Recall some of the features of inverse functions:
While a function maps each element $x$x in its domain to an element $y$y in its range, the inverse function reverses the process by mapping each $y$y back to the original $x$x.
However, this will only work if each $y$y in the range is the image of exactly one $x$x from the domain. In other words, the function has to be an invertible function in order to have an inverse.
Functions that do have inverses are those that are something like a linear function, always increasing or always decreasing. In this situation, each element of the range is the image of exactly one domain element and so, the inverse mapping is possible. Functions of this kind are called invertible functions.
We can often get around the problem of a function not being invertible and therefore having no inverse, by restricting the domain of the function to a region over which the function is either increasing or decreasing and hence, invertible in that region.
We do this in the case of the trigonometric functions.
The sine function is increasing between $-\frac{\pi}{2}$−π2 and $\frac{\pi}{2}$π2. When the domain is restricted to this interval, the inverse function exists. The inverse is given a special name, arcsin, and written as $y=\arcsin(x)$y=arcsin(x). The domain of the inverse sine function is the range of the sine function, the interval $[-1,1]$[−1,1], and the range of the inverse sine function is the restricted domain of sine function, the interval $[-\frac{\pi}{2},\frac{\pi}{2}]$[−π2,π2].
The inverse sine function is often notated $\sin^{-1}$sin−1. Its graph has the same shape as the graph of the sine function. Imagine we start with the graph of $y=\sin x$y=sinx and rotate it $90^\circ$90° counter-clockwise. Next, we flip the curve around the $y$y-axis. Finally, we chop off the parts of the curve above the line $y=\frac{\pi}{2}$y=π2 and below the line $y=\frac{-\pi}{2}$y=−π2. This final curve is the graph of the function $y=\sin^{-1}\left(x\right)$y=sin−1(x), shown below.
The cosine function is decreasing between $0$0 and $\pi$π. When the domain is restricted to this interval, the inverse function exists. It is called arccos. The domain of the inverse cosine function is the range of the cosine function, the interval $[-1,1]$[−1,1], and the range of the inverse cosine function is the restricted domain of cosine function, the interval $[0,\pi]$[0,π].
On calculators, the notation for the arccos function is $\cos^{-1}$cos−1. The shape of the graph is, again, the same as the shape of a section of the cosine graph but with a rotation and a flip, or we can think about it as a reflection in the line $y=x$y=x.
The tangent function is strictly increasing between $-\frac{\pi}{2}$−π2 and $\frac{\pi}{2}$π2. When the domain is restricted to this open interval, the inverse function exists. It is called arctan. The domain of the inverse tangent function is the range of the tangent function, the real numbers. The range of the inverse tangent function is the restricted domain of the tangent function, the interval $\left(-\frac{\pi}{2},\frac{\pi}{2}\right)$(−π2,π2).
Just as the tangent function has vertical asymptotes at $-\frac{\pi}{2}$−π2 and $\frac{\pi}{2}$π2, the inverse tangent function has horizontal asymptotes at these values. In the diagram below, the graphs of both functions have been sketched on the same set of axes. The line $y=x$y=x has been included to help make it clear that the graph of an inverse function has the shape of the graph of the function reflected in this line.
The idea that a function maps each element in its domain to an element in its range, and the inverse function (if there is one) takes the image back to the original elements, can be expressed concisely by writing
$f\left(f^{-1}(x)\right)=x$f(f−1(x))=x
where $f$f is an invertible function with inverse $f^{-1}$f−1. The range of $f$f is the domain of $f^{-1}$f−1 and the range of $f^{-1}$f−1 is the domain of $f$f.
For example, $\arctan(\tan x)=x$arctan(tanx)=x and $\tan(\arctan x)=x$tan(arctanx)=x .
Given that the inverse trigonometric functions have graphs that are reflections in the line $y=x$y=x of parts of the original functions, we should be able to express the inverses in terms of the original functions with the domains and ranges exchanged. How might this be done?
