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A088787
Numbers which are primes and which remain prime for three successive applications of incrementing each digit by 2 with carries ignored.
3
61, 97, 227, 449, 661, 797, 881, 1307, 2797, 3877, 5477, 5657, 8297, 8669, 8849, 8861, 9887, 11257, 12517, 15287, 16487, 17387, 19427, 20287, 20897, 23197, 23957, 25717, 26227, 30637, 36947, 39217, 41687, 41927, 42197, 42797, 45127, 45827, 51637
OFFSET
1,1
COMMENTS
Imagine that each digit of n is on a wheel on a combination lock and each wheel is being rotated two notches for each application of the function. Thus for the digits 0 to 7, the replacement digit is simply the digit+2, but for 8 the replacement digit is 0 and for 9 the replacement digit is 1. Thus 227 -> 449 -> 661 -> 883 -> 5 (initial zeros are dropped on results.)
EXAMPLE
a(3)=227 because (i) 227 is prime and (ii) incrementing each digit of 227 by 2 yields 449 which is prime and (iii) incrementing each digit of 449 by 2 (ignoring carries) yields 661 which is prime and (iv) incrementing each digit of 661 by 2 yields 883 which is prime
MATHEMATICA
Select[Prime@Range@10000, AllTrue[First@Last@Reap[n = #; Do[n=Sow[FromDigits@ReplaceAll[IntegerDigits@n, k_:>Mod[2+k, 10]]], 3]], PrimeQ] &](* Hans Rudolf Widmer, Aug 11 2024 *)
PROG
Function Cycle222(long: p): long {i: integer; r: long; c: integer; for i=floor(log10(p)) to 0 step -1; c = floor(p/10^(i-1)) mod 10; r = r*10 + ((c+2) mod 10); next i; return r; } p=2; for i=1 to 90; n=sequence.count; do while sequence.count=n; j=cycle222(p); k=cycle222(j); if isprime(j) and isprime(k) and isprime(cycle222(k)) then sequence.add(p) else p=nextPrimeAfter(p); loop; next i;
CROSSREFS
KEYWORD
base,nonn
AUTHOR
Chuck Seggelin (barkeep(AT)plastereddragon.com), Oct 16 2003
STATUS
approved