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Grey GM(1,1) Model with Function-Transfer Method for Wear Trend Prediction and its Application 被引量:11
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作者 LUO You xin 1 , PENG Zhu 2 , ZHANG Long ting 1 , GUO Hui xin 1 , CAI An hui 1 1Department of Mechanical Engineering, Changde Teachers University, Changde 415003, P.R. China 2 Engineering Technology Board, Changsha Cigare 《International Journal of Plant Engineering and Management》 2001年第4期203-212,共10页
Trend forecasting is an important aspect in fault diagnosis and work state supervision. The principle, where Grey theory is applied in fault forecasting, is that the forecast system is considered as a Grey system; the... Trend forecasting is an important aspect in fault diagnosis and work state supervision. The principle, where Grey theory is applied in fault forecasting, is that the forecast system is considered as a Grey system; the existing known information is used to infer the unknown information's character, state and development trend in a fault pattern, and to make possible forecasting and decisions for future development. It involves the whitenization of a Grey process. But the traditional equal time interval Grey GM (1,1) model requires equal interval data and needs to bring about accumulating addition generation and reversion calculations. Its calculation is very complex. However, the non equal interval Grey GM (1,1) model decreases the condition of the primitive data when establishing a model, but its requirement is still higher and the data were pre processed. The abrasion primitive data of plant could not always satisfy these modeling requirements. Therefore, it establishes a division method suited for general data modeling and estimating parameters of GM (1,1), the standard error coefficient that was applied to judge accuracy height of the model was put forward; further, the function transform to forecast plant abrasion trend and assess GM (1,1) parameter was established. These two models need not pre process the primitive data. It is not only suited for equal interval data modeling, but also for non equal interval data modeling. Its calculation is simple and convenient to use. The oil spectrum analysis acted as an example. The two GM (1,1) models put forward in this paper and the new information model and its comprehensive usage were investigated. The example shows that the two models are simple and practical, and worth expanding and applying in plant fault diagnosis. 展开更多
关键词 grey gm (1 1) model fault diagnosis function transfer method trend prediction
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The softening prediction of HSLA steel heat-affected zone based on the grey system 被引量:1
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作者 赵璇 代克杰 杜泽国 《China Welding》 EI CAS 2012年第2期69-72,共4页
The high-strength low-alloy( HSLA ) steel heat-affected zone (HAZ)softening was predicted using a grey model. HSLA steel DILLIMAX690E, NK-HITEN61OU2 and BHW35 were taken as examples in the research on ultra-narrow... The high-strength low-alloy( HSLA ) steel heat-affected zone (HAZ)softening was predicted using a grey model. HSLA steel DILLIMAX690E, NK-HITEN61OU2 and BHW35 were taken as examples in the research on ultra-narrow gap automatic welding technology. Test results turned out to be that the errors between the values calculated by the Grey Model (GM) ( 1,1 ) model and their actual value were less than 2%, indicating that the grey prediction method could accurately reflect the actual situation of the high-strength low-alloy steel heat-affected zone softening. This method will play a crucial role in guiding the applications of HSLA steel welded structures in the future. 展开更多
关键词 grey prediction gm 1 1 model heat-affected zone SOFTENING
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Grey forewarning and prediction for mine water inflowing catastrophe periods
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作者 马其华 曹建军 《Journal of Coal Science & Engineering(China)》 2007年第4期467-470,共4页
