How do you find the domain, range, and asymptote for $y = 2 - sec (2 x - \frac{π}{2})$ $y = 2 - sec ( 2x - pi/2 )$ ?

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How do you find the domain, range, and asymptote for $y = 2 - sec (2 x - \frac{π}{2})$ $y = 2 - sec ( 2x - pi/2 )$ ?

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Answer 1 · 2018-08-09T16:26:57

See explanation and graph.

Explanation:

$y = 2 - sec (2 x - \frac{π}{2}) = 2 - sec (\frac{π}{2} - 2 x)$ $y = 2 - sec ( 2x - pi/2 )= 2 - sec ( pi/2 - 2x )$

$= 2 - csc 2 x, 2 x \neq$ $= 2- csc 2x, 2x ne$ asymptotic kpi, k =0, 1, 2, 3, ...#

$\Rightarrow x \neq k (\frac{π}{2})$ $rArr x ne k(pi/2)$

Also, as csc values $\notin (- 1, 1)$ $notin ( - 1, 1 )$ ,

$y \notin [- 1 + 2, 1 + 2) = (1, 3)$ $y notin [-1 +2, 1 + 2 ) = ( 1, 3 )$ .

The period is period of $sin 2 x = \frac{2 π}{2} = π$ $sin 2x = (2pi)/2 = pi$ .

Vertical shift = 2, giving midline $y = 2$ $y = 2$ .

See graph, depicting all these aspects.
graph{((2-y)sin (2x )-1)(x+0.0001y)(x-pi/2 + 0.0001y)(x+pi/2 + 0.0001y)(y-1+0x)(y-2+0x)(y-3+0x)=0[-10 10 -3 7]}

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How do you find the domain, range, and asymptote for $y = 2 - sec (2 x - \frac{π}{2})$ $y = 2 - sec ( 2x - pi/2 )$ ?

1 Answer

Explanation:

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How do you find the domain, range, and asymptote for $y = 2 - sec (2 x - \frac{π}{2})$ $y = 2 - sec ( 2x - pi/2 )$ ?