How to calculate $int frac{x^3}{sqrt{9-x^2}}$
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According to my textbook this is : $frac{sqrt{9-x^2}^3}{3} -9 sqrt{9-x^2}$. However my solution is completely different. Here's my work:
$ x = 3sin theta, dx = 3 costheta dtheta$
$$int frac{27cos^3 theta}{sqrt{9-9sin^2theta}} = int frac{27cos^3theta}{3cos^2theta} = 9intcos^2 theta$$
$$9left(int frac{1}{2} dtheta+ int cos 2thetaright) = 9left(frac{1}{2}theta + frac{sin 2theta}{2}right)$$
Solving for $theta$ yields:
$$frac{9}{2}arcsinleft(frac{x}{3}right) + frac{9}{4}sinleft(2arcsinleft(frac{x}{3}right)right)$$
What's wrong with my solution?
calculus integration trigonometry indefinite-integrals radicals
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
asked Feb 2 '18 at 19:03
TreyTrey
309113
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add a comment |
$begingroup$
According to my textbook this is : $frac{sqrt{9-x^2}^3}{3} -9 sqrt{9-x^2}$. However my solution is completely different. Here's my work:
$ x = 3sin theta, dx = 3 costheta dtheta$
$$int frac{27cos^3 theta}{sqrt{9-9sin^2theta}} = int frac{27cos^3theta}{3cos^2theta} = 9intcos^2 theta$$
$$9left(int frac{1}{2} dtheta+ int cos 2thetaright) = 9left(frac{1}{2}theta + frac{sin 2theta}{2}right)$$
Solving for $theta$ yields:
$$frac{9}{2}arcsinleft(frac{x}{3}right) + frac{9}{4}sinleft(2arcsinleft(frac{x}{3}right)right)$$
What's wrong with my solution?
calculus integration trigonometry indefinite-integrals radicals
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
asked Feb 2 '18 at 19:03
TreyTrey
309113
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where is your $mathrm dtheta$
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– ThePortakal
Feb 2 '18 at 19:10
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Shouldn't your integral be$$int dtheta,frac {81sin^3thetacostheta}{sqrt{9-9sin^2theta}}$$
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– Crescendo
Feb 2 '18 at 19:10
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@Crescendo Indeed, I forgot to put the $dtheta$
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– Trey
Feb 2 '18 at 19:13
add a comment |
$begingroup$
According to my textbook this is : $frac{sqrt{9-x^2}^3}{3} -9 sqrt{9-x^2}$. However my solution is completely different. Here's my work:
$ x = 3sin theta, dx = 3 costheta dtheta$
$$int frac{27cos^3 theta}{sqrt{9-9sin^2theta}} = int frac{27cos^3theta}{3cos^2theta} = 9intcos^2 theta$$
$$9left(int frac{1}{2} dtheta+ int cos 2thetaright) = 9left(frac{1}{2}theta + frac{sin 2theta}{2}right)$$
Solving for $theta$ yields:
$$frac{9}{2}arcsinleft(frac{x}{3}right) + frac{9}{4}sinleft(2arcsinleft(frac{x}{3}right)right)$$
What's wrong with my solution?
calculus integration trigonometry indefinite-integrals radicals
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
asked Feb 2 '18 at 19:03
TreyTrey
309113
$endgroup$
According to my textbook this is : $frac{sqrt{9-x^2}^3}{3} -9 sqrt{9-x^2}$. However my solution is completely different. Here's my work:
$ x = 3sin theta, dx = 3 costheta dtheta$
$$int frac{27cos^3 theta}{sqrt{9-9sin^2theta}} = int frac{27cos^3theta}{3cos^2theta} = 9intcos^2 theta$$
$$9left(int frac{1}{2} dtheta+ int cos 2thetaright) = 9left(frac{1}{2}theta + frac{sin 2theta}{2}right)$$
Solving for $theta$ yields:
$$frac{9}{2}arcsinleft(frac{x}{3}right) + frac{9}{4}sinleft(2arcsinleft(frac{x}{3}right)right)$$
What's wrong with my solution?
calculus integration trigonometry indefinite-integrals radicals
calculus integration trigonometry indefinite-integrals radicals
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
asked Feb 2 '18 at 19:03
TreyTrey
309113
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
asked Feb 2 '18 at 19:03
TreyTrey
309113
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
edited Feb 2 '18 at 19:47
Michael Rozenberg
102k1791195
102k1791195
asked Feb 2 '18 at 19:03
TreyTrey
309113
asked Feb 2 '18 at 19:03
TreyTrey
309113
asked Feb 2 '18 at 19:03
TreyTrey
309113
309113
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where is your $mathrm dtheta$
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– ThePortakal
Feb 2 '18 at 19:10
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Shouldn't your integral be$$int dtheta,frac {81sin^3thetacostheta}{sqrt{9-9sin^2theta}}$$
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– Crescendo
Feb 2 '18 at 19:10
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@Crescendo Indeed, I forgot to put the $dtheta$
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– Trey
Feb 2 '18 at 19:13
add a comment |
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where is your $mathrm dtheta$
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– ThePortakal
Feb 2 '18 at 19:10
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Shouldn't your integral be$$int dtheta,frac {81sin^3thetacostheta}{sqrt{9-9sin^2theta}}$$
$endgroup$
– Crescendo
Feb 2 '18 at 19:10
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@Crescendo Indeed, I forgot to put the $dtheta$
$endgroup$
– Trey
Feb 2 '18 at 19:13
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where is your $mathrm dtheta$
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– ThePortakal
Feb 2 '18 at 19:10
$begingroup$
where is your $mathrm dtheta$
$endgroup$
– ThePortakal
Feb 2 '18 at 19:10
$begingroup$
Shouldn't your integral be$$int dtheta,frac {81sin^3thetacostheta}{sqrt{9-9sin^2theta}}$$
$endgroup$
– Crescendo
Feb 2 '18 at 19:10
$begingroup$
Shouldn't your integral be$$int dtheta,frac {81sin^3thetacostheta}{sqrt{9-9sin^2theta}}$$
$endgroup$
– Crescendo
Feb 2 '18 at 19:10
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@Crescendo Indeed, I forgot to put the $dtheta$
$endgroup$
– Trey
Feb 2 '18 at 19:13
$begingroup$
@Crescendo Indeed, I forgot to put the $dtheta$
$endgroup$
– Trey
Feb 2 '18 at 19:13
add a comment |
9 Answers
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votes
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You have two mistakes here.
