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Some days ago as I had asked as to how to test the Riemann Integrability of the function. Now I was recently given this question about proving that the given function is Riemann integrable.

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How can i show that this function is Riemann integrable or not in the interval $[0,1]$. I tried using partitions, but it didn't work. Here I don't want to use the Riemann Lebesgue lemma as iI want to understand the methodology behind selecting the partitions.

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    I personally am not fond of using brackets for denoting the floor function... that's just me, though.2010-08-24

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The function is Riemann-integrable because it is bounded (it takes values in $[0,1]$) and has countably many discontinuities, namely, the points of the form $\frac{1}{n}$ and $0$.

This uses Lebesgue's criterion for Riemann integrability which you probably meant with Riemann-Lebesgue-Lemma and hence unfortunately didn't want to use.

As for doing it by hand with partitions, try Akhil Mathew's hint above.

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To show that the function in Riemann-integrable you have to show that it is bounded and has at most a countable set of discontinuities in the interval you are integrating. But this is the case of an improper integral, since $1/x$ is not defined in $x = 0$, you have to follow the criterions for improper integrals, which is the existence of the limit $\lim_{x\rightarrow 0} \int_x^1 \frac{1}{x} dx$ and its finiteness.

Assuming that by $[\frac{1}{x}]$ you mean the integer part of x (the closest integer less then or equal to x), we can always assume that $[\frac{1}{x}]$ is zero, because if x less than or greater than zero, you always have a number less than one, the integer part of which is always zero. So your integral is the same as $\int_0^1 \frac{1}{x} dx - \int_0^1 [\frac{1}{x}] dx = \int_0^1 \frac{1}{x} dx$, which does not converge on that interval.

EDIT: promt comments showed that I'm way over my head...Sorry for the wrong answer.

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    You're right, I'm an idiot...I'll correct2010-08-23
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Let \epsilon > 0 be given. There is a positive integer $n_{0}$ such that $1/n < \epsilon/2$ for n > n_{0}. Choose a partition $P$ determined by $ 0 = x_{0} < x_{1}= \frac{1}{n_{0}+1} < x_{2} < \cdots < x_{n'_{0}}= \frac{1}{n_0}$

$ < x_{n'_{0}+1} < \cdots < x_{n_{1}}'= \frac{1}{n_{0}-1} < \cdots < x_{n_{n_{0}-1}'}=1$ such that

$ \displaystyle x_{i} - x_{i-1} < \frac{\epsilon}{4n_{0}}$ Then $U(P,f) - L(P,f) = \frac{1}{n_{0}+1} + \sum\limits_{i=2}^{n_{0}'} (M_{i}-m_{i})(x_{i}=x_{i-1})$

$ + \sum\limits_{k=0}^{n_{0}-2} \sum\limits_{i=n_{k}'+1}^{n_{k+1}'}(M_{i}-m_{i})(x_{i}-x_{i-1})$

$ < \frac{\epsilon}{2} + 2n_{0} \frac{\epsilon}{4n_{0}} = \epsilon$