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CLEESE: An open-source audio-transformation toolbox for data-driven experiments in speech and music cognition

机译:CLEESE:一个开源的音频转换工具箱,用于语音和音乐认知中的数据驱动实验

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摘要

Over the past few years, the field of visual social cognition and face processing has been dramatically impacted by a series of data-driven studies employing computer-graphics tools to synthesize arbitrary meaningful facial expressions. In the auditory modality, reverse correlation is traditionally used to characterize sensory processing at the level of spectral or spectro-temporal stimulus properties, but not higher-level cognitive processing of e.g. words, sentences or music, by lack of tools able to manipulate the stimulus dimensions that are relevant for these processes. Here, we present an open-source audio-transformation toolbox, called CLEESE, able to systematically randomize the prosody/melody of existing speech and music recordings. CLEESE works by cutting recordings in small successive time segments (e.g. every successive 100 milliseconds in a spoken utterance), and applying a random parametric transformation of each segment’s pitch, duration or amplitude, using a new Python-language implementation of the phase-vocoder digital audio technique. We present here two applications of the tool to generate stimuli for studying intonation processing of interrogative vs declarative speech, and rhythm processing of sung melodies.
机译:在过去的几年中,视觉社交认知和面部处理领域受到一系列数据驱动研究的极大影响,这些研究采用计算机图形工具来合成任意有意义的面部表情。在听觉模态中,传统上将反向相关用于表征在频谱或频谱时间刺激特性水平上的感觉处理,但不用于例如认知,听觉和听觉的高级认知处理。缺乏能够操纵与这些过程相关的刺激维度的工具的单词,句子或音乐。在这里,我们介绍了一个名为CLEESE的开源音频转换工具箱,它能够系统地将现有语音和音乐录音的韵律/旋律随机化。 CLEESE的工作方式是:在较小的连续时间段(例如,语音中的每连续100毫秒)中剪切记录,并使用相声码器数字的新Python语言实现,对每个段的音调,持续时间或幅度进行随机参数转换音频技术。我们在此介绍该工具的两个应用,以生成用于研究疑问句和陈述性语音的语调处理以及唱调的节奏处理的刺激。

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