0
$\begingroup$

Let $x, y, z\in [a,b]$ and $u, v, w\in [a, b] $, where $0 <a <b $, s.t. $x^2+y^2+z^2=u^2+v^2+w^2$.

Show that $$\frac {x^3}{u}+\frac {y^3}{v} + \frac {z^3}{w}\leq \frac {a^4+b^4}{ab (a^2+b^2)}(x^2+y^2+z^2) .$$

I tried to apply Cauchy- Schwartz and the fact that $ \frac {a^4+b^4}{ab (a^2+b^2)} \geq \frac {a}{b} $ but I didn't succeed.

$\endgroup$
  • $\begingroup$ What about the rearrangement inequality? $\endgroup$ – abc... Sep 14 '18 at 4:22
  • $\begingroup$ @abc with rearrangement inequality I change the form of the inequality. You want to amplify each fraction and after that to apply the inequality? $\endgroup$ – rafa Sep 14 '18 at 4:58
0
$\begingroup$

The inequality is homogeneous, i.e. multiplying all variables with the same factor will not change it. This allows us to demand that the multiplied variables (for which we use the same variable letters as before) satisfy $x^2 + y^2 + z^2 = u^2 + v^2 + w^2 = 3$ and in turn $a \le 1$ and $\sqrt{3-a^2} \ge b \ge 1$. So we have to prove

$$ \frac {x^3}{u}+\frac {y^3}{v} + \frac {z^3}{w}\leq 3 \frac {a^4+b^4}{ab (a^2+b^2)} $$

By re-ordering, w.l.o.g., let $x \le y\le z$. By the rearrangement inequality, the LHS gets as large as possible if we use, for $z^3$, the smallest possible $w$, which is $a$. Considering the choices of $x,y,z$ the highest value on the LHS will then be obtained for $z=b$. So we have to prove

$$ \frac {x^3}{u}+\frac {y^3}{v} + \frac {b^3}{a}\leq 3 \frac {a^4+b^4}{ab (a^2+b^2)} $$

Again by rearrangement, the converse is true for the term $\frac {x^3}{u}$, so we need to prove

$$ \frac {a^3}{b}+\frac {y^3}{v} + \frac {b^3}{a}\leq 3 \frac {a^4+b^4}{ab (a^2+b^2)} $$

Now the remaining values are determined: $y^2=v^2=3-a^2-b^2$. So finally we need to show

$$ \frac {a^3}{b}+(3-a^2-b^2) + \frac {b^3}{a}\leq 3 \frac {a^4+b^4}{ab (a^2+b^2)} $$

which is

$$ (a^2+b^2)(a^4 + ab(3-a^2-b^2) + b^4) \leq 3 (a^4+b^4) $$

Writing $3=a^2+b^2+v^2$ we have

$$ (a^2+b^2)(a^4 + ab v^2 + b^4) \leq (a^2+b^2+v^2) (a^4+b^4)\\ \rightarrow \quad 0 \leq v^2 (b^3-a^3)(b-a) $$ which is true. This proves the claim.

Note that for more than three terms, a similar inequality holds. See here.

$\endgroup$
  • $\begingroup$ I think we can not assume that $x\leq y\leq z$. $\endgroup$ – Michael Rozenberg Sep 29 '18 at 10:23
  • $\begingroup$ @MichaelRozenberg Re-ordering also changes the roles of $u,v,w$, which are discussed later. $\endgroup$ – Andreas Sep 29 '18 at 12:25

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.