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ACM DC4AI 2026 : The International Workshop on Data Compression for AI and Big Data Applications

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Link: https://hpc-and-ai.github.io/DC4AI-2026/
 
When Sep 28, 2026 - Oct 1, 2026
Where Singapore
Submission Deadline Jul 10, 2026
Notification Due Jul 20, 2026
Final Version Due Jul 30, 2026
Categories    compression   AI   big data   HPC
 

Call For Papers

Large Language Models (LLMs) spanning language, vision, audio, and other modalities are rapidly transforming the AI landscape, enabling a wide range of downstream applications. As demand for more capable models continues to rise, both model scale and training data volume have expanded substantially. Training, fine-tuning, and serving such models increasingly rely on large-scale high-performance computing (HPC) systems and remain highly resource- and time-intensive.

Data compression has emerged as a promising means of mitigating communication and data-movement overhead in distributed and parallel environments for modern AI and big-data workloads. Because data movement across the Internet, inter-node networks, and system interconnects has become a major determinant of both runtime and energy consumption, efficient mechanisms for data transfer and analysis are increasingly critical.

This workshop addresses key research challenges in reducing data-movement and communication costs for large-scale AI and big-data applications, including model training, fine-tuning, inference, and emerging LLM-based agent and multi-agent systems.

Topics of interest include but are not limited to:

• Data Compression Methods

  ° Compression Techniques for Structured and Unstructured Scientific Data
  ° Image, Video, and Multimedia Data Compression
  ° Time-series Data Compression
  ° Textual Data Compression (Natural Language, Logs)
  ° Quantization and Data Reduction
  ° Predictive Coding and Transform-based Compression
  ° Dictionary-based and Entropy-based Compression
  ° Tensor Decomposition and Low-rank Approximations
  ° Compression-aware Data Mining and Machine Learning
  ° Compression for Accelerating Data Analytics

• Applying Data Compression in AI-Related Applications and Systems

  ° Large-Scale AI Model Training
  ° Large-Scale AI Model Fine-Tuning
  ° Large-Scale AI Inference/Serving
  ° LLMs-Based Agent and Multi-Agent System Designing
  ° Data Compression for Communication Reduction
  ° Data Compression to Reduce Memory and Storage Overhead

• Hardware Co-Design for Applying Data Compression in Emerging AI Applications, Big Data Applications, and Quantum Computing

  ° GPUs
  ° FPGAs
  ° Quantum Computing Platforms
  ° CXL: Compute Express Link
  ° PIM: Process in Memory
  ° RISC-V
  ° ARM

• Papers should be submitted electronically on the ICPP submission system:

https://ssl.linklings.net/conferences/icpp/

• Paper submission must be in ACM format:

https://www.acm.org/publications/proceedings-template

• DC4AI will accept full papers (limited to 10 pages including references) and short papers (6 pages, including references and appendix).

• Submitted papers will be evaluated by at least 3 reviewers based on technical merits.

• DC4AI encourages submissions to provide artifact description & evaluation.

• Accepted papers that are presented in the workshop will be published in the ACM Digital Library.

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