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TSN: Performance Creative Choreography Based on Twin Sensor Network

机译:TSN:基于双传感器网络的性能创意编排

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The purpose of this paper is to improve the efficiency of performance creative choreography (PCC). Our research work shows that we can realize the model integration and data optimization for PCC in complex environments based on the combined architecture of sensor network (SN) and machine-learning algorithm (MLA). In order to explain the process and content of this research better, this paper designs a specific problem description framework for PCC, which mainly includes the following content: (1) a twin sensor network (TSN) architecture based on digital twin information interaction is proposed, which defines and describes the acquisition method, classification (creative data, rehearsal data, and live data), and temporal and spatial features of performance data. (2) Proposed a mobile computing method based on director semantic annotation (DSA) as the core computing module of TSN. (3) A spatial dynamic line (SDL) model and a creative activation mechanism (CAM) based on DSA are proposed to realize fast and efficient PCC of dance with the TSN architecture. Experimental results show that the TSN architecture proposed in this article is reasonable and effective. The SDL model achieved significantly better performance with little time increase and improved the computability and aesthetics of PCC. New research ideas are proposed to solve the computational problem of PCC in complex environments.
机译:本文的目的是提高性能创造性编排(PCC)的效率。我们的研究工作表明,基于传感器网络(SN)和机器学习算法(MLA)的组合体系结构,我们可以实现复杂环境中PCC模型集成和数据优化。为了解释这项研究的过程和内容更好,本文设计了PCC的特定问题描述框架,主要包括以下内容:(1)提出了基于数字双单信息交互的双传感器网络(TSN)架构,它定义和描述采集方法,分类(创意数据,排练数据和实时数据),以及性能数据的时间和空间特征。 (2)提出了一种基于导演语义注释(DSA)的移动计算方法作为TSN的核心计算模块。 (3)提出了一种基于DSA的空间动态线(SDL)模型和创造性激活机制(CAM),以实现与TSN架构的快速有效的舞蹈PCC。实验结果表明,本文提出的TSN架构是合理且有效的。 SDL模型可实现明显更好的性能,几乎没有时间提高,改善了PCC的可计算性和美学。建议新的研究思路解决了复杂环境中PCC的计算问题。

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