Showing this metric space is complete

Solution 1:

HINT:

The map $x \mapsto \frac{1}{x}$ from your space to $[1, \infty)$ with the usual metric is an isometry.

Solution 2:

Expanding on orangeskid's hint-answer, "isometry" means that if we call that map $f$, the distance on $X$ $d$ and the usual metric $d_e$, then $d(x,y)=d_e(f(x),f(y))$. This can be used to turn $x_n$ into a Cauchy sequence in $[1,\infty)$, thus finding a limit there and getting back to $X$.

$\frac{1}{n}$ is a Cauchy sequence in $[0,1]$ or any subset of $\mathbb{R}$ containing all its terms with the Euclid metric, not with your metric, where, as Brian M. Scott pointed out, the distances are never less than one.

Finally, a comment on format: it is better to provide a generic title like "Proving a metric space is complete" or "Proving a certain metric space is complete" and then putting the definition into the question rather than placing the definition of the space and distance in the title and then simply stating you can't find a proof in the question. I'll edit the question accordingly, but keep this in mind for the future :).