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Perceptual video coding method based on JND and AR model 被引量:1
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作者 王翀 赵力 邹采荣 《Journal of Southeast University(English Edition)》 EI CAS 2010年第3期384-388,共5页
In order to achieve better perceptual coding quality while using fewer bits, a novel perceptual video coding method based on the just-noticeable-distortion (JND) model and the auto-regressive (AR) model is explore... In order to achieve better perceptual coding quality while using fewer bits, a novel perceptual video coding method based on the just-noticeable-distortion (JND) model and the auto-regressive (AR) model is explored. First, a new texture segmentation method exploiting the JND profile is devised to detect and classify texture regions in video scenes. In this step, a spatial-temporal JND model is proposed and the JND energy of every micro-block unit is computed and compared with the threshold. Secondly, in order to effectively remove temporal redundancies while preserving high visual quality, an AR model is applied to synthesize the texture regions. All the parameters of the AR model are obtained by the least-squares method and each pixel in the texture region is generated as a linear combination of pixels taken from the closest forward and backward reference frames. Finally, the proposed method is compared with the H.264/AVC video coding system to demonstrate the performance. Various sequences with different types of texture regions are used in the experiment and the results show that the proposed method can reduce the bit-rate by 15% to 58% while maintaining good perceptual quality. 展开更多
关键词 perceptual video coding texture synthesis just-noticeable-distortion ar model
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AR Model Based on Time Series Modeling for Predicting Egg Market Price in 2021
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作者 Min YAO Qingmeng LONG +4 位作者 Di ZHOU Jun LI Ping LI Ying SHI Yan WANG 《Agricultural Biotechnology》 CAS 2021年第3期89-93,共5页
Eggs,as a meat consumer product in China,are closely related to the vegetable basket project.Exploring and predicting the future trend of egg market price is of great significance for stabilizing egg price and market ... Eggs,as a meat consumer product in China,are closely related to the vegetable basket project.Exploring and predicting the future trend of egg market price is of great significance for stabilizing egg price and market supply.In this study,the time series AR model was used for fitting the egg market prices in the 66 d from January 1 to March 7,2021,and the delay operator nlag18 was used for white noise test,giving pr>probability of chisq<0.005.The time series was not a white noise series,and then the stationary series was used for modeling.The optimal model was selected as the AR series(BIC(3,0)),and finally,the egg market price model AM was obtained as X_(t)=9.0556+(1+0.8926)ε_(t),which was the optimal model.The model showed that the egg price fluctuations in 2021 will be clustered,and the later price will be significantly affected by external factors in the previous period.The dynamic prediction results of the model showed that the egg price would stop falling in March 2020,and the egg price would continue to slow down in March. 展开更多
