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Models for predicting similarity between exemplars

机译:样本间相似度的预测模型

摘要

An exemplar dictionary is built from exemplars of digital content for determining predictor blocks for encoding and decoding digital content. The exemplar dictionary organizes the exemplars as clusters of similar exemplars. Each cluster is mapped to a label. Machine learning techniques are used to generate a prediction model for predicting a label for an exemplar. The prediction model can be a hashing function that generates a hash key corresponding to the label for an exemplar. The prediction model learns from a training set based on the mapping from clusters to labels. A new mapping is obtained that improves a measure of association between clusters and labels. The new mapping is used to generate a new prediction model. This process is repeated in order to iteratively refine the machine learning modes generated.
机译:由数字内容的示例构建示例词典,以确定用于编码和解码数字内容的预测器块。范例词典将范例组织为相似范例的集群。每个群集都映射到一个标签。机器学习技术用于生成用于预测示例标签的预测模型。预测模型可以是散列函数,其生成与示例的标签相对应的散列密钥。预测模型基于从聚类到标签的映射从训练集中学习。获得了新的映射,该映射改进了聚类和标签之间的关联度量。新的映射用于生成新的预测模型。重复此过程,以迭代地优化生成的机器学习模式。

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