A Compact MRI Spectrometer Using Optical Fiber Transmission for Multichannel Signal Acquisition

IF 4.3 2区 综合性期刊 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Liang Xiao;Jiahui Yuan;Jinfeng Xie
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引用次数: 0

Abstract

In magnetic resonance imaging (MRI), the method of acquiring signals close to the receiving coil and transferring the acquisition data via optical fibers can avoid electromagnetic (EM) interference and crosstalk in signal transmission to the greatest extent possible. The challenge lies in determining how to realize data transmission cost-effectively and maintain phase coherence between the radio frequency (RF) generator and the signal receiver. This article presents a design for an optical fiber spectrometer that is based on an optical fiber transmission scheme with lightweight resource consumption. The proposed spectrometer is composed of a main unit and an acquisition unit with four receiving channels. The acquisition data are uploaded to the main unit using the SerialLite II protocol, which has a very high transmission rate and is simple to implement in a field-programmable gate array (FPGA) device. The parameters and instructions are sent to the acquisition unit based on the use of a self-defined packing and conventional 8b/10b encoding, and a 60 MHz clock is also transmitted for decoding and signal sampling. To maintain phase coherence, specific timing information is appended to the downloaded initialization instruction for the digital local oscillator (LO) of the digital down converter (DDC) to ensure time alignment of the initialization events. Test results show that the transmission rate for the acquisition data reaches approximately 1440 Mb/s, and phase coherence is maintained reliably. Imaging experiments in a 0.35 T MRI system achieved satisfactory image quality.
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来源期刊
IEEE Sensors Journal
IEEE Sensors Journal 工程技术-工程:电子与电气
CiteScore
7.70
自引率
14.00%
发文量
2058
审稿时长
5.2 months
期刊介绍: The fields of interest of the IEEE Sensors Journal are the theory, design , fabrication, manufacturing and applications of devices for sensing and transducing physical, chemical and biological phenomena, with emphasis on the electronics and physics aspect of sensors and integrated sensors-actuators. IEEE Sensors Journal deals with the following: -Sensor Phenomenology, Modelling, and Evaluation -Sensor Materials, Processing, and Fabrication -Chemical and Gas Sensors -Microfluidics and Biosensors -Optical Sensors -Physical Sensors: Temperature, Mechanical, Magnetic, and others -Acoustic and Ultrasonic Sensors -Sensor Packaging -Sensor Networks -Sensor Applications -Sensor Systems: Signals, Processing, and Interfaces -Actuators and Sensor Power Systems -Sensor Signal Processing for high precision and stability (amplification, filtering, linearization, modulation/demodulation) and under harsh conditions (EMC, radiation, humidity, temperature); energy consumption/harvesting -Sensor Data Processing (soft computing with sensor data, e.g., pattern recognition, machine learning, evolutionary computation; sensor data fusion, processing of wave e.g., electromagnetic and acoustic; and non-wave, e.g., chemical, gravity, particle, thermal, radiative and non-radiative sensor data, detection, estimation and classification based on sensor data) -Sensors in Industrial Practice
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