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The Gong Lab

Yale School of Medicine · Yale Cancer Center

AI for oncology trials, real-world evidence, and precision cancer care

We build clinical informatics and machine learning systems that match patients to trials, structure eligibility at scale, and turn EHR data into actionable research.

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30+ Oncology trials validated with CTPM
53K+ Trials analyzed for eligibility intelligence
OMOP · ML · NLP · LLM Hybrid AI pipelines on real-world EHR data

Research focus

Four interconnected areas where we develop methods and deploy them in cancer care.

Clinical trial patient matching

Clinical trial patient matching

Real-time OMOP-based prescreening across structured and unstructured EHR data.

Eligibility criteria intelligence

Eligibility criteria intelligence

NLP and LLM pipelines to structure, cluster, and visualize trial criteria at scale.

Real-world data and EHR science

Real-world data & EHR science

Computational phenotyping, data integrity, and predictive modeling for research.

Equitable trial access

Equitable trial access

Methods designed to reach underserved and underrepresented patient populations.

From methods to impact

Led by Guannan Gong, PhD, the lab integrates electronic health records, clinical NLP, large language models, and trial evidence synthesis. Our research informs CtrlTrial—translating lab work into tools for real-time clinical trial recruitment at Yale and beyond.

  • 2026 — CTPM validated across 29 oncology trials (JCO Clinical Cancer Informatics)
  • 2026 — Underrepresentation study across three NCI-designated cancer centers (JCO Oncology Advances)
  • 2025 — Blavatnik Accelerator Award for AI-powered trial matching
Research informatics at the Gong Lab
Affiliations Yale School of Medicine Yale Cancer Center Computational Biology & Biomedical Informatics
 

The Gong Lab · Yale School of Medicine · Yale Cancer Center
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