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Null Space Based Image Recognition Using Incremental Eigendecomposition

机译:基于增量特征分解的空空间图像识别

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An incremental approach to the discriminative common vector (DCV) method for image recognition is considered. Discriminative projections are tackled in the particular context in which new training data becomes available and learned subspaces may need continuous updating. Starting from incremental eigendecomposition of scatter matrices, an efficient updating rule based on projections and orthogonalization is given. The corresponding algorithm has been empirically assessed and compared to its batch counterpart. The same good properties and performance results of the original method are kept but with a dramatic decrease in the computation needed.
机译:考虑了用于识别图像的判别性通用向量(DCV)方法的增量方法。在新的训练数据可用且学习的子空间可能需要连续更新的特定情况下,解决了区分性预测。从散射矩阵的本征增量分解开始,给出了基于投影和正交化的有效更新规则。已经根据经验评估了相应的算法,并将其与相应的算法进行了比较。保留了原始方法相同的良好特性和性能结果,但是所需的计算量却大大减少了。

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