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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Semi-supervised orthogonal discriminant analysis via label propagation
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Semi-supervised orthogonal discriminant analysis via label propagation

机译:通过标签传播进行半监督正交判别分析

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摘要

Trace ratio is a natural criterion in discriminant analysis as it directly connects to the Euclidean distances between training data points. This criterion is re-analyzed in this paper and a fast algorithm is developed to find the global optimum for the orthogonal constrained trace ratio problem. Based on this problem, we Propose a novel semi-supervised orthogonal discriminant analysis via label propagation. Differing from the existing semi-supervised dimensionality reduction algorithms, Our algorithm propagates the label information from the labeled data to the unlabeled data through a specially designed label propagation, and thus the distribution of the unlabeled data can be explored more effectively to learn a better sub-space. Extensive experiments on toy examples and real-world applications verify the effectiveness of our algorithm, and demonstrate much improvement over the state-of-the-art algorithms.
机译:跟踪比是判别分析中的自然标准,因为它直接与训练数据点之间的欧几里得距离相关。本文对该标准进行了重新分析,并开发了一种快速算法来寻找正交约束线迹比问题的全局最优值。基于这个问题,我们提出了一种通过标签传播的新型半监督正交判别分析方法。与现有的半监督降维算法不同,我们的算法通过专门设计的标签传播将标签信息从标签数据传播到未标签数据,从而可以更有效地探索未标签数据的分布以学习更好的分类-空间。在玩具示例和实际应用中进行的大量实验验证了我们算法的有效性,并证明了与最新算法相比有很多改进。

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