1. 南昌航空大学江西省图像处理与模式识别重点实验室,南昌,330063
2. 山东大学信息科学与工程学院,济南,250100
网络首发:2015-12-10,
纸质出版:2015
移动端阅览
贲晛烨 1, 张鹏 1, 2, 等. 均值张量成分分析及其在步态识别中的应用[J]. 西安交通大学学报, 2015,49(12):40-46.
A Mean Tensor Component Analysis and Its Application in Gait Recognition[J]. 2015, 49(12): 40-46.
贲晛烨 1, 张鹏 1, 2, 等. 均值张量成分分析及其在步态识别中的应用[J]. 西安交通大学学报, 2015,49(12):40-46. DOI: 10.7652/xjtuxb201512007.
A Mean Tensor Component Analysis and Its Application in Gait Recognition[J]. 2015, 49(12): 40-46. DOI: 10.7652/xjtuxb201512007.
针对步态识别中非负样本数据存在冗余
且未经中心化的多线性主成分分析保持聚类结构的特征向量不能对应最大特征值
导致识别效果下降的问题
提出一种保持原始张量数据均方长度的均值张量成分分析算法。该算法首先对原始样本任一模式下内积矩阵进行谱分解
计算该模式下相应的特征值和特征向量; 其次
利用获得的特征值和特征向量计算均值向量
并对均值向量值进行降序排列
使较大均值向量值对应的特征向量构成该模式下的低维子空间; 最后
将原始样本投影到该低维子空间
形成特征张量。与多线性主成分分析算法相比
该算法不需要对数据去中心化处理
而是保持非负数据均值向量最大均方欧几里德距离和方向。通过在USF步态数据库和TUM GAID步态数据库进行仿真实验
结果表明
经过均值张量成分分析预处理
在2个步态库上的平均识别率分别高达57%和75%
较其他传统方法的识别率有明显提高。
A novel algorithm named mean tensor component analysis(MTCA)is proposed to solve the low recognition accuracy problem that is caused by redundancy in nonnegative sample data and non-corresponding relationship that the eigenvector which preserves clustering structure in uncentered multilinear principal component analysis(MPCA)does not correspond to the maximum eigenvalues. The algorithm reserves the squared length of original tensor data. Spectral decomposition is performed to the inner-product matrix of original samples in any mode to obtain eigenvalues and corresponding eigenvectors. Then
mean value and mean vector are calculated from the eigenvalues and eigenvectors
and the values of the mean vector are sorted in a descending order so that a subspace is formed from the eigenvectors corresponding to first several largest values of the mean vector. Then a feature tensor is acquired by mapping the original sample to the subspace. A comparison to MPCA shows that the proposed algorithm preserves the squared length and the direction of mean vector of non-negative data without needs of decentralized processing to the data. Experiments on USF and TUM GAID gait databases show that the MTCA algorithm achieves average recognition rate 57% and 75%
respectively
and that the rates are obviously higher than the recognition rates of some conventional methods.
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