The polynomial p(x) with degree at least 1 satisfies p(x) p(2x2) = p(3x3 + x). Show that it does not have any real roots.
Solution
Suppose it has a positive root α, then 3α3+α is another root, which is larger than α. Proceeding, we get infinitely many roots. Contradiction. So there are no positive roots. Similarly, there are no negative roots. So the only possibility is 0. Suppose bxm is the lowest power of x in p(x). Then the lowest power of x in p(x)p(2x2) is x3m, but the lowest power of x in p(3x3 + x) is xm, so m = 0 and hence p(0) = b ≠ 0, so 0 is not a root.
Thanks to Suat Namli
© John Scholes
jscholes@kalva.demon.co.uk
13 February 2004
Last corrected/updated 13 Feb 04