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首页> 外文期刊>Internet of Things Journal, IEEE >Context-Aware Wireless-Based Cross-Domain Gesture Recognition
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Context-Aware Wireless-Based Cross-Domain Gesture Recognition

机译:上下文感知基于无线的跨域手势识别

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摘要

Recently, significant efforts have been made to enable WiFi-based gesture recognition. However, models trained with data collected from specific domain suffer from significant performance degradation when applied in a new domain. In practice, various WiFi sensing techniques have provided us with a full knowledge of domain information including discrete variables, i.e., environment and subject, as well as continuous variables, i.e., location and orientation. Previous works haven't fully explored these domain information or need to integrate substantial links' information to use them. Intuitively, we can boost gesture recognition accuracy by accounting for all these domain information with different properties. We propose a new framework not being restricted to link number which combines an adversarial learning scheme with feature disentanglement modules. They together conduct two-stage alignment between each of the source domains and the target domain to eliminate all gesture irrespective information. We also present an attention scheme based on discriminative information of each source and target domain to promote positive transfer from source to target domain. Our model is evaluated on the Widar 3.0 data set and achieves an improvement of 3%-12.7% in cross-domain average accuracy, demonstrating the superiority.
机译:最近,已经取得了重大努力来实现基于WiFi的手势识别。但是,在新域中应用,从特定域收集的数据培训的模型遭受显着的性能下降。在实践中,各种WiFi感测技术已经为我们提供了完全了解包括离散变量,即环境和主题的域信息,以及连续变量,即位置和方向。以前的作品尚未完全探索这些域信息或需要将大量链接的信息集成以使用它们。直观地,我们可以通过计算具有不同属性的所有这些域信息来促进手势识别准确性。我们提出了一个新的框架,没有被限制为链接号码,该号码与具有特征解剖模块的侵略性学习方案结合起来。它们在一起在每个源极域和目标域之间进行两阶段对准,以消除不管信息的所有手势。我们还基于每个来源和目标领域的辨别信息提出关注方案,以促进从源头到目标领域的正面转移。我们的型号在涉及寡磁场3.0数据集上进行评估,并以跨域平均精度为3%-12.7%的提高,展示了优越性。

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