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A Posture Recognition Method Applied to Smart Product Service

机译:一种应用于智能产品服务的姿势识别方法

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Product service system (PSS), an undeveloped business model, provides consumers with full-life cycle services from the perspective of products, functions and services. This paper proposes a posture recognition method based on smart product service system from the aspects of technology and user' need. A Posture-CNN model based on the convolutional neural network (CNN) is established in this paper. According to the theory of PSS, this paper analyses the difficulties that the posture recognition technology is facing in the application of products, and resolves the existing problems such as low accuracy of recognition and unsupported complex environment. A self-made posture data set is tested with the results that the method can greatly reduce network parameters and improve network speed compared with other existing classification methods. To some extent, as a core technology of the PSS control terminal, this technology can perfect users' experiences, better serve consumers and promote the development of the PSS.
机译:产品服务系统(PSS)是未开发的业务模式,为消费者提供了从产品,功能和服务的角度来看具有全生活周期服务的消费者。本文提出了一种基于技术和用户需求方面的智能产品服务系统的姿态识别方法。本文建立了基于卷积神经网络(CNN)的姿势-CNN模型。根据PSS理论,本文分析了姿势识别技术在产品应用中面临的困难,并解决了现有的问题,如识别和不支持的复杂环境的低准确性。使用其他现有分类方法进行测试,通过结果测试了一种自制姿势数据集,结果可以大大降低网络参数并提高网络速度。在某种程度上,作为PSS控制终端的核心技术,这项技术可以完善用户的经验,更好地为消费者提供服务,促进PSS的发展。

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