关键词 Time series Autocorrelation coefficient Partial correlation coefficient ar model Egg market price
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Parameter Estimation of RBF-AR Model Based on the EM-EKF Algorithm 被引量:6
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作者 Yanhui Xi Hui Peng Hong Mo 《自动化学报》 EI CSCD 北大核心 2017年第9期1636-1643,共8页
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TIME-VARYING AR MODELING AND ADAPTIVE IIR NOTCH FILTER FOR ANTI-JAMMING DSSS RECEIVER
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作者 Feng Jining Yang Xiaobo +1 位作者 Diao Zhejun W.u. Siliang 《Journal of Electronics(China)》 2010年第4期465-473,共9页
Using Time-Varying AR (TVAR) model and adaptive notch filter is a new method for the non-stationary jammer suppression in Direct Sequence Spread Spectrum (DSSS). The performance of TVAR model for Instantaneous Frequen... Using Time-Varying AR (TVAR) model and adaptive notch filter is a new method for the non-stationary jammer suppression in Direct Sequence Spread Spectrum (DSSS). The performance of TVAR model for Instantaneous Frequency (IF) estimation will be affected by some factors such as basis functions. Focusing on this problem, the optimal basis function of TVAR model for the IF estimation of the LFM signal is obtained in this paper. Besides the depth and width of notching, the phase properties of notch filter affect the Signal-to-Interference plus-Noise Ratio (SINR) of correlation output to the narrowband jammer suppression in DSSS, in response to the problem the closed solution of correlation output SINR improvement has been derived when a single frequency jammer passes through direct IIR notch filter, and its performance has been compared with those of five coefficient FIR filters. Later, a novel method for LFM jammer suppression based on Fourier basis TVAR model and direct IIR notch filter is proposed. The simulation results show the effectiveness of the proposed method. 展开更多
关键词 Direct Sequence Spread Spectrum (DSSS) receiver Time-Varying ar (TVar model IIR adaptive notch filter ANTI-JAMMING
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On a Partially Non-Stationary Vector AR Model with Vector GARCH Noises:Estimation and Testing
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作者 Chor-yiu Sin Zichuan Mi Shiqing Ling 《Communications in Mathematical Research》 CSCD 2024年第1期64-101,共38页
This paper studies a partially nonstationary vector autoregressive(VAR)model with vector GARCH noises.We study the full rank and the reduced rank quasi-maximum likelihood estimators(QMLE)of parameters in the model.It ... This paper studies a partially nonstationary vector autoregressive(VAR)model with vector GARCH noises.We study the full rank and the reduced rank quasi-maximum likelihood estimators(QMLE)of parameters in the model.It is shown that both QMLE of long-run parameters asymptotically converge to a functional of two correlated vector Brownian motions.Based these,the likelihood ratio(LR)test statistic for cointegration rank is shown to be a functional of the standard Brownian motion and normal vector,asymptotically.As far as we know,our test is new in the literature.The critical values of the LR test are simulated via the Monte Carlo method.The performance of this test in finite samples is examined through Monte Carlo experiments.We apply our approach to an empirical example of three interest rates. 展开更多
