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A Knowledge Interchange Format (KIF) for Robots in Cloud

机译:云中机器人的知识交换格式(KIF)

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The most important factor to increase knowledge is to share what is learned. This approach of sharing what is learned is incorporated in robotics so that the robots can solve day to day problems by learning when required. The proposed knowledge interchange format (KIF) deals with communication amongst heterogeneous robots through the cloud. Keeping in mind the size of data, the emphasis has given to generate a representation of the path for robots that can be processed parallelly and saved in the cloud, enabling the sharing of knowledge between robots. In order to achieve this compatibility, a path as a set of characters or a string is considered with a convention that is predefined so that no matter how much the robotics evolves, it can always interpret a string. The string is tested in a Hadoop map-reduce program to process the paths parallelly and provide the best path from the cloud.
机译:增加知识的最重要因素是分享所学。这种共享所学知识的方法已合并到机器人技术中,以便机器人可以通过在需要时进行学习来解决日常问题。提出的知识交换格式(KIF)处理异构机器人之间通过云进行的通信。考虑到数据的大小,重点是生成可以并行处理并保存在云中的机器人路径的表示形式,从而使机器人之间可以共享知识。为了实现此兼容性,将路径视为一组字符或字符串,并使用预先定义的约定,这样,无论机器人技术发展了多少,它始终可以解释字符串。该字符串在Hadoop map-reduce程序中经过测试,可以并行处理路径并提供从云计算的最佳路径。

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