Cross-media training and retrieval method based on depth discrimination sorting learning
A training method and sorting learning technology, applied in the field of machine learning, can solve problems such as ignoring structural information, inability to effectively process large-scale data and high-dimensional data, and inability to adjust feature representation, so as to achieve the effect of saving memory resources
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[0026] In order to make the purpose, technical solution and advantages of the present invention clearer, the cross-media retrieval method based on deep discriminant ranking learning according to the present invention will be described below in conjunction with the accompanying drawings.
[0027] The application of sorting algorithms for cross-media retrieval refers to the sorting of semantically related cross-media data, so that samples with the same label as the query sample appear at the front of the retrieval list, thereby meeting the user's retrieval requirements. Therefore, for retrieval tasks, sorting algorithms are very important. However, the existing ranking learning algorithms for cross-media retrieval usually use traditional feature extraction methods, such as Bag of word, etc. The feature representation of such algorithms is fixed during the learning process, and it is difficult to effectively mine different models. The semantic association between states; at the s...
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