SC2023Top-tier venue
The Graph Database Interface: Scaling Online Transactional and Analytical Graph Workloads to Hundreds of Thousands of Cores
Maciej Besta, Robert Gerstenberger, Marc Fischer, Michal Podstawski, Nils Blach, Berke Egeli, George Mitenkov, Wojciech Chlapek, Marek T. Michalewicz, Hubert Niewiadomski, Jürgen Müller, Torsten Hoefler
Abstract
Graph databases (GDBs) are crucial in academic and industry applications. The key challenges in developing GDBs are achieving high performance, scalability, programmability, and portability. To tackle these challenges, we harness established practices from the HPC landscape to build a system that outperforms all past GDBs presented in the literature by orders of magnitude, for both OLTP and OLAP workloads. For this, we first identify and crystallize performance-critical building blocks in the GDB design, and abstract them into a portable and programmable API specification, called the Graph Database Interface (GDI), inspired by the best practices of MPI. We then use GDI to design a GDB for distributed-memory RDMA architectures. Our implementation harnesses onesided RDMA communication and collective operations, and it offers architecture-independent theoretical performance guarantees. The resulting design achieves extreme scales of more than a hundred thousand cores. Our work will facilitate the development of next-generation extreme-scale graph databases.
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Cited by top-tier papers5
- Graph of Thoughts: Solving Elaborate Problems with Large Language ModelsMaciej Besta, Nils Blach, Ales Kubicek, Robert Gerstenberger et al.AAAI 2024 · 1,292 citations
- A High-Performance Design, Implementation, Deployment, and Evaluation of The Slim Fly NetworkNils Blach, Maciej Besta, Daniele De Sensi, Jens Domke et al.NSDI 2024 · 13 citations
- Revisiting the Design of In-Memory Dynamic Graph StorageJixian Su, Chiyu Hao, Shixuan Sun, Hao Zhang et al.SIGMOD 2025 · 6 citations
- Accelerating Regular Path Queries over Graph Database with Processing-in-MemoryRuoyan Ma, Shengan Zheng, Guifeng Wang, Jin Pu et al.DAC 2024 · 4 citations
- GTX: A Write-Optimized Latch-free Graph Data System with Transactional SupportLibin Zhou, Lu Xing, Yeasir Rayhan, Walid G. ArefSIGMOD 2025 · 3 citations
Builds on14
- Learning to Simulate Complex Physics with Graph NetworksAlvaro Sanchez-Gonzalez, Jonathan Godwin, Tobias Pfaff, Rex Ying et al.ICML 2020 · 1,439 citations
- Learning Mesh-Based Simulation with Graph NetworksTobias Pfaff, Meire Fortunato, Alvaro Sanchez-Gonzalez, Peter W. BattagliaICLR 2021 · 1,175 citations
- Realistic Re-evaluation of Knowledge Graph Completion Methods: An Experimental StudyFarahnaz Akrami, Mohammed Samiul Saeef, Qingheng Zhang, Wei Hu et al.SIGMOD 2020 · 101 citations
- SISA: Set-Centric Instruction Set Architecture for Graph Mining on Processing-in-Memory SystemsMaciej Besta, Raghavendra Kanakagiri, Grzegorz Kwasniewski, Rachata Ausavarungnirun et al.MICRO 2021 · 78 citations
- RisGraph: A Real-Time Streaming System for Evolving Graphs to Support Sub-millisecond Per-update Analysis at Millions Ops/sGuanyu Feng, Zixuan Ma, Daixuan Li, Shengqi Chen et al.SIGMOD 2021 · 56 citations
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