We could begin with the inverse sine function, $f(x)=\arcsin x$f(x)=arcsinx. Its domain is the interval $-1\le y\le1$−1≤y≤1 and its range is $-\frac{\pi}{2}\le f(x)\le\frac{\pi}{2}$−π2≤f(x)≤π2. If we now apply the sine function to $f(x)$f(x), which we can do because the domain of the sine function is the same as the range of $f$f, we have $\sin(f(x))=\sin(\arcsin x)=x$sin(f(x))=sin(arcsinx)=x, since sine and arcsine are inverses of one another. We can put $y=f(x)$y=f(x).
Evidently, $y=\arcsin x$y=arcsinx and $x=\sin y$x=siny are equivalent statements if the domains and ranges match. The graph of $\arcsin x$arcsinx will look the same as the graph of $\sin y$siny.
Consider the inverse cosine function, $y=\cos^{-1}x$y=cos−1x.
What is its domain?
$\left(0,\pi\right)$(0,π)
$\left[-1,1\right]$[−1,1]
$\left(-1,1\right)$(−1,1)
$\left(-\infty,\infty\right)$(−∞,∞)
$\left[0,\pi\right]$[0,π]
What is its range?
$\left[0,\pi\right]$[0,π]
$\left(-\infty,\infty\right)$(−∞,∞)
$\left[-1,1\right]$[−1,1]
$\left(-1,1\right)$(−1,1)
$\left(0,\pi\right)$(0,π)
Is this function increasing or decreasing?
Decreasing
Increasing
Why is $\cos^{-1}x$cos−1x not defined for $x=-2$x=−2?
$-2$−2 is not in the domain of $\cos^{-1}x$cos−1x.
$-2$−2 is not in the range of $\cos^{-1}x$cos−1x.
$\cos^{-1}x$cos−1x has an asymptote at $x=-2$x=−2.
You cannot put negative numbers into $\cos^{-1}x$cos−1x.
The point $\left(\frac{\pi}{3},\frac{1}{2}\right)$(π3,12) lies on the graph of $y=\cos x$y=cosx. What is the corresponding coordinate pair on the graph of $y=\cos^{-1}x$y=cos−1x?
Consider the inverse tangent function, $y=\tan^{-1}x$y=tan−1x.
What is its domain?
$\left(-\infty,\infty\right)$(−∞,∞)
$\left(-\frac{\pi}{2},\frac{\pi}{2}\right)$(−π2,π2)
$\left(-1,1\right)$(−1,1)
$\left[-\frac{\pi}{2},\frac{\pi}{2}\right]$[−π2,π2]
$\left[-1,1\right]$[−1,1]
What is its range?
$\left[-1,1\right]$[−1,1]
$\left[-\frac{\pi}{2},\frac{\pi}{2}\right]$[−π2,π2]
$\left(-\infty,\infty\right)$(−∞,∞)
$\left(-1,1\right)$(−1,1)
$\left(-\frac{\pi}{2},\frac{\pi}{2}\right)$(−π2,π2)
Is this function increasing or decreasing?
Increasing
Decreasing
Which of the following value(s) of $x$x is $y=\tan^{-1}x$y=tan−1x not defined for?
$x=\frac{\pi}{2}$x=π2.
None. $y=\tan^{-1}x$y=tan−1x is defined for all real $x$x.
$x=\frac{\pi}{2}$x=π2 and $x=-\frac{\pi}{2}$x=−π2.
$x=0$x=0.
The sine function is increasing on the domain $-\frac{\pi}{2}\le x\le\frac{\pi}{2}$−π2≤x≤π2 and over this domain the function takes its full range of values, from $-1$−1 to $1$1.
We can, therefore, define an inverse sine function, $\arcsin y$arcsiny, that maps the domain$-1\le y\le1$−1≤y≤1 to the range $-\frac{\pi}{2}\le x\le\frac{\pi}{2}$−π2≤x≤π2.
In practice, we might take a number between $-1$−1 and $1$1 and, using a calculator, apply the $\sin^{-1}$sin−1 function to it. The calculator will return a number between $-\frac{\pi}{2}$−π2 and $\frac{\pi}{2}$π2 if it is set in radians, or an angle between $-90^\circ$−90° and $90^\circ$90° if set in degrees.
The cosine function is invertible if its domain is restricted to the interval $0\le x\le\pi$0≤x≤π, over which it is decreasing. Over this domain, the cosine function has the full range of values from $-1$−1 to $1$1.
