How do I integrate sin³x/cos²x?
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Homework Helper
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Using [itex]1+tan^2x=sec^2x[/itex]
[tex]\int{(sec^2x-1)(sinx)dx}[/tex]
[tex]=\int{tanxsecx-sinx}dx[/tex]
I get stuck here with the tanxsecx part...
with [itex]cos^2x=1-sin^2x[/itex]
[tex]\int{\frac{sin^3x}{1-sin^2x}dx}[/tex]
[tex]\int{\frac{-sinx(1-sin^2x)+sinx}{1-sin^2x}dx}[/tex]
[tex]\int{-sinx+\frac{sinx}{1-sin^2x}dx}[/tex]
I'm just heading in the same direction as before... I must be using these identities in the wrong way. Any other hints?
[tex]\int{(sec^2x-1)(sinx)dx}[/tex]
[tex]=\int{tanxsecx-sinx}dx[/tex]
I get stuck here with the tanxsecx part...
with [itex]cos^2x=1-sin^2x[/itex]
[tex]\int{\frac{sin^3x}{1-sin^2x}dx}[/tex]
[tex]\int{\frac{-sinx(1-sin^2x)+sinx}{1-sin^2x}dx}[/tex]
[tex]\int{-sinx+\frac{sinx}{1-sin^2x}dx}[/tex]
I'm just heading in the same direction as before... I must be using these identities in the wrong way. Any other hints?
Дьявол
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Ok, you are heading to the right direction:
[tex]\int{-sinx+\frac{sinx}{1-sin^2x}dx}=[/tex]
[tex]=\int{-sinxdx}+\int{\frac{sinx}{1-sin^2x}dx}=[/tex]
[tex]=cosx+\int{\frac{sinx}{cos^2x}dx}[/tex]
I. Use the substitution method.
[itex]t=cosx[/itex], so that
[tex]dt=-sinx[/tex]
or
use the method integration by parts to solve the remaining integral:
[tex]\int u\, dv=uv-\int v\, du.\![/tex]
[tex]u=sinx , dv=\frac{1}{cos^2x}dx[/tex]Good luck.
[tex]\int{-sinx+\frac{sinx}{1-sin^2x}dx}=[/tex]
[tex]=\int{-sinxdx}+\int{\frac{sinx}{1-sin^2x}dx}=[/tex]
[tex]=cosx+\int{\frac{sinx}{cos^2x}dx}[/tex]
I. Use the substitution method.
[itex]t=cosx[/itex], so that
[tex]dt=-sinx[/tex]
or
use the method integration by parts to solve the remaining integral:
[tex]\int u\, dv=uv-\int v\, du.\![/tex]
[tex]u=sinx , dv=\frac{1}{cos^2x}dx[/tex]Good luck.
Last edited:
Homework Helper
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Mentallic said:Using [itex]1+tan^2x=sec^2x[/itex]
[tex]\int{(sec^2x-1)(sinx)dx}[/tex]
[tex]=\int{tanxsecx-sinx}dx[/tex]
I get stuck here with the tanxsecx part...
This is correct, the rest is overly complicated and only makes things harder. If you knew your trig derivatives by heart you would instantly recognize the primitive.
[tex]\tan x \sec x=\frac{\sin x}{\cos^2 x}[/tex]
You know that the derivative of the cosine is the negative sine. This makes it clear you want to make a substitution involving cos.
Mentallic said:with [itex]cos^2x=1-sin^2x[/itex]
[tex]\int{\frac{sin^3x}{1-sin^2x}dx}[/tex]
[tex]\int{\frac{-sinx(1-sin^2x)+sinx}{1-sin^2x}dx}[/tex]
[tex]\int{-sinx+\frac{sinx}{1-sin^2x}dx}[/tex]
I'm just heading in the same direction as before... I must be using these identities in the wrong way. Any other hints?
That is a very poor identity to use since you complicate the denominator this way. I told you [itex]\sin^2x=1-\cos^2x[/itex] would be easier, because then you would get that term in the numerator which makes things easy to split.
Homework Helper
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Yep that's it. Secondly I would advice you to also memorize the derivatives of the sec, csc and cot functions. It will make spotting primitives a lot easier. For example:
[tex] \frac{d \sec x}{dx}=\sec x \tan x[/tex]
This would have allowed you to solve your integral almost instantly.
[tex] \frac{d \sec x}{dx}=\sec x \tan x[/tex]
This would have allowed you to solve your integral almost instantly.
Homework Helper
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Cyosis said:[tex] \frac{d \sec x}{dx}=\sec x \tan x[/tex]
This would have allowed you to solve your integral almost instantly.
Oh yeah
Homework Helper
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Experience is certainly a great asset when it comes to finding primitives. To solve the more common integrals you should be proficient in:
Knowing basic derivatives
Partial fractions
Completing the square
Trigonometric substitutions
Hyperbolic substitutions
Knowing these together with the basic integral theorems, such as integration by parts, will allow you to handle all the integrals they will throw at you during an exam.
Knowing basic derivatives
Partial fractions
Completing the square
Trigonometric substitutions
Hyperbolic substitutions
Knowing these together with the basic integral theorems, such as integration by parts, will allow you to handle all the integrals they will throw at you during an exam.
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