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Cancer Radiother ; 25(6-7): 617-622, 2021 Oct.
Artículo en Inglés | MEDLINE | ID: mdl-34175222

RESUMEN

Modern radiotherapy treatment planning is a complex and time-consuming process that requires the skills of experienced users to obtain quality plans. Since the early 2000s, the automation of this planning process has become an important research topic in radiotherapy. Today, the first commercial automated treatment planning solutions are available and implemented in a growing number of clinical radiotherapy departments. It should be noted that these various commercial solutions are based on very different methods, implying a daily practice that varies from one center to another. It is likely that this change in planning practices is still in its infancy. Indeed, the rise of artificial intelligence methods, based in particular on deep learning, has recently revived research interest in this subject. The numerous articles currently being published announce a lasting and profound transformation of radiotherapy planning practices in the years to come. From this perspective, an evolution of initial training for clinical teams and the drafting of new quality assurance recommendations is desirable.


Asunto(s)
Aprendizaje Profundo , Planificación de la Radioterapia Asistida por Computador/métodos , Flujo de Trabajo , Automatización , Retroalimentación , Predicción , Humanos , Órganos en Riesgo , Edición/estadística & datos numéricos , Dosificación Radioterapéutica , Planificación de la Radioterapia Asistida por Computador/tendencias , Programas Informáticos
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