关键词 Vector ar model COINTEGRATION full rank estimation vector GarCH process partially nonstationary reduced rank estimation
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基于D3AR的半球共形阵低空风切变风速估计方法
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作者 李海 唐芳 李双双 《雷达科学与技术》 北大核心 2024年第1期21-28,共8页
针对半球共形阵体制下进行低空风切变检测时会受到强地杂波信号的干扰,导致风切变信号难以检测的问题,提出了一种基于空时自回归的直接数据域算法(Space-Time Autoregressive Direct Data Domain,D3AR)的低空风切变风速估计方法。该方... 针对半球共形阵体制下进行低空风切变检测时会受到强地杂波信号的干扰,导致风切变信号难以检测的问题,提出了一种基于空时自回归的直接数据域算法(Space-Time Autoregressive Direct Data Domain,D3AR)的低空风切变风速估计方法。该方法首先将待检测距离单元的数据从空域、时域以及空时域进行信号对消处理;然后将处理后的数据矩阵描述为空时自回归(Autoregression,AR)模型并估计模型参数;再通过构造与杂波子空间正交的空间来实现对杂波的抑制,最后通过提取待检测单元的最大多普勒频率来估计风场速度。根据仿真结果显示,该方法有效地实现了地杂波抑制,并且能够精确估计风速。 展开更多
关键词 半球共形阵 低空风切变 ar模型 风速估计
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基于自适应AR模型巡航飞行参数预测研究
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作者 钱宇 王立新 +1 位作者 张恒 刘瑜 《计算机应用与软件》 北大核心 2024年第4期73-79,共7页
为更准确实现飞行参数趋势预测,提出一种基于自适应自回归(AR)模型的稳定巡航飞行参数预测方法。根据稳定巡航参数筛选条件,获取建模所需飞行参数。利用卡尔曼滤波原理估计AR模型参数,并与飞行参数构建系统方程,利用无迹卡尔曼滤波实时... 为更准确实现飞行参数趋势预测,提出一种基于自适应自回归(AR)模型的稳定巡航飞行参数预测方法。根据稳定巡航参数筛选条件,获取建模所需飞行参数。利用卡尔曼滤波原理估计AR模型参数,并与飞行参数构建系统方程,利用无迹卡尔曼滤波实时更新、修正AR模型参数估计值,将自适应AR模型的预测值与曲线拟合模型和灰色模型的预测值进行对比。以波音B777-300ER飞机的快速存取记录器数据样本进行仿真验证,结果表明:自适应AR模型在数据预测和收敛速率方面均更优,可有效降低预报模型随步数增加导致的精度误差,提高参数预测准确性。研究在飞机维修保障、状态监控与预测等方面具有重要作用。 展开更多
关键词 无迹卡尔曼滤波 自适应ar模型 飞行参数预测 曲线拟合模型 灰色模型
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基于MS(2)-AR-TVTP模型的I_(BD)波动周期非对称性和持续性分析
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作者 陈丽芬 谢新连 林嘉俊 《中国航海》 CSCD 北大核心 2024年第2期65-71,共7页
国际干散货运输市场源于国际贸易的衍生需求,受世界经济的影响,是一个典型的周期性市场。选取1999年11月~2021年12月的波罗的海干散货运价指数(I_(BD))月度数据,在检验序列平稳性的基础上,确定最优滞后长度,构建两区制的时变转换概率马... 国际干散货运输市场源于国际贸易的衍生需求,受世界经济的影响,是一个典型的周期性市场。选取1999年11月~2021年12月的波罗的海干散货运价指数(I_(BD))月度数据,在检验序列平稳性的基础上,确定最优滞后长度,构建两区制的时变转换概率马尔科夫转换自回归模型,分析I_(BD)波动周期的持续时间、转换拐点和非对称性等主要特征。研究结果表明:模型能有效拟合I_(BD)波动周期的主要特征,周期平均持续时间为33.7个月,自2008年9月之后呈缩短态势,上升期和下降期交互更频繁;I_(BD)波动周期具有非对称性,周期内上升期持续时间比下降期长,I_(BD)维持上升期更具有稳定性。周期性特征结果可为干散货航运业造船投资和市场经营提供决策依据。 展开更多
关键词 MS(2)-ar-TVTP模型 I_(BD)波动周期 转换拐点 持续时间
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基于AR-ECM平均差异模型的串联电池组SOC、容量多尺度联合估计方法
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作者 刘芳 余丹 +1 位作者 苏卫星 卜凡涛 《中国电机工程学报》 EI CSCD 北大核心 2024年第10期3937-3948,I0016,共13页
考虑电池单体老化差异所致的电池组不一致性,针对串联电池组荷电状态(state of charge,SOC)、容量估计问题,提出一种基于自回归等效电路模型(autoregression equivalent circuit model,AR-ECM)的平均差异模型(mean-difference model,MDM... 考虑电池单体老化差异所致的电池组不一致性,针对串联电池组荷电状态(state of charge,SOC)、容量估计问题,提出一种基于自回归等效电路模型(autoregression equivalent circuit model,AR-ECM)的平均差异模型(mean-difference model,MDM)。基于此模型,提出串联电池组SOC、容量多尺度联合估计算法。该算法由2个部分组成,一是基于AR-ECM的MDM及差异化模型参数辨识策略:条件辨识策略和定频分组辨识策略;二是基于多时间尺度H无穷滤波(multi-timescale H infinity filter,Mts-HIF)的电池组SOC、容量联合估计算法。通过将所提出MDM中的自回归平均模型(autoregression mean model,AR-MM)与传统MDM中的n阶RC平均模型(nRC mean model,nRC-MM)比较,结果表明所提出的AR-MM在复杂运行工况下具有更优的动态跟随性能。依据最小化信息量准则(akaike information criterion,AIC),AR-MM具有更优的复杂度与精度的权衡。通过与基于多时间尺度扩展卡尔曼滤波(multi-timescale extended Kalman filter,Mts-EKF)联合状态估计算法比较,结果表明所提出的Mts-HIF状态估计算法具有更优的鲁棒性、精度和收敛速度。 展开更多
关键词 串联电池组 自回归等效电路模型 平均差异模型 容量 荷电状态 H无穷滤波
