Partitions into Consecutive Integers
For any positive integer N, let f(N) denote the number of ways in
which n can be expressed as the sum of consecutive positive integers.
For example, since 9 can be expressed as 2+3+4 and as 4+5 and as 9,
we have f(9)=3.
The sum of the integers from 1 to n is n(n+1)/2, so we're looking
for the number of ways in which a given integer N can be expressed
in the form
N = n(n+1)/2 - m(m+1)/2 (1)
for a positive integer n and non-negative integer m. Solving this
for m gives
____________________
-1 + / 1 - 4[2N - n(n+1)]
m = ---------------------------
2
which implies that the quantity inside the square root must be a
square integer. Thus there is an integer u such that
4n^2 + 4n + 1 - 8N - u^2 = 0
Clearly u must be odd. Solving this for n gives
_________
-1 + / 8N + u^2
n = ----------------
2
Again, this requires that the quantity inside the square root is a
square integer, so we have an integer v such that
8N = v^2 - u^2 = (v-u)(v+u)
and since u is odd, v must also be odd. Thus we can write this in
the form
2N = [(v-u)/2] [(v+u)/2]
So we are looking for ways of factoring 2N into two factors, A=(v-u)/2
and B=(v+u)/2 with odd integers u,v. We have v=A+B and u=B-A, so A
and B must have opposite parity, i.e., one is odd and one is even.
Thus, the integers A,B give a solution if and only if 2N = AB and one
of A,B is odd and the other is even. Clearly this occurs for any odd
divisor d of N, which let's us take A=d and B=2N/d (or vice versa,
which ever give B > A). Consequently, the number of ways of expressing
N as a sum of consecutive positive integers is equal to the number of
odd divisors of N.
For example, there are three odd divisors of N=9, namely 1, 3, and 9,
so we have f(9) = 3, corresponding to the three solutions
A B v u n m expression
--- --- --- --- --- --- -------------
1 18 19 17 9 8 9
3 6 9 3 4 1 2+3+4
2 9 11 7 5 3 4+5
Incidentally, if we let F(N) denote the number of ways of expressing
N as the sum of consecutive integers, without requiring that they be
positive integers, then clearly F(N) = 2f(N), because for any sum of
consecutive integers extending from -m to n the total is again given
by equation (1), and for each solution that ranges from m+1 to n
there corresponds an equivalent solution ranging from -m to n.
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