Supremum
Find the supremum of this function.
Contents
Favorite Function
Here is one of my favorite functions. What is its maximum?
$$ f(x) = \tan { \sin {x} } - \sin { \tan {x} } $$
Let's plot it with ezplot, which is pronounced easy-plot.
f = @(x) tan(sin(x)) - sin(tan(x)) ezplot(f,[-pi,pi])
f = @(x)tan(sin(x))-sin(tan(x))
The function is very flat at the origin. Its Taylor series begins with $x^7$. It oscillates infinitely often near $\pm \pi/2$. It is linear as it approaches zero again at $\pm \pi$. And, most important for our purposes here, ezplot has picked the limit on the y-axes to be between 2.5 and 3.
syms x F = sym(f) disp('taylor = ') pretty(taylor(F,x,'order',10)) ylim = get(gca,'ylim')
F = tan(sin(x)) - sin(tan(x)) taylor = 9 7 29 x x ----- + -- 756 30 ylim = -2.867712755182179 2.867712755182179
Calculus
We learn in calculus that a maximum occurs at a zero of the derivative. But this function is not differentiable in the vicinity of $\pi/2$. The most interesting thing about an ezplot of the derivative is the title. Trying to find a zero of diff(F) is meaningless.
ezplot(diff(F),[-pi,pi])
Sample
We can sample the function near $\pi/2$ to get a numerical approximation to the value of the maximum. Is that good enough?
x = 3*pi/8 + pi/4*rand(1,1000000);
y = f(x);
format long
smax = max(y)
smax = 2.557406355782225
Think
The computer has been a help, but we can do this without it.
$$ \sin{x} \le 1 $$
so
$$ \sin{ \tan {x} } \le 1 $$
and
$$ \tan {\sin{x}} \le \tan {1} $$
Consequently
$$ f(x) \le 1 + \tan {1} $$
Supremum
But I want to be a little more careful. As $x$ approaches $\pi/2$, $\tan{x}$ blows up. So $f(x)$ is actually not defined at $\pi/2$. For the domain of this function, one of the less than or equals changes to just a less than.
$$ \sin{x} < 1 $$
$$ \tan {\sin{x}} < \tan {1} $$
$$ f(x) < 1 + \tan {1} $$
The precise answer to my original question is that this function does not have a maximum. It has a "least upper bound" or supremum, the smallest quantity that the function does not exceed. The sup is:
$$ \sup {f(x)} = 1 + \tan {1} $$
Now we can take a look at the numerical value.
sup = 1 + tan(1)
sup = 2.557407724654902
- 범주:
- Calculus
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