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基于AR-LSTM-BP的CPI组合预测模型
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作者 孙春 庄科俊 崔培贤 《喀什大学学报》 2024年第3期30-34,共5页
针对居民消费价格指数(CPI)预测准确性的问题,提出一种AR-LSTM-BP组合预测模型.首先分别用回归(AR)、长短时记忆网络(LSTM)和BP神经网络这三种模型对CPI预测,并对预测结果进行比较分析;随后引入诱导有序加权调和平均算子(IOWHA)的概念,... 针对居民消费价格指数(CPI)预测准确性的问题,提出一种AR-LSTM-BP组合预测模型.首先分别用回归(AR)、长短时记忆网络(LSTM)和BP神经网络这三种模型对CPI预测,并对预测结果进行比较分析;随后引入诱导有序加权调和平均算子(IOWHA)的概念,构建AR-LSTM-BP组合预测模型.结果表明,IOWHA组合预测模型的误差均小于单项预测模型,预测结果准确性较高,能够更好地反映CPI的波动走势. 展开更多
关键词 CPI 组合预测模型 自回归模型 IOWHA算子
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基于时间序列AR(P)模型的边坡变形预测与应用
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作者 陈子江 《测绘与空间地理信息》 2024年第7期203-206,214,共5页
获取边坡的监测数据进行分析,并预测其接下来的变化趋势,具有重要的意义。本文以贵州省福泉市高坪矿区英坪矿段内边坡工程项目为研究对象,对监测数据采用时间序列AR(P)模型方法进行了分析与预测。研究结果表明,模型拟合的结果和预测精... 获取边坡的监测数据进行分析,并预测其接下来的变化趋势,具有重要的意义。本文以贵州省福泉市高坪矿区英坪矿段内边坡工程项目为研究对象,对监测数据采用时间序列AR(P)模型方法进行了分析与预测。研究结果表明,模型拟合的结果和预测精度较好地反映了监测点的变化趋势,可为矿区边坡模型建立和监测数据的预测提供一定的参考。 展开更多
关键词 矿区边坡 变形监测 时间序列ar(P)模型 预测
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基于声发射AR模型的滚动轴承故障诊断
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作者 田新琦 《物探装备》 2024年第4期257-263,共7页
滚动轴承是旋转机械中应用最广泛的零部件之一,滚动轴承故障诊断方法及其状态监测技术是保障机器安全平稳运行的关键技术之一。采用功率谱分析、经典谱估计等方法,从中提取故障特征信息,完成基于振动加速度信号的轴承状态分析;但由于感... 滚动轴承是旋转机械中应用最广泛的零部件之一,滚动轴承故障诊断方法及其状态监测技术是保障机器安全平稳运行的关键技术之一。采用功率谱分析、经典谱估计等方法,从中提取故障特征信息,完成基于振动加速度信号的轴承状态分析;但由于感知受本体振动及高噪声环境影响,很难完成轴承早期故障损伤表征特征的识别。论文提出具有高频高灵敏度的感知方法与振动检测技术,具有较高信噪比特性,并能够感知小幅的轴承早期故障损伤冲击响应信息,同时采用AR模型方法与功率谱估计方法相结合,可实现轴承早期故障特征识别。此外,以天然气压缩机的高速轴承为分析实例,采用具有高频高灵敏度的声发射感知技术,实现故障特征状态识别与分析,结果表明优于经典谱估计的方法,为轴承故障损伤产生、演变至故障的状态监测及其修正提出可行的理论支持,进一步保障设备运行安全。 展开更多
关键词 声发射技术 滚动轴承 ar模型 故障诊断
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一种基于AR预测模型的波浪测量系统
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作者 周佳宇 郑文彬 +2 位作者 信光成 陈铭堃 陈东 《广东造船》 2024年第5期90-92,49,共4页
本文提出一种基于AR预测模型的波浪测量系统,通过雷达传感器和AR预测模型,可在实时测量波浪数据的基础上,分析波浪走势,预测出未来15s的波浪数据,预测适合母船收放小艇的时机,帮助船员安全收放小艇操作有效减少海上小艇收放的事故发生率... 本文提出一种基于AR预测模型的波浪测量系统,通过雷达传感器和AR预测模型,可在实时测量波浪数据的基础上,分析波浪走势,预测出未来15s的波浪数据,预测适合母船收放小艇的时机,帮助船员安全收放小艇操作有效减少海上小艇收放的事故发生率,提高海上作业安全。 展开更多
关键词 ar模型 波浪测量 波浪预测 小艇收放
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基于AR感官体验的模型玩具盲盒包装设计
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作者 陈鹤勉 吴光远 王炳博 《绿色包装》 2024年第9期79-84,共6页
传统模型玩具盲盒的包装拆开即弃,造成一系列可玩性操作的不足与包装盒资源的浪费。本文采取基于AR感官体验的模型玩具盲盒包装设计方式,制作了作品所需的各个部分,包括角色设计、包装盒外观设计、3D模型制作、AR程序化交互设计等部分,... 传统模型玩具盲盒的包装拆开即弃,造成一系列可玩性操作的不足与包装盒资源的浪费。本文采取基于AR感官体验的模型玩具盲盒包装设计方式,制作了作品所需的各个部分,包括角色设计、包装盒外观设计、3D模型制作、AR程序化交互设计等部分,通过与角色互动程序相链接,实现玩家与所抽中角色的虚拟现实互动功能。本文旨在增强盲盒包装的智能化,丰富包装设计的功能性,增加盲盒产品的可玩性,让玩家获得更好的互动交流体验。 展开更多
关键词 ar技术 盲盒包装 感官体验 模型玩具
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基于JT-AR转换模型的非高斯风荷载特性分析
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作者 孙芳锦 阳立云 +2 位作者 路明璟 张大明 曾倩 《兰州工业学院学报》 2024年第1期64-70,共7页
为了研究大跨度屋盖结构的非高斯风荷载特性,提出一种采用JT-AR转换模型模拟大跨度球面屋盖结构非高斯脉动风压的方法。基于JT变换和AR模型理论进行耦合,提出并构建JT-AR转换模型,模拟生成非高斯脉动风压时程样本数据,与目标功率谱及高... 为了研究大跨度屋盖结构的非高斯风荷载特性,提出一种采用JT-AR转换模型模拟大跨度球面屋盖结构非高斯脉动风压的方法。基于JT变换和AR模型理论进行耦合,提出并构建JT-AR转换模型,模拟生成非高斯脉动风压时程样本数据,与目标功率谱及高阶统计量对比验证;通过已有风洞试验结果与作用在大跨度球面屋盖结构表面的非高斯分布特性作对比验证。结果表明:JT-AR转换模型的模拟结果与风洞试验作用在建筑上的非高斯脉动风具有同等作用效应,其模拟仿真结果具备可靠性及普适性。研究结论为大跨度结构抗风设计提供一种新的模拟方法,可代替复杂的风洞试验。 展开更多
关键词 大跨度屋盖结构 Johnson变换 ar自回归模型 高阶统计量 非高斯脉动风压
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基于出错认知模型的矿山救援AR头盔界面交互设计研究
