Hello friends,
Consider the following function:
\(\displaystyle \displaystyle{f(x)=\frac{x^6}{(x^2+1)^4}} \)
In the domain \(\displaystyle 0<x<1\), what is the maximum value of the function?
It is clearly 1/16, when x=1.
Now consider the following: \(\displaystyle \displaystyle{\int_0^1 \frac{x^6}{(x^2+1)^4}}\)
I cannot say that the integral of that is \(\displaystyle \leq \frac{1}{16}\), can I?
But the proof of what I am looking at is based on precisely this idea... hmm
[EDIT]: Or that \(\displaystyle \displaystyle{\int_0^1 \frac{x^6}{(x^2+1)^4} \leq \int_0^1 \frac{1}{16}}\)
Consider the following function:
\(\displaystyle \displaystyle{f(x)=\frac{x^6}{(x^2+1)^4}} \)
In the domain \(\displaystyle 0<x<1\), what is the maximum value of the function?
It is clearly 1/16, when x=1.
Now consider the following: \(\displaystyle \displaystyle{\int_0^1 \frac{x^6}{(x^2+1)^4}}\)
I cannot say that the integral of that is \(\displaystyle \leq \frac{1}{16}\), can I?
But the proof of what I am looking at is based on precisely this idea... hmm
[EDIT]: Or that \(\displaystyle \displaystyle{\int_0^1 \frac{x^6}{(x^2+1)^4} \leq \int_0^1 \frac{1}{16}}\)
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Yes, you can say that since the function is continuous and integrable on [0, 1].