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May 7, 2026Proceedings of the VLDB Endowment0 citations

DeXOR: Enabling xor in Decimal Space for Streaming Lossless Compression of Floating-point Data

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CLChuanyi LvHLHuan LiDYDe Yang

Key Points

  • The research aims to develop a framework that efficiently compresses streaming floating-point data while addressing challenges in precision and smoothness.
  • Introduced the DeXOR framework for encoding decimal-space longest common prefixes and suffixes.
  • Implemented error-tolerant rounding and scaled truncation for accurate decompression.
  • Developed optimized bit management strategies and a robust exception handler for handling floating-point exponents.
  • Achieved a 15% higher compression ratio compared to existing schemes.
  • Recorded a 20% faster decompression speed.
  • Exhibited scalability and robustness across 22 datasets under extreme conditions.

Abstract

With streaming floating-point numbers being increasingly prevalent, effective and efficient compression of such data is critical. Compression schemes must be able to exploit the similarity, or smoothness, of consecutive numbers and must be able to contend with extreme conditions, such as high-precision values or the absence of smoothness. We present DeXOR, a novel framework that enables decimal xor procedure to encode decimal-space longest common prefixes and suffixes, achieving optimal prefix reuse and effective redundancy elimination. To ensure accurate and low-cost decompression even with binary-decimal conversion errors, DeXOR incorporates 1) scaled truncation with error-tolerant rounding and 2) different bit management strategies optimized for decimal xor. Additionally, a robust exception handler enhances stability by managing floating-point exponents, maintaining high compression ratios under extreme conditions. In evaluations across 22 datasets, DeXOR surpasses state-of-the-art schemes, achieving a 15% higher compression ratio and a 20% faster decompression speed while maintaining a competitive compression speed. DeXOR also offers scalability under varying conditions and exhibits robustness in extreme scenarios where other schemes fail.

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Cite This Study

Lv et al. (2026) studied this question.

synapsesocial.com/papers/69fbe2f2164b5133a91a2358https://doi.org/10.14778/3796195.3796200
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