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Tuberculosis control and the where and why of artificial intelligence

机译:结核病控制以及人工智能的去向和原因

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摘要

Countries aiming to reduce their tuberculosis (TB) burden by 2035 to the levels envisaged by the World Health Organization End TB Strategy need to innovate, with approaches such as digital health (electronic and mobile health) in support of patient care, surveillance, programme management, training and communication. Alongside the large-scale roll-out required for such interventions to make a significant impact, products must stay abreast of advancing technology over time. The integration of artificial intelligence into new software promises to make processes more effective and efficient, endowing them with a potential hitherto unimaginable. Users can benefit from artificial intelligence-enabled pattern recognition software for tasks ranging from reading radiographs to adverse event monitoring, sifting through vast datasets to personalise a patient's care plan or to customise training materials. Many experts forecast the imminent transformation of the delivery of healthcare services. We discuss how artificial intelligence and machine learning could revolutionise the management of TB.
机译:旨在到2035年将结核病负担降低到世界卫生组织《结核病终结战略》所设想的水平的国家需要进行创新,采用数字卫生(电子和移动卫生)等方法来支持患者护理,监测,计划管理,培训和沟通。除了要使此类干预措施产生重大影响所需的大规模推广外,产品还必须与时俱进,紧跟技术发展的步伐。将人工智能集成到新软件中有望使流程更加高效,高效,从而赋予它们迄今为止无法想象的潜力。用户可以从具有人工智能功能的模式识别软件中受益,其任务范围从读取X射线照片到不良事件监控,筛选庞大的数据集以个性化患者的护理计划或定制培训材料。许多专家预测医疗服务的交付即将发生转变。我们讨论了人工智能和机器学习如何革新结核病的管理。

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