Does $\lim_{h\rightarrow 0}\ [f(x+h)-f(x-h)]=0$ imply that $f$ is continuous?

A corollary of this is that there exists a symmetrically continuous function $f$ such that $D(f)$ has Hausdorff dimension $1$ in every open interval (i.e. $D(f)$ is "everywhere of Hausdorff dimension $1").$ Note that this is much stronger than $D(f)$ having cardinality $c$ in every open interval, the result I mentioned previously. The "everywhere of Hausdorff dimension $1$" result follows from the fact that there exist, in every open interval, $N$-sets with Hausdorff dimension arbitrarily close to $1,$ and hence each open interval contains a $\sigma$-$N$-set with Hausdorff dimension equal to $1,$ and therefore we can put a $\sigma$-$N$-set of Hausdorff dimension $1$ in each interval of the form $(r,s)$ where $r<s$ are rational numbers (the net result will be a $\sigma$-$N$-set that is everywhere of Hausdorff dimension $1$).

On the other hand, by a result proved by Miroslav Chlebík (not published) that is stated and proved in Thomson's book (pp. 57-59), it follows that no $D(f)$ set can contain the Cantor middle thirds set $C$. In fact, it is the case that if $f$ is symmetrically continuous, then there exists $G \subseteq C$ such that $G$ is residual-in-$C$ and $f$ is continuous at each point of $G.$ That is, $f$ is continuous at "Baire almost all" points of $C.$ Obviously, given my comments about Hausdorff dimension, the Cantor middle thirds set $C$ is not "too big". Instead, the problem has to do with a certain arithmetic-combinatorial property of the distribution of the points in $C.$

Consider the function $$f(x)=\begin{cases}0,&\qquad\hbox{$x$ is irrational}\\1/q,&\qquad\hbox{$x=p/q$ where $\gcd(p,q)=1$ and $q>0$}\end{cases}$$ First, we can see that $f(1+x)=f(x)$, and $f(-x)=f(x)$, so we can restrict $-1<x<1$. Second, I want to show that $\lim_{x\to x_0}f(x)=0$ whenever $-1<x_0<1$. For each $\epsilon>0$, there only exists finity many real numbers $-1<x<1$ such that $|f(x)|\ge\epsilon$, for such $x$ must be rational number with denominator $0<q\le1/\epsilon$. Thus there exists $\delta>0$ such that $|f(x)|<\epsilon$ for all $x$ such that $0<|x-x_0|<\delta$, therefore $\lim_{x\to x_0}f(x)=0$. Hence, $f(x)$ is continuous at irrational number $x=\alpha$ and not at rational number $x=r$, for $f(x)$ is periodic.

$\lim_{h\to0}(f(x+h)-f(x-h))=0$, because $\lim_{x\to r}f(x)=0$ for each rational number $x$, we conclude that $f(x)$ is the counterexample for $f$ is continuous，and the set of discontinuity points is dense on $\Bbb R$.

I don't know whether there's a function $f$ such that $f$ is discontinuous almost everywhere but for all $x_0$ the limit $\lim_{h\to0}(f(x_0+h)-f(x_0-h))=0$.