CFP Open
Direct submissions due 2026-03-05 (AoE).
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SURGeLLM 2026 Structured Understanding, Retrieval, and Generation in the LLM Era

ACL 2026 workshop days: July 2–3, 2026 (date/time TBD) · San Diego, California, USA

SURGeLLM is a workshop at ACL 2026 bringing together NLP, IR, data management, and visualization researchers to advance structure-aware understanding, retrieval, generation, and evaluation.

SURGeLLM 2026 banner

At a Glance

Why submit?
Structured artifacts are everywhere — but today’s LLM systems still struggle with faithful reasoning, retrieval, and generation over them.
  • Get feedback from a cross-community audience (NLP × IR × DB × Visualization).
  • Publish archival papers (proceedings) or present non-archival work (discussion-only).
  • Bring new benchmarks, systems, datasets, and lessons learned — including negative results.
Who should submit?
We welcome work from students, researchers, and practitioners.
  • Table QA, Text-to-SQL, schema linking, structured retrieval, chart/map/diagram understanding.
  • Evaluation, robustness, faithfulness, interpretability, and structure-aware agents.
  • Applications in enterprise data, science, healthcare, finance, and more.
Workshop format
A full-day workshop with invited talks and community interaction.
  • Invited talks + panel discussion.
  • Contributed oral presentations and poster session.
  • Student mentoring lunch session (planned).

Topics

  • Methods for tabular understanding and question answering (multi-table reasoning, multi-hop inference, and multimodal integration).
  • Natural language interfaces to structured data (Text-to-SQL, semantic parsing, schema linking, and data discovery).
  • Structure-aware retrieval (tables, cells/rows, chart elements, maps, workflows, and code fragments).
  • Structured generation (text → tables/charts/figures/code) with faithfulness, controllability, and robust evaluation.
  • Agentic systems for structured data understanding and analysis (time series, graphs, tabular, etc).
  • Data-centric AI for LLMs on structured data (representation learning, augmentation, robustness, and domain adaptation).
  • Benchmarking and evaluation (scalability, throughput, contamination, reproducibility, and human-centered assessment).
  • Applications and governance for LLMs over structured data (DataOps, privacy, fairness, and reliability).

Important Dates

All dates
Next key deadline
days left
All deadlines are end-of-day in Anywhere on Earth (AoE).
Direct paper submission deadline
Pre-reviewed ARR commitment deadline
Notification of acceptance
Camera-ready paper due
Workshop dates
All deadlines are end-of-day in Anywhere on Earth (AoE). Add to calendar.

Invited Speakers

All speakers
Invited speakers will be announced once the full lineup is finalized. Please check Updates for announcements.

About

SURGeLLM brings together researchers and practitioners across NLP, information retrieval, data management, and visualization to make structured artifacts (tables, charts, maps, flowcharts, and diagrams) first-class citizens in modern LLM systems — across understanding, retrieval, generation, and evaluation.

  • Structured understanding: robust reasoning and attribution over tables, databases, and other structured artifacts.
  • Structured retrieval: structure-aware retrieval for tables/cells, charts, maps, workflows, and code.
  • Structured generation: text → SQL/table/chart/code with faithfulness, controllability, and reliable evaluation.
  • LLMs + structured data: data-centric methods, benchmarks, and real-world deployments with governance.
  • Community: invited talks, posters, a panel, and a student mentoring lunch session.
We encourage submissions from students and underrepresented communities, and welcome well-supported negative results and lessons learned. Questions: [email protected].

Updates

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