$x = 3 sin theta$ I like that
$intfrac {x^3}{sqrt {9-x^2}} dx = int frac {27sin^3 theta}{sqrt {9-9sin^2theta}} (3cos theta) dtheta$
Your first mistake is at this step. Do you see where you went wrong?
next: $sqrt {9-9sin^2theta} = 3cos theta$ not $3cos^2 theta$
$int 27sin^3 theta dtheta$
Can you get home from here? If you are stuck try: $sin^2 theta = 1-cos^2theta$
Update:
"I still can't see how $27(-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3})$ is equivalent to the solution given in the textbook."
$sin (arcsin frac {x}{3}) = frac {x}{3}\
sin^2 (arcsin frac {x}{3}) = frac {x^2}{9}\
1-sin^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos (arcsin frac {x}{3}) = sqrt {1-frac {x^2}{9}}\
cos (arcsin frac {x}{3}) = frac {sqrt {9-x^2}}{3}\$
This can also be done geometrically, and I suggest you prove it this way (an exercise left to the reader).
$27(-cos(arcsin(frac{x}{3}) + frac{cos^3(arcsin(frac{x}{3}))}{3})\
27(-sqrt {1 - frac{x^2}{9}} + frac{left(sqrt {1-frac {x^2}{9}}right)^3}{3})\
-9sqrt {9 - x^2} + frac{left(sqrt {9- x^2}right)^3}{3}
$
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
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I still can't see how $-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3}$ is equivalent to the solution given in the textbook
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– Trey
Feb 2 '18 at 19:39
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@Trey does this help?
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– Doug M
Feb 2 '18 at 19:51
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Yes, thank you!
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– Trey
Feb 2 '18 at 19:55
add a comment |
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$$intfrac{x^3-9x+9x}{sqrt{9-x^2}}dx=-int xsqrt{9-x^2}dx+9intfrac{x}{sqrt{9-x^2}}dx=$$
$$=frac{1}{3}sqrt{(9-x^2)^3}-9sqrt{9-x^2}+C.$$
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
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$$= sqrt{9 - x^2}bigg(frac 13left(9 - x^2right) - 9bigg) + C = -sqrt{9 - x^2}bigg(6 + frac{x^2}{3}bigg) + C$$ I think.
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– user477343
Feb 4 '18 at 3:52
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Yes, it's possible.
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– Michael Rozenberg
Feb 4 '18 at 5:13
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Let $u = 9-x^2$, $dx=frac{du}{-2x}$
$$int frac{x^3}{sqrt{9-x^2}}dx=-1/2int frac{9-u}{sqrt{u}}du=-1/2[9(2)u^{1/2}-(2/3)u^{3/2}]\=-9(9-x^2)^{1/2}+1/3(9-x^2)^{1/3}$$
answered Feb 2 '18 at 19:13
id500id500
325111
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Great answer. I don't understand why people are so stoked about trig substitutions and use for really basic integrals. Trig substitutions are such a mess, agh !
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– user8277998
Feb 2 '18 at 20:01
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With your substitution we have:
$$
int frac{x^3}{sqrt{9-x^2}}dx=int frac{81sin^3 theta cos theta}{sqrt{9-9sin^2theta}}d theta
$$
that cannot be simplified as in OP.
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
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Can't I rewrite the denominator as $sqrt{9(1-sin^2theta)}$ which in turn gives ${3costheta}$?
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– Trey
Feb 2 '18 at 19:18
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Yes we can, and the integral can be simplified, but with a different result than in your question .
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– Emilio Novati
Feb 2 '18 at 19:24
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After doing your substitution, the numerator should become $81sin^3thetacostheta.$
Anyway, my suggestion is that you do $x^2=y$ and $2x,mathrm dx=mathrm dy$.
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
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substituting $$u=x^2$$ then we have $$du=2xdx$$ and our integral will be
$$frac{1}{2}intfrac{u}{sqrt{9-u}}du$$ no let $$s=9-u$$ and with $$ds=-du$$our integral is $$-frac{1}{2}intleft(frac{9}{sqrt{s}}-sqrt{s}right)ds$$
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
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$$I=int frac{x^3}{sqrt{9-x^2}}dx$$
Substitute $u=9-x^2$ then $du=-2xdx$
$$I=int frac{x^3}{sqrt{9-x^2}}dx=-frac12int frac {9-u}{sqrt u}du$$
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
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Plenty of good answers, but as the expression goes 'There's more than one way to skin a Cat' so I will provide another.
$$int frac{x^3}{sqrt{9-x^2}}:dx = int x^2 cdot frac{x}{sqrt{9-x^2}}:dx $$
Employ integration by parts:
$$int u(x)v'(x) = u(x)v(x) - int v(x)u'(x)$$
begin{align}
u(x) &= x^2 & v'(x) &= frac{x}{sqrt{9 - x^2}} \
u'(x) &= 2x & v(x) &= -sqrt{9 - x^2}
end{align}
Thus
begin{align}
int frac{x^3}{sqrt{9-x^2}}:dx &= x^2 cdot -sqrt{9 - x^2} - int -sqrt{9 - x^2} cdot 2x :dx \
&= -x^2sqrt{9 - x^2} + 2 int xsqrt{9 - x^2}:dx \
& = -x^2sqrt{9 - x^2} + 2 cdot -frac{1}{3}left(9 - x^2right)^{frac{3}{2}} + C \
&= -x^2sqrt{9 - x^2}- frac{2}{3}left(9 - x^2right)^{frac{3}{2}} + C
end{align}
Where $C$ is a constant of integration
answered Dec 8 '18 at 7:03
DavidGDavidG
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Why not one more method?
