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Trigonometric and inverse trigonometric functions are inverse to each other. We can use them to compose new functions. In such composition, trigonometric function represents value of trigonometric ratio, whereas inverse trigonometric function represents angle. The composite function either evaluates to value or angle, depending on particular composition.

Composition representing value of trigonometric function

Sine inverse trigonometric function is given by :

y = sin - 1 x x = sin y x = sin sin - 1 x

sin sin - 1 x = x

The composition sin sin - 1 x evaluates to a value. Clearly, x is a value of sine trigonometric function which falls within the range of sine function i.e x [ - 1,1 ] . It is important to note that domain of inverse function is same as range of the corresponding trigonometric function. We write six compositions denoting value of trigonometric functions as :

sin sin - 1 x = x ; x [ - 1,1 ]

cos cos - 1 x = x ; x [ - 1,1 ]

tan tan - 1 x = x ; x R

cot cot - 1 x = x ; x R

sec sec - 1 x = x ; x , 1 ] [ 1,

cosec cosec - 1 x = x ; x , 1 ] [ 1,

Composition representing angle

We shall discuss this composition with respect to individual inverse trigonometric ratio.

Composition with arcsine

Sine inverse trigonometric function is given by :

y = sin - 1 x x = sin y y = sin - 1 sin y

In order to maintain generality, we replace y by x as :

sin - 1 sin x = x

The composition sin - 1 sin x evaluates to an angle. Clearly, x is angle value – not the value of trigonometric ratio. However, we know that we use a truncated domain of trigonometric function for defining range of inverse function. The values in the interval are selected such that all unique values of sine trigonometric function are represented. It means that expression on LHS of the equation i.e. sin - 1 sin x evaluates to angle values lying in the interval [ - π / 2, π / 2 ] .

sin - 1 sin x = x ; x [ - π 2 , π 2 ]

However, x as argument of sine function can assume angle values belonging to real number set. It means angles represented by LHS and RHS can be different if we consider angle values beyond principal set selected to render corresponding trigonometric function invertible.

Sine function

Principle domain

Let us consider adjacent intervals such that all sine values are included once. Such intervals are [ π / 2, 3 π / 2 ] , [ 3 π / 2, 5 π / 2 ] etc on the right side and [ - 3 π / 2, - π / 2 ] , [ - 5 π / 2, - 3 π / 2 ] etc on the left side of the principal interval.

Sine function

Additional domains for inversion

Our task now is to determine angles in any of these new intervals, say [ π / 2, 3 π / 2 ] , corresponding to angles in the principal interval. We make use of value diagram which allows to determine angles having same trigonometric values. Let us consider a positive acute angle “θ” in the principal interval. This lies in the first quadrant. The new interval represents second and third quadrants. However, sine is positive in second quadrant and negative in third quadrant. Let the angle corresponding to positive acute angle in principal interval be x. Clearly, x corresponding to positive acute angle θ lies in second quadrant and is given by :

Value diagrams

Value diagrams for positive and negative angles

Questions & Answers

A golfer on a fairway is 70 m away from the green, which sits below the level of the fairway by 20 m. If the golfer hits the ball at an angle of 40° with an initial speed of 20 m/s, how close to the green does she come?
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Nevermind i just realied that the graph is the phons output for a person with normal hearing and not just the phons output of the sound waves power, I should read the entire thing next time
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Follow up question, does anyone know where I can find a graph that accuretly depicts the actual relative "power" output of sound over its frequency instead of just humans hearing
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Source:  OpenStax, Functions. OpenStax CNX. Sep 23, 2008 Download for free at http://cnx.org/content/col10464/1.64
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