A rank encoder:: Adaptive analog to digital conversion exploiting time domain spike signal processing

被引:2
|
作者
Häfliger, P [1 ]
Aasebo, EJ [1 ]
机构
[1] Univ Oslo, Dept Informat, N-0316 Oslo, Norway
关键词
analog to digital conversion (ADC); normalization; rank order code; time domain signal representation; temporal code;
D O I
10.1023/B:ALOG.0000031432.51988.17
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
An electronic circuit is presented that encodes an array of analog input signals into a digital number. The digital output is a 'rank order code' that reflects the relative strength of the inputs, but is independent of the absolute input intensities. In that sense, the circuit performs an adaptive analog to digital conversion, adapting to the average intensity of the inputs (i.e. effectively normalizing) and adapting the quantization levels to the spread of the inputs. Thus, it can convey essential information with a minimal amount of output bits over a huge range of input signals. As a first processing step the analog inputs are projected into the time domain, i.e. into voltage spikes. The latency of those spikes encodes the strength of the input. This conversion enables the circuit to conduct further analog processing steps by asynchronous logic. The circuit was implemented as a prototype on a VLSI chip, fabricated in the AMS 0.6 mum process. The implementation takes 31 analog inputs that are delivered as frequency encoded spike trains by a 5 bit AER (address event representation) bus. The output is 128 bits wide and is read serially in 16-bit packages. Based on tests with one particular set of inputs with an entropy of 112.62 bits, it is estimated that the chip is able to convey 40.81 bits of information about that input set. Possible applications can be found in speech recognition and image processing.
引用
收藏
页码:39 / 51
页数:13
相关论文
共 50 条
  • [21] Analog and Digital Signal Processing for Nuclear Instrumentation
    Thevenin, Mathieu
    Moline, Yoann
    PLASTIC SCINTILLATORS: CHEMISTRY AND APPLICATIONS, 2021, 140 : 309 - 383
  • [22] Analog signal processing functions go digital
    Hendriks, P
    COMPUTER DESIGN, 1998, 37 (07): : 50 - +
  • [23] From Analog to Digital Signal Processing.
    Guggenbuehl, W.
    Bulletin de l'Association suisse des electriciens, 1986, 7 (11): : 606 - 612
  • [24] A scalable and efficient digital signal processing system for real time biological spike detection
    Noubir, Safouane
    Bornat, Yannick
    Le Gal, Bertrand
    2018 25TH IEEE INTERNATIONAL CONFERENCE ON ELECTRONICS, CIRCUITS AND SYSTEMS (ICECS), 2018, : 697 - 700
  • [25] Radar signal extraction and conversion for digital signal processing
    Liu, XH
    Zhao, L
    Liu, WX
    Fu, JS
    2000 2ND INTERNATIONAL CONFERENCE ON MICROWAVE AND MILLIMETER WAVE TECHNOLOGY PROCEEDINGS, 2000, : 575 - 578
  • [26] The Effect of Inaccuracy of Digital-to-Analog Conversion on Properties of the Up-and-Down Method for Digital Signal Processing
    Plocins V.
    Automatic Control and Computer Sciences, 2018, 52 (4) : 317 - 321
  • [27] POWER DIGITAL-TO-ANALOG CONVERSION USING PULSE-WIDTH MODULATION AND DIGITAL SIGNAL-PROCESSING
    HIORNS, RE
    SANDLER, MB
    IEE PROCEEDINGS-G CIRCUITS DEVICES AND SYSTEMS, 1993, 140 (05): : 329 - 338
  • [28] ADAPTIVE DIGITAL MTI SIGNAL PROCESSING
    HANSEN, VG
    CAMPBELL, RB
    FREEDMAN, N
    SHRADER, WW
    IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS, 1973, AES9 (05) : 828 - 828
  • [29] AN ANALOG TO DIGITAL INTERFACE FOR DIGITAL VIDEO SIGNAL-PROCESSING
    WALBROU, P
    IEEE 89 INTERNATIONAL CONFERENCE ON CONSUMER ELECTRONICS: DIGEST OF TECHNICAL PAPERS, 1989, 8 : 308 - 309
  • [30] Wavelength- and time-domain optical preprocessing for analog-to-digital conversion
    Jalali, B
    Bhushan, AS
    Kelkar, P
    LEOS 2000 - IEEE ANNUAL MEETING CONFERENCE PROCEEDINGS, VOLS. 1 & 2, 2000, : 202 - 203