In number theory, an average order of an arithmetic function is some simpler or better-understood function which takes the same values "on average".
Let be an arithmetic function. We say that an average order of is if
as tends to infinity.
It is conventional to choose an approximating function that is continuous and monotone. But even so an average order is of course not unique.
In cases where the limit
exists, it is said that has a mean value (average value) . If in addition the constant is not zero, then the constant function is an average order of .
In case is of the form
for some arithmetic function , one has,
(1)
Generalized identities of the previous form are found here. This identity often provides a practical way to calculate the mean value in terms of the Riemann zeta function. This is illustrated in the following example.
For an integer the set of kth-power-free integers is
We calculate the natural density of these numbers in ℕ, that is, the average value of , denoted by , in terms of the zeta function.
The function is multiplicative, and since it is bounded by 1, its Dirichlet series converges absolutely in the half-plane , and there has Euler product
We say that two lattice points are visible from one another if there is no lattice point on the open line segment joining them.
Now, if gcd(a, b) = d > 1, then writing a = da2, b = db2 one observes that the point (a2, b2) is on the line segment which joins (0,0) to (a, b) and hence (a, b) is not visible from the origin. Thus (a, b) is visible from the origin implies that (a, b) = 1. Conversely, it is also easy to see that gcd(a, b) = 1 implies that there is no other integer lattice point in the segment joining (0,0) to (a,b).
Thus, (a, b) is visible from (0,0) if and only if gcd(a, b) = 1.
Notice that is the probability of a random point on the square to be visible from the origin.
Thus, one can show that the natural density of the points which are visible from the origin is given by the average,
is also the natural density of the square-free numbers in ℕ. In fact, this is not a coincidence. Consider the k-dimensional lattice, . The natural density of the points which are visible from the origin is , which is also the natural density of the k-th free integers in ℕ.
This notion is best discussed through an example. From
( is the Euler–Mascheroni constant) and
we have the asymptotic relation
which suggests that the function is a better choice of average order for than simply .
Let h(x) be a function on the set of monic polynomials over Fq. For we define
This is the mean value (average value) of h on the set of monic polynomials of degree n. We say that g(n) is an average order of h if
as n tends to infinity.
In cases where the limit,
exists, it is said that h has a mean value (average value) c.
Let h be a polynomial arithmetic function (i.e. a function on set of monic polynomials over A). Its corresponding Dirichlet series define to be
where for , set if , and otherwise.
The polynomial zeta function is then
Similar to the situation in N, every Dirichlet series of a multiplicative functionh has a product representation (Euler product):
where the product runs over all monic irreducible polynomials P.
For example, the product representation of the zeta function is as for the integers: .
Unlike the classical zeta function, is a simple rational function:
In a similar way, If f and g are two polynomial arithmetic functions, one defines f * g, the Dirichlet convolution of f and g, by
where the sum extends over all monic divisorsd of m, or equivalently over all pairs (a, b) of monic polynomials whose product is m. The identity still holds. Thus, like in the elementary theory, the polynomial Dirichlet series and the zeta function has a connection with the notion of mean values in the context of polynomials. The following examples illustrate it.
Let be the number of monic divisors of f and let be the sum of over all monics of degree n.
where .
Expanding the right-hand side into power series we get,
Substitute the above equation becomes:
which resembles closely the analogous result for integers , where is Euler constant.
Not much is known about the error term for the integers, while in the polynomials case, there is no error term. This is because of the very simple nature of the zeta function , and that it has no zeros.
Michael Rosen (2000), Number Theory in Function Fields, Springer Graduate Texts In Mathematics, ISBN0-387-95335-3
Hugh L. Montgomery; Robert C. Vaughan (2006), Multiplicative Number Theory, Cambridge University Press, ISBN978-0521849036
Michael Baakea; Robert V. Moodyb; Peter A.B. Pleasantsc (2000), Diffraction from visible lattice points and kth power free integers, Discrete Mathematics- Journal