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INTERACTIVE SEGMENT EXTRACTION IN COMPUTER-HUMAN INTERACTIVE LEARNING

机译:计算机 - 人类互动学习中的互动分部提取

摘要

A collection of data that is extremely large can be difficult to search and/or analyze. Relevance may be dramatically improved by automatically classifying queries and web pages in useful categories, and using these classification scores as relevance features. A thorough approach may require building a large number of classifiers, corresponding to the various types of information, activities, and products. Creation of classifiers and schematizers is provided on large data sets. Exercising the classifiers and schematizers on hundreds of millions of items may expose value that is inherent to the data by adding usable meta-data. Some aspects include active labeling exploration, automatic regularization and cold start, scaling with the number of items and the number of classifiers, active featuring, and segmentation and schematization.
机译:可以难以搜索和/或分析非常大的数据集合。通过在有用的类别中自动对查询和网页分类,以及使用这些分类分数作为相关性功能,可以大大改善相关性。彻底的方法可能需要构建大量分类器,对应于各种类型的信息,活动和产品。在大型数据集上提供了分类器和拼写器的创建。锻炼分类器和诡辩器上的数百百万个项目可能会通过添加可用的元数据来曝光数据所固有的值。某些方面包括主动标记探索,自动正则化和冷启动,缩放项目数量和分类器数量,主动特征和分段和原理化。

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