言语、情感、年龄、语言、任务和典型性:试图理清表现和特征相关性

E. Marchi, A. Batliner, Björn Schuller, Shimrit Fridenzon, Shahar Tal, O. Golan
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引用次数: 23

摘要

语音语料库的可用性与典型正相关:我们抽取样本的人群越典型,就越容易获得足够的数据。设想的人口越不典型,就越难以获得足够的数据。患有自闭症谱系疾病的儿童在几个方面是不典型的:他们是孩子,他们可能在实验环境中有问题,他们的语言应该被记录下来,他们属于一个特定的儿童亚群。因此,我们提出了两种可能的策略:首先,我们分析来自不同人群的样本的特征相关性,这并不能直接提高性能,但我们在特定群体中发现了额外的特定特征。其次,我们进行了跨语料库实验,以评估用来自相似种群的数据丰富训练数据是否可以提高分类性能。因此,在这个初步研究中,我们使用了四个不同的说话者样本,他们都产生了一种相同的情绪,此外,中性状态。除了我们自己的ASC-Inclusion数据库外,我们还使用了两个公开可用的数据库,柏林情感演讲数据库和FAU Aibo语料库。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Speech, Emotion, Age, Language, Task, and Typicality: Trying to Disentangle Performance and Feature Relevance
The availability of speech corpora is positively correlated with typicality: The more typical the population is we draw our sample from, the easier it is to get enough data. The less typical the envisaged population is, the more difficult it is to get enough data. Children with Autism Spectrum Condition are atypical in several respect: They are children, they might have problems with an experimental setting where their speech should be recorded, and they belong to a specific subgroup of children. Thus we address two possible strategies: First, we analyse the feature relevance for samples taken from different populations, this is not directly improving performances but we found additional specific features within specific groups. Second, we perform cross-corpus experiments to evaluate if enriching the training data with data obtained from similar populations can increase classification performances. In this pilot study we therefore use four different samples of speakers, all of them producing one and the same emotion and in addition, the neutral state. We used two publicly available databases, the Berlin Emotional Speech database and the FAU Aibo Corpus, in addition to our own ASC-Inclusion database.
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