Statistics, Travel, University life with tags , , , on November 11, 2016 by xi'an

A sudoku-like Le Monde mathematical puzzle:

On a 3×3 grid, all integers from 1 to 9 are present. Considering all differences between adjacent entries, the value of the grid is the minimum difference. What is the maximum possible value?

In a completely uninspired approach considering random permutations on {1,..,9}, the grid value can be computed as

neigh=c(1,2,4,5,7,8,1,4,2,5,3,6)
nigh=c(2,3,5,6,8,9,4,7,5,8,6,9)
perm=sample(9)
val<-function(perm){
min(abs(perm[neigh]-perm[nigh]))}

which produces a value of 3 for the maximal value. For a 4×4 grid

neigh=c(1:3,5:7,9:11,13:15,1+4*(0:2),2+4*(0:2),3+4*(0:2),4*(1:3))
nigh=c(2:4,6:8,10:12,14:16,1+4*(1:3),2+4*(1:3),3+4*(1:3),4*(2:4))
perm=sample(16)
val<-function(perm){
min(abs(perm[neigh]-perm[nigh]))}

the code returns 5. For the representation

[,1] [,2] [,3] [,4]
[1,] 8 13 3 11
[2,] 15 4 12 5
[3,] 9 14 6 16
[4,] 2 7 1 10

art brut

Posted in Books, pictures with tags , , , , on November 6, 2016 by xi'an

Le Monde puzzle [#977]

Posted in Books, Kids, pictures, Statistics, Travel, University life with tags , , , , , on October 3, 2016 by xi'an

A mild arithmetic Le Monde mathematical puzzle:

Find the optimal permutation of {1,2,..,15} towards minimising the maximum of sum of all three  consecutive numbers, including the sums of the 14th, 15th, and first numbers, as well as the 15th, 1st and 2nd numbers.

If once again opted for a lazy solution, not even considering simulated annealing!,

parme=sample(15)
max(apply(matrix(c(parme,parme[-1],
parme[1],parme[-(1:2)],parme[1:2]),3),2,sum))

and got the minimal value of 26 for the permutation

14 9 2 15 7 1 11 10 4 12 8 5 13 6 3

Le Monde gave a solution with value 25, though, which is

11 9 7 5 13 8 2 10 14 6 1 12 15 4 3

but there is a genuine mistake in the solution!! This anyway shows that brute force may sometimes fail. (Which sounds like a positive conclusion to failing to find the proper solution! But trying with a simple simulated annealing version did not produce any 25 either…)

Le Monde puzzle [#967]

Posted in Books, Kids, pictures, Statistics, Travel, University life with tags , , , , , , , on September 30, 2016 by xi'an

A Sudoku-like Le Monde mathematical puzzle for a come-back (now that it competes with The Riddler!):

Does there exist a 3×3 grid with different and positive integer entries such that the sum of rows, columns, and both diagonals is a prime number? If there exist such grids, find the grid with the minimal sum?

I first downloaded the R package primes. Then I checked if by any chance a small bound on the entries was sufficient:

cale<-function(seqe){ 
 ros=apply(seqe,1,sum)
 cole=apply(seqe,2,sum)
 dyag=sum(diag(seqe))
 dayg=sum(diag(seqe[3:1,1:3]))
 return(min(is_prime(c(ros,cole,dyag,dayg)))>0)}

Running the blind experiment

for (t in 1:1e6){
  n=sample(9:1e2,1)
  if (cale(matrix(sample(n,9),3))) print(n)}

I got 10 as the minimal value of n. Trying with n=9 did not give any positive case. Running another blind experiment checking for the minimal sum led to the result

> A
 [,1] [,2] [,3]
[1,] 8 3 6
[2,] 1 5 7
[3,] 2 11 4

with sum 47.

Matlab goes deep [learning]

Posted in Books, pictures, R, Statistics, University life with tags , , on September 5, 2016 by xi'an

deepearningsA most interesting link I got when reading Le Monde, about MatLab proposing deep learning tools…

art brut

Posted in Books, pictures with tags , , , , on June 25, 2016 by xi'an

Le Monde puzzle [#965]

Posted in Kids, R with tags , , , on June 14, 2016 by xi'an

A game-related Le Monde mathematical puzzle:

Starting with a pile of 10⁴ tokens, Bob plays the following game: at each round, he picks one of the existing piles with at least 3 tokens, takes away one of the tokens in this pile, and separates the remaining ones into two non-empty piles of arbitrary size. Bob stops when all piles have identical size. What is this size and what is the maximal number of piles?

First, Bob can easily reach a decomposition that prevents all piles to be of the same size: for instance, he can start with a pile of 1 and another pile of 2. Looking at the general perspective, an odd number of tokens, n=2k+1, can be partitioned into (1,1,2k-1). Which means that the decomposition (1,1,…,1) involving k+1 ones can always be achieved. For an even number, n=2k, this is not feasible. If the number 2k can be partitioned into equal numbers u, this means that the sequence 2k-(u+1),2k-2(u+1),… ends up with u, hence that there exist m such that 2k-m(u+1)=u or that 2k+1 is a multiple of (u+1). Therefore, the smallest value is made of the smallest factor of 2k+1. Minus one. For 2k=10⁴, this value is equal to 72, while it is 7 for 10³. The decomposition is impossible for 2k=100, since 101 is prime. Here are the R functions used to check this analysis (with small integers, if not 10⁴):

solvant <- function(piles){
 if ((length(piles)>1)&((max(piles)==2)||(min(piles)==max(piles)))){
  return(piles)}else{
   i=sample(rep(1:length(piles),2),1,prob=rep(piles-min(piles)+.1,2))
   while (piles[i]<3)
    i=sample(rep(1:length(piles),2),1,prob=rep(piles-min(piles)+.1,2))
   split=sample(rep(2:(piles[i]-1),2),1,
        prob=rep(abs(2:(piles[i]-1)-piles[i]/2)+.1,2))
   piles=c(piles[-i],split-1,piles[i]-split)
   solvant(piles)}}

disolvant <- function(piles){
 sol=solvant(piles)
 while (min(sol)<max(sol))
 sol=solvant(piles)
 return(sol)}

resolvant <- function(piles){
 sol=disolvant(piles)
 lasol=sol;maxle=length(sol)
 for (t in 1:piles){
 sol=disolvant(piles)
 if (length(sol)>maxle){
 lasol=sol;maxle=length(sol)}}
 return(lasol)}