First of all, I would like to show you how we defined Riemann-integrals and Lebesgue-integrals to make sure that we are talking about the same:
Riemann-intregrability
Let $f:\mathbb{R} \rightarrow \mathbb{R}$ be a function.
$$O(Z):=\sum_{k=1}^n(x_k-x_{k-1})\cdot\sup_{x_{k-1} $$\overline{\int_a^b}f(x)\,\mathrm dx:=\inf_ZO(Z) := \inf \{ O(Z) : Z \mbox{ is a segmentation of } [a,b] \}$$
$$\underline{\int_a^b}f(x)\,\mathrm dx:=\sup_ZU(Z):= \sup \{ U(Z) : Z \mbox{ is a segmentation of } [a,b] \}$$ $f$ is called Riemann-integrable over $[a, b] \subset \mathbb{R} :\Leftrightarrow \underline{\int_a^b}f(x)\,\mathrm dx=\overline{\int_a^b}f(x)\,\mathrm dx$ This is the image that we had in mind when we introduced the Riemann-integral: Lebesgue-integrability Let $\emptyset \neq X \in \mathfrak{B}_d$ be and $f:X \rightarrow [0;\infty)$ be a simple function with normal form $f=\sum_{j=1}^m y_j \mathbb{1}_{A_j}$.
The Lebesgue-integral is defined as $$\int_X f(x) dx := \sum_{j=1}^m y_j \lambda_d(A_j)$$ My question Does any function with uncountably infinte many points of discontinuity exist, that is Riemann-integrable / Lebesgue-integrable? If not, why? Related The following function has a countably infinite number of points of discontinuity and it is Riemann-integrable (source): $f:[0,1] \rightarrow \mathbb{R}$ which is defined as $$f(x)=\begin{cases}
1& \text{ if } \exists n \in \mathbb{N}: x=\frac{1}{n}\\
0& \text{ otherwise}
\end{cases}$$ And $\int_0^1 f(x) \mathrm{d}x = 0$