Basic analog–digital circuit for motion detection based on the vertebrate retina with low power consumption

IF 0.8 Q4 ROBOTICS
Kimihiro Nishio, Arisa Fukuda
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引用次数: 0

Abstract

Basic analog–digital motion detection circuits with low power consumption were proposed based on the vertebrate retina. The motion sensor based on the retina is constructed with a one- or two-dimensional array of the unit circuits. The proposed unit circuit for motion detection is constructed with an analog circuit for photoelectric conversion and the digital circuit for generating the motion signal. The metal oxide semiconductor (MOS) transistors utilized to the analog circuits are operated in the subthreshold region. The analog circuit has the characteristic of the low power consumption. The proposed circuit was evaluated by the simulation program with integrated circuit emphasis (SPICE) with the 0.6 μm complementary metal oxide semiconductor (CMOS) process. The test circuits of basic digital circuits were fabricated with the same process. In the simulation and the experiment, the power supply voltage was set to the low voltage. We found that the digital circuit becomes low power consumption because the MOS transistors was operated in the subthreshold region by setting the low voltage. The proposed circuit is characterized by the simple structure and the low power consumption. In the future, the novel motion detection sensor with low power consumption can be realized by applying the integrated circuits constructed with the array of the proposed unit circuits.

Abstract Image

基于脊椎动物视网膜的低功耗运动检测基本模拟数字电路
以脊椎动物视网膜为基础,提出了低功耗的基本模拟数字运动检测电路。基于视网膜的运动传感器由一维或二维的单元电路阵列构成。拟议的运动检测单元电路由用于光电转换的模拟电路和用于生成运动信号的数字电路构成。模拟电路使用的金属氧化物半导体(MOS)晶体管工作在亚阈值区。模拟电路具有低功耗的特点。所提议的电路是通过 0.6 μm 互补金属氧化物半导体(CMOS)工艺的集成电路仿真程序(SPICE)进行评估的。基本数字电路的测试电路也是采用相同工艺制作的。在仿真和实验中,电源电压被设置为低电压。我们发现,由于设置了低电压,MOS 晶体管工作在亚阈值区,因此数字电路的功耗很低。所提出的电路具有结构简单、功耗低的特点。今后,通过应用由所提单元电路阵列构建的集成电路,可以实现低功耗的新型运动检测传感器。
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来源期刊
CiteScore
2.00
自引率
22.20%
发文量
101
期刊介绍: Artificial Life and Robotics is an international journal publishing original technical papers and authoritative state-of-the-art reviews on the development of new technologies concerning artificial life and robotics, especially computer-based simulation and hardware for the twenty-first century. This journal covers a broad multidisciplinary field, including areas such as artificial brain research, artificial intelligence, artificial life, artificial living, artificial mind research, brain science, chaos, cognitive science, complexity, computer graphics, evolutionary computations, fuzzy control, genetic algorithms, innovative computations, intelligent control and modelling, micromachines, micro-robot world cup soccer tournament, mobile vehicles, neural networks, neurocomputers, neurocomputing technologies and applications, robotics, robus virtual engineering, and virtual reality. Hardware-oriented submissions are particularly welcome. Publishing body: International Symposium on Artificial Life and RoboticsEditor-in-Chiei: Hiroshi Tanaka Hatanaka R Apartment 101, Hatanaka 8-7A, Ooaza-Hatanaka, Oita city, Oita, Japan 870-0856 ©International Symposium on Artificial Life and Robotics
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