VLDB 2026 Research / reviewers in the wild / expert
Seongryong Oh
dblp:372/4847
· DBLP profile ↗
4ranked-venue papers
0as first author
4since 2021 · last 2026
0009-0004-6707-0641ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 4 · 4 since 2021Software engineering, systems software and programming languages · 3 · 3 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Neo: Real-Time On-Device 3D Gaussian Splatting with Reuse-and-Update Sorting Acceleration
Changhun Oh, Seongryong Oh, Jinwoo Hwang, Yoonsung Kim, Hardik Sharma, Jongse Park |
ASPLOS (2) | 2 |
| 2026 | Accelerator Polymorphism: Transcending Domain-Specific Architectures with Robotics
Hanyang Xu 0002, Seongryong Oh, Ashwin Rohit Alagiri Rajan, Rohan Mahapatra, Om Patil, Yuchuan Li, Jongse Park, Hadi Esmaeilzadeh |
ISCA | 2 |
| 2025 | Pimba: A Processing-in-Memory Acceleration for Post-Transformer Large Language Model Serving
Wonung Kim, Yubin Lee 0002, Yoonsung Kim, Jinwoo Hwang, Seongryong Oh, Jiyong Jung, Aziz Huseynov, Woong Gyu Park, Chang Hyun Park 0001, Divya Mahajan 0001, Jongse Park |
MICRO | 5 |
| 2024 | DACAPO: Accelerating Continuous Learning in Autonomous Systems for Video AnalyticsabstractDeep neural network (DNN) video analytics is crucial for autonomous systems such as self-driving vehicles, unmanned aerial vehicles (UAVs), and security robots. However, real-world deployment faces challenges due to their limited computational resources and battery power. To tackle these challenges, continuous learning exploits a lightweight “student” model at deployment (inference), leverages a larger “teacher” model for labeling sampled data (labeling), and continuously retrains the student model to adapt to changing scenarios (retraining). This paper highlights the limitations in state-of-theart continuous learning systems: (1) they focus on computations for retraining, while overlooking the compute needs for inference and labeling, (2) they rely on power-hungry GPUs, unsuitable for battery-operated autonomous systems, and (3) they are located on a remote centralized server, intended for multi-tenant scenarios, again unsuitable for autonomous systems due to privacy, network availability, and latency concerns. We propose a hardwarealgorithm co-designed solution for continuous learning, DACAPO, that enables autonomous systems to perform concurrent executions of inference, labeling, and retraining in a performant and energy-efficient manner. DACapo comprises (1) a spatiallypartitionable and precision-flexible accelerator enabling parallel execution of kernels on sub-accelerators at their respective precisions, and (2) a spatiotemporal resource allocation algorithm that strategically navigates the resource-accuracy tradeoff space, facilitating optimal decisions for resource allocation to achieve maximal accuracy. Our evaluation shows that DACAPO achieves $\mathbf{6. 5 \%}$ and $\mathbf{5. 5 \%}$ higher accuracy than a state-of-theart GPU-based continuous learning systems, Ekya and EOMU, respectively, while consuming $254 \times$ less power. Yoonsung Kim, Changhun Oh, Jinwoo Hwang, Wonung Kim, Seongryong Oh, Yubin Lee 0002, Hardik Sharma, Amir Yazdanbakhsh, Jongse Park |
ISCA | 5 |