Prove that $a^6-a^5+a^4-a^3+1>0$

Question

Prove that $a^6-a^5+a^4-a^3+1>0$.

What I tried and why this question is very tricky: I tired to decompose all the $a$ and find a common "denominator", I tried multiple methods, some with radicals another with multiplying with numbers to have a common base, I also tried this: $a^6-a^5+a^4-a^3>0-1=-1$ and multiply both sides by $-1$ to have a positive number ($1$) and to change the symbol ($>$ becomes $<$) My ideas didn't work, maybe they were incorrect or I didn't solve them correct. Tell me what do you think.

For some basic information about writing mathematics at this site see, e.g., basic help on mathjax notation, mathjax tutorial and quick reference, main meta site math tutorial and equation editing how-to.m/q/1773). — José Carlos Santos, Oct 10 '23 at 14:34
FWIW, the minimum value of the expression occurs when $a = \frac{1}{18} \left( 5 - \frac{47}{\sqrt[3]{1043 + 18 \sqrt{3678}}} + \sqrt[3]{1043 + 18 \sqrt{3678}} \right) \approx 0.7903088603839408$, giving $f(a) \approx 0.8318434071389804$. I'm not posting that as an answer because it's very difficult to find without computer assistance. — Dan, Oct 10 '23 at 15:46

score 10 · Answer 1 · edited Oct 10 '23 at 15:39

10

Let $\displaystyle f(a)=a^6-a^5+a^4-a^3+1$

$\bullet $ For $a\leq 0,$ Then $f(a)>0$

$\bullet $ For $0<a<1,$ Then $f(a)=a^6+a^4(1-a)+(1-a^3)>0$

$\bullet $ For $a\geq 1,$ Then $f(a)=a^5(a-1)+a^3(a-1)+1>0$

So we have $f(a)>0$ for $a\in\mathbb{R}$

edited Oct 10 '23 at 15:39

2'5 9'2

54,717

answered Oct 10 '23 at 14:49

jacky

5,194

How do you know the second claim is true? – dmh Oct 10 '23 at 15:02
1

In $a\in(0,1),$ We have $(1-a),(1-a^3)>0$ – jacky Oct 10 '23 at 15:03

lone student · Answer 2 · 2023-10-11T11:31:56.820

2

A general method that only works with Discriminants :

Let's transform the given polynomial into the quadratic-like polynomial with respect to $\color{#c00}{a^2}$ :

$$ \begin{align}P(a):&=a^6-a^5+a^4-a^3+1\\ &=\small{\underbrace{(a^2-a+1)}_{>\thinspace 0,\thinspace \forall a\thinspace\in\thinspace\mathbb R}\color{#c00}{\left(a^2\right)^2}-a\cdot \color{#c00}{a^2}+1} \end{align} $$

Then, we determine the Discriminant $\Delta_{\color{#c00}{a^2}}$ :

$$ \begin{align}\Delta_{\color{#c00}{a^2}}&=a^2-4(a^2-a+1)\\ &=-\underbrace{\left(3\color{#0a0}{a^2}-4\color{#0a0}{a}+4\right)}_{\Delta_{\color{#0a0}{a}}=\thinspace-8\thinspace <\thinspace 0}\\ &<0,\thinspace \forall a\in\mathbb R\thinspace . \end{align} $$

Since $\Delta_{\color{#c00}{a^2}}<0$ for all $a\in\mathbb R$, this means that $P(a)>0,\thinspace \forall a\in\mathbb R$ which completes the proof .

edited Oct 11 '23 at 11:31

answered Oct 10 '23 at 17:32

lone student

14,709

Nice way Lone student. – jacky Oct 18 '23 at 13:39
Can you please tell me How can I solve it above way....https://math.stackexchange.com/questions/2274331/show-that-x12-x9x4-x1-geq0-for-all-x – jacky Oct 18 '23 at 13:39
@jacky If I see a way with the same method, I will leave you a comment/solution . – lone student Oct 18 '23 at 15:13

score 0 · Answer 3 · answered Oct 10 '23 at 14:59

0

Another way :

$f(a)=a^6-a^5+a^4-a^3+1$

$\displaystyle 2f(a)=2a^6-2a^5+2a^4-2a^3+2$

$\displaystyle 2f(a)=a^6+(a^6-2a^3\cdot a^2+a^4)+(a^4-2a^2\cdot a+a^2)+(a^4-a^2+\frac{1}{4})+\frac{3}{4} $

$\displaystyle 2f(a)=a^6+(a^3-a^2)^2+(a^2-a)^2+(a^2-\frac{1}{2})^2+\frac{3}{4}>0$

So we have $2f(a)>0\Longrightarrow f(a)>0 \;\forall a\in\mathbb{R}$

answered Oct 10 '23 at 14:59

jacky

5,194

2

Completing the square seems incorrect : $$\small {2f(a)=2 a^6 - 2 a^5 + 3 a^4 - 2 a^3 + 1}$$ – lone student Oct 10 '23 at 16:22
1

@jacky Thanks for the help!!!! – User09 Oct 10 '23 at 16:35

Prove that $a^6-a^5+a^4-a^3+1>0$

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