begin{align}
int frac{x^3}{sqrt{9 - x^2}}:dx &= int x cdot frac{x^2}{sqrt{9 - x^2}}:dx = - int x cdot frac{-x^2}{sqrt{9 - x^2}}:dx \
&=- int x cdot frac{-x^2 - 9 + 9}{sqrt{9 - x^2}}:dx = -int x cdot left[ frac{9 - x^2}{sqrt{9 -x^2}} - frac{9}{sqrt{9 - x^2}} right]:dx\
&= -int xsqrt{9 = x^2}:dx + int frac{9x}{sqrt{9 - x^2}}:dx \
&= frac{1}{3}left(9 - x^2right)^{frac{3}{2}} - 9sqrt{9 - x^2} + C
end{align}
Where $C$ is a constant of integration.
answered Dec 8 '18 at 8:51
DavidGDavidG
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9 Answers
9
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9 Answers
9
active
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active
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You have two mistakes here.
$x = 3 sin theta$ I like that
$intfrac {x^3}{sqrt {9-x^2}} dx = int frac {27sin^3 theta}{sqrt {9-9sin^2theta}} (3cos theta) dtheta$
Your first mistake is at this step. Do you see where you went wrong?
next: $sqrt {9-9sin^2theta} = 3cos theta$ not $3cos^2 theta$
$int 27sin^3 theta dtheta$
Can you get home from here? If you are stuck try: $sin^2 theta = 1-cos^2theta$
Update:
"I still can't see how $27(-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3})$ is equivalent to the solution given in the textbook."
$sin (arcsin frac {x}{3}) = frac {x}{3}\
sin^2 (arcsin frac {x}{3}) = frac {x^2}{9}\
1-sin^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos (arcsin frac {x}{3}) = sqrt {1-frac {x^2}{9}}\
cos (arcsin frac {x}{3}) = frac {sqrt {9-x^2}}{3}\$
This can also be done geometrically, and I suggest you prove it this way (an exercise left to the reader).
$27(-cos(arcsin(frac{x}{3}) + frac{cos^3(arcsin(frac{x}{3}))}{3})\
27(-sqrt {1 - frac{x^2}{9}} + frac{left(sqrt {1-frac {x^2}{9}}right)^3}{3})\
-9sqrt {9 - x^2} + frac{left(sqrt {9- x^2}right)^3}{3}
$
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
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I still can't see how $-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3}$ is equivalent to the solution given in the textbook
$endgroup$
– Trey
Feb 2 '18 at 19:39
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@Trey does this help?
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– Doug M
Feb 2 '18 at 19:51
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Yes, thank you!
$endgroup$
– Trey
Feb 2 '18 at 19:55
add a comment |
$begingroup$
You have two mistakes here.
$x = 3 sin theta$ I like that
$intfrac {x^3}{sqrt {9-x^2}} dx = int frac {27sin^3 theta}{sqrt {9-9sin^2theta}} (3cos theta) dtheta$
Your first mistake is at this step. Do you see where you went wrong?
next: $sqrt {9-9sin^2theta} = 3cos theta$ not $3cos^2 theta$
$int 27sin^3 theta dtheta$
Can you get home from here? If you are stuck try: $sin^2 theta = 1-cos^2theta$
Update:
"I still can't see how $27(-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3})$ is equivalent to the solution given in the textbook."
$sin (arcsin frac {x}{3}) = frac {x}{3}\
sin^2 (arcsin frac {x}{3}) = frac {x^2}{9}\
1-sin^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos (arcsin frac {x}{3}) = sqrt {1-frac {x^2}{9}}\
cos (arcsin frac {x}{3}) = frac {sqrt {9-x^2}}{3}\$
This can also be done geometrically, and I suggest you prove it this way (an exercise left to the reader).
$27(-cos(arcsin(frac{x}{3}) + frac{cos^3(arcsin(frac{x}{3}))}{3})\
27(-sqrt {1 - frac{x^2}{9}} + frac{left(sqrt {1-frac {x^2}{9}}right)^3}{3})\
-9sqrt {9 - x^2} + frac{left(sqrt {9- x^2}right)^3}{3}
$
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
$endgroup$
$begingroup$
I still can't see how $-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3}$ is equivalent to the solution given in the textbook
$endgroup$
– Trey
Feb 2 '18 at 19:39
$begingroup$
@Trey does this help?
$endgroup$
– Doug M
Feb 2 '18 at 19:51
$begingroup$
Yes, thank you!
$endgroup$
– Trey
Feb 2 '18 at 19:55
add a comment |
$begingroup$
You have two mistakes here.
$x = 3 sin theta$ I like that
$intfrac {x^3}{sqrt {9-x^2}} dx = int frac {27sin^3 theta}{sqrt {9-9sin^2theta}} (3cos theta) dtheta$
Your first mistake is at this step. Do you see where you went wrong?
next: $sqrt {9-9sin^2theta} = 3cos theta$ not $3cos^2 theta$
$int 27sin^3 theta dtheta$
Can you get home from here? If you are stuck try: $sin^2 theta = 1-cos^2theta$
Update:
"I still can't see how $27(-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3})$ is equivalent to the solution given in the textbook."
