The product of two consecutive odd integers is 1 less than twice their sum. Find the integers.

Question

asked May 17, 2021 94.4k views

1 Answer

Adirio · Answer 1 · 2021-05-22T22:26:01+0000

Two consecutive odd integers are
2k+1 and
2k+3 , for some integer
.

Their product is
(2k+1)(2k+3)=4k^2+8k+3 .

Twice their sum is
2(2k+1+2k+3)=2(4k+4)=8k+8

Since the product is 1 less than twice the sum, we have

$\underbrace{4k^2+8k+3}_{\text{the product}}=\underbrace{8k+8}_{\text{twice the sum}}-1$

So, we have

$4k^2-4=0 \iff 4k^2=4 \iff k^2=1 \iff k=\pm 1$

If
k=1 , the integers are 3 and 5

If
k=-1 , the integers are -1 and 1.

In both cases, in fact, we have: