Design and development of reconfigurable embedded system for real-time acquisition and processing of multichannel ultrasonic signals

被引:7
|
作者
Tarpara, Eaglekumar G. [1 ,2 ]
Patankar, Vaibhav H. [1 ,2 ]
机构
[1] HBNI, Mumbai, Maharashtra, India
[2] BARC, Mumbai, Maharashtra, India
关键词
multiplexing; ultrasonic imaging; data acquisition; embedded systems; signal detection; preamplifiers; demultiplexing; reconfigurable embedded system; multichannel ultrasonic signals; multichannel immersion ultrasonic system; addressing-based analogue; data acquisition unit; common on-chip storage; multichannel imaging system; partial front-end hardware; common-amplifier; back-end embedded system; analogue front-end hardware; real-time hardware-based data processing; data transfer operation; addressing-based reconfigurable architecture; four-channel ultrasonic imaging system; hardware-based coherent averaging; channel multiplexing-demultiplexing; reconfigurable control; software-based post-processing; developed multichannel system; C-scan image acquisition; hardware-based architecture; data acquisition hardware; channel reconfigurable facility; dynamic online reconfiguration; B-scan image acquisition;
D O I
10.1049/iet-smt.2019.0096
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The study proposes a novel hardware-based architecture of the reconfigurable embedded system for the multi-channel immersion ultrasonic system. It provides the addressing-based analogue multiplexing scheme, which requires only one data acquisition unit and common on-chip storage for the multi-channel imaging system. It also provides unique channel reconfigurable facility to the user to modify the number of channels (up to 256 for pulse-echo and 512 for transmit-receive mode by installing only the partial front-end hardware (pulser, pre-amplifier) and without modifying the remaining data acquisition hardware (common-amplifier, digitiser) and back-end embedded system. The developed system further supports dynamic on-line reconfiguration of the analogue front-end hardware, real-time hardware-based data processing, and data transfer operation. The authors have implemented the addressing-based reconfigurable architecture of the coherent averaging for noise reduction. For the experimentation, the complete four-channel ultrasonic imaging system for immersion testing has been designed, developed, and evaluated in the laboratory. Furthermore, this study describes the capability of the proposed system by performing multi-channel real-time data acquisition, hardware-based coherent averaging, channel multiplexing-demultiplexing, reconfigurable control, and software-based post-processing. Here, they present the performance evaluation of the developed multi-channel system by carrying out the B-scan and C-scan image acquisition of the water-immersed mechanical components.
引用
收藏
页码:1048 / 1058
页数:11
相关论文
共 50 条
  • [31] Continuous and Real-Time Data Acquisition Embedded System for EAST
    Li, S.
    Luo, Jiarong R.
    Wu, Yichun C.
    Li, Guiming M.
    Wang, Feng
    Wang, Yong
    IEEE TRANSACTIONS ON NUCLEAR SCIENCE, 2010, 57 (02) : 696 - 699
  • [32] Real-time human action recognition on an embedded, reconfigurable video processing architecture
    Meng, Hongying
    Freeman, Michael
    Pears, Nick
    Bailey, Chris
    JOURNAL OF REAL-TIME IMAGE PROCESSING, 2008, 3 (03) : 163 - 176
  • [33] Real-time human action recognition on an embedded, reconfigurable video processing architecture
    Hongying Meng
    Michael Freeman
    Nick Pears
    Chris Bailey
    Journal of Real-Time Image Processing, 2008, 3 : 163 - 176
  • [34] Real time embedded system development for missile angular position acquisition through image processing
    Moorthi Sridharan
    Sairam Dhandapani
    CSI Transactions on ICT, 2020, 8 (2) : 257 - 261
  • [35] A Reconfigurable Embedded System for 1000 f/s Real-Time Vision
    Komuro, Takashi
    Tabata, Tomohira
    Ishikawa, Masatoshi
    IEEE TRANSACTIONS ON CIRCUITS AND SYSTEMS FOR VIDEO TECHNOLOGY, 2010, 20 (04) : 496 - 504
  • [36] Design and implementation of a low-cost system for real-time video acquisition and processing
    Photonics Center, College of Physics, Nankai University, Tianjin 300071, China
    Guangdianzi Jiguang, 2006, 6 (742-745):
  • [37] Development of a real-time wireless embedded brain signal acquisition/processing system and its application on driver's drowsiness estimation
    Hung-Yi Hsieh
    Sheng-Fu Liang
    Li-Wei Ko
    May Lin
    Chin-Teng Lin
    2006 IEEE INTERNATIONAL CONFERENCE ON SYSTEMS, MAN, AND CYBERNETICS, VOLS 1-6, PROCEEDINGS, 2006, : 4374 - +
  • [38] Embedded System Design of a Real-time Parking Guidance System
    Dokur, Omkar
    Katkoori, Srinivas
    Elmehraz, Nouredddine
    2016 ANNUAL IEEE SYSTEMS CONFERENCE (SYSCON), 2016, : 908 - 915
  • [39] The Test System Design of Real-time Embedded Software System
    Mo Nian-Fa
    2015 SEVENTH INTERNATIONAL CONFERENCE ON MEASURING TECHNOLOGY AND MECHATRONICS AUTOMATION (ICMTMA 2015), 2015, : 1321 - 1324
  • [40] An FPGA-Based Data Acquisition System with Embedded Processing for Real-Time Gas Sensing Applications
    Enemali, Godwin
    Gibson, Ryan M.
    APPLIED SCIENCES-BASEL, 2024, 14 (15):