On the Averages of the Divisors of a Number Author(s): Oystein Ore Source: The American Mathematical Monthly, Vol. 55, No. 10 (Dec., 1948), pp. 615-619 Published by: Mathematical Association of America Stable URL: http://www.jstor.org/stable/2305616 . Accessed: 25/08/2011 11:33 Your use of the JSTOR archive indicates your acceptance of the Terms & Conditions of Use, available at . http://www.jstor.org/page/info/about/policies/terms.jsp JSTOR is a not-for-profit service that helps scholars, researchers, and students discover, use, and build upon a wide range of content in a trusted digital archive. We use information technology and tools to increase productivity and facilitate new forms of scholarship. For more information about JSTOR, please contact support@jstor.org. Mathematical Association of America is collaborating with JSTOR to digitize, preserve and extend access to The American Mathematical Monthly. http://www.jstor.org ON THE AVERAGES OF THE DIVISORS OF A NUMBER OYSTEIN ORE, Yale University Let n be some integerand let n= al pi ar ... pr be its decompositioninto primefactors.As usual we shall denote the numberof divisorsof n by v(n) and the sum of the divisorsby a(n) so that V(n) = (al 1) ... 1)(a2 + + (ar + 1), and paj+1_ a,rr_1- IPi -1 Pi1 dIn Pr pr -1 The various means of the divisorsmay be computedeasily fromthe formulas that follow.For the arithmetic mean one has (1) A (n) u(n) = ___ v(n) and forthe geometric mean the result is v(n) (2) G(n) = H d -/n. d/n Finally the harmonicmean is definedby 1 1 H1(n) V(n) 1 d/n d and since nE-= d/n 1 d n 2E-= d/n d Ed d/n it followsthat (3) H(n) = nv(n) 0(n) The combinationof the three formulas(1), (2), and (3) gives H(n)A (n) = n = G(n)2; in other words, the geometricmean of the divisorsis the geometricmean of the arithmeticand harmonicmeans of thedivisors. 615 616 ON THE AVERAGES OF THE DIVISORS OF A NUMBER [December, One may now ask in which cases these means may be integers.For the geometricmean this is trivial: The geometricmean of thedivisorsis an integeronly for square numbers. For the other two means the problem is by no means simple. We may observe firstthat both the arithmeticand harmonicmeans have the multiplicative property A(a.b) = A(a)*A(b), H(a* b) = H(a) *H(b) provideda and b are relativelyprime.Thus one may only look forthe primitive integralmeans, that is, such numbersthat theyare not the productof relatively prime factors,each of which has an integralarithmeticor harmonic mean. Let us considerthe arithmeticmean in a fewspecial cases. For an odd prime p one has A(p) = P+_ 2 and this is always integral,while p =2 is an exception since A (2) = 3/2 is not integral. From the multiplicative property we conclude that every number odd primeshas an integralarithmeticmean of which is the product of different divisorswhile in the case of different primefactorsincluding2 the mean is only integralifone of the primesis of the form4k -1. One may consider also when the powers of a prime may have an integral arithmeticmean of divisors.Since A(pa) pa+l _=- (p- -1 1)(a+1) this is a problemclosely connectedwith the solution of the congruence X= e 1 (mod k). We shall not go into details about this problem. In certain cases the arithmetic mean is integral;forinstance, A (58) = 39, A(55) = 651. It can be shown that no power of 2 can have an integralarithmeticmean. The correspondingproblemsforthe harmonicmean seem more interesting. In certain simple cases it can be established easily that the harmonicmean of the divisorscannot be integral.We mentionfirst: For thepowerof a primetheharmonicmean is notintegral. If namely n = then pa pH)(a + 1) pa+pa-l+ . . .+p+1 Here pa is relativelyprime to the denominatorand since a+1 is a numberless 1948] ON THE AVERAGES OF THE DIVISORS OF A NUMBER 617 than the denominatorthe harmonicmean cannot be integral. Anotherobservationis: Whenn z6 is theproductof different primefactorstheharmonicmean cannot be integral. We write n = PlP2 ... Pr where the primesare arranged in increasingorder,and one finds 11(n) Pr PlP2 = *2r. (Pi + 1) . . . (pr+ 1) Let us assume firstthat n is odd, and let us write 1l(n)= Pr Pi+' Pr p+ 1 Pi1+ 2 2 Here the denominatorcontains at least r prime factors, and since Pr is not among them the quotient cannot be integral.Next let Pi=2 so that 2(+1 H(n)= 4Pp2 * p2 * * * Pr 3 (P2+ 1) ... (Pr+ 1) P2 + 2 Pr Pr + 2 and this expressioncan only be integralif P2 = 3 so that H(n)= 11(n) ~2ps*.. __ - _ P3+ 2 Pr __ Pr+1 . 