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作者 李向洲 任嘉炜 《包装工程》 CAS 北大核心 2024年第16期463-470,共8页
目的为更好地减少矿山救援过程中的出错行为,提高矿山救援的成效。方法从出错认知理论出发,分析救援场景下对任务中相关信息的视觉认知行为,从认知加工的四个过程分析得出矿山救援场景下的出错因子,以矿山救援场景AR交互信息为研究对象... 目的为更好地减少矿山救援过程中的出错行为,提高矿山救援的成效。方法从出错认知理论出发,分析救援场景下对任务中相关信息的视觉认知行为,从认知加工的四个过程分析得出矿山救援场景下的出错因子,以矿山救援场景AR交互信息为研究对象进行出错因子认知模拟实验,获得矿山救援场景相较于其他场景具有特殊性的AR头盔交互界面信息设计影响要素。结论依据实验结论,对矿山救援AR头盔交互界面开展信息设计,以提高救援效率,最终输出初步的交互设计方案,通过降低交互界面的认知难度,提高救援人员的反应速度和准确度,保证该系统可以有效降低任务失败率。 展开更多
关键词 ar头盔 矿山救援 出错认知模型 生理反应实验 界面交互
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BIM+AR技术在贵南高铁河池站建设施工管理中的应用
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作者 李春红 赵成成 +3 位作者 卢其峰 黄华 郭祥 黎遵强 《铁路技术创新》 2024年第2期127-132,共6页
鉴于传统BIM技术很难将三维信息模型融入施工现场真实环境中,技术人员无法将BIM与现场深度结合应用的问题,依托贵南高铁河池站建设项目,积极探索“互联网+”、BIM技术、物联网和大数据技术应用。将AR技术与BIM技术相结合,研发基于BIM+A... 鉴于传统BIM技术很难将三维信息模型融入施工现场真实环境中,技术人员无法将BIM与现场深度结合应用的问题,依托贵南高铁河池站建设项目,积极探索“互联网+”、BIM技术、物联网和大数据技术应用。将AR技术与BIM技术相结合,研发基于BIM+AR的辅助施工管理平台。将BIM模型及相关信息加载到移动终端中,利用二维码进行模型与现场匹配的精确定位,通过移动终端平板电脑即可查看模型。在项目现场以真实的比例对建筑的结构、空间、管道设计等进行检查,实现更精准的进度控制和资源管理,取得了一定的经济效益、管理效益和社会效益。 展开更多
关键词 BIM+ar 贵南高铁 站房 施工管理 模型 大数据
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oncausal spatial prediction filtering based on an ARMA model 被引量:8
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作者 Liu Zhipeng Chen Xiaohong Li Jingye 《Applied Geophysics》 SCIE CSCD 2009年第2期122-128,共7页
Conventional f-x prediction filtering methods are based on an autoregressive model. The error section is first computed as a source noise but is removed as additive noise to obtain the signal, which results in an assu... Conventional f-x prediction filtering methods are based on an autoregressive model. The error section is first computed as a source noise but is removed as additive noise to obtain the signal, which results in an assumption inconsistency before and after filtering. In this paper, an autoregressive, moving-average model is employed to avoid the model inconsistency. Based on the ARMA model, a noncasual prediction filter is computed and a self-deconvolved projection filter is used for estimating additive noise in order to suppress random noise. The 1-D ARMA model is also extended to the 2-D spatial domain, which is the basis for noncasual spatial prediction filtering for random noise attenuation on 3-D seismic data. Synthetic and field data processing indicate this method can suppress random noise more effectively and preserve the signal simultaneously and does much better than other conventional prediction filtering methods. 展开更多
关键词 ar model arMA model noncasual random noise self-deconvolved projection filtering
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A new LS+AR model with additional error correction for polar motion forecast 被引量:8
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作者 YAO YiBin YUE ShunQiang CHEN Peng 《Science China Earth Sciences》 SCIE EI CAS 2013年第5期818-828,共11页
