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The backend design of an environmental monitoring system upon real-time prediction of groundwater level fluctuation under the hillslope

机译:实时预测山坡下地下水位波动的环境监测系统后端设计

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摘要

The groundwater level represents a critical factor to evaluate hillside landslides. A monitoring system upon the real-time prediction platform with online analytical functions is important to forecast the groundwater level due to instantaneously monitored data when the heavy precipitation raises the groundwater level under the hillslope and causes instability. This study is to design the backend of an environmental monitoring system with efficient algorithms for machine learning and knowledge bank for the groundwater level fluctuation prediction. A Web-based platform upon the model-view controller-based architecture is established with technology of Web services and engineering data warehouse to support online analytical process and feedback risk assessment parameters for real-time prediction. The proposed system incorporates models of hydrological computation, machine learning, Web services, and online prediction to satisfy varieties of risk assessment requirements and approaches of hazard prevention. The rainfall data monitored from the potential landslide area at Lu-Shan, Nantou and Li-Shan, Taichung, in Taiwan, are applied to examine the system design.
机译:地下水位是评估山坡滑坡的关键因素。具有实时在线监测功能的实时预测平台上的监视系统对于在暴雨使山坡下的地下水位上升并引起不稳定的情况下即时监测数据的预报水平具有重要意义。本研究旨在设计环境监测系统的后端,该系统具有用于机器学习的有效算法和用于地下水位波动预测的知识库。建立了基于模型视图控制器架构的基于Web的平台,该平台使用Web服务和工程数据仓库技术来支持在线分析过程和反馈风险评估参数,以进行实时预测。拟议的系统结合了水文计算,机器学习,Web服务和在线预测模型,以满足各种风险评估要求和危害预防方法。利用台湾台中市南投县鹿山和李山的潜在滑坡区监测到的降雨数据来检验系统设计。

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