Based on the theory of grey system, established GM (1, 1) grey catastrophe predict model for the first time in order to forecast the catastrophe periods of mine water inflowing (not the volume of water inflowing).... Based on the theory of grey system, established GM (1, 1) grey catastrophe predict model for the first time in order to forecast the catastrophe periods of mine water inflowing (not the volume of water inflowing). After establishing the grey predict system of the catastrophe regularity of 10 month-average volume of water inflowing, the grey forewarning for mine water inflowing catastrophe periods was established which was used to analyze water disaster in 400 meter level of Wennan Colliery. Based on residual analysis, it shows that the result of grey predict system is almost close to the actual value. And the scene actual result also shows the reliability of prediction. Both the theoretical analysis and the scene actual result indicate feasibility and reliability of the method of grey catastrophe predict system. 展开更多
关键词 grey theory mine water inflowing catastrophe periods grey forewarning and prediction gm(1 1 grey prediction model residual analysis
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Prediction of the maximum water inflow in Pingdingshan No.8 mine based on grey system theory
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《Journal of Coal Science & Engineering(China)》 2012年第1期55-59,共5页
In order to prevent and control the water inflow of mines, this paper built a new initial GM(1, 1) model to torecast the maximum water inflow according to the principle of new information. The effect of the new init... In order to prevent and control the water inflow of mines, this paper built a new initial GM(1, 1) model to torecast the maximum water inflow according to the principle of new information. The effect of the new initial GM(1, 1) model is not ideal by the concrete example. Then according to the principle of making the sum of the squares of the difference between the calculated sequences and the original sequences, an optimized GM(1, I) model was established. The result shows that this method is a new prediction method which can predict the maximum water inflow accurately. It not only conforms to the guide- line of prevention primarily, but also provides reference standards to managers on making prevention measures. 展开更多
关键词 prediction maximum water inflow grey system theory gm(1 1) model
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A Grey Prediction Model on Vibration Severity Development of a Pump
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作者 ZHAORong-zhen ZHANGYou-yun 《International Journal of Plant Engineering and Management》 2004年第3期131-138,共8页
The method to enhance the precis io n of a grey model GM (1, 1) for predicting the development of vibration severity of a pump is investigated. The rectifying procedures involve the structure and the parameters rega... The method to enhance the precis io n of a grey model GM (1, 1) for predicting the development of vibration severity of a pump is investigated. The rectifying procedures involve the structure and the parameters regarding GM(1,1). A new model based on GM(1, 1), which is GM (E,1,1), is proposed. In GM(E,1,1), the distribution of relative errors rati os between the original series and predicting series obtained by the mean of GM( 1,1) are considered in special points to set up the threshold and adjusting coef ficients to control the modified action and the rectified amount based on distri bution of the original series. The case shows that GM(E, 1, 1) is good at predic ting the vibration severity development of the pump. 展开更多
关键词 grey prediction gm (1 1) vibration severity p ump
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GM(1.1)模型在房地产价格指数预测中的应用 被引量:18
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作者 程亚鹏 张虎 张庆宏 《河北农业大学学报》 CAS CSCD 北大核心 1999年第3期90-93,共4页
本文简要介绍了灰色预测方法GM(1.1)模型的构造与模型检验。利用1998年1~6月中国房地产北京指数建立了北京市房地产价格指数预测模型。经模型检验,该模型预测,精度等级为一级,预测模型可靠。
关键词 灰色预测 gm(1 1)模型 房地产价格指数
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灰色预测模型GM(1.1)在水文预测中的应用——以玛纳斯河为例 被引量:10
