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MULTIMODAL MACHINE LEARNING FOR EMOTION METRICS

机译:情绪指标的多模态机器学习

摘要

Techniques are described for machine-trained analysis for multimodal machine learning. A computing device captures a plurality of information channels, wherein the plurality of information channels includes contemporaneous audio information and video information from an individual. A multilayered convolutional computing system learns trained weights using the audio information and the video information from the plurality of information channels, wherein the trained weights cover both the audio information and the video information and are trained simultaneously, and wherein the learning facilitates emotional analysis of the audio information and the video information. A second computing device captures further information and analyzes the further information using trained weights to provide an emotion metric based on the further information. Additional information is collected with the plurality of information channels from a second individual and learning the trained weights factors in the additional information. The further information can include only video data or audio data.
机译:描述了用于多模式机器学习的机器训练分析技术。计算设备捕获多个信息信道,其中,多个信息信道包括来自个人的同时的音频信息和视频信息。多层卷积计算系统使用来自多个信息通道的音频信息和视频信息来学习训练后的权重,其中训练后的权重既覆盖音频信息也包括视频信息,并且被同时训练,并且其中学习有助于对情感信息进行情感分析。音频信息和视频信息。第二计算设备捕获另外的信息,并使用训练后的权重来分析另外的信息,以基于另外的信息来提供情绪度量。利用多个信息通道从第二个人收集附加信息,并在附加信息中学习训练后的权重因子。进一步的信息可以仅包括视频数据或音频数据。

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