Adjustable shunt-current intensity circuit and system for current conduction treatment of epilepsy

Author:

You Changhua12ORCID,Xue Ning12,Yao Lei3,Yao Pan12,Liu Tiezhu12,Fang Zhen12,Li Li4,Ding Ping5,Liang Shuli6,Liu Chunxiu12

Affiliation:

1. State Key Laboratory of Transducer Technology, Aerospace Information Research Institute (AIR), Chinese Academy of Sciences, Beijing 100094, P. R. China

2. School of Electronic, Electrical and Communication Engineering, University of Chinese Academy of Sciences (UCAS), Beijing 100049, P. R. China

3. School of Microelectronics, Shanghai University, Shanghai 200444, P. R. China

4. SPF Biotechnology Co., Ltd., Beijing 102100, P. R. China

5. Aviation General Hospital, Beijing, 100012, P. R. China

6. Functional Neurosurgery Department, Beijing Children’s Hospital, Capital Medical University, Beijing, P. R. China

Abstract

In this paper, we developed a shunt-current intensity self-adjustable closed-loop control circuit system for current conduction treatment in temporal lobe epilepsy. To examine the dose-response relationship between conductive intensity and therapeutic outcomes of current conduction treatment, the control system consists of neural signal recording module for high-speed data rate acquisition, signal amplification and pre-processing, current shunt module for current conduction, data transmission and control module for real-time data communication with the personal computer and on-off of current conduction. Multithread and queