Ensemble Prediction Algorithm of Anomaly Monitoring Based on Big Data Analysis Platform of Open-Pit Mine Slope

Author:

Jiang Song1ORCID,Lian Minjie12,Lu Caiwu1ORCID,Gu Qinghua1ORCID,Ruan Shunling1ORCID,Xie Xuecai3ORCID

Affiliation:

1. School of Management, Xi’an University of Architecture and Technology, Shaanxi 710055, China

2. Sinosteel Mining Co. Ltd., Beijing 100080, China

3. College of Resource and Safety Engineering, China University of Mining and Technology (Beijing), Beijing 100083, China

Abstract

With the diversification of pit mine slope monitoring and the development of new technologies such as multisource data flow monitoring, normal alert log processing system cannot fulfil the log analysis expectation at the scale of big data. In order to make up this disadvantage, this research will provide an ensemble prediction algorithm of anomalous system data based on time series and an evaluation system for the algorithm. This algorithm integrates multiple classifier prediction algorithms and proceeds classified forecast for data collected, which can optimize the accuracy in predicting the anomaly data in the system. The algorithm and evaluation system is tested by using the microseismic monitoring data of an open-pit mine slope over 6 months. Testing results illustrate prediction algorithm provided by this research can successfully integrate the advantage of multiple algorithms to increase the accuracy of prediction. In addition, the evaluation system greatly supports the algorithm, which enhances the stability of log analysis platform.

Funder

National Natural Science Foundation of China

Publisher

Hindawi Limited

Subject

Multidisciplinary,General Computer Science

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