2 Since none of the r-2 factorsin the denominatorare equal to prwe conclude that each of themmust be equal to one of the otherprimefactorsin the numerator. But the assumption P3+ 1 2 2 or Ps=3 was already excluded. A result of some interestis the following: A perfectnumberhas an integralharmonicmean of divisors. Since a perfectnumberis definedby the propertythat a(n) = 2n it followsthat H1(n) nv(n) r - 2 v(n) 618 ON THE AVERAGES OF THE DIVISORS [December, OF A NUMBER When n is an even perfect number it has the form n=20 p so that v(n) =(a+1) *2 and H(n)=a+l is integral. When we have an odd perfectnumber it is known that one of the exponents in the prime factordecompositionis odd so that v(n) is even also in this case. By means of the tables of J. W. L. Glaisher giving the values of a(n) and z(n) one can determinerathereasily the values of n below 10000 forwhichH(n) is integral.One findsthe followingtable: TABLE I n A (n) H(n) 6=2*3 28=22.7 140 =22 . 5 . 7 270 =2 *33*5 2 3 5 6 28 45 496=24 -31 672 =26 3 *7 1638 =2 *32-7 13 2970-2 33-5*11 5 8 9 11 99 84 182 270 6200 =23. 52-31 8128=26.127 8190=2 *32 .5 *7 *13 10 7 15 620 11614. 546 3 94 It would be of interestto make a systematic examination of such numbers up to highernumericallimits.This requiresan extensionof Glaisher's Numberdivisor tables, a project which would be desirable also in connectionwith other numbertheoreticalinvestigations. There are, however,various methods by means of which one can construct new numbers with integral harmonic means fromgiven ones. Let us suppose that n has this propertyso that n. (n) = a. (n), a = H(n). We multiply both sides by some number k relatively prime to n and write n1=k n. Then one finds H(ni)=- fl ni. v(ni) (n- ) a -k.v(k) a(k) Thus if the right-handexpressionis an integerthe numbern1 will also have an integralharmonic mean. This may again be examined by means of Glaisher's tables. The values of a in the last column of the table given above lead successively to the followingnumbers: 1948] POLYGONS WITH TWO EQUIANGULAR 619 POINTS TABLE II n 2 32-7 -13.17 2 32-5.7.13*29 23-3 -52-31 23.33.52.31 23-33-52 17. 31 23.52. 19.31 23-52-72 19. 31 22-52 72 134 19*31 23-3-52-29-31 23-52 19-31 .37 IH(n) .17 29 15 27 51 19 49 91 29 37 n 23 33.-52-31 *53 26- 13. 127 26-32. 13. 127* 26-32-5 . 13 *127 26-32 . 13 . 17. 127 26-32-5 *13 -17*127 26-32-5 *13. 29 *127 26-32 . 13 . 53. 127 26-32-5-13-89-127 H(n) 53 13 27 45 51 85 87 53 89 Table I shows that there are eleven numbers below 10,000 with integral harmonicmean forthe divisors.Among these are the fourperfectnumbersbelow this limit.One verifiessimply that an even perfectnumbercannot have an integralarithmeticmean of the divisors. However, if these are excluded from Table I the remainingnumbers have the propertythat also their arithmetic means of divisorsare integral.One mightbe led to the conjecturethat thiswould be a general propertyand the computation of Table II was executed with this in mind. However, the number marked by an asterisk proved to be a counter example. It is not perfectand its arithmeticmean of divisors is not integral.A much more interestingconjecture, however,appears fromour numerical computations,as an extensionofthe famousconjectureforperfectnumbers,namely, that a numberwithintegralharmonicmean of divisorsmustbe even. POLYGONS WITH TWO EQUIANGULAR POINTS ARTHUR WORMSER, Riverside,Illinois 1. Introduction.In 1816 A. L. Crelle [1] discovered that in every triangle ABC there are two points G and G' such that AGAB= GBC=GCA =G'BA = G'CB = G'A C =w. AfterH. Brocard [2] rediscoveredthis featurein 1875, he and other mathematiciansfounda great numberof related facts [3 ]. Since then the points G, G' and angle w have been called Brocard's points and Brocard's angle. Interest in the subject remained at a high level for many years, and in 1886 R. Tucker [4] foundthat Moebius' harmonicquadrangle [5] has a similar property.Althoughthis type of geometryof the trianglefascinatedquite a few, all effortsfailed to constructor calculate polygons with more than four sides having two equiangular points [6] as definedabove. In 1930 K. Hagge [7] pub-