VLDB 2026 Research / reviewers in the wild / expert
Di-De Yen
dblp:142/2911
· DBLP profile ↗
8ranked-venue papers
2as first author
7since 2021 · last 2026
0000-0003-0045-9594ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Theory of computation · 5 · 2 first-author · 4 since 2021Software engineering, systems software and programming languages · 3 · 3 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Hyper-Minimization for Deterministic Register Automata
Yong Li 0031, Qiyi Tang 0001, Di-De Yen |
CIAA | 3 |
| 2026 | Decomposing finite-valued two-way finite transducers
Hsu-Chun Yen, Di-De Yen |
J. Comput. Syst. Sci. | 2 |
| 2025 | Resolving Nondeterminism by ChanceabstractHistory-deterministic automata are those in which nondeterministic choices can be correctly resolved stepwise: there is a strategy to select a continuation of a run given the next input letter so that if the overall input word admits some accepting run, then the constructed run is also accepting. Motivated by checking qualitative properties in probabilistic verification, we consider the setting where the resolver strategy can randomise and only needs to succeed with lower-bounded probability. We study the expressiveness of such stochastically-resolvable automata as well as consider the decision questions of whether a given automaton has this property. In particular, we show that it is undecidable to check if a given NFA is λ-stochastically resolvable. This problem is decidable for finitely-ambiguous automata. We also present complexity upper and lower bounds for several well-studied classes of automata for which this problem remains decidable. Soumyajit Paul, David Purser, Sven Schewe, Qiyi Tang 0001, Patrick Totzke, Di-De Yen |
CONCUR | 6 |
| 2023 | An Automata-Based Framework for Verification and Bug Hunting in Quantum CircuitsabstractWe introduce a new paradigm for analysing and finding bugs in quantum circuits. In our approach, the problem is given by a triple { P } C { Q } and the question is whether, given a set P of quantum states on the input of a circuit C , the set of quantum states on the output is equal to (or included in) a set Q . While this is not suitable to specify, e.g., functional correctness of a quantum circuit, it is sufficient to detect many bugs in quantum circuits. We propose a technique based on tree automata to compactly represent sets of quantum states and develop transformers to implement the semantics of quantum gates over this representation. Our technique computes with an algebraic representation of quantum states, avoiding the inaccuracy of working with floating-point numbers. We implemented the proposed approach in a prototype tool and evaluated its performance against various benchmarks from the literature. The evaluation shows that our approach is quite scalable, e.g., we managed to verify a large circuit with 40 qubits and 141,527 gates, or catch bugs injected into a circuit with 320 qubits and 1,758 gates, where all tools we compared with failed. In addition, our work establishes a connection between quantum program verification and automata, opening new possibilities to exploit the richness of automata theory and automata-based verification in the world of quantum computing. Yu-Fang Chen 0001, Kai-Min Chung, Ondrej Lengál, Jyun-Ao Lin, Wei-Lun Tsai, Di-De Yen |
Proc. ACM Program. Lang. | 6 |
| 2022 | On the decidability of the valuedness problem for two-way finite transducers
Di-De Yen, Hsu-Chun Yen |
Inf. Comput. | 1 |
| 2021 | Solving Not-Substring Constraint withFlat Abstraction
Parosh Aziz Abdulla, Mohamed Faouzi Atig, Yu-Fang Chen 0001, Bui Phi Diep, Lukás Holík, Denghang Hu, Wei-Lun Tsai, Zhilin Wu, Di-De Yen |
APLAS | 9 |
| 2021 | PyCT: A Python Concolic Tester
Yu-Fang Chen 0001, Wei-Lun Tsai, Wei-Cheng Wu, Di-De Yen, Fang Yu 0001 |
APLAS | 4 |
| 2019 | Characterizing the Valuedness of Two-Way Finite Transducers
Di-De Yen, Hsu-Chun Yen |
DLT | 1 |