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A Mathematical Approach to Correlating Objective Spectro-Temporal Features of Non-linguistic Sounds With Their Subjective Perceptions in Humans

机译:一种将非语言声音的客观频谱-时间特征与其在人类中的主观感知相关联的数学方法

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摘要

Non-linguistic sounds (NLSs) are a core feature of our everyday life and many evoke powerful cognitive and emotional outcomes. The subjective perception of NLSs by humans has occasionally been defined for single percepts, e.g., their pleasantness, whereas many NLSs evoke multiple perceptions. There has also been very limited attempt to determine if NLS perceptions are predicted from objective spectro-temporal features. We therefore examined three human perceptions well-established in previous NLS studies (“Complexity,” “Pleasantness,” and “Familiarity”), and the accuracy of identification, for a large NLS database and related these four measures to objective spectro-temporal NLS features, defined using rigorous mathematical descriptors including stimulus entropic and algorithmic complexity measures, peaks-related measures, fractal dimension estimates, and various spectral measures (mean spectral centroid, power in discrete frequency ranges, harmonicity, spectral flatness, and spectral structure). We mapped the perceptions to the spectro-temporal measures individually and in combinations, using complex multivariate analyses including principal component analyses and agglomerative hierarchical clustering.
机译:非语言声音(NLSs)是我们日常生活的核心特征,许多语言都唤起了强大的认知和情感效果。人们对NLS的主观感知有时是针对单个感知定义的,例如它们的愉悦感,而许多NLS则唤起了多种感知。还进行了非常有限的尝试来确定NLS感知是否根据客观的光谱时态特征进行预测。因此,我们针对大型NLS数据库检查了在以前的NLS研究中已确立的三种人类感知(“复杂性”,“愉快程度”和“熟悉程度”)以及识别的准确性,并将这四种方法与客观的光谱时态NLS相关联使用严格的数学描述符定义的特征,包括激励熵和算法复杂性度量,与峰相关的度量,分形维数估计和各种频谱度量(平均频谱质心,离散频率范围内的功率,谐波,频谱平坦度和频谱结构)。我们使用复杂的多变量分析(包括主成分分析和聚集层次聚类),将感知分别映射到光谱时间量度。

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