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Information Retrieval and Recommendation Using Emotion from Speech Signals

机译:使用语音信号中的情感进行信息检索和推荐

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In this paper we describe a system of retrieving information from artwork based on textual cues, descriptive to relative art pieces, made available through the metadata itself. Large datasets of artwork can easily be mined by using alternative queries and search methodologies. In the most common search methodology a text-based query using a keyboard is performed. We are proposing a method for searching, finding and recommending digital media content based on pre-set metadata text queries organized in two categories, then mapped to speech sentiment cues extracted from the emotion layer of speech alone. We also account for the difference in sentiment expression for male and female speakers and further suggest that this differentiation may improve system performance.
机译:在本文中,我们描述了一种基于文本提示从艺术品中检索信息的系统,该文本提示通过相关的元数据本身来描述相关的艺术品。通过使用替代查询和搜索方法,可以轻松地挖掘艺术品的大型数据集。在最常见的搜索方法中,使用键盘执行基于文本的查询。我们正在提议一种方法,该方法用于基于分为两个类别的预设元数据文本查询来搜索,查找和推荐数字媒体内容,然后将其映射到仅从语音情感层提取的语音情感线索。我们还考虑了男性和女性说话者情绪表达的差异,并进一步表明这种差异可能会改善系统性能。

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