We can define an inverse cosine function, $\arccos y$arccosy, with domain $-1\le y\le1$−1≤y≤1 and range $0\le x\le\pi$0≤x≤π.
If a calculator is used to find the inverse cosine of a number between $-1$−1 and $1$1, it returns a number in the range $[0,\pi]$[0,π] if the calculator is set to radians, or an angle in the range $[0,180]^\circ$[0,180]° if set to degrees.
The tangent function is increasing on the restricted domain $\left(-\frac{\pi}{2},\frac{\pi}{2}\right)$(−π2,π2) and its range on this domain is the set of real numbers.
The inverse tangent function, $\arctan y$arctany is defined for every real number, and its range is the domain of the tangent function.
A calculator will return a valid answer for $\tan^{-1}(x)$tan−1(x) for every number $x$x. The result will be strictly between $-\frac{\pi}{2}$−π2 and $\frac{\pi}{2}$π2, in radians, or between $-90^\circ$−90° and $90^\circ$90° if the calculator is set in degrees.
Find the smallest positive angle (in degrees) whose tangent is $-23.5$−23.5.
Think: It we wanted to write the question as an equation, it would be solving for $\theta$θ if $\tan\theta=-23.5$tanθ=−23.5.
Do:
$\tan\theta$tanθ | $=$= | $-23.5$−23.5 |
State the given information |
$\tan^{-1}(\tan(\theta))$tan−1(tan(θ)) | $=$= | $\tan^{-1}(-23.5)$tan−1(−23.5) |
Taking the inverse of both sides (arctan) |
$\theta$θ | $=$= | $\left(-87.56\right)^\circ$(−87.56)° |
Use a calculator |
Using the $\tan^{-1}$tan−1 function on a calculator set in degrees, we obtain the answer $-87.56^\circ$−87.56°.
Reflect: We know that the tangent function, on its unrestricted domain, is periodic with period $180^\circ$180°. Therefore, we will obtain another solution if one period is added to the solution given by the calculator. This is $92.44^\circ$92.44° and it must be the smallest positive angle whose tangent is $-23.5$−23.5.
Consider the inverse sine, inverse cosine, and inverse tangent functions.
Which of the following is the domain of $\sin^{-1}x$sin−1x?
$\left(-1,1\right)$(−1,1)
$\left[-1,1\right]$[−1,1]
$\left(-\frac{\pi}{2},\frac{\pi}{2}\right)$(−π2,π2)
$\left[-\frac{\pi}{2},\frac{\pi}{2}\right]$[−π2,π2]
Which of the following is the domain of $\cos^{-1}x$cos−1x?
$\left(0,\pi\right)$(0,π)
$\left[0,\pi\right]$[0,π]
$\left[-1,1\right]$[−1,1]
$\left(-1,1\right)$(−1,1)
Which of the following is the domain of $\tan^{-1}x$tan−1x?
$\left[-\frac{\pi}{2},\frac{\pi}{2}\right]$[−π2,π2]
$\left(-\frac{\pi}{2},\frac{\pi}{2}\right)$(−π2,π2)
$\left[-\infty,\infty\right]$[−∞,∞]
$\left(-\infty,\infty\right)$(−∞,∞)
The graph of $y=\sin^{-1}x$y=sin−1x has been plotted below.
How would the graph of $y=\sin^{-1}\left(\frac{x}{5}\right)$y=sin−1(x5) compare to that of $y=\sin^{-1}x$y=sin−1x?
Its domain will span a larger interval than the range of $y=\sin^{-1}x$y=sin−1x.
Its domain will span a smaller interval than the domain of $y=\sin^{-1}x$y=sin−1x.
Its range will span a larger interval than the range of $y=\sin^{-1}x$y=sin−1x.
Its range will span a smaller interval than the range of $y=\sin^{-1}x$y=sin−1x.
Hence, write the domain and range of $f(x)=\sin^{-1}\left(\frac{x}{5}\right)$f(x)=sin−1(x5).
Domain: $\left[\editable{},\editable{}\right]$[,]
Range: $\left[\editable{},\editable{}\right]$[,]
Consider the function $f(x)=4\cos^{-1}x$f(x)=4cos−1x.
State the range of $f(x)$f(x). Give your answer using interval notation.
State the domain of $f(x)$f(x). Give your answer using interval notation.