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作者 王文明 王文科 杜东 《地下水》 2007年第2期10-12,39,共4页
由于灰色预测模型理论较时间序列预测具有很大的优势,所以在许多领域得到广泛的应用。为将该方法应用于水文与水资源预测,本文以玛纳斯河流量预测为例,应用GM(1.1)灰色预测模型对水文水资源要素进行预测,并分析该预测模型在水文水资源... 由于灰色预测模型理论较时间序列预测具有很大的优势,所以在许多领域得到广泛的应用。为将该方法应用于水文与水资源预测,本文以玛纳斯河流量预测为例,应用GM(1.1)灰色预测模型对水文水资源要素进行预测,并分析该预测模型在水文水资源中的应用。经分析认为,GM(1.1)灰色预测模型对水文水资源要素预测具有重要的意义。 展开更多
关键词 灰色预测 gm(1.1) 水文水资源
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基于GM(1.1)模型的尾矿坝变形趋势预测 被引量:2
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作者 赵小稚 《山东理工大学学报(自然科学版)》 CAS 2012年第5期36-39,共4页
尾矿坝变形趋势预测是矿山尾矿库安全技术管理的重要内容.为了实现对尾矿坝变形趋势的预测,在深入分析尾矿坝变形机理并充分认识尾矿库工程系统及坝体变形数据特性的基础上,采用灰色GM(1.1)模型对尾矿坝的变形进行预测,并结合某金矿尾... 尾矿坝变形趋势预测是矿山尾矿库安全技术管理的重要内容.为了实现对尾矿坝变形趋势的预测,在深入分析尾矿坝变形机理并充分认识尾矿库工程系统及坝体变形数据特性的基础上,采用灰色GM(1.1)模型对尾矿坝的变形进行预测,并结合某金矿尾矿坝变形监测实际数据进行预测.结果表明,模型精度满足要求,灰色GM(1.1)模型用于尾矿坝变形趋势预测具有很好的适用性. 展开更多
关键词 尾矿坝 变形趋势 灰色gm(1 1)预测 预测模型
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基于GM(1.1)模型的出国留学人数预测研究 被引量:4
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作者 柯普 吴广 《价值工程》 2012年第25期318-319,共2页
基于有限的出国留学人数的数据,利用GM(1.1)模型建立了我国出国留学人数的预测模型。结果表明,模型的预测精度等级为好。预测结果为国家有关部门掌握出国留学的趋势,制定有关政策提供了辅助决策依据。
关键词 出国留学人数预测 gm(1 1) 模型误差检验
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Predicting changes in Bitcoin price using grey system theory 被引量:4
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作者 Mahboubeh Faghih Mohammadi Jalali Hanif Heidari 《Financial Innovation》 2020年第1期235-246,共12页
Bitcoin is currently the leading global provider of cryptocurrency.Cryptocurrency allows users to safely and anonymously use the Internet to perform digital currency transfers and storage.In recent years,the Bitcoin n... Bitcoin is currently the leading global provider of cryptocurrency.Cryptocurrency allows users to safely and anonymously use the Internet to perform digital currency transfers and storage.In recent years,the Bitcoin network has attracted investors,businesses,and corporations while facilitating services and product deals.Moreover,Bitcoin has made itself the dominant source of decentralized cryptocurrency.While considerable research has been done concerning Bitcoin network analysis,limited research has been conducted on predicting the Bitcoin price.The purpose of this study is to predict the price of Bitcoin and changes therein using the grey system theory.The first order grey model(GM(1,1))is used for this purpose.It uses a firstorder differential equation to model the trend of time series.The results show that the GM(1,1)model predicts Bitcoin’s price accurately and that one can earn a maximum profit confidence level of approximately 98%by choosing the appropriate time frame and by managing investment assets. 展开更多
关键词 Cryptocurrency Bitcoin grey system theory gm(1 1)model prediction
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A strip thickness prediction method of hot rolling based on D_S information reconstruction 被引量:1
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作者 孙丽杰 邵诚 张利 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第6期2192-2200,共9页
To improve prediction accuracy of strip thickness in hot rolling, a kind of Dempster/Shafer(D_S) information reconstitution prediction method(DSIRPM) was presented. DSIRPM basically consisted of three steps to impleme... To improve prediction accuracy of strip thickness in hot rolling, a kind of Dempster/Shafer(D_S) information reconstitution prediction method(DSIRPM) was presented. DSIRPM basically consisted of three steps to implement the prediction of strip thickness. Firstly, iba Analyzer was employed to analyze the periodicity of hot rolling and find three sensitive parameters to strip thickness, which were used to undertake polynomial curve fitting prediction based on least square respectively, and preliminary prediction results were obtained. Then, D_S evidence theory was used to reconstruct the prediction results under different parameters, in which basic probability assignment(BPA) was the key and the proposed contribution rate calculated using grey relational degree was regarded as BPA, which realizes BPA selection objectively. Finally, from this distribution, future strip thickness trend was inferred. Experimental results clearly show the improved prediction accuracy and stability compared with other prediction models, such as GM(1,1) and the weighted average prediction model. 展开更多
