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I am new in this forum. My question: Suppose a real valued function $f: \mathbb{R} \rightarrow \mathbb{R}$ is continuous everywhere. Is it possible to construct $f$ that is differentiable at only one point? If possible, please give an example.

Note: I am aware that there is a function which is differentiable at a single point but discontinuous elsewhere. I also know about Weierstrass function that continuous everywhere but nowhere differentiable. But is there a function which is continuous but only differentiable in one point?

In fact, I found this discussion but unfortunately it still does not give a definitive answer. Moreover they consider only in an interval, whereas my problem is for the entire domain. Thank you very much

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    Another answer can be found in the last sentence [here](http://math.stackexchange.com/a/22841/1424).2012-02-12

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It is certainly possible. Fix a nowhere-differentiable function $f$ such that $0\leq f(x)\leq 1$ for all $x$. Now consider $x^2f(x)$. This is differentiable at $0$ but nowhere else. You can verify it is differentiable at $0$ using the limit definition of derivative. $\lim_{h\to 0} \frac{h^2f(h)-0^2f(0)}{h}=\lim_{h\to 0}hf(h)$ and $0\leq f(h)\leq 1$ implies $0\leq hf(h)\leq h$. So the limit goes to $0$ by the squeeze theorem.

To see it is not differentiable elsewhere is a slightly harder exercise. Suppose $x^2f(x)$ is differentiable at $x\neq 0$. Then $\lim_{h\to 0} \frac{(x+h)^2f(x+h)-x^2f(x)}{h}=L.$ Adding and subtracting a mixed term $x^2f(x+h)$ in the middle, this becomes $ \lim_{h\to 0} \frac{(x+h)^2f(x+h)-x^2f(x+h)}{h}+\frac{x^2f(x+h)-x^2f(x)}{h}=L $ The left-hand term limits to $2x f(x).$ The right-hand term limits to x^2f'(x). This implies that f'(x) exists, since it is equal to $x^{-2}(2xf(x)-L)$. (This fails for $x=0$.)

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    Great! Thanks very much for your explanation.2012-02-12