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A Cyber Physical System Crowdsourcing Inference Method Based on Tempering: An Advancement in Artificial Intelligence Algorithms

机译:一种基于回火的网络物理系统众包推断方法:人工智能算法的进步

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Activity selection is critical for the smart environment and Cyber-Physical Systems (CPSs) that can provide timely and intelligent services, especially as the number of connected devices is increasing at an unprecedented speed. As it is important to collect labels by various agents in the CPSs, crowdsourcing inference algorithms are designed to help acquire accurate labels that involve high-level knowledge. However, there are some limitations in the algorithm in the existing literature such as incurring extra budget for the existing algorithms, inability to scale appropriately, requiring the knowledge of prior distribution, difficulties to implement these algorithms, or generating local optima. In this paper, we provide a crowdsourcing inference method with variational tempering that obtains ground truth as well as considers both the reliability of workers and the difficulty level of the tasks and ensure a local optimum. The numerical experiments of the real-world data indicate that our novel variational tempering inference algorithm performs better than the existing advancing algorithms. Therefore, this paper provides a new efficient algorithm in CPSs and machine learning, and thus, it makes a new contribution to the literature.
机译:活动选择对于可以提供及时和智能服务的智能环境和网络物理系统(CPS)至关重要,特别是随着所连接设备的数量以前所未有的速度增加。由于CPS中的各种代理收集标签很重要,众包推理算法旨在帮助获得涉及高级知识的准确标签。然而,现有文献中的算法存在一些局限性,例如导致现有算法的额外预算,无能为力地规模,需要先前分配的知识,实现这些算法的困难,或生成本地最优。在本文中,我们提供了一种具有变分的众包推断方法,可获得地面真理,并考虑工作人员的可靠性以及任务的难度水平,并确保局部最佳。实际数据的数值实验表明我们的新型变分钢化推论算法比现有的推进算法更好。因此,本文在CPSS和机器学习中提供了一种新的高效算法,因此,它对文献产生了新的贡献。

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