How do you solve the series $sin (\frac{1}{n})$ $sin (1/n)$ using comparison test?

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How do you solve the series $sin (\frac{1}{n})$ $sin (1/n)$ using comparison test?

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Answer 1 · 2015-07-02T17:41:45

By comparing it with $\frac{1}{n}$ $1/n$

Explanation:

The sine function has this weird property that for very small values of $x$ $x$ : $sin (x) = x$ $sin(x) = x$
You can see this easily by plotting the graph for $y = sin (x)$ $y = sin(x)$ and the graph for $y = x$ $y=x$ over each other:
enter image source here

You can see that when $x \to 0$ $x->0$ , $sin x = x$ $sinx=x$

So this also means that for very small values of $\frac{1}{n}$ $1/n$ , $sin (\frac{1}{n}) = \frac{1}{n}$ $sin(1/n)=1/n$
When does $\frac{1}{n}$ $1/n$ become very small? When $n$ $n$ is very big, like infinity. So, at infinity we can compare $sin (\frac{1}{n})$ $sin(1/n)$ with $\frac{1}{n}$ $1/n$ .
We also know that $\frac{1}{n}$ $1/n$ diverges at infinity, so $sin (\frac{1}{n})$ $sin(1/n)$ must also diverge at infinity.

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How do you solve the series $sin (\frac{1}{n})$ $sin (1/n)$ using comparison test?

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