Let $f$ such that $\lim_{x\to 0}f(x)=\infty$ and let $g(x)=\sin(\frac{1}{x})$. I know that $g$ does not have a limit at $x=0$, but what about $\lim_{x\rightarrow 0}(f(x)+g(x))$?
Thanks!
Let $f$ such that $\lim_{x\to 0}f(x)=\infty$ and let $g(x)=\sin(\frac{1}{x})$. I know that $g$ does not have a limit at $x=0$, but what about $\lim_{x\rightarrow 0}(f(x)+g(x))$?
Thanks!
Write $f(x)+g(x)=f(x) \left( 1+\frac{g(x)}{f(x)} \right)$ and notice that the fraction tends to zero since the numerator is bounded and the denominator diverges.
Since $\sin(x)$ is bounded for all $x$ then $\sin(1/x)$ is also bounded.
Hence the limit is infinity.
Always limit is infinity considering your problem.