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Maximus: A Modular Accelerated Query Engine for Data Analytics on Heterogeneous Systems

Summary: Maximus is a modular query engine for heterogeneous systems, enabling cross-engine ops and flexible I/O. Operator-level integration via Substrait with third-party engines enables cross-CPU/GPU pipelines and overlapped compute/communication for TPC-H. (summarized by gpt-5-nano on Feb 09 2026)

Paper ID
ha53b49079c4f829b
Venue
SIGMOD
Year
2025
Pagerank
5.7429023e-05
Overall Rank
6,587 | 55.72%
DOI
10.1145/3725324

Incoming Non-self Citations Over Time

Authors

BibTeX Citation

@inproceedings{kabic_sigmod25,
        title = {{Maximus: A Modular Accelerated Query Engine for Data Analytics on Heterogeneous Systems}},
        author = {Kabić, Marko and Chandran, Shriram and Alonso, Gustavo},
        series = {{SIGMOD} '25},
        booktitle = {Proceedings of the {ACM} {SIGMOD} International Conference on Management of Data},
        publisher = {Association for Computing Machinery},
        doi = {10.1145/3725324},
        url = {https://dl.acm.org/doi/10.1145/3725324},
        year = {2025}
}

Incoming Citations (Sorted by Pagerank)

Showing 9 of 9 citing papers.

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Outgoing Citations (Sorted by Pagerank)

Showing 24 of 24 cited papers.

Citations counted here include only citations to other VLDB/SIGMOD/CIDR/PODS papers in this database.

Rank Cited Paper Year Venue Pagerank
21 Efficiently Compiling Efficient Query Plans for Modern Hardware 2011 VLDB 0.00056855599
71 DuckDB: an Embeddable Analytical Database 2019 SIGMOD 0.00037720227
215 Morsel-Driven Parallelism: A NUMA-Aware Query Evaluation Framework for the Many-Core Age 2014 SIGMOD 0.00024598661
431 HYRISE—A Main Memory Hybrid Storage Engine 2011 VLDB 0.00018403783
771 The Yin and Yang of Processing Data Warehousing Queries on GPU Devices 2013 VLDB 0.00014085862
1,268 A Study of the Fundamental Performance Characteristics of GPUs and CPUs for Database Analytics 2020 SIGMOD 0.0001126007
1,424 Velox: Meta's Unified Execution Engine 2022 VLDB 0.00010719232
1,747 HetExchange: Encapsulating heterogeneous CPU-GPU parallelism in JIT compiled engines 2019 VLDB 9.7335416e-05
1,825 Data Management for Data Science: Towards Embedded Analytics 2020 CIDR 9.5603293e-05
3,227 Farview: Disaggregated Memory with Operator Off-loading for Database Engines 2022 CIDR 7.5083649e-05
3,337 The Composable Data Management System Manifesto 2023 VLDB 7.4104865e-05
3,798 All-in-One: Graph Processing in RDBMSs Revisited 2017 SIGMOD 7.0161889e-05
3,985 Designing an Open Framework for Query Optimization and Compilation 2022 VLDB 6.8730085e-05
4,074 Apache Arrow DataFusion: A Fast, Embeddable, Modular Analytic Query Engine 2024 SIGMOD 6.8198673e-05
4,480 GPU Database Systems Characterization and Optimization 2024 VLDB 6.5807917e-05
4,984 Fast In-Memory SQL Analytics on Typed Graphs 2017 VLDB 6.3268363e-05
5,615 BOSS - An Architecture for Database Kernel Composition 2024 VLDB 6.0652416e-05
5,771 Database Technology for the Masses: Sub-Operators as First-Class Entities 2021 VLDB 5.9992698e-05
6,296 Declarative Sub-Operators for Universal Data Processing 2023 VLDB 5.8195258e-05
6,576 Towards Query Optimizer as a Service (QOaaS) in a Unified LakeHouse Ecosystem: Can One QO Rule Them All? 2025 CIDR 5.7448779e-05
7,029 The Case for Deep Query Optimisation 2020 CIDR 5.6174811e-05
7,298 CleanM: An Optimizable Query Language for Unified Scale-Out Data Cleaning 2017 VLDB 5.561054e-05
7,451 Modularis: Modular Relational Analytics over Heterogeneous Distributed Platforms 2021 VLDB 5.5236802e-05
7,866 Building Advanced SQL Analytics From Low-Level Plan Operators 2021 SIGMOD 5.4365876e-05
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