Prove inequality $ x^2-2xcos(x)+1>0 $ [closed] Announcing the arrival of Valued Associate #679: Cesar Manara Planned maintenance scheduled April 17/18, 2019 at 00:00UTC (8:00pm US/Eastern)Prove using Jensen's InequalityWeird inequalityInequality involving $|cos(x)|$How prove that $max(|f(1)|,|f(2)|,|f(3)|,|f(4)|)geq frac12$ if $f(x) = cos(Ax)+cos(Bx)$?How prove $ fraccos xcos y-4cos x+cos y-4le1+frac12cos(fracx+ycos x+cos y-4) $?Trigonometric inequality $|sina_1|+|sina_2|+…+|sina_n|+|cos(a_1+a_2+…+a_n)| ge1$ for all real $a_i$Prove $ sum fraccos(n) sqrt n$ is boundedProve $cos(sin x)>sin(cos x)$Prove that the inequality $sin^8(x) + cos^8(x) geq frac18$ is true for every real number.Prove $cos x cosh x +1=0$ has infinitely many real roots.
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Prove inequality $
x^2-2xcos(x)+1>0
$ [closed]
Announcing the arrival of Valued Associate #679: Cesar Manara
Planned maintenance scheduled April 17/18, 2019 at 00:00UTC (8:00pm US/Eastern)Prove using Jensen's InequalityWeird inequalityInequality involving $|cos(x)|$How prove that $max(|f(1)|,|f(2)|,|f(3)|,|f(4)|)geq frac12$ if $f(x) = cos(Ax)+cos(Bx)$?How prove $ fraccos xcos y-4cos x+cos y-4le1+frac12cos(fracx+ycos x+cos y-4) $?Trigonometric inequality $|sina_1|+|sina_2|+…+|sina_n|+|cos(a_1+a_2+…+a_n)| ge1$ for all real $a_i$Prove $ sum fraccos(n) sqrt n$ is boundedProve $cos(sin x)>sin(cos x)$Prove that the inequality $sin^8(x) + cos^8(x) geq frac18$ is true for every real number.Prove $cos x cosh x +1=0$ has infinitely many real roots.
$begingroup$
How can we prove that
$$
x^2-2xcos(x)+1>0
$$
for all real $x$
real-analysis trigonometry inequality
asked Apr 1 at 13:07
avan1235avan1235
3628
$endgroup$
closed as off-topic by Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan Apr 1 at 20:09
This question appears to be off-topic. The users who voted to close gave this specific reason:
- "This question is missing context or other details: Please provide additional context, which ideally explains why the question is relevant to you and our community. Some forms of context include: background and motivation, relevant definitions, source, possible strategies, your current progress, why the question is interesting or important, etc." – Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan
add a comment |
$begingroup$
How can we prove that
$$
x^2-2xcos(x)+1>0
$$
for all real $x$
real-analysis trigonometry inequality
asked Apr 1 at 13:07
avan1235avan1235
3628
$endgroup$
closed as off-topic by Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan Apr 1 at 20:09
This question appears to be off-topic. The users who voted to close gave this specific reason:
- "This question is missing context or other details: Please provide additional context, which ideally explains why the question is relevant to you and our community. Some forms of context include: background and motivation, relevant definitions, source, possible strategies, your current progress, why the question is interesting or important, etc." – Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan
add a comment |
$begingroup$
How can we prove that
$$
x^2-2xcos(x)+1>0
$$
for all real $x$
real-analysis trigonometry inequality
asked Apr 1 at 13:07
avan1235avan1235
3628
$endgroup$
How can we prove that
$$
x^2-2xcos(x)+1>0
$$
for all real $x$
real-analysis trigonometry inequality
real-analysis trigonometry inequality
asked Apr 1 at 13:07
avan1235avan1235
3628
asked Apr 1 at 13:07
avan1235avan1235
3628
asked Apr 1 at 13:07
avan1235avan1235
3628
asked Apr 1 at 13:07
avan1235avan1235
3628
asked Apr 1 at 13:07
avan1235avan1235
3628
3628
closed as off-topic by Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan Apr 1 at 20:09
This question appears to be off-topic. The users who voted to close gave this specific reason:
- "This question is missing context or other details: Please provide additional context, which ideally explains why the question is relevant to you and our community. Some forms of context include: background and motivation, relevant definitions, source, possible strategies, your current progress, why the question is interesting or important, etc." – Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan
closed as off-topic by Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan Apr 1 at 20:09
This question appears to be off-topic. The users who voted to close gave this specific reason:
- "This question is missing context or other details: Please provide additional context, which ideally explains why the question is relevant to you and our community. Some forms of context include: background and motivation, relevant definitions, source, possible strategies, your current progress, why the question is interesting or important, etc." – Martin R, Umberto P., José Carlos Santos, Carl Mummert, John Omielan
add a comment |
add a comment |
3 Answers
3
active
oldest
votes
$begingroup$
HINT
Complete the the square for $$x^2 -2xcos x$$
$$(x- cos x)^2 - cos^2 x + 1$$
$$(x- cos x)^2 + sin^2 x$$ which is always greater than $0$?
edited Apr 1 at 13:19
Dbchatto67
3,207625
answered Apr 1 at 13:10
AvkaAvka
1107
$endgroup$
add a comment |
$begingroup$
$x^2-2x cos(x) + 1=(x-cos(x))^2+1-cos^2(x)=(x-cos(x))^2+sin^2xgeq0$
Further, it is easy to see that when $x=cos x$, $sin xneq 0$. So, the equality never holds. So $x^2-2x cos(x) + 1>0$.
