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Late fusion of individual engines for improved recognition of negative emotion in speech - learning vs. democratic vote

机译:各个引擎的后期融合可改善对语音中负面情绪的识别-学习与民主投票

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摘要

The fusion of multiple recognition engines is known to be able to outperform individual ones, given sufficient independence of methods, models, and knowledge sources. We therefore investigate latefusion of different speech-based recognizers of emotion. Two generally different streams of information are considered: acoustics and linguistics fed by state-of-the-art automatic speech recognition. A total of five emotion recognition engines from different sites that provide heterogeneous output information are integrated by either simple democratic vote or learning `which predictor to trust when\u27. We are able to significantly outperform the best individual engine by fusion, and the so far best reported result on the recently introduced Emotion Challenge task.
机译:已知方法,模型和知识来源具有足够的独立性,因此多个识别引擎的融合能够胜过单个识别引擎。因此,我们调查了不同的基于语音的情感识别器的融合。考虑了两种通常不同的信息流:通过最新的自动语音识别提供的声学和语言学。通过简单的民主投票或学习(可以预测何时信任),将来自不同站点的总共五个情感识别引擎集成在一起,以提供不同的输出信息。通过融合,我们能够大大胜过最好的单个引擎,并且在最近推出的“情感挑战”任务中,迄今为止获得了最好的报道。

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