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Research on Image Feature Extraction Method Based on Orthogonal Projection Transformation of Multi-task Learning Technology

机译:基于正交投影技术的图像特征提取方法研究

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When the number of labeled training samples is very small, the sample information we can use would be very little. Because of this, the recognition rates of some traditional image recognition methods are not satisfactory. In order to use some related information that always exist in other databases, which is helpful to feature extraction and can improve the recognition rates, we apply multi-task learning to feature extraction of images. Our researches are based on transferring the projection transformation. Our experiments results on the public AR, FERET and CAS-PEAL databases demonstrate that the proposed approaches are more effective than the general related feature extraction methods in classification performance.
机译:当标记的训练样本的数量非常小时,我们可以使用的示例信息将很少。因此,某些传统图像识别方法的识别率并不令人满意。为了使用始终存在于其他数据库中的一些相关信息,这有助于特征提取,可以提高识别率,我们将多任务学习应用于特征提取图像。我们的研究基于传输投影变换。我们的实验导致公共AR,Feret和Cas-Peal数据库表明,所提出的方法比分类性能的一般相关特征提取方法更有效。

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