$sin (arcsin frac {x}{3}) = frac {x}{3}\
sin^2 (arcsin frac {x}{3}) = frac {x^2}{9}\
1-sin^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos (arcsin frac {x}{3}) = sqrt {1-frac {x^2}{9}}\
cos (arcsin frac {x}{3}) = frac {sqrt {9-x^2}}{3}\$
This can also be done geometrically, and I suggest you prove it this way (an exercise left to the reader).
$27(-cos(arcsin(frac{x}{3}) + frac{cos^3(arcsin(frac{x}{3}))}{3})\
27(-sqrt {1 - frac{x^2}{9}} + frac{left(sqrt {1-frac {x^2}{9}}right)^3}{3})\
-9sqrt {9 - x^2} + frac{left(sqrt {9- x^2}right)^3}{3}
$
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
$endgroup$
You have two mistakes here.
$x = 3 sin theta$ I like that
$intfrac {x^3}{sqrt {9-x^2}} dx = int frac {27sin^3 theta}{sqrt {9-9sin^2theta}} (3cos theta) dtheta$
Your first mistake is at this step. Do you see where you went wrong?
next: $sqrt {9-9sin^2theta} = 3cos theta$ not $3cos^2 theta$
$int 27sin^3 theta dtheta$
Can you get home from here? If you are stuck try: $sin^2 theta = 1-cos^2theta$
Update:
"I still can't see how $27(-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3})$ is equivalent to the solution given in the textbook."
$sin (arcsin frac {x}{3}) = frac {x}{3}\
sin^2 (arcsin frac {x}{3}) = frac {x^2}{9}\
1-sin^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos^2 (arcsin frac {x}{3}) = 1-frac {x^2}{9}\
cos (arcsin frac {x}{3}) = sqrt {1-frac {x^2}{9}}\
cos (arcsin frac {x}{3}) = frac {sqrt {9-x^2}}{3}\$
This can also be done geometrically, and I suggest you prove it this way (an exercise left to the reader).
$27(-cos(arcsin(frac{x}{3}) + frac{cos^3(arcsin(frac{x}{3}))}{3})\
27(-sqrt {1 - frac{x^2}{9}} + frac{left(sqrt {1-frac {x^2}{9}}right)^3}{3})\
-9sqrt {9 - x^2} + frac{left(sqrt {9- x^2}right)^3}{3}
$
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
edited Feb 2 '18 at 19:51
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
answered Feb 2 '18 at 19:16
Doug MDoug M
44.9k31854
44.9k31854
$begingroup$
I still can't see how $-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3}$ is equivalent to the solution given in the textbook
$endgroup$
– Trey
Feb 2 '18 at 19:39
$begingroup$
@Trey does this help?
$endgroup$
– Doug M
Feb 2 '18 at 19:51
$begingroup$
Yes, thank you!
$endgroup$
– Trey
Feb 2 '18 at 19:55
add a comment |
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I still can't see how $-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3}$ is equivalent to the solution given in the textbook
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– Trey
Feb 2 '18 at 19:39
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@Trey does this help?
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– Doug M
Feb 2 '18 at 19:51
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Yes, thank you!
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– Trey
Feb 2 '18 at 19:55
$begingroup$
I still can't see how $-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3}$ is equivalent to the solution given in the textbook
$endgroup$
– Trey
Feb 2 '18 at 19:39
$begingroup$
I still can't see how $-cos(arcsin(frac{x}{3})) + frac{cos^3(arcsin(frac{x}{3}))}{3}$ is equivalent to the solution given in the textbook
$endgroup$
– Trey
Feb 2 '18 at 19:39
$begingroup$
@Trey does this help?
$endgroup$
– Doug M
Feb 2 '18 at 19:51
$begingroup$
@Trey does this help?
$endgroup$
– Doug M
Feb 2 '18 at 19:51
$begingroup$
Yes, thank you!
$endgroup$
– Trey
Feb 2 '18 at 19:55
$begingroup$
Yes, thank you!
$endgroup$
– Trey
Feb 2 '18 at 19:55
add a comment |
$begingroup$
$$intfrac{x^3-9x+9x}{sqrt{9-x^2}}dx=-int xsqrt{9-x^2}dx+9intfrac{x}{sqrt{9-x^2}}dx=$$
$$=frac{1}{3}sqrt{(9-x^2)^3}-9sqrt{9-x^2}+C.$$
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
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$begingroup$
$$= sqrt{9 - x^2}bigg(frac 13left(9 - x^2right) - 9bigg) + C = -sqrt{9 - x^2}bigg(6 + frac{x^2}{3}bigg) + C$$ I think.
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– user477343
Feb 4 '18 at 3:52
$begingroup$
Yes, it's possible.
$endgroup$
– Michael Rozenberg
Feb 4 '18 at 5:13
add a comment |
$begingroup$
$$intfrac{x^3-9x+9x}{sqrt{9-x^2}}dx=-int xsqrt{9-x^2}dx+9intfrac{x}{sqrt{9-x^2}}dx=$$
$$=frac{1}{3}sqrt{(9-x^2)^3}-9sqrt{9-x^2}+C.$$
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
$endgroup$
$begingroup$
$$= sqrt{9 - x^2}bigg(frac 13left(9 - x^2right) - 9bigg) + C = -sqrt{9 - x^2}bigg(6 + frac{x^2}{3}bigg) + C$$ I think.
$endgroup$
– user477343
Feb 4 '18 at 3:52
$begingroup$
Yes, it's possible.
