CMOS vision sensor with fully digital image process integrated into low power 1/8-inch chip

被引:0
|
作者
金湘亮 [1 ,2 ]
刘志碧 [1 ]
陈杰 [1 ]
机构
[1] SuperPix Micro Technology Limited
[2] Mechanical and Materials Engineering Department,University of Western Ontario
关键词
CMOS vision sensor with fully digital image process integrated into low power 1/8-inch chip; rate; RGB;
D O I
暂无
中图分类号
TP212 [发送器(变换器)、传感器];
学科分类号
080202 ;
摘要
A digital still camera image processing system on a chip,different from the video camera system,is presented for mobile phone to reduce the power consumption and size.A new color interpolation algorithm is proposed to enhance the image quality.The system can also process fixed patten noise(FPN) reduction, color correction,gamma correction,RGB/YUV space transfer,etc.The chip is controlled by sensor registers by inter-integrated circuit(I;C) interface.The voltage for both the front-end analog and the pad circuits is 2.8 V,and the volatge for the image signal processing is 1.8 V.The chip running under the external 13.5-MHz clock has a video data rate of 30 frames/s and the measured power dissipation is about 75 mW.
引用
收藏
页码:282 / 285
页数:4
相关论文
共 50 条
  • [41] A fully integrated 2.4-GHz receiver in a 0.18-μm CMOS process for low-power Body-Area-Network applications
    Cabuk, Alper
    Do, Aaron V. T.
    Boon, Chim Chye
    Yeo, Kiat-Seng
    Do, Manh Anh
    2007 IEEE BIOMEDICAL CIRCUITS AND SYSTEMS CONFERENCE, 2007, : 171 - 174
  • [42] A 224-448 MHz low-power fully integrated phase-locked loop using 0.18-μm CMOS process
    Tsai, Jeng-Han
    Lin, Chia-Lung
    Kuo, Yin-Ting
    MICROWAVE AND OPTICAL TECHNOLOGY LETTERS, 2017, 59 (07) : 1750 - 1755
  • [43] A 96x96 1V Ultra-low Power CMOS Image Sensor for Biomedical Application
    Wang, Tongxi
    Huang, Xiwei
    Yan, Mei
    Yu, Hao
    Yeo, Kiat Seng
    Cevik, Ismail
    Ay, Suat
    2012 IEEE ASIA PACIFIC CONFERENCE ON CIRCUITS AND SYSTEMS (APCCAS), 2012, : 13 - 16
  • [44] Development of Low Power Cryogenic Readout Integrated Circuits Using Fully-Depleted-Silicon-on-Insulator CMOS Technology for Far-Infrared Image Sensors
    Wada, T.
    Nagata, H.
    Ikeda, H.
    Arai, Y.
    Ohno, M.
    Nagase, K.
    JOURNAL OF LOW TEMPERATURE PHYSICS, 2012, 167 (5-6) : 602 - 608
  • [45] Development of Low Power Cryogenic Readout Integrated Circuits Using Fully-Depleted-Silicon-on-Insulator CMOS Technology for Far-Infrared Image Sensors
    T. Wada
    H. Nagata
    H. Ikeda
    Y. Arai
    M. Ohno
    K. Nagase
    Journal of Low Temperature Physics, 2012, 167 : 602 - 608
  • [46] Development of Low Power Full-Custom 1 Kb 8T Synchronous SRAM for Wireless Sensor Network in 90nm CMOS Process Technology
    Jacinto, Syre Aires Destiny V.
    Nanoz, Allona Jane M.
    Punzalan, Justine Roy A.
    Malabanan, Francis A.
    Santos, Adonis S.
    Tabing, Jay Nickson T.
    Gevana, Sherryl M.
    PROCEEDINGS OF TENCON 2018 - 2018 IEEE REGION 10 CONFERENCE, 2018, : 2366 - 2371
  • [47] A Fully Integrated Low-Power K-Band Chem-Bio-Sensor with On-Chip DC Read-Out in SiGe BiCMOS Technology
    Jamal, F. I.
    Guha, S.
    Eissa, M. H.
    Meliani, C.
    Ng, H. J.
    Kissinger, D.
    Wessel, J.
    2016 46TH EUROPEAN MICROWAVE CONFERENCE (EUMC), 2016, : 273 - 276
  • [48] Fully-integrated CMOS class-E power amplifier using broadband and low-loss 1:4 transmission-line transformer
    Liao, H. -Y.
    Pan, M. -W.
    Chiou, H. -K.
    ELECTRONICS LETTERS, 2010, 46 (22) : 1490 - U27
  • [49] A 120 GHz Fully Integrated 10 Gb/s Short-Range Star-QAM Wireless Transmitter With On-Chip Bondwire Antenna in 45 nm Low Power CMOS
    Deferm, Noel
    Reynaert, Patrick
    IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2014, 49 (07) : 1606 - 1616
  • [50] Single-Chip WiFi b/g/n 1x2 SoC with Fully Integrated Front-end & PMU in 90nm digital CMOS technology
    Jensen, J. C.
    Sadhwani, R.
    Kidwai, A. A.
    Jann, B.
    Oster, A.
    Sharkansky, M.
    Ben-bassat, I.
    Degani, O.
    Porat, S.
    Fridman, A.
    Shang, H.
    Chu, C.
    Ly, A.
    Smith, M.
    2010 IEEE RADIO FREQUENCY INTEGRATED CIRCUITS RFIC SYMPOSIUM, 2010, : 447 - 450