Lossy Compression of Scientific Data: Applications Constrains and Requirements
Abstract
Increasing data volumes from scientific simulations and instruments (supercomputers, accelerators, telescopes) often exceed network, storage, and analysis capabilities. The scientific community's response to this challenge is scientific data reduction. Reduction can take many forms, such as triggering, sampling, filtering, quantization, and dimensionality reduction. This report focuses on a specific technique: lossy compression. Lossy compression retains all data points, leveraging correlations and controlled reduced accuracy. Quality constraints, especially for quantities of interest, are crucial for preserving scientific discoveries. User requirements also include compression ratio and speed. While many papers have been published on lossy compression techniques and reference datasets are shared by the community, there is a lack of detailed specifications of application needs that can guide lossy compression researchers and developers. This report fills this gap by reporting on the requirements and constraints of nine scientific applications covering a large spectrum of domains (climate, combustion, cosmology, fusion, light sources, molecular dynamics, quantum circuit simulation, seismology, and system logs). The report also details key lossy compression technologies (SZ, ZFP, MGARD, LC, SPERR, DCTZ, TEZip, LibPressio), discussing their history, principles, error control, hardware support, features, and impact. By presenting both application needs and compression technologies, the report aims to inspire new research to fill existing gaps.
Cite
@article{arxiv.2503.20031,
title = {Lossy Compression of Scientific Data: Applications Constrains and Requirements},
author = {Franck Cappello and Allison Baker and Ebru Bozda and Martin Burtscher and Kyle Chard and Sheng Di and Paul Christopher O Grady and Peng Jiang and Shaomeng Li and Erik Lindahl and Peter Lindstrom and Magnus Lundborg and Kai Zhao and Xin Liang and Masaru Nagaso and Kento Sato and Amarjit Singh and Seung Woo Son and Dingwen Tao and Jiannan Tian and Robert Underwood and Kazutomo Yoshii and Danylo Lykov and Yuri Alexeev and Kyle Gerard Felker},
journal= {arXiv preprint arXiv:2503.20031},
year = {2025}
}
Comments
33 pages