$endgroup$
– Michael Rozenberg
Feb 4 '18 at 5:13
add a comment |
$begingroup$
$$intfrac{x^3-9x+9x}{sqrt{9-x^2}}dx=-int xsqrt{9-x^2}dx+9intfrac{x}{sqrt{9-x^2}}dx=$$
$$=frac{1}{3}sqrt{(9-x^2)^3}-9sqrt{9-x^2}+C.$$
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
$endgroup$
$$intfrac{x^3-9x+9x}{sqrt{9-x^2}}dx=-int xsqrt{9-x^2}dx+9intfrac{x}{sqrt{9-x^2}}dx=$$
$$=frac{1}{3}sqrt{(9-x^2)^3}-9sqrt{9-x^2}+C.$$
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
answered Feb 2 '18 at 19:45
Michael RozenbergMichael Rozenberg
102k1791195
102k1791195
$begingroup$
$$= sqrt{9 - x^2}bigg(frac 13left(9 - x^2right) - 9bigg) + C = -sqrt{9 - x^2}bigg(6 + frac{x^2}{3}bigg) + C$$ I think.
$endgroup$
– user477343
Feb 4 '18 at 3:52
$begingroup$
Yes, it's possible.
$endgroup$
– Michael Rozenberg
Feb 4 '18 at 5:13
add a comment |
$begingroup$
$$= sqrt{9 - x^2}bigg(frac 13left(9 - x^2right) - 9bigg) + C = -sqrt{9 - x^2}bigg(6 + frac{x^2}{3}bigg) + C$$ I think.
$endgroup$
– user477343
Feb 4 '18 at 3:52
$begingroup$
Yes, it's possible.
$endgroup$
– Michael Rozenberg
Feb 4 '18 at 5:13
$begingroup$
$$= sqrt{9 - x^2}bigg(frac 13left(9 - x^2right) - 9bigg) + C = -sqrt{9 - x^2}bigg(6 + frac{x^2}{3}bigg) + C$$ I think.
$endgroup$
– user477343
Feb 4 '18 at 3:52
$begingroup$
$$= sqrt{9 - x^2}bigg(frac 13left(9 - x^2right) - 9bigg) + C = -sqrt{9 - x^2}bigg(6 + frac{x^2}{3}bigg) + C$$ I think.
$endgroup$
– user477343
Feb 4 '18 at 3:52
$begingroup$
Yes, it's possible.
$endgroup$
– Michael Rozenberg
Feb 4 '18 at 5:13
$begingroup$
Yes, it's possible.
$endgroup$
– Michael Rozenberg
Feb 4 '18 at 5:13
add a comment |
$begingroup$
Let $u = 9-x^2$, $dx=frac{du}{-2x}$
$$int frac{x^3}{sqrt{9-x^2}}dx=-1/2int frac{9-u}{sqrt{u}}du=-1/2[9(2)u^{1/2}-(2/3)u^{3/2}]\=-9(9-x^2)^{1/2}+1/3(9-x^2)^{1/3}$$
answered Feb 2 '18 at 19:13
id500id500
325111
$endgroup$
$begingroup$
Great answer. I don't understand why people are so stoked about trig substitutions and use for really basic integrals. Trig substitutions are such a mess, agh !
$endgroup$
– user8277998
Feb 2 '18 at 20:01
add a comment |
$begingroup$
Let $u = 9-x^2$, $dx=frac{du}{-2x}$
$$int frac{x^3}{sqrt{9-x^2}}dx=-1/2int frac{9-u}{sqrt{u}}du=-1/2[9(2)u^{1/2}-(2/3)u^{3/2}]\=-9(9-x^2)^{1/2}+1/3(9-x^2)^{1/3}$$
answered Feb 2 '18 at 19:13
id500id500
325111
$endgroup$
$begingroup$
Great answer. I don't understand why people are so stoked about trig substitutions and use for really basic integrals. Trig substitutions are such a mess, agh !
$endgroup$
– user8277998
Feb 2 '18 at 20:01
add a comment |
$begingroup$
Let $u = 9-x^2$, $dx=frac{du}{-2x}$
$$int frac{x^3}{sqrt{9-x^2}}dx=-1/2int frac{9-u}{sqrt{u}}du=-1/2[9(2)u^{1/2}-(2/3)u^{3/2}]\=-9(9-x^2)^{1/2}+1/3(9-x^2)^{1/3}$$
answered Feb 2 '18 at 19:13
id500id500
325111
$endgroup$
Let $u = 9-x^2$, $dx=frac{du}{-2x}$
$$int frac{x^3}{sqrt{9-x^2}}dx=-1/2int frac{9-u}{sqrt{u}}du=-1/2[9(2)u^{1/2}-(2/3)u^{3/2}]\=-9(9-x^2)^{1/2}+1/3(9-x^2)^{1/3}$$
answered Feb 2 '18 at 19:13
id500id500
325111
answered Feb 2 '18 at 19:13
id500id500
325111
answered Feb 2 '18 at 19:13
id500id500
325111
answered Feb 2 '18 at 19:13
id500id500
325111
325111
$begingroup$
Great answer. I don't understand why people are so stoked about trig substitutions and use for really basic integrals. Trig substitutions are such a mess, agh !
$endgroup$
– user8277998
Feb 2 '18 at 20:01
add a comment |
$begingroup$
Great answer. I don't understand why people are so stoked about trig substitutions and use for really basic integrals. Trig substitutions are such a mess, agh !
$endgroup$
– user8277998
Feb 2 '18 at 20:01
$begingroup$
Great answer. I don't understand why people are so stoked about trig substitutions and use for really basic integrals. Trig substitutions are such a mess, agh !
$endgroup$
– user8277998
Feb 2 '18 at 20:01
$begingroup$
Great answer. I don't understand why people are so stoked about trig substitutions and use for really basic integrals. Trig substitutions are such a mess, agh !
$endgroup$
– user8277998
Feb 2 '18 at 20:01
add a comment |
$begingroup$
With your substitution we have:
$$
int frac{x^3}{sqrt{9-x^2}}dx=int frac{81sin^3 theta cos theta}{sqrt{9-9sin^2theta}}d theta
$$
that cannot be simplified as in OP.
