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Prediction of Flood Severity Level via Processing IoT Sensor Data Using a Data Science Approach

机译:使用数据科学方法处理物联网传感器数据的洪水严重程度预测

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摘要

River flooding is deemed a catastrophic phenomenon caused by extreme climate change and other ecological factors (e.g., amount of sunlight), which are difficult to predict and monitor. However, the use of the Internet of Things (IoT), various types of sensing including social sensing, 5G wireless communication, and big data analysis has devised advanced tools for early prediction and management of distrust events. To this end, this article amalgamates machine learning models and data analytics approaches along-with IoT sensor data to investigate attribute importance for the prediction of risk levels in flooding. The article presents three river levels: normal, medium, and high-risk river levels for machine learning models. Performance is evaluated with varying configurations and evaluations set up including training and testing of support vector machine and random forest using a principal-components-analysis-based dimension reduced dataset. In addition, we investigate the use of synthetic minority oversampling technique to balance the class representations within a dataset. As expected, the results indicate that a “balanced” representation of data samples achieved high accuracy (nearly 93 percent) when benchmarked with “imbalanced” data samples using random forest classifier 10-fold cross-validations.
机译:河流被视为极端气候变化和其他生态因素(例如,阳光量)引起的灾难性现象,这难以预测和监测。然而,使用互联网(物联网),各种类型的感测,包括社会传感,5G无线通信和大数据分析已经设计了用于早期预测和对不信任事件的管理的先进工具。为此,本文合并了机器学习模型和数据分析方法,以及IOT传感器数据,以调查洪水中风险水平预测的属性重要性。本文介绍了三层河水位:机器学习模型的正常,中等和高风险河水位。使用不同的配置和评估评估性能,包括使用基于主组件 - 分析的维数减少数据集的支持向量机和随机林的培训和测试。此外,我们调查了合成少数群体过采样技术的使用来平衡数据集中的类表示。正如预期的那样,结果表明,使用随机林分类器10倍交叉验证的“不平衡”数据样本基准测试时,数据样本的“平衡”表示高精度(近93%)。

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