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Opinion on Different Classification Algorithms Used in Internet of Things Environment for Large Data Set

机译:关于大数据集物联网环境中使用的不同分类算法的意见

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摘要

Nowadays, IoT is an emerging technique and has evolved in many areas such as healthcare, smart homes, agriculture, smart city, education, industries, automation, etc. Many sensor and actuator-based devices deployed in these areas collect data or sense the environment. This data is further used to classify the complicated problem related to the particular environment around us, which also increases efficiency, productivity, accuracy and the economic benefit of the devices. The main aim of this survey article is how the data collected by these sensors in the Internet of Things-based applications are handled and classified by classification algorithms. This survey article also identifies various classification algorithms such as KNN, Random forest logistic regression, SVM with different parameters, such as accuracy cross validation, etc., applied on the large dataset generated by sensor-based devices in various IoT-based applications to classify it. In addition, this article also gives a brief review on advance IoT called CIoT.
机译:如今,物联网是一种新兴技术,已在医疗保健,智能家居,农业,智能城市,教育,工业,自动化等许多领域发展。在这些领域中部署的许多基于传感器和执行器的设备都可以收集数据或感知环境。此数据还用于对与我们周围特定环境相关的复杂问题进行分类,这也可以提高设备的效率,生产率,准确性和经济效益。这篇调查文章的主要目的是如何通过分类算法对这些传感器在基于物联网的应用程序中收集的数据进行处理和分类。本调查文章还确定了各种分类算法,例如KNN,随机森林逻辑回归,具有不同参数的SVM(例如精度交叉验证等),这些算法应用于基于传感器的设备在各种基于IoT的应用程序中生成的大型数据集上进行分类它。此外,本文还简要介绍了称为CIoT的高级物联网。

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