Polar motion depicts the slow changes in the locations of the poles due to the earth's internal instantaneous axis of rotation. The LS+AR model is recognized as one of the best models for polar motion prediction.T... Polar motion depicts the slow changes in the locations of the poles due to the earth's internal instantaneous axis of rotation. The LS+AR model is recognized as one of the best models for polar motion prediction.Through statistical analysis of the time series of the LS+AR model's short-term prediction residuals,we found that there is a good correlation of model prediction residuals between adjacent terms.These indicate that the preceding model prediction residuals and experiential adjustment matrixes can be used to correct the next prediction results,thereby forming a new LS+AR model with additional error correction that applies to polar motion prediction.Simulated predictions using this new model revealed that the proposed method can improve the accuracy and reliability of polar motion prediction.In fact,the accuracies of ultra short-term and short-term predictions using the new model were equal to the international best level at present. 展开更多
关键词 nolar motion forecast. LS+ar model correlation coefficient additional error correction
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Identification of Denatured Biological Tissues Based on Improved Variational Mode Decomposition and Autoregressive Model during HIFU Treatment 被引量:2
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作者 Bei Liu Xian Zhang 《Computer Modeling in Engineering & Sciences》 SCIE EI 2022年第3期1547-1563,共17页
During high-intensity focused ultrasound(HIFU)treatment,the accurate identification of denatured biological tissue is an important practical problem.In this paper,a novel method based on the improved variational mode ... During high-intensity focused ultrasound(HIFU)treatment,the accurate identification of denatured biological tissue is an important practical problem.In this paper,a novel method based on the improved variational mode decomposition(IVMD)and autoregressive(AR)model was proposed,which identified denatured biological tissue according to the characteristics of ultrasonic scattered echo signals during HIFU treatment.Firstly,the IVMD method was proposed to solve the problem that the VMD reconstruction signal still has noise due to the limited number of intrinsic mode functions(IMF).The ultrasonic scattered echo signals were reconstructed by the IVMD to achieve denoising.Then,the AR model was introduced to improve the recognition rate of denatured biological tissues.The AR model order parameter was determined by the Akaike information criterion(AIC)and the characteristics of the AR coefficients were extracted.Finally,the optimal characteristics of the AR coefficients were selected according to the results of receiver operating characteristic(ROC).The experiments showed that the signal-to-noise ratio(SNR)and root mean square error(RMSE)of the reconstructed signal obtained by IVMD was better than those obtained by variational mode decomposition(VMD).The IVMD-AR method was applied to the actual ultrasonic scattered echo signals during HIFU treatment,and the support vectormachine(SVM)was used to identify the denatured biological tissue.The results show that compared with sample entropy,information entropy,and energy methods,the proposed IVMD-AR method can more effectively identify denatured biological tissue.The recognition rate of denatured biological tissue was higher,up to 93.0%. 展开更多
关键词 HIFU ultrasonic scattered echo signals IVMD ar model
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