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
$endgroup$
$begingroup$
Can't I rewrite the denominator as $sqrt{9(1-sin^2theta)}$ which in turn gives ${3costheta}$?
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– Trey
Feb 2 '18 at 19:18
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Yes we can, and the integral can be simplified, but with a different result than in your question .
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– Emilio Novati
Feb 2 '18 at 19:24
add a comment |
$begingroup$
With your substitution we have:
$$
int frac{x^3}{sqrt{9-x^2}}dx=int frac{81sin^3 theta cos theta}{sqrt{9-9sin^2theta}}d theta
$$
that cannot be simplified as in OP.
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
$endgroup$
$begingroup$
Can't I rewrite the denominator as $sqrt{9(1-sin^2theta)}$ which in turn gives ${3costheta}$?
$endgroup$
– Trey
Feb 2 '18 at 19:18
$begingroup$
Yes we can, and the integral can be simplified, but with a different result than in your question .
$endgroup$
– Emilio Novati
Feb 2 '18 at 19:24
add a comment |
$begingroup$
With your substitution we have:
$$
int frac{x^3}{sqrt{9-x^2}}dx=int frac{81sin^3 theta cos theta}{sqrt{9-9sin^2theta}}d theta
$$
that cannot be simplified as in OP.
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
$endgroup$
With your substitution we have:
$$
int frac{x^3}{sqrt{9-x^2}}dx=int frac{81sin^3 theta cos theta}{sqrt{9-9sin^2theta}}d theta
$$
that cannot be simplified as in OP.
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
edited Feb 2 '18 at 19:23
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
answered Feb 2 '18 at 19:10
Emilio NovatiEmilio Novati
52k43474
52k43474
$begingroup$
Can't I rewrite the denominator as $sqrt{9(1-sin^2theta)}$ which in turn gives ${3costheta}$?
$endgroup$
– Trey
Feb 2 '18 at 19:18
$begingroup$
Yes we can, and the integral can be simplified, but with a different result than in your question .
$endgroup$
– Emilio Novati
Feb 2 '18 at 19:24
add a comment |
$begingroup$
Can't I rewrite the denominator as $sqrt{9(1-sin^2theta)}$ which in turn gives ${3costheta}$?
$endgroup$
– Trey
Feb 2 '18 at 19:18
$begingroup$
Yes we can, and the integral can be simplified, but with a different result than in your question .
$endgroup$
– Emilio Novati
Feb 2 '18 at 19:24
$begingroup$
Can't I rewrite the denominator as $sqrt{9(1-sin^2theta)}$ which in turn gives ${3costheta}$?
$endgroup$
– Trey
Feb 2 '18 at 19:18
$begingroup$
Can't I rewrite the denominator as $sqrt{9(1-sin^2theta)}$ which in turn gives ${3costheta}$?
$endgroup$
– Trey
Feb 2 '18 at 19:18
$begingroup$
Yes we can, and the integral can be simplified, but with a different result than in your question .
$endgroup$
– Emilio Novati
Feb 2 '18 at 19:24
$begingroup$
Yes we can, and the integral can be simplified, but with a different result than in your question .
$endgroup$
– Emilio Novati
Feb 2 '18 at 19:24
add a comment |
$begingroup$
After doing your substitution, the numerator should become $81sin^3thetacostheta.$
Anyway, my suggestion is that you do $x^2=y$ and $2x,mathrm dx=mathrm dy$.
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
$endgroup$
add a comment |
$begingroup$
After doing your substitution, the numerator should become $81sin^3thetacostheta.$
Anyway, my suggestion is that you do $x^2=y$ and $2x,mathrm dx=mathrm dy$.
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
$endgroup$
add a comment |
$begingroup$
After doing your substitution, the numerator should become $81sin^3thetacostheta.$
Anyway, my suggestion is that you do $x^2=y$ and $2x,mathrm dx=mathrm dy$.
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
$endgroup$
After doing your substitution, the numerator should become $81sin^3thetacostheta.$
Anyway, my suggestion is that you do $x^2=y$ and $2x,mathrm dx=mathrm dy$.
