inverse trig (1 Viewer)

kractus · May 7, 2023

Screen Shot 2023-05-07 at 7.11.28 pm.png

how do u know which triangle to construct?

Masaken · May 7, 2023

the inverse bit in the bracket. when you let the bit in the bracket equal to a variable. let's say a = arcsin(3/4), rearrange that to get sina = 3/4. you make a triangle based off of that, and when you combine everything together it becomes tan 2a. that's just double angle = 2tan(a)/(1-tan^2(a)), and since it just requires you to know the value of tan(a) to reach the answer, you can deduce that from the triangle you drew out with sina = 3/4

ExtremelyBoredUser · May 7, 2023

kractus said:
View attachment 38357
how do u know which triangle to construct?

tan(2A) = 2tan(A)/1-tan^2(A)

sin(A) = 3/4
make a triangle with opp = 3, hyp = 4 and find tan(A)

sub tan(A)

done

kractus · May 7, 2023

Masaken said:
the inverse bit in the bracket. when you let the bit in the bracket equal to a variable. let's say a = arcsin(3/4), rearrange that to get sina = 3/4. you make a triangle based off of that, and when you combine everything together it becomes tan 2a. that's just double angle = 2tan(a)/(1-tan^2(a)), and since it just requires you to know the value of tan(a) to reach the answer, you can deduce that from the triangle you drew out with sina = 3/4

ye thx but when u get the triangle for sina = 3/4 it can be either Q1 or Q2 triangle.
i assume since arcsin only outputs from -pi/2 to pi/2 that it has to be a Q1 triangle right

kractus · May 7, 2023

Screen Shot 2023-05-07 at 9.33.47 pm.png

Also idk how to do these, like i can only prove it if i do like tan both sides but idk if that's legal or not

Average Boreduser · May 7, 2023

kractus said:
ye thx but when u get the triangle for sina = 3/4 it can be either Q1 or Q2 triangle.
i assume since arcsin only outputs from -pi/2 to pi/2 that it has to be a Q1 triangle right

alpha is between -pi/2 to pi/2, and sinA is positive so Q1

Average Boreduser · May 7, 2023

kractus said:
View attachment 38362
Also idk how to do these, like i can only prove it if i do like tan both sides but idk if that's legal or not

just let some of the values on one side be a variable like alpha, beta, etc.

synthesisFR · May 7, 2023

kractus said:
View attachment 38362
Also idk how to do these, like i can only prove it if i do like tan both sides but idk if that's legal or not

u can do that or convert ratios

unofficiallyred12 · May 7, 2023

kractus said:
View attachment 38357
how do u know which triangle to construct?

you don't actually need to construct a triangle although that's probably the most obvious method. You can also note tan2theta = +-sqrt(sec^22theta-1). since tan 2theta is in this case negative since 2arcsin3/4 is in the 2nd quad, tan2theta = -sqrt(sec^2(2theta)-1) = -sqrt(1/cos^2(2theta) -1 )) = -sqrt(1/(1-2sin^2theta)^2 -1) = - sqrt63

=)(= · May 7, 2023

That maths in focus screen shot has tainted this entire forum, that is illegal contraband by virtue of it being made by Margret Grove, it has been scientifically proven that people who use maths in focus are guaranteed to have trust in later life after being physically assaulted by the difficulty of the hsc

nsw..wollongong · May 7, 2023

=)(= said:
That maths in focus screen shot has tainted this entire forum, that is illegal contraband by virtue of it being made by Margret Grove, it has been scientifically proven that people who use maths in focus are guaranteed to have trust in later life after being physically assaulted by the difficulty of the hsc

Cambridge textbook >>>

kractus · May 7, 2023

temporarylol said:
View attachment 38363

Here's the conditions for it to be "legal"

Ya ik that but I've always been told to never touch both sides in a proof question

kractus · May 7, 2023

synthesisFR said:
u can do that or convert ratios

Thank u

=)(= · May 7, 2023

temporarylol said:
There's nothing wrong with math in focus... it's a great textbook for explaining the basics of a concept unlike Cambridge/NSM which overcomplicate things/go off on unnecessary random tangents

The issue with maths in focus is that its maths in focus

ExtremelyBoredUser · May 8, 2023

temporarylol said:
There's nothing wrong with math in focus... it's a great textbook for explaining the basics of a concept unlike Cambridge/NSM which overcomplicate things/go off on unnecessary random tangents

worst take ive ever seen

=)(= said:
The issue with maths in focus is that its maths in focus

factual.

5uckerberg · May 25, 2023

kractus said:
View attachment 38362
Also idk how to do these, like i can only prove it if i do like tan both sides but idk if that's legal or not

From what I know I believe you would have to prove these identities. Here we start, $\sin\left(\cos^{-1}\frac{3}{11}-\sin^{-1}\frac{3}{4}\right)=\frac{19}{44}$ . Here $\sin(\cos^{-1}\frac{3}{11})\cos(\sin^{-1}\frac{3}{4})-\cos(\cos^{-1}\frac{3}{11})\sin(\sin^{-1}\frac{3}{4})$ . Simplifying we will have $\frac{\sqrt{112}}{11}\times{\frac{\sqrt{7}}{4}}-\frac{3}{11}\times{\frac{3}{4}}.$ This gives us $\frac{\sqrt{784}}{44}-\frac{9}{44}=\frac{28}{44}-\frac{9}{44}=\frac{19}{44}$ .

kractus said:
View attachment 38362
Also idk how to do these, like i can only prove it if i do like tan both sides but idk if that's legal or not

inverse trig (1 Viewer)

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