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Study identifier: NCT06934343 Synced from ClinicalTrials.gov · July 29, 2026
● Recruiting

Machine Learning Approaches to Personalized Therapy for Advanced Non-small Cell Lung Cancer With Real-World Data

Condition: Non-small Cell Lung Cancer  ·  Sponsor: University of Utah

PhaseN/A
Planned participants144400
Who can joinAll sexes, N/A to no upper limit
Healthy volunteersNo

About this study

This research will leverage machine learning (ML) and causal inference techniques applied to real-world data (RWD) to generate evidence that personalizes treatment strategies for patients with advanced non-small cell lung cancer (aNSCLC). Rather than influencing regulatory decisions or clinical guidelines, the goal of this trial is to refine treatment selection among existing therapeutic options, ensuring that care is tailored to individual patient characteristics. Additionally, by generating real-world evidence, these findings will inform the design and implementation of future clinical trials. Importantly, the methodological advancements will establish a pipeline that extends beyond aNSCLC, facilitating the identification of optimal dynamic treatment regimes (DTRs) for other complex diseases.

This description comes directly from the study's public registry record.

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Locations (1)

Huntsman Cancer Institute at the University of UtahSalt Lake City, Utah, United StatesRecruiting

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Source record: clinicaltrials.gov/study/NCT06934343