velox
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Anyone know of any famous inverse trig questions that come up time and time again? Post them in here 
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Famous Inverse Trig Questions (1 Viewer)
- Thread starter velox
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velox
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Yeh i just got it today. Ill have the fun task of doing them tomorrow.
velox
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How would you do this?
FinalFantasy
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sec( sin^(-1) (-1\3) )
let sin ^(-1) (-1\3) =@
sin @=1\3
cos @=root 8\3
sec@=3\root8
sec( sin^(-1) (-1\3) )=sec @=3\root 8
forgot put da 3 there
let sin ^(-1) (-1\3) =@
sin @=1\3
cos @=root 8\3
sec@=3\root8
sec( sin^(-1) (-1\3) )=sec @=3\root 8
forgot put da 3 there
Last edited:
velox
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yeh thats what i got, fitz got something equivalent but in a different form (3root2/4), just wondering how he did it. thanks anyway
FinalFantasy
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velox said:
3\root8=3\2root2 * root 2\root2=3root2\4
i just didn't bother simplifying
FinalFantasy
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sin (2cos ^ -1 ( cot (2tan ^ -1 x) ) ) = 0shafqat said:
let A=2tan^-1 x
tan^-1 x=A\2
tan (A\2)=x
cot A=1\tanA=(1-tan² (A\2))\2tan(A\2)=(1-x²)\2x
now sin(2cos^-1 (1-x²)\2x )=0
let 2cos^-1 (1-x²)\2x)=B
cos^-1 (1-x²)\2x=B\2
cos (B\2)=(1-x²)\2x
now sin B=0
2sin (B\2)cos (B\2)=0
[2sqrt (4x²-(1-x²)²)]\2x * (1-x²)\2x=0
(1-x²)sqrt(4x²-(1-x²)²) \ 2x²=0
(1-x²)sqrt(4x²-(1-2x²+x^4))\2x²=0
(1-x²)sqrt(6x²-x^4-1)\2x²=0
(1-x²)(6x²-x^4-1)=0
6x²-x^4-1-6x^4+x^6+x²=0
x^6-7x^4+7x²-1=0
den solve for x..
is dat right shafqat?
velox
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ah crap i should sleep, didnt realise he just rationalised.
velox
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What about this one?
velox
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nup........
velox
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yep. How did u get the 2 in there?
is it just there cos its the differential of whats in the brackets?
is it just there cos its the differential of whats in the brackets?
FinalFantasy
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d\dx (sin^-1 (2x\3))=2\3* 1\sqrt(1-(2x\3)²)
do some stuff den u get there
do some stuff den u get there
velox
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okies thanks
velox
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I have another one, im not too sure how they got the answer in cambridge
Find inverse function of y = (x-2)/(x+2) and show that f^-1(f(x)) = x and f(f^-1(x)) = x. I dont get how to do the last part. ( f^-1(f(x)) = x and f(f^-1(x)) = x)
Find inverse function of y = (x-2)/(x+2) and show that f^-1(f(x)) = x and f(f^-1(x)) = x. I dont get how to do the last part. ( f^-1(f(x)) = x and f(f^-1(x)) = x)
f(x) = (x - 2)/(x + 2) and f-1(x) = -2(x+1)/(x-1)
to find f-1(f(x)), for every x in f-1(x), you sub in f(x). ie.
f-1(f(x))
= -2(f(x) + 1)/(f(x) - 1)
= -2[(x - 2)/(x + 2) + 1]/[(x - 2)/(x + 2) - 1]
= -2[(x - 2 + x + 2)/(x+2)]/[(x - 2 - x - 2)/(x + 2)]
= -2[2x/(x+2)]/[-4/(x+2)]
= -2[2x/(x+2)]*[(x+2)/-4]
= 2x/2
= x
Same thing for f(f-1(x)), sub in f-1(x) wherever x is in f(x)
to find f-1(f(x)), for every x in f-1(x), you sub in f(x). ie.
f-1(f(x))
= -2(f(x) + 1)/(f(x) - 1)
= -2[(x - 2)/(x + 2) + 1]/[(x - 2)/(x + 2) - 1]
= -2[(x - 2 + x + 2)/(x+2)]/[(x - 2 - x - 2)/(x + 2)]
= -2[2x/(x+2)]/[-4/(x+2)]
= -2[2x/(x+2)]*[(x+2)/-4]
= 2x/2
= x
Same thing for f(f-1(x)), sub in f-1(x) wherever x is in f(x)
velox
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Thanks acmilan, i needed that line ^ .acmilan said:
velox
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x2 + 2x + 4
x>=-1
How do u find the inverse function of that?
x>=-1
How do u find the inverse function of that?