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inverse trig becos my head hurts (1 Viewer)

Sylfiphy

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im back and I have two questions ..

1) how do I find the domain and range for y=ln(sin^-1x)
2) how do I find domain and range for y=cos^-1(cosx) and how do I graph it
 

Average Boreduser

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im back and I have two questions ..

1) how do I find the domain and range for y=ln(sin^-1x)
2) how do I find domain and range for y=cos^-1(cosx) and how do I graph it
1. composite graphs (find common R)
2. Range is same as normal cosinv graph and domain let it lie between -1 and 1
 

Average Boreduser

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I don't get the common range bit tho because one of them has a restricted domain
let u be sin^-1x. y=lnu. find your common R of variable u, then determine d and r

Yeah u have two restrictions on the domains, which is why you balance them by finding the restriciton which works for both domains if that makes sense
 
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Sylfiphy

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let u be sin^-1x. y=lnu. find your common R of variable u, then determine d and r

Yeah u have two restrictions on the domains, which is why you balance them by finding the restriciton which works for both domains if that makes sense
I get that but for one of the questions the common domain was -1≤u≤1 and then the range was all real values which makes no sense
 

Luukas.2

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im back and I have two questions ..

1) how do I find the domain and range for y=ln(sin^-1x)
2) how do I find domain and range for y=cos^-1(cosx) and how do I graph it
Question 1:








Question 2:






As has been noted, it is a saw-tooth function, which can be recognised by plotting points:

 

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