关键词 grey relational degree gm(1 1) model Dempster/Shafer (D_S) method least square method thickness prediction
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加权GM(1.1)模型在地铁沉降监测中的应用 被引量:5
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作者 赵建飞 张俊中 李东辉 《测绘与空间地理信息》 2015年第5期56-58,共3页
GM(1,1)模型中的新数据的重要性远远大于那些陈旧的数据,然而,传统的GM(1,1)模型数据的累加并没有体现出新数据的重要性。通过对广州地铁五号线沉降监测数据进行处理,分别建立传统的GM(1,1)模型和加权GM(1,1)模型,对两种模型进行分析与... GM(1,1)模型中的新数据的重要性远远大于那些陈旧的数据,然而,传统的GM(1,1)模型数据的累加并没有体现出新数据的重要性。通过对广州地铁五号线沉降监测数据进行处理,分别建立传统的GM(1,1)模型和加权GM(1,1)模型,对两种模型进行分析与预报,比较的结果验证了加权GM(1,1)模型在地铁沉降变形分析中的有效性、实用性和正确性。 展开更多
关键词 gm(1 1)模型 地铁沉降 预测
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Grey System Judgment on Reliability of Mechanical Equipment 被引量:7
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作者 LUO You xin, GUO Hui xin, ZHANG Long ting, CAI An hui, PENG Zhu Department of Mechanical Engineering,Changde Teachers University, Changde 415003, P.R.China 《International Journal of Plant Engineering and Management》 2001年第3期156-163,共8页
he Grey system theory -was applied in reliability analysis of mechanical equip-ment. It is a new theory and method in reliability engineering of mechanical engineering of mechanical equipment. Through the Grey forecas... he Grey system theory -was applied in reliability analysis of mechanical equip-ment. It is a new theory and method in reliability engineering of mechanical engineering of mechanical equipment. Through the Grey forecast of reliability parameters and the reliability forecast of parts and systems, decisions were made in the real operative state of e-quipment in real time. It replaced the old method that required mathematics and physical statistics in a large base of test data to obtain a pre-check , and it was used in a practical problem. Because of applying the data of practical operation state in real time, it could much more approach the real condition of equipment; it-was applied to guide the procedure and had rather considerable economic and social benefits. 展开更多
关键词 grey gm(1 1) model fault diagnosis trend prediction grey judgement RELIABILITY
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Application of Grey System GM (1,1) model and unary linear regression model in coal consumption of Jilin Province 被引量:1
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作者 TIAN Songlin LU Laijun 《Global Geology》 2015年第1期26-31,共6页
The data on the coal production and consumption in Jilin Province for the last ten years were collected,and the Grey System GM( 1,1) model and unary linear regression model were applied to predict the coal consumption... The data on the coal production and consumption in Jilin Province for the last ten years were collected,and the Grey System GM( 1,1) model and unary linear regression model were applied to predict the coal consumption of Jilin Production in 2014 and 2015. Through calculation,the predictive value on the coal consumption of Jilin Province was attained,namely consumption of 2014 is 114. 84 × 106 t and of 2015 is 117. 98 ×106t,respectively. Analysis of error data indicated that the predicted accuracy of Grey System GM( 1,1) model on the coal consumption in Jilin Province improved 0. 21% in comparison to unary linear regression model. 展开更多
关键词 grey System gm 1 1 model unary linear regression model model test prediction coal con-sumption Jilin Province
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基于GM(1.1)模型的陕西省旅游发展研究
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作者 张刚 《价值工程》 2012年第29期272-273,共2页
建立了旅游经济发展的灰色GM(1.1)预测模型,对陕西省旅游经济发展状况进行了预测研究,数值计算结果表明了该方法的有效性。
关键词 旅游经济 gm(1.1)模型 预测
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基于GM(1,1)模型预测我国未来化工企业安全生产形势 被引量:3
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作者 马杰 宋建池 《安全与环境工程》 CAS 2009年第5期89-92,共4页
根据2004—2008年我国化工企业较大事故级别以上的统计数据,应用灰色系统GM(1,1)模型,选用二阶弱化算子法与三点平滑法相结合对原始数据进行预处理,对未来我国化工企业安全生产形势进行了预测,为化工企业与安全监管部门的安全管理和安... 根据2004—2008年我国化工企业较大事故级别以上的统计数据,应用灰色系统GM(1,1)模型,选用二阶弱化算子法与三点平滑法相结合对原始数据进行预处理,对未来我国化工企业安全生产形势进行了预测,为化工企业与安全监管部门的安全管理和安全决策提供了科学、定量的依据。 展开更多
