Clinical Trial

Two-component Radiology-guided Autonomous Cascade Engine (TRACE)

Study acronym: TRACE
Recruiting
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Record status
This record was last updated June 16, 2026 (before its estimated July 25, 2026 completion). Its status may not reflect the trial's current state.
Summary
This study employed a prospective, randomised crossover trial design to evaluate the clinical utility of the TRACE artificial intelligence system for gastric cancer T-staging. A total of 54 radiologists from tertiary and non-tertiary hospitals, including both senior and junior practitioners, were enrolled. The study aimed to investigate whether AI-assisted diagnosis could improve the diagnostic accuracy of gastric cancer T-staging compared with independent interpretation by radiologists. All participants were required to interpret 60 contrast-enhanced CT cases sequentially, completing two readings for each case: one without AI assistance and one with AI assistance; The order of the two readings was randomised, and a one-month washout period was observed between readings to eliminate memory bias. All cases were pathologically confirmed gastric cancer cases (stages T1-T4b), and the study simultaneously recorded the physicians' T-staging diagnostic results and the time taken per case. The 60 cases per radiologist were randomly selected from a pool of 1,000 histologically confirmed gastric cancer cases, stratified by pathological T stage T1-T4b. The reference standard was postoperative pathological T stage. The primary outcome was the change in T-staging accuracy between AI-assisted reading and standard (unaided) reading.The term "prospective" in this study refers to the prospective execution of radiologist enrollment, randomization, reading procedures, and data collection.
Trial Details
NCT Number NCT07651644
Lead Sponsor Liaoning Cancer Hospital & Institute
Conditions Gastric Cancer (Diagnosis)
Enrollment 54 participants
Start Date 2026-06-18
Primary Completion 2026-07-25 (estimated)
Study Completion 2026-08-07 (estimated)
Updated on ClinicalTrials.gov 2026-06-16