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Machine Thinking for Telehealth – Toward the Next Generation of Healthcare

机译:远程医疗的机器思考 - 走向下一代医疗保健

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The revival of artificial intelligence (AI) a few years ago has often been attributed to the success of machine learning (ML), especially the branch of ML known as deep learning (DL). Since the introduction of workable DL, numerous success stories have been widely reported: board games, autonomous driving vehicles, natural language translation, voice recognition, etc. However, for machines to exhibit a high degree of intelligence, they need more than the ability to learn. Indeed, heavy reliance on ML has resulted in widely publicized mishaps that negatively affect people in unexpected ways. For healthcare and other mission-critical applications, intelligent machines need to perform dependably to earn and maintain the trust of human users. To this end, it is necessary to take a holistic view toward AI, one that encompasses multiple facets of what constitutes intelligence. Specifically, this paper previews what thinking machines would be capable of by taking into consideration a machine's ability to abstract and reason, in addition to its ability to learn.
机译:几年前的人工智能(AI)的复兴往往归因于机器学习(ML)的成功,尤其是称为深度学习(DL)的ML的分支。自从介绍可行的DL,众多成功案例已被广泛报道:棋盘游戏,自动驾驶车辆,自然语言翻译,语音识别等,但是,对于高度智能的机器,他们需要的不仅仅是能力学习。事实上,对ML的繁重依赖导致广泛的宣传意外,以意想不到的方式对人们产生负面影响。对于医疗保健和其他关键任务应用,智能机器需要可靠地赚取和维护人类用户的信任。为此,有必要对AI进行全面的视图,其中包含多个方面的构成智能。具体而言,除了学习的能力之外,本文预先考虑到机器的摘要和原因的能力,预览了什么思维机器。

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