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Introduction and Analysis of an Event-Based Sign Language Dataset

机译:基于事件的手语数据集的介绍与分析

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Human gestures recognition is a complex visual recognition task where motion across time distinguishes the type of action. Automatic systems tackle this problem using complex machine learning architectures and training datasets. In recent years, the use and success of robust deep learning techniques was compatible with the availability of a great number of these sets. This paper presents SL-Animals-DVS, an event-based action dataset captured by a Dynamic Vision Sensor (DVS). The DVS records humans performing sign language gestures of various animals as a continuous spike flow at very low latency. This is especially suited for sign language gestures which are usually made at very high speeds. We also benchmark the recognition performance on this data using two state-of-the-art Spiking Neural Networks (SNN) recognition systems. SNNs are naturally compatible to make use of the temporal information that is provided by the DVS where the information is encoded in the spike times. The dataset has about 1100 samples of 58 subjects performing 19 sign language gestures in isolation at different scenarios, providing a challenging evaluation platform for this emerging technology.
机译:人体手势识别是一个复杂的视觉识别任务,其中跨越时间的运动区分动作的类型。自动系统使用复杂的机器学习架构和训练数据集来解决这个问题。近年来,强大的深度学习技术的使用和成功与大量这些集合的可用性兼容。本文提出了由动态视觉传感器(DVS)捕获的基于事件的动作数据集的SL-动物DVS。 DVS记录人类在非常低的延迟下作为连续尖峰流量进行各种动物的手语姿势。这尤其适用于使用非常高速制作的手语手势。我们还使用两种最先进的尖刺神经网络(SNN)识别系统来基准对此数据的识别性能。 SNN天然兼容,以利用由DVS提供的时间信息,其中信息在峰值时间中编码。数据集具有大约1100个样本的58个受试者,在不同的场景中隔离执行19个手语手势,为此新兴技术提供了一个具有挑战性的评估平台。

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