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Use of artificial intelligence in analytical systems for the clinical laboratory

机译:人工智能在临床实验室分析系统中的使用

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The incorporation of information-processing technology into analytical systems in the form of standard computing software has recently been advanced by the introduction of artificial intelligence (AI), both as expert systems and as neural networks.This paper considers the role of software in system operation, control and automation, and attempts to define intelligence. AI is characterized by its ability to deal with incomplete and imprecise information and to accumulate knowledge. Expert systems, building on standard computing techniques, depend heavily on the domain experts and knowledge engineers that have programmed them to represent the real world. Neural networks are intended to emulate the pattern-recognition and parallel processing capabilities of the human brain and are taught rather than programmed. The future may lie in a combination of the recognition ability of the neural network and the rationalization capability of the expert system.In the second part of the paper, examples are given of applications of AI in stand-alone systems for knowledge engineering and medical diagnosis and in embedded systems for failure detection, image analysis, user interfacing, natural language processing, robotics and machine learning, as related to clinical laboratories.It is concluded that AI constitutes a collective form of intellectual propery, and that there is a need for better documentation, evaluation and regulation of the systems already being used in clinical laboratories.
机译:通过引入人工智能(AI)作为专家系统和神经网络,最近以标准计算软件的形式将信息处理技术纳入分析系统的工作得到了推进。本文考虑了软件在系统运行中的作用,控制和自动化,并尝试定义智能。人工智能的特点是能够处理不完整和不精确的信息以及积累知识。基于标准计算技术的专家系统在很大程度上取决于对领域专家和知识工程师进行编程,以代表真实世界。神经网络旨在模拟人脑的模式识别和并行处理能力,并且被教导而不是编程。未来可能取决于神经网络的识别能力和专家系统的合理化能力的结合。本文的第二部分给出了人工智能在知识工程和医学诊断的独立系统中的应用实例。以及在与临床实验室有关的用于故障检测,图像分析,用户界面,自然语言处理,机器人技术和机器学习的嵌入式系统中,得出结论,人工智能构成了智力财产的集体形式,因此需要更好的临床实验室已使用的系统的文档,评估和法规。

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