pyDVS:一个可扩展的实时动态视觉传感器模拟器,使用现成的硬件

Garibaldi Pineda Garcia, Patrick Camilleri, Qian Liu, S. Furber
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引用次数: 25

摘要

视觉是我们最重要的感官之一,大量的信息是通过我们的眼睛感知的。神经科学家已经进行了许多研究,将视觉作为他们实验的输入。计算神经科学家通常使用亮度-速率编码,将图像作为基于峰值的视觉源,用于其自然映射。近年来,神经形态动态视觉传感器(neuromorphic Dynamic Vision Sensors, DVSs)被开发出来,虽然它们具有优异的性能,但它们仍然是稀缺和相对昂贵的。我们提出了一个视觉输入系统,灵感来自分布式交换机的行为,但使用传统的数码相机作为传感器和PC来编码图像。通过使用现成的组件,我们相信大多数科学家将能够获得一个真实的脉冲视觉输入源。虽然我们的主要目标是为系统提供实时输入,但我们也成功地将建立良好的图像和视频数据库转换为尖峰列车表示。我们的主要贡献是一个可以扩展的DVS仿真器框架,正如我们通过添加本地抑制行为、自适应阈值和峰值定时编码来演示的那样。
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pyDVS: An extensible, real-time Dynamic Vision Sensor emulator using off-the-shelf hardware
Vision is one of our most important senses, a vast amount of information is perceived through our eyes. Neuroscientists have performed many studies using vision as input to their experiments. Computational neuroscientists have typically used a brightness-to-rate encoding to use images as spike-based visual sources for its natural mapping. Recently, neuromorphic Dynamic Vision Sensors (DVSs) were developed and, while they have excellent capabilities, they remain scarce and relatively expensive. We propose a visual input system inspired by the behaviour of a DVS but using a conventional digital camera as a sensor and a PC to encode the images. By using readily-available components, we believe most scientists would have access to a realistic spiking visual input source. While our primary goal is to provide systems with a live real-time input, we have also been successful in transcoding well established image and video databases into spike train representations. Our main contribution is a DVS emulator framework which can be extended, as we demonstrate by adding local inhibitory behaviour, adaptive thresholds and spike-timing encoding.
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