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Content identification: binary content fingerprinting versus binary content encoding

机译:内容识别:二进制内容指纹与二进制内容编码

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In this work, we address the problem of content identification. We consider content identification as a special case of multiclass classification. The conventional approach towards identification is based on content fingerprinting where a short binary content description known as a fingerprint is extracted from the content. We propose an alternative solution based on elements of machine learning theory and digital communications. Similar to binary content fingerprinting, binary content representation is generated based on a set of trained binary classifiers. We consider several training/encoding strategies and demonstrate that the proposed system can achieve the upper theoretical performance limits of content identification. The experimental results were carried out both on a synthetic dataset with different parameters and the FAMOS dataset of microstructures from consumer packages.
机译:在这项工作中,我们解决了内容识别的问题。我们将内容标识视为多类分类的一种特殊情况。用于识别的常规方法基于内容指纹识别,其中从内容中提取称为指纹的简短二进制内容描述。我们提出了一种基于机器学习理论和数字通信元素的替代解决方案。与二进制内容指纹识别类似,二进制内容表示是基于一组训练有素的二进制分类器生成的。我们考虑了几种训练/编码策略,并证明了所提出的系统可以达到内容识别的理论性能上限。实验结果是在具有不同参数的合成数据集和来自消费包装的FAMOS微观结构数据集上进行的。

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