关键词 gm(1 1)模型 数据预处理 化工事故 预测
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高校图书流通量的优化灰导数白化值的无偏灰色GM(1,1)模型预测 被引量:1
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作者 包红 刘臻 《农业图书情报学刊》 2011年第2期65-68,共4页
通过优化灰导数白化值,建立了无偏灰色GM(1,1)模型。并用此模型对九江学院图书馆2004~2009年化学类图书借阅量进行了预测,结果表明,预测结果精度较高,可为图书馆图书流通管理提供更为可靠的依据。
关键词 数据预测 图书流通量 白化值 无偏gm(1 1)
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基于数据融合算法优化的GM(1,1)模型在矿区地表沉降中的应用 被引量:2
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作者 杨军 马大喜 《温州大学学报(自然科学版)》 2014年第2期51-57,共7页
矿区地表沉降一直以来是矿山安全管理部门关注的重点,准确地预测矿区地表沉降可以给矿山安全带来指导性的意义.运用"幂函数-指数函数"的复合变换来提高监测原始数据的平滑度,然后对具有多个沉降监测数据的特定年份,运用GM(1,1... 矿区地表沉降一直以来是矿山安全管理部门关注的重点,准确地预测矿区地表沉降可以给矿山安全带来指导性的意义.运用"幂函数-指数函数"的复合变换来提高监测原始数据的平滑度,然后对具有多个沉降监测数据的特定年份,运用GM(1,1)模型来预测地表沉降,利用数据融合算法对多次预测的结果进行优化分析,获得精度较高的预测结果.运用该方法对某矿区地表沉降数据进行预测,结果表明该模型具有良好的预测能力. 展开更多
关键词 数据融合 复合变换 gm(1 1)模型 沉降预测
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Improvement and application of GM(1,1) model based on multivariable dynamic optimization 被引量:14
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作者 WANG Yuhong LU Jie 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2020年第3期593-601,共9页
For the classical GM(1,1)model,the prediction accuracy is not high,and the optimization of the initial and background values is one-sided.In this paper,the Lagrange mean value theorem is used to construct the backgrou... For the classical GM(1,1)model,the prediction accuracy is not high,and the optimization of the initial and background values is one-sided.In this paper,the Lagrange mean value theorem is used to construct the background value as a variable related to k.At the same time,the initial value is set as a variable,and the corresponding optimal parameter and the time response formula are determined according to the minimum value of mean relative error(MRE).Combined with the domestic natural gas annual consumption data,the classical model and the improved GM(1,1)model are applied to the calculation and error comparison respectively.It proves that the improved model is better than any other models. 展开更多
关键词 grey prediction gm(1 1)model background value grey system theory
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A self-adaptive grey forecasting model and its application
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作者 TANG Xiaozhong XIE Naiming 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2022年第3期665-673,共9页
GM(1,1)models have been widely used in various fields due to their high performance in time series prediction.However,some hypotheses of the existing GM(1,1)model family may reduce their prediction performance in some... GM(1,1)models have been widely used in various fields due to their high performance in time series prediction.However,some hypotheses of the existing GM(1,1)model family may reduce their prediction performance in some cases.To solve this problem,this paper proposes a self-adaptive GM(1,1)model,termed as SAGM(1,1)model,which aims to solve the defects of the existing GM(1,1)model family by deleting their modeling hypothesis.Moreover,a novel multi-parameter simultaneous optimization scheme based on firefly algorithm is proposed,the proposed multi-parameter optimization scheme adopts machine learning ideas,takes all adjustable parameters of SAGM(1,1)model as input variables,and trains it with firefly algorithm.And Sobol’sensitivity indices are applied to study global sensitivity of SAGM(1,1)model parameters,which provides an important reference for model parameter calibration.Finally,forecasting capability of SAGM(1,1)model is illustrated by Anhui electricity consumption dataset.Results show that prediction accuracy of SAGM(1,1)model is significantly better than other models,and it is shown that the proposed approach enhances the prediction performance of GM(1,1)model significantly. 展开更多
关键词 grey forecasting model gm(1 1)model firefly algo-rithm Sobol’sensitivity indices electricity consumption prediction
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