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
answered Feb 2 '18 at 19:09
José Carlos SantosJosé Carlos Santos
160k22127232
160k22127232
add a comment |
add a comment |
$begingroup$
substituting $$u=x^2$$ then we have $$du=2xdx$$ and our integral will be
$$frac{1}{2}intfrac{u}{sqrt{9-u}}du$$ no let $$s=9-u$$ and with $$ds=-du$$our integral is $$-frac{1}{2}intleft(frac{9}{sqrt{s}}-sqrt{s}right)ds$$
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
$endgroup$
add a comment |
$begingroup$
substituting $$u=x^2$$ then we have $$du=2xdx$$ and our integral will be
$$frac{1}{2}intfrac{u}{sqrt{9-u}}du$$ no let $$s=9-u$$ and with $$ds=-du$$our integral is $$-frac{1}{2}intleft(frac{9}{sqrt{s}}-sqrt{s}right)ds$$
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
$endgroup$
add a comment |
$begingroup$
substituting $$u=x^2$$ then we have $$du=2xdx$$ and our integral will be
$$frac{1}{2}intfrac{u}{sqrt{9-u}}du$$ no let $$s=9-u$$ and with $$ds=-du$$our integral is $$-frac{1}{2}intleft(frac{9}{sqrt{s}}-sqrt{s}right)ds$$
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
$endgroup$
substituting $$u=x^2$$ then we have $$du=2xdx$$ and our integral will be
$$frac{1}{2}intfrac{u}{sqrt{9-u}}du$$ no let $$s=9-u$$ and with $$ds=-du$$our integral is $$-frac{1}{2}intleft(frac{9}{sqrt{s}}-sqrt{s}right)ds$$
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
answered Feb 2 '18 at 19:10
Dr. Sonnhard GraubnerDr. Sonnhard Graubner
75.1k42865
75.1k42865
add a comment |
add a comment |
$begingroup$
$$I=int frac{x^3}{sqrt{9-x^2}}dx$$
Substitute $u=9-x^2$ then $du=-2xdx$
$$I=int frac{x^3}{sqrt{9-x^2}}dx=-frac12int frac {9-u}{sqrt u}du$$
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
$endgroup$
add a comment |
$begingroup$
$$I=int frac{x^3}{sqrt{9-x^2}}dx$$
Substitute $u=9-x^2$ then $du=-2xdx$
$$I=int frac{x^3}{sqrt{9-x^2}}dx=-frac12int frac {9-u}{sqrt u}du$$
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
$endgroup$
add a comment |
$begingroup$
$$I=int frac{x^3}{sqrt{9-x^2}}dx$$
Substitute $u=9-x^2$ then $du=-2xdx$
$$I=int frac{x^3}{sqrt{9-x^2}}dx=-frac12int frac {9-u}{sqrt u}du$$
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
$endgroup$
$$I=int frac{x^3}{sqrt{9-x^2}}dx$$
Substitute $u=9-x^2$ then $du=-2xdx$
$$I=int frac{x^3}{sqrt{9-x^2}}dx=-frac12int frac {9-u}{sqrt u}du$$
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
answered Feb 2 '18 at 19:28
IshamIsham
12.7k3929
12.7k3929
add a comment |
add a comment |
$begingroup$
Plenty of good answers, but as the expression goes 'There's more than one way to skin a Cat' so I will provide another.
$$int frac{x^3}{sqrt{9-x^2}}:dx = int x^2 cdot frac{x}{sqrt{9-x^2}}:dx $$
Employ integration by parts:
$$int u(x)v'(x) = u(x)v(x) - int v(x)u'(x)$$
begin{align}
u(x) &= x^2 & v'(x) &= frac{x}{sqrt{9 - x^2}} \
u'(x) &= 2x & v(x) &= -sqrt{9 - x^2}
end{align}
Thus
begin{align}
int frac{x^3}{sqrt{9-x^2}}:dx &= x^2 cdot -sqrt{9 - x^2} - int -sqrt{9 - x^2} cdot 2x :dx \
&= -x^2sqrt{9 - x^2} + 2 int xsqrt{9 - x^2}:dx \
& = -x^2sqrt{9 - x^2} + 2 cdot -frac{1}{3}left(9 - x^2right)^{frac{3}{2}} + C \
&= -x^2sqrt{9 - x^2}- frac{2}{3}left(9 - x^2right)^{frac{3}{2}} + C
end{align}
Where $C$ is a constant of integration
answered Dec 8 '18 at 7:03
DavidGDavidG
2,0641723
$endgroup$
add a comment |
$begingroup$
Plenty of good answers, but as the expression goes 'There's more than one way to skin a Cat' so I will provide another.
$$int frac{x^3}{sqrt{9-x^2}}:dx = int x^2 cdot frac{x}{sqrt{9-x^2}}:dx $$
Employ integration by parts:
$$int u(x)v'(x) = u(x)v(x) - int v(x)u'(x)$$
begin{align}
u(x) &= x^2 & v'(x) &= frac{x}{sqrt{9 - x^2}} \
u'(x) &= 2x & v(x) &= -sqrt{9 - x^2}
end{align}
Thus
begin{align}
int frac{x^3}{sqrt{9-x^2}}:dx &= x^2 cdot -sqrt{9 - x^2} - int -sqrt{9 - x^2} cdot 2x :dx \
&= -x^2sqrt{9 - x^2} + 2 int xsqrt{9 - x^2}:dx \
& = -x^2sqrt{9 - x^2} + 2 cdot -frac{1}{3}left(9 - x^2right)^{frac{3}{2}} + C \
&= -x^2sqrt{9 - x^2}- frac{2}{3}left(9 - x^2right)^{frac{3}{2}} + C
end{align}
Where $C$ is a constant of integration
answered Dec 8 '18 at 7:03
DavidGDavidG
2,0641723
$endgroup$
add a comment |
$begingroup$
Plenty of good answers, but as the expression goes 'There's more than one way to skin a Cat' so I will provide another.
$$int frac{x^3}{sqrt{9-x^2}}:dx = int x^2 cdot frac{x}{sqrt{9-x^2}}:dx $$
Employ integration by parts:
$$int u(x)v'(x) = u(x)v(x) - int v(x)u'(x)$$
begin{align}
u(x) &= x^2 & v'(x) &= frac{x}{sqrt{9 - x^2}} \
u'(x) &= 2x & v(x) &= -sqrt{9 - x^2}
end{align}
Thus
begin{align}
int frac{x^3}{sqrt{9-x^2}}:dx &= x^2 cdot -sqrt{9 - x^2} - int -sqrt{9 - x^2} cdot 2x :dx \
&= -x^2sqrt{9 - x^2} + 2 int xsqrt{9 - x^2}:dx \
& = -x^2sqrt{9 - x^2} + 2 cdot -frac{1}{3}left(9 - x^2right)^{frac{3}{2}} + C \
&= -x^2sqrt{9 - x^2}- frac{2}{3}left(9 - x^2right)^{frac{3}{2}} + C
end{align}
Where $C$ is a constant of integration
answered Dec 8 '18 at 7:03
DavidGDavidG
2,0641723
$endgroup$
Plenty of good answers, but as the expression goes 'There's more than one way to skin a Cat' so I will provide another.
