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Shared periodic performer movements coordinate interactions in duo improvisations

机译:共享的定期表演者动作协调了即兴演奏中的互动

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Human interaction involves the exchange of temporally coordinated, multimodal cues. Our work focused on interaction in the visual domain, using music performance as a case for analysis due to its temporally diverse and hierarchical structures. We made use of two improvising duo datasets—(i) performances of a jazz standard with a regular pulse and (ii) non-pulsed, free improvizations—to investigate whether human judgements of moments of interaction between co-performers are influenced by body movement coordination at multiple timescales. Bouts of interaction in the performances were manually annotated by experts and the performers’ movements were quantified using computer vision techniques. The annotated interaction bouts were then predicted using several quantitative movement and audio features. Over 80% of the interaction bouts were successfully predicted by a broadband measure of the energy of the cross-wavelet transform of the co-performers’ movements in non-pulsed duos. A more complex model, with multiple predictors that captured more specific, interacting features of the movements, was needed to explain a significant amount of variance in the pulsed duos. The methods developed here have key implications for future work on measuring visual coordination in musical ensemble performances, and can be easily adapted to other musical contexts, ensemble types and traditions.
机译:人与人之间的互动涉及时间上协调的多峰线索的交换。我们的工作集中在视觉领域的互动上,由于其时间上的多样性和层次结构,我们以音乐表演为例进行分析。我们使用了两个即兴的二重奏数据集-(i)具有常规脉搏的爵士标准演奏和(ii)无脉动的自由即兴演奏-研究人类对表演者之间互动时刻的判断是否受到身体运动的影响在多个时间尺度上进行协调。表演中的互动互动由专家手动注释,表演者的动作使用计算机视觉技术进行量化。然后使用几个定量的运动和音频特征来预测带注释的交互动作。通过宽带测量跨表演者在非脉冲二重奏中的运动的交叉小波变换的能量,可以成功地预测超过80%的互动回合。需要一个更复杂的模型,该模型具有多个捕获了运动更具体,相互作用的特征的预测变量,才能解释脉冲二重奏中的大量变化。此处开发的方法对于未来在音乐合奏表演中测量视觉协调度的工作具有关键意义,并且可以轻松地适应其他音乐背景,合奏类型和传统。

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