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 2004-03-30, 00:59 #1 biwema     Mar 2004 5758 Posts sequence Let's define the following sequence: x[0] = 1 x[n] = ( 1 + x[0]^3 + x[1]^3 + .... + x[n-1]^3) / n Are all of these sequence integers?
 2004-04-02, 01:54 #2 cheesehead     "Richard B. Woods" Aug 2002 Wisconsin USA 170148 Posts Hmmm ... Let's see: x[0] = 1 x[1] = (1 + 1 ) / 1 = 2 x[2] = (1 + 1 + 8) / 2 = 5 x[3] = (1 + 1 + 8 + 125) / 3 = 45 x[4] = (1 + 1 + 8 + 125 + 91125) / 4 = 22815 Lazy suggestion: Someone want to check OEIS? Last fiddled with by cheesehead on 2004-04-02 at 02:02
2004-04-04, 05:24   #3
FenwayFrank

Oct 2002

7 Posts

Quote:
 Originally Posted by cheesehead Lazy suggestion: Someone want to check OEIS?
This says that it's not always an integer. It still is after 12 terms; calculating the thirteenth is bringing my machine to its knees.

 2004-04-04, 05:47 #4 Kevin     Aug 2002 Ann Arbor, MI 433 Posts I can get it down to a recursive of sorts.... x[n]=(1+x[0]^3+x[1]^3...+x[n-1]^3)/n n*x[n]=(1+x[0]^3+x[1]^3...+x[n-2]^3)+x[n-1]^3 n*x[n]-x[n-1]^3=(1+x[0]^3+x[1]^3...+x[n-2]^3) (n*x[n]-x[n-1]^3)/(n-1)=(1+x[0]^3+x[1]^3...+x[n-2]^3)/(n-1) (n*x[n]-x[n-1]^3)/(n-1)=x[n-1] n*x[n]-x[n-1]^3=(n-1)*x[n-1] x[n]={(n-1)*x[n-1]+x[n-1]^3}/n edit: lil bit more x[n]=x[n-1]*[n-1+x[n-1]^2]/n x[n]=x[n-1]*{n-(x[n-1]-1)(x[n-1]+1)}/n this tells us that if n divides x[n-1]-1, x[n-1], or x[n-1]+1, then x[n] is integral. If it doesn't, then x[n] is not an integer. Last fiddled with by Kevin on 2004-04-04 at 05:54
 2004-04-04, 07:26 #5 cheesehead     "Richard B. Woods" Aug 2002 Wisconsin USA 22·3·641 Posts http://mathworld.wolfram.com/GoebelsSequence.html "A sequence even more striking for assuming integer values only for many terms is the 3-Göbel sequence ..." Last fiddled with by cheesehead on 2004-04-04 at 07:33
 2004-04-04, 23:58 #6 biwema     Mar 2004 3·127 Posts Maybe I should have asked "Which is the first noninteger element of the sequence?"...
 2004-04-05, 13:52 #7 FenwayFrank   Oct 2002 7 Posts I can tell you that it's >15 (2.148- e 707870). I have to shut the machine down to go into work, otherwise I'd keep it running. JooC: do you know the answer?
2004-04-05, 22:49   #8
FeLiNe

Dec 2003

23 Posts

Quote:
 Originally Posted by biwema Maybe I should have asked "Which is the first noninteger element of the sequence?"...

Of course you could just follow the reference given in the OEIS:

(Example 25).

It's quite a worthwhile and enjoyable read.

The answer is that the 89th(!) number is not an integer.

EDIT: You'll also find that the same problem for fourth powers yields a non-integer for the 97 number, for fifth powers at the 214th position ...

Last fiddled with by FeLiNe on 2004-04-05 at 22:53 Reason: slightly more info

 2004-04-06, 12:48 #9 FenwayFrank   Oct 2002 716 Posts Is the article available somewhere else? The site seems to be limited to people or places that have existing accounts.
 2004-04-06, 18:26 #10 FeLiNe     Dec 2003 23 Posts Oh, sorry - I didn't realise that. My cable-access is set up such that the machine appears in the IP-range of CalTech and is, in effect, a member f the CalTech network for all intents and purposes -- with the attendant benefit that I can get to all kinds of online journals and such. To outline the procedure: you can do the whole operation modulo 89. There's the usual rules of modular arithmetic to observe, but this keeps the size of all numbers extremely manageable. The problem is presented for the case where the individual terms are squares and cubes (like the one in this thread) and the solution is shown for the case of squares (where the 43rd term is not an integer) and then a comment is made that the same procedure working mod89 shows that the 89th term isn't integer in the cube-case. If it helps, the author (Richard K. Guy) gives as a reference his own book "Unsolved problems in number theory" (Springer 1981), E15. If you're lucky, that might be available at your local library...
 2004-04-06, 21:37 #11 biwema     Mar 2004 3·127 Posts Well done, Feline. the 89th element, that is also the answer I have. That numebr is really big (10^(10^40)), so it is not possible to compute the whole number. As already sugessted by FeLiNe, the easiest wat to compute the first noninteger element, is to do the whole Equation modulo a prime number. starting witrh 3, 5, 7 etc. If you have a multiprecision tool, you can also calculate it mod 100! (factorial). There is also a simplification at mathworld (wolfram research) about Göbel's Sequence ( http://mathworld.wolfram.com/GoebelsSequence.html ) they transform the sequence in a related one, which is the already the sum of all beginning elements. So s[n] = n * x[n] s[n+1] = s[n] + ((s[n]^3) / n^3) here the modulo operation is not that difficult. maybe there is a power, where it takes even longer to meet the first noninteger element...

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