help (1 Viewer)

synthesisFR

afterhscivemostlybeentrollingdonttakeitsrsly
Joined
Oct 28, 2022
Messages
3,312
Location
Getting deported
Gender
Female
HSC
2028
2arccos x has a range between 0 to 2pi, and since this is the angle that in in the sin(), so sin's range is restricted by -1 and 1 bc its a sin curve
the domain would be -1 to 1 as 2arccos x domain is limited to -1 to 1 so past that the sin wont exist teither
 
Joined
Jul 7, 2023
Messages
39
Gender
Female
HSC
2024
wait but for sin^-1(sqrtx) there is a restriction on range... its [0,pi/2] instead of [-pi/2, pi/2], is this becus the domain got restricted so the range also changed?
 

synthesisFR

afterhscivemostlybeentrollingdonttakeitsrsly
Joined
Oct 28, 2022
Messages
3,312
Location
Getting deported
Gender
Female
HSC
2028
p.s this is ext math not adv just so u know

start with domain and range
for:
A) y=sin^-1 (sqrtx)
the inside exists for x>=0
domain :so the curve exists from [0,1]
range: would be [0,pi/2] because of sqrt x only existing for positive values the curve doesn't exist left of the x axis, cutting the range of at 0.


B) and y=sin^-1 (x^2)
domain is from -1 to 1 since there are not restrictions on x^2
range is from [0,pi/2], as ur squaring x, the curve will only take positive values as all the angles are positive in this domain. The part to the right of the y axis will be mirrored to the left side.

however, depending on how much detail u need u could change how much the curve dilates and stuff compared to a normal arcsinx graph.
- tho i dont think its required for u to consider this at all for inverse trig graphs
 

synthesisFR

afterhscivemostlybeentrollingdonttakeitsrsly
Joined
Oct 28, 2022
Messages
3,312
Location
Getting deported
Gender
Female
HSC
2028
can u read and see if that makes sense or works
im doing english rn and my draft is due at 11.59pm so i dont have much time to check : p
 

Average Boreduser

Rising Renewal
Joined
Jun 28, 2022
Messages
3,160
Location
Somewhere
Gender
Female
HSC
2026
wait but for sin^-1(sqrtx) there is a restriction on range... its [0,pi/2] instead of [-pi/2, pi/2], is this becus the domain got restricted so the range also changed?
What I'd recommend u do is let u=f(x) in y=sin^-1[f(x)] and using this information, sketch both graphs, i.e: y=sin^-1(u) and u=f(x).
After, find values for u in both graphs and find a common restriction. apply this restricition on both graphs to determine D: and R:

Makes it way easier to visualise^
 

Average Boreduser

Rising Renewal
Joined
Jun 28, 2022
Messages
3,160
Location
Somewhere
Gender
Female
HSC
2026
true composite functions is the best way to set these up

btw ur graph for the second one is incorrect tho
wait hold up where'd I go wrong>?

I initially thought I did smthn wrong in the restriction u>=0 for the u=x^2 graph but realised its on y-axis so it can't be all real
 

synthesisFR

afterhscivemostlybeentrollingdonttakeitsrsly
Joined
Oct 28, 2022
Messages
3,312
Location
Getting deported
Gender
Female
HSC
2028
wait hold up where'd I go wrong>?
the domain
x^2 is positive but that doesn't mean x has to be
negative x values just become positive so the graph exists for [-1,0] as well
it would be a horizontally mirrored version of the part on the right side of the graph
 

Average Boreduser

Rising Renewal
Joined
Jun 28, 2022
Messages
3,160
Location
Somewhere
Gender
Female
HSC
2026
the domain
x^2 is positive but that doesn't mean x has to be
negative x values just become positive so the graph exists for [-1,0] as well
it would be a horizontally mirrored version of the part on the right side of the graph
Oh nvm I understand now lmfao. (mbmb)
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top