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
$endgroup$
add a comment |
$begingroup$
Well, there is also AM-GM : $x^2+1geqslant 2|x|geqslant 2|xcos x|geqslant 2xcos x$. As equality is not possible ($x^2=1$ and $|cos x|=1$ cannot simultaneously be true), the inequality is strict.
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
$endgroup$
add a comment |
3 Answers
3
active
oldest
votes
3 Answers
3
active
oldest
votes
active
oldest
votes
active
oldest
votes
$begingroup$
HINT
Complete the the square for $$x^2 -2xcos x$$
$$(x- cos x)^2 - cos^2 x + 1$$
$$(x- cos x)^2 + sin^2 x$$ which is always greater than $0$?
edited Apr 1 at 13:19
Dbchatto67
3,207625
answered Apr 1 at 13:10
AvkaAvka
1107
$endgroup$
add a comment |
$begingroup$
HINT
Complete the the square for $$x^2 -2xcos x$$
$$(x- cos x)^2 - cos^2 x + 1$$
$$(x- cos x)^2 + sin^2 x$$ which is always greater than $0$?
edited Apr 1 at 13:19
Dbchatto67
3,207625
answered Apr 1 at 13:10
AvkaAvka
1107
$endgroup$
add a comment |
$begingroup$
HINT
Complete the the square for $$x^2 -2xcos x$$
$$(x- cos x)^2 - cos^2 x + 1$$
$$(x- cos x)^2 + sin^2 x$$ which is always greater than $0$?
edited Apr 1 at 13:19
Dbchatto67
3,207625
answered Apr 1 at 13:10
AvkaAvka
1107
$endgroup$
HINT
Complete the the square for $$x^2 -2xcos x$$
$$(x- cos x)^2 - cos^2 x + 1$$
$$(x- cos x)^2 + sin^2 x$$ which is always greater than $0$?
edited Apr 1 at 13:19
Dbchatto67
3,207625
answered Apr 1 at 13:10
AvkaAvka
1107
edited Apr 1 at 13:19
Dbchatto67
3,207625
edited Apr 1 at 13:19
Dbchatto67
3,207625
edited Apr 1 at 13:19
Dbchatto67
3,207625
3,207625
answered Apr 1 at 13:10
AvkaAvka
1107
answered Apr 1 at 13:10
AvkaAvka
1107
answered Apr 1 at 13:10
AvkaAvka
1107
1107
add a comment |
add a comment |
$begingroup$
$x^2-2x cos(x) + 1=(x-cos(x))^2+1-cos^2(x)=(x-cos(x))^2+sin^2xgeq0$
Further, it is easy to see that when $x=cos x$, $sin xneq 0$. So, the equality never holds. So $x^2-2x cos(x) + 1>0$.
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
$endgroup$
add a comment |
$begingroup$
$x^2-2x cos(x) + 1=(x-cos(x))^2+1-cos^2(x)=(x-cos(x))^2+sin^2xgeq0$
Further, it is easy to see that when $x=cos x$, $sin xneq 0$. So, the equality never holds. So $x^2-2x cos(x) + 1>0$.
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
$endgroup$
add a comment |
$begingroup$
$x^2-2x cos(x) + 1=(x-cos(x))^2+1-cos^2(x)=(x-cos(x))^2+sin^2xgeq0$
Further, it is easy to see that when $x=cos x$, $sin xneq 0$. So, the equality never holds. So $x^2-2x cos(x) + 1>0$.
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
$endgroup$
$x^2-2x cos(x) + 1=(x-cos(x))^2+1-cos^2(x)=(x-cos(x))^2+sin^2xgeq0$
Further, it is easy to see that when $x=cos x$, $sin xneq 0$. So, the equality never holds. So $x^2-2x cos(x) + 1>0$.
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
answered Apr 1 at 13:11
Holding ArthurHolding Arthur
1,753417
1,753417
add a comment |
add a comment |
$begingroup$
Well, there is also AM-GM : $x^2+1geqslant 2|x|geqslant 2|xcos x|geqslant 2xcos x$. As equality is not possible ($x^2=1$ and $|cos x|=1$ cannot simultaneously be true), the inequality is strict.
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
$endgroup$
add a comment |
$begingroup$
Well, there is also AM-GM : $x^2+1geqslant 2|x|geqslant 2|xcos x|geqslant 2xcos x$. As equality is not possible ($x^2=1$ and $|cos x|=1$ cannot simultaneously be true), the inequality is strict.
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
$endgroup$
add a comment |
$begingroup$
Well, there is also AM-GM : $x^2+1geqslant 2|x|geqslant 2|xcos x|geqslant 2xcos x$. As equality is not possible ($x^2=1$ and $|cos x|=1$ cannot simultaneously be true), the inequality is strict.
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
$endgroup$
Well, there is also AM-GM : $x^2+1geqslant 2|x|geqslant 2|xcos x|geqslant 2xcos x$. As equality is not possible ($x^2=1$ and $|cos x|=1$ cannot simultaneously be true), the inequality is strict.
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
answered Apr 1 at 14:05
MacavityMacavity
35.7k52554
35.7k52554
add a comment |
add a comment |