$$int frac{x^3}{sqrt{9-x^2}}:dx = int x^2 cdot frac{x}{sqrt{9-x^2}}:dx $$
Employ integration by parts:
$$int u(x)v'(x) = u(x)v(x) - int v(x)u'(x)$$
begin{align}
u(x) &= x^2 & v'(x) &= frac{x}{sqrt{9 - x^2}} \
u'(x) &= 2x & v(x) &= -sqrt{9 - x^2}
end{align}
Thus
begin{align}
int frac{x^3}{sqrt{9-x^2}}:dx &= x^2 cdot -sqrt{9 - x^2} - int -sqrt{9 - x^2} cdot 2x :dx \
&= -x^2sqrt{9 - x^2} + 2 int xsqrt{9 - x^2}:dx \
& = -x^2sqrt{9 - x^2} + 2 cdot -frac{1}{3}left(9 - x^2right)^{frac{3}{2}} + C \
&= -x^2sqrt{9 - x^2}- frac{2}{3}left(9 - x^2right)^{frac{3}{2}} + C
end{align}
Where $C$ is a constant of integration
answered Dec 8 '18 at 7:03
DavidGDavidG
2,0641723
answered Dec 8 '18 at 7:03
DavidGDavidG
2,0641723
answered Dec 8 '18 at 7:03
DavidGDavidG
2,0641723
answered Dec 8 '18 at 7:03
DavidGDavidG
2,0641723
2,0641723
add a comment |
add a comment |
$begingroup$
Why not one more method?
begin{align}
int frac{x^3}{sqrt{9 - x^2}}:dx &= int x cdot frac{x^2}{sqrt{9 - x^2}}:dx = - int x cdot frac{-x^2}{sqrt{9 - x^2}}:dx \
&=- int x cdot frac{-x^2 - 9 + 9}{sqrt{9 - x^2}}:dx = -int x cdot left[ frac{9 - x^2}{sqrt{9 -x^2}} - frac{9}{sqrt{9 - x^2}} right]:dx\
&= -int xsqrt{9 = x^2}:dx + int frac{9x}{sqrt{9 - x^2}}:dx \
&= frac{1}{3}left(9 - x^2right)^{frac{3}{2}} - 9sqrt{9 - x^2} + C
end{align}
Where $C$ is a constant of integration.
answered Dec 8 '18 at 8:51
DavidGDavidG
2,0641723
$endgroup$
add a comment |
$begingroup$
Why not one more method?
begin{align}
int frac{x^3}{sqrt{9 - x^2}}:dx &= int x cdot frac{x^2}{sqrt{9 - x^2}}:dx = - int x cdot frac{-x^2}{sqrt{9 - x^2}}:dx \
&=- int x cdot frac{-x^2 - 9 + 9}{sqrt{9 - x^2}}:dx = -int x cdot left[ frac{9 - x^2}{sqrt{9 -x^2}} - frac{9}{sqrt{9 - x^2}} right]:dx\
&= -int xsqrt{9 = x^2}:dx + int frac{9x}{sqrt{9 - x^2}}:dx \
&= frac{1}{3}left(9 - x^2right)^{frac{3}{2}} - 9sqrt{9 - x^2} + C
end{align}
Where $C$ is a constant of integration.
answered Dec 8 '18 at 8:51
DavidGDavidG
2,0641723
$endgroup$
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$begingroup$
Why not one more method?
begin{align}
int frac{x^3}{sqrt{9 - x^2}}:dx &= int x cdot frac{x^2}{sqrt{9 - x^2}}:dx = - int x cdot frac{-x^2}{sqrt{9 - x^2}}:dx \
&=- int x cdot frac{-x^2 - 9 + 9}{sqrt{9 - x^2}}:dx = -int x cdot left[ frac{9 - x^2}{sqrt{9 -x^2}} - frac{9}{sqrt{9 - x^2}} right]:dx\
&= -int xsqrt{9 = x^2}:dx + int frac{9x}{sqrt{9 - x^2}}:dx \
&= frac{1}{3}left(9 - x^2right)^{frac{3}{2}} - 9sqrt{9 - x^2} + C
end{align}
Where $C$ is a constant of integration.
answered Dec 8 '18 at 8:51
DavidGDavidG
2,0641723
$endgroup$
Why not one more method?
begin{align}
int frac{x^3}{sqrt{9 - x^2}}:dx &= int x cdot frac{x^2}{sqrt{9 - x^2}}:dx = - int x cdot frac{-x^2}{sqrt{9 - x^2}}:dx \
&=- int x cdot frac{-x^2 - 9 + 9}{sqrt{9 - x^2}}:dx = -int x cdot left[ frac{9 - x^2}{sqrt{9 -x^2}} - frac{9}{sqrt{9 - x^2}} right]:dx\
&= -int xsqrt{9 = x^2}:dx + int frac{9x}{sqrt{9 - x^2}}:dx \
&= frac{1}{3}left(9 - x^2right)^{frac{3}{2}} - 9sqrt{9 - x^2} + C
end{align}
Where $C$ is a constant of integration.
answered Dec 8 '18 at 8:51
DavidGDavidG
2,0641723
answered Dec 8 '18 at 8:51
DavidGDavidG
2,0641723
answered Dec 8 '18 at 8:51
DavidGDavidG
2,0641723
answered Dec 8 '18 at 8:51
DavidGDavidG
2,0641723
2,0641723
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$begingroup$
where is your $mathrm dtheta$
$endgroup$
– ThePortakal
Feb 2 '18 at 19:10
$begingroup$
Shouldn't your integral be$$int dtheta,frac {81sin^3thetacostheta}{sqrt{9-9sin^2theta}}$$
$endgroup$
– Crescendo
Feb 2 '18 at 19:10
$begingroup$
@Crescendo Indeed, I forgot to put the $dtheta$
$endgroup$
– Trey
Feb 2 '18 at 19:13