Effects of Expert Arbitration on Clinical Outcomes When Disputes Over Diagnosis Arise Between Physicians and Their Artificial Intelligence Counterparts: a Randomized, Multicenter Trial in Pediatric Outpatients
expert arbitration over discordant diagnoses made by AI diagnostic system and human doctors, respectively
Estudio de Tratamiento
Resumen
Fecha de inicio: 1 de noviembre de 2019
Fecha en la que se inscribió al primer participante.Based on the historical clinical data of more than 1 million pediatric outpatients in the Guangzhou Women and Children's Medical Center, an AI diagnostic framework has recently been developed for common pediatric diseases \[Liang H et al. evaluation and accurate diagnosis of pediatric disease using artificial intelligence. Nat Med. 2019;25(3):433-8\]. This AI framework utilizes predefined schema to extract informative clinical data from free text and reaches clinical diagnoses by hypothetico-deductive reasoning. In internal validation, the AI system showed accuracy rates ranging from 0.85 for gastrointestinal disease to 0.98 for neuropsychiatric disorders, suggesting that it might be a promising assisting diagnostic tool in clinical practice. However, there is a lack of evidence-based strategy on how to handle the scenarios where the AI-based diagnosis and the diagnosis made by pediatricians are discordant. It is legitimate to assume that diseases with discordant diagnoses present more similar clinical features; in this case it is necessary to introduce an extra arbitrator for differential and decisive diagnosis. Therefore, we conduct this randomized controlled trial to: 1) compare the accuracy of the two diagnostic modes in a real-world clinical setting where the AI-based diagnosis and the diagnosis made by pediatricians are discordant by introducing an expert arbitrator; and 2) look further into the change of clinical outcomes (hospital revisit and hospitalization in the next 3 months after initial visit; average total outpatient cost) due to introduction of the expert arbitrator. Please note that although the aforementioned AI framework was designed for diagnosis of a wide range of diseases, this clinical trial is limited to outpatients encountered in three specialty clinics, i.e. respirology, gastroenterology, and genito-urology. The reason for this selection is that the discordant diagnoses are assumed to be more common for these two specialties according to the internal validation result.
Protocolo
Esta sección proporciona detalles del plan del estudio, incluyendo cómo está diseñado y qué se está evaluando.Se reclutarán 10.000 pacientes
Número total de participantes que el ensayo clínico espera reclutar.Estudio de Tratamiento
Elegibilidad
Los investigadores buscan pacientes que cumplan ciertos criterios, conocidos como criterios de elegibilidad: estado general de salud o tratamientos previos.Cualquier sexo
Sexo biológico de los participantes elegibles para inscribirse.Hasta 18 Años
Rango de edades de los participantes que pueden unirse al estudio.Voluntarios sanos no permitidos
Indica si personas sanas, sin la condición que se estudia, pueden participar.Criterios
Plan de Estudio
Conoce todos los tratamientos administrados en este estudio, su descripción detallada y en qué consisten.Un solo grupo de intervención está designado en este estudio
0% de probabilidad de ser asignado al grupo placebo
Grupos de Tratamiento
Grupo I
Comparador ActivoObjetivos del Estudio
Objetivos Primarios
Objetivos Secundarios
Centros del Estudio
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Guangzhou Women and Children's Medical Center
Guangzhou, ChinaAbrir Guangzhou Women and Children's Medical Center en Google Maps