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20202026
most citedcuSZ: An Efficient GPU-Based Error-Bounded Lossy Compression Framework for Scientific Data

98 citations · 102 across the 11 of their papers we have counts for

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cs.DC2026

pMSz: A Distributed Parallel Algorithm for Correcting Extrema and Morse Smale Segmentations in Lossy Compression

Yuxiao Li, Mingze Xia, Xin Liang +7

Lossy compression, widely used by scientists to reduce data from simulations, experiments, and observations, can distort features of interest even under bounded error. Such distort…

cs.DC2026

FFCz: Fast Fourier Correction for Spectrum-Preserving Lossy Compression of Scientific Data

Congrong Ren, Robert Underwood, Sheng Di +5

This paper introduces a novel technique to preserve spectral features in lossy compression based on a novel fast Fourier correction algorithm\added{ for regular-grid data}. Preserv…

cs.DC2024

LCP: Enhancing Scientific Data Management with Lossy Compression for Particles

Longtao Zhang, Ruoyu Li, Congrong Ren +10

Many scientific applications opt for particles instead of meshes as their basic primitives to model complex systems composed of billions of discrete entities. Such applications spa…

cs.DC2024

To Compress or Not To Compress: Energy Trade-Offs and Benefits of Lossy Compressed I/O

Grant Wilkins, Sheng Di, Jon C. Calhoun +2

Modern scientific simulations generate massive volumes of data, creating significant challenges for I/O and storage systems. Error-bounded lossy compression (EBLC) offers a solutio…

cs.DC20241 cited

HoSZp: An Efficient Homomorphic Error-bounded Lossy Compressor for Scientific Data

Tripti Agarwal, Sheng Di, Jiajun Huang +7

Error-bounded lossy compression has been a critical technique to significantly reduce the sheer amounts of simulation datasets for high-performance computing (HPC) scientific appli…

cs.DC2024

A Survey on Error-Bounded Lossy Compression for Scientific Datasets

Sheng Di, Jinyang Liu, Kai Zhao +23

Error-bounded lossy compression has been effective in significantly reducing the data storage/transfer burden while preserving the reconstructed data fidelity very well. Many error…