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New Approach for Optimizing the Usage of Situation Recognition Algorithms Within IoT Domains

机译:优化IOT域内情况识别识别算法使用的新方法

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The growth of the Internet of Things (IoT) over the past few years enabled a lot of application domains. Due to the increasing number of IoT connected devices, the amount of generated data is increasing too. Processing huge amounts of data is complex due to the continuously running situation recognition algorithms. To overcome these problems, this paper proposes an approach for optimizing the usage of situation recognition algorithms in Internet of Things domains. The key idea of our approach is to select important data, based on situation recognition purposes, and to execute the situation recognition algorithms after all relevant data have been collected. The main advantage of our approach is that situation recognition algorithms will not be executed each time new data is received, thus allowing the reduction of the situation recognition algorithms execution frequency and saving computational resources.
机译:过去几年的东西互联网(IOT)的增长使得很多应用领域。由于IOT连接设备数量越来越多,所产生的数据量也在增加。由于连续运行的情况识别识别算法,处理大量数据是复杂的。为了克服这些问题,本文提出了一种优化现状识别算法在域域中的情况识别算法的方法。我们方法的关键思想是根据情况识别目的选择重要数据,并在收集所有相关数据后执行情况识别算法。我们的方法的主要优点是每次接收到新数据时都不会执行情况识别算法,从而允许减少情况识别算法执行频率和节省计算资源。

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