minimum value of $I(l)$ in definite integration
$begingroup$
If $displaystyle I(l)=int^{infty}_{0}frac{x^l}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx.$ for $0<l<5.$
Then value of $l$ for which $I(l)$ is minimum
What i tried
Put $displaystyle x=frac{1}{t}$ and $displaystyle dx=-frac{1}{t^2}dt$
$displaystyle I(l)=int^{infty}_{0}frac{t^{4-l}}{2t^6+4t^5+3t^4+5t^3+3t^2+4t+2}dt=int^{infty}_{0}frac{x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
$displaystyle 2I(l)=int^{infty}_{0}frac{x^l+x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
How do i solve it.Help me
Thanks in advance
definite-integrals
$endgroup$
add a comment |
$begingroup$
If $displaystyle I(l)=int^{infty}_{0}frac{x^l}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx.$ for $0<l<5.$
Then value of $l$ for which $I(l)$ is minimum
What i tried
Put $displaystyle x=frac{1}{t}$ and $displaystyle dx=-frac{1}{t^2}dt$
$displaystyle I(l)=int^{infty}_{0}frac{t^{4-l}}{2t^6+4t^5+3t^4+5t^3+3t^2+4t+2}dt=int^{infty}_{0}frac{x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
$displaystyle 2I(l)=int^{infty}_{0}frac{x^l+x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
How do i solve it.Help me
Thanks in advance
definite-integrals
$endgroup$
add a comment |
$begingroup$
If $displaystyle I(l)=int^{infty}_{0}frac{x^l}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx.$ for $0<l<5.$
Then value of $l$ for which $I(l)$ is minimum
What i tried
Put $displaystyle x=frac{1}{t}$ and $displaystyle dx=-frac{1}{t^2}dt$
$displaystyle I(l)=int^{infty}_{0}frac{t^{4-l}}{2t^6+4t^5+3t^4+5t^3+3t^2+4t+2}dt=int^{infty}_{0}frac{x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
$displaystyle 2I(l)=int^{infty}_{0}frac{x^l+x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
How do i solve it.Help me
Thanks in advance
definite-integrals
$endgroup$
If $displaystyle I(l)=int^{infty}_{0}frac{x^l}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx.$ for $0<l<5.$
Then value of $l$ for which $I(l)$ is minimum
What i tried
Put $displaystyle x=frac{1}{t}$ and $displaystyle dx=-frac{1}{t^2}dt$
$displaystyle I(l)=int^{infty}_{0}frac{t^{4-l}}{2t^6+4t^5+3t^4+5t^3+3t^2+4t+2}dt=int^{infty}_{0}frac{x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
$displaystyle 2I(l)=int^{infty}_{0}frac{x^l+x^{4-l}}{2x^6+4x^5+3x^4+5x^3+3x^2+4x+2}dx$
How do i solve it.Help me
Thanks in advance
definite-integrals
definite-integrals
asked Dec 28 '18 at 6:35
jackyjacky
1,213815
1,213815
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1 Answer
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$begingroup$
Denote $P(x)$ the polynomial of denominator, $$I'(l)=int_0^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx+int_1^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx-int_0^1frac{x^{4-l}ln x}{P(x)}dxtext{ (Sub $xmapsto 1/x$)}\
=int_0^1frac{(x^l-x^{4-l})ln x}{P(x)}dx$$
$x^l-x^{4-l}>0$ if $0<l<2$,
$x^l-x^{4-l}<0$ if $2<l<5$,
$x^l-x^{4-l}=0$ if $l=2$.
Notice $frac{ln x}{P(x)}<0$ if $0<x<1$, can you continue?
Can you prove it is valid to differentiate under the integral sign?
$endgroup$
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1 Answer
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1 Answer
1
active
oldest
votes
active
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$begingroup$
Denote $P(x)$ the polynomial of denominator, $$I'(l)=int_0^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx+int_1^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx-int_0^1frac{x^{4-l}ln x}{P(x)}dxtext{ (Sub $xmapsto 1/x$)}\
=int_0^1frac{(x^l-x^{4-l})ln x}{P(x)}dx$$
$x^l-x^{4-l}>0$ if $0<l<2$,
$x^l-x^{4-l}<0$ if $2<l<5$,
$x^l-x^{4-l}=0$ if $l=2$.
Notice $frac{ln x}{P(x)}<0$ if $0<x<1$, can you continue?
Can you prove it is valid to differentiate under the integral sign?
$endgroup$
add a comment |
$begingroup$
Denote $P(x)$ the polynomial of denominator, $$I'(l)=int_0^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx+int_1^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx-int_0^1frac{x^{4-l}ln x}{P(x)}dxtext{ (Sub $xmapsto 1/x$)}\
=int_0^1frac{(x^l-x^{4-l})ln x}{P(x)}dx$$
$x^l-x^{4-l}>0$ if $0<l<2$,
$x^l-x^{4-l}<0$ if $2<l<5$,
$x^l-x^{4-l}=0$ if $l=2$.
Notice $frac{ln x}{P(x)}<0$ if $0<x<1$, can you continue?
Can you prove it is valid to differentiate under the integral sign?
$endgroup$
add a comment |
$begingroup$
Denote $P(x)$ the polynomial of denominator, $$I'(l)=int_0^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx+int_1^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx-int_0^1frac{x^{4-l}ln x}{P(x)}dxtext{ (Sub $xmapsto 1/x$)}\
=int_0^1frac{(x^l-x^{4-l})ln x}{P(x)}dx$$
$x^l-x^{4-l}>0$ if $0<l<2$,
$x^l-x^{4-l}<0$ if $2<l<5$,
$x^l-x^{4-l}=0$ if $l=2$.
Notice $frac{ln x}{P(x)}<0$ if $0<x<1$, can you continue?
Can you prove it is valid to differentiate under the integral sign?
$endgroup$
Denote $P(x)$ the polynomial of denominator, $$I'(l)=int_0^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx+int_1^inftyfrac{x^lln x}{P(x)}dx\
=int_0^1frac{x^lln x}{P(x)}dx-int_0^1frac{x^{4-l}ln x}{P(x)}dxtext{ (Sub $xmapsto 1/x$)}\
=int_0^1frac{(x^l-x^{4-l})ln x}{P(x)}dx$$
$x^l-x^{4-l}>0$ if $0<l<2$,
$x^l-x^{4-l}<0$ if $2<l<5$,
$x^l-x^{4-l}=0$ if $l=2$.
Notice $frac{ln x}{P(x)}<0$ if $0<x<1$, can you continue?
Can you prove it is valid to differentiate under the integral sign?
answered Dec 28 '18 at 6:52
Kemono ChenKemono Chen
3,1991844
3,1991844
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