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Differentiating Trig Functions (1 Viewer)

Menomaths

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Hello, I am stuck on these questions;
Differentiate
1. (sinx - cosx)^2
2. tan (pi - x)
3. tanx(degrees)
 
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1. Use the chain rule. For example, how do you differentiate (5x^4-2x)^2?

2. Again, use the chain rule. Differentiate the outside function, and then the inside function.

3. Convert x degrees to something radians. Then differentiate using the chain rule again.
 

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1. Use the chain rule. Bring the power down, subtract 1 from the power. Differentiate what's inside the brackets, and multiply the whole equation by it.
y = (sinx)^3
y' = 3(sinx)^2(cosx)
= 3sin^2xcosx

2. If you have y = tan(2x), then dy/dx would be 2sec^2(2x). Differentiate what's inside the brackets, bring it out to the front.
so y = tan(pi - x). Differentiate what's inside the brackets, you get -1. Place -1 at the front.
y' = -sec^2(pi - x)

3. Convert degrees to radians. and follow the steps in no. 2. If it was 90 degrees, that would be pi/2.
y = tan(pi/2 x)
y' = pi/2sec^2(pi/2 x)
 
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Menomaths

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1. Use the chain rule. For example, how do you differentiate (5x^4-2x)^2?

2. Again, use the chain rule. Differentiate the outside function, and then the inside function.

3. Convert x degrees to something radians. Then differentiate using the chain rule again.
I know I have to use chain rule for all of them, but my answers are wrong.
 

Menomaths

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1. Use the chain rule. Bring the power down, subtract 1 from the power. Differentiate what's inside the brackets, and multiply the whole equation by it.
y = (sinx)^3
y' = 3(sinx)^2(cosx)
= 3sin^2xcosx

2. If you have y = tan(2x), then dy/dx would be 2sec^2(2x). Differentiate what's inside the brackets, bring it out to the front.
so y = tan(pi - x). Differentiate what's inside the brackets, you get -1. Place -1 at the front.
y' = -sec^2(pi - x)

3. Convert degrees to radians. and follow the steps in no. 2. If it was 90 degrees, that would be pi/2.
y = tan(pi/2 x)
y' = pi/2sec^2(pi/2 x)
The answers are, for
1. 2(sinx-cosx)(sinx+cosx)
2.-sec^2x (possible misprint)
3.(pi/180) sec^2 x(degrees)
 
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bedpotato

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All of your answers are wrong, except for 2 I think because even I got what you're getting so it could be a misprint in the book
The answers are, for
1. 2(sinx-cosx)(sinx+cosx)
2.-sec^2x (possible misprint)
3.(pi/180) sec^2 x(degrees)

For 1 and 3, I wasn't giving you the answers, just examples.
 
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No, the answers are correct (ithink).

1. (sinx - cosx)^2
2. tan (pi - x)
3. tanx(degrees)








 
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bedpotato

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Yeah but it takes longer to differentiate, because you have to use both the chain rule and product rule. Using the chain rule without expanding is faster.
 

Squar3root

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Answers:
1) 2(sinx -cosx)(sinx + cosx) = -2cos(2x) simple chain rule, if you cant do that, let u= sinx -cosx and go from there and then expand brackets and clean up and simplify

2) tan(pi -x) = -tanx (using ASTC) therefore dy/dx = -(secx)^2

3) tan(xdegrees) = tan(pi*x/180) therfore dy/dx = (pi/180)*[sec(pi*x/180)^2]
 

Menomaths

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No, the answers are correct (ithink).

1. (sinx - cosx)^2
2. tan (pi - x)
3. tanx(degrees)








I understand cos(pi-x) = -cosx but how does that make -(sec(pi-x))^2 = -(-sec(x))^2
 
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Since Assuming that neither denominator is 0. Then you consider and substitute this into the bracket.
 

Menomaths

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I have another question and I don't want to spam threads so I'll just ask my question here, The region under the curve y=tan x between x=pi/6 and x=pi/3 is rotated about the x-axis. What is the volume of the solid of revolution. Use the face that tan^2 x = sec^2 x-1. Attempted it a few times but keep on getting the same wrong answer :(.
 

HeroicPandas

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I have another question and I don't want to spam threads so I'll just ask my question here, The region under the curve y=tan x between x=pi/6 and x=pi/3 is rotated about the x-axis. What is the volume of the solid of revolution. Use the face that tan^2 x = sec^2 x-1. Attempted it a few times but keep on getting the same wrong answer :(.
 

Menomaths

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Another Question :( How can I integrate ʃ√(1-cos²x)
 

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