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Evaluation of Machine Translation Methods applied to Medical Terminologies

机译:对医学术语应用机器翻译方法的评价

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Medical terminologies resources and standards play vital roles in clinical data exchanges, enabling significantly the services' interoperability within healthcare national information networks. Health and medical science are constantly evolving causing requirements to advance the terminologies editions. In this paper, we present our evaluation work of the latest machine translation techniques addressing medical terminologies. Experiments have been conducted leveraging selected statistical and neural machine translation methods. The devised procedure is tested on a validated sample of ICD-11 and ICF terminologies from English to French with promising results.
机译:医学术语资源和标准在临床数据交换中起着重要角色,在医疗保健国家信息网络中显着实现了服务的互操作性。健康和医学科学不断不断发展,导致术语版本的要求。在本文中,我们展示了关于医疗术语的最新机器翻译技术的评估工作。已经进行了采用选择的统计和神经机翻译方法进行实验。设计了设计的程序在ICD-11和ICF术语的经过验证的样本中从英语到法语进行了测试,具有有前途的结果。

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