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The current puzzle in Le Monde this week is again about prime numbers:
The control key on a credit card is an integer η(a) associated with the card number a such that, if the card number is c=ab, its key η(c) satisfies η(c)=η(a)+η(b)-1. There is only one number with a key equal to 1 and the keys of 160 and 1809 are 10 and 7, respectively. What is the key of 2010?
The key of 1 is necessarily 1 since
η(a1)=η(a)+η(1)-1=η(a).
So this eliminates 1. Now, the prime number decompositions of 160, 1809, and 2010 are given by
> prime.factor(160)
[1] 2 2 2 2 2 5
> prime.factor(1809)
[1] 3 3 3 67
> prime.factor(2010)
[1] 2 3 5 67
using a function of the (still bugged!) schoolmath package. We thus have the decompositions
5η(2)+η(5)=11
3η(3)+η(67)=8
Since η(2) cannot be 1 and is an integer, we necessarily have η(2)=2 but then this implies η(5)=1 (!), unless 0 is also a valid key (?), which would imply that η(5)=11. With the same constraint on 1, the second sum also leads to the unique solution η(3)=2 and η(67)=2. I thus wonder if there is a bug in the key of 160…
Filed under: R, University life Tagged: Le Monde, mathematical puzzle, schoolmath
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