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基于反馈补偿K-means的救援物资需求预测
引用本文:喻慧,张明,喻珏.基于反馈补偿K-means的救援物资需求预测[J].航空计算技术,2016(5):52-56.
作者姓名:喻慧  张明  喻珏
作者单位:南京航空航天大学民航学院,江苏南京,211106
基金项目:国家自然科学基金项目资助(U1233101,71271113);中央高校基本科研业务费项目资助(NS2016062)
摘    要:针对低空应急救援过程中救援物资需求的多样性与不确定性,提出基于反馈补偿K-means相似搜索的物资需求预测算法。通过比较非平稳数据处理方法,采用差分自回归平均移动模型( ARIMA)对历史灾情数据进行平滑处理;将预处理后的灾情数据运用基于反馈补偿的K-means方法进行聚类分析;再对比夹角余弦,杰卡德相似系数以及相关系数这3种方法,搜索出相似度最大历史灾情案例,并线性求解当前低空应急救援所需物资量。实验结果表明,在基于反馈补偿K-means相似搜索的物资需求预测过程中,运用相关系数搜索的误差是最小的,方法不仅提高了大数据处理能力,而且在一定程度上提高了预测精度。

关 键 词:反馈补偿  K-means  ARIMA  相似度  需求预测

Aviation Supplies Demand Forecasting Based on Feedback Compensation K-means Similar Search
Abstract:Aiming at sloving the diversity and uncertainty of the supplies demand in the process of aviation rescue,a prediction algorithm based on feedback compensation K -means similar search is proposed . First,smoothing the historical disaster data through ARIMA model;then,making a cluster analysis on the pretreated disaster data through feedback compensation K -means algorithm; finally, searching out the most similar case in historical disaster data by using correlation coefficient ,and obtaining the current sup-plies demand for aviation rescue through linear contrast .A mass of real seismic data was conducted to ver-ify the validity of the method , and the experimental results show that the forecasting method based on feedback compensation K-means can not only improves the ability of data processing ,but also improves the accuracy of prediction .
Keywords:feedback compensation  K-means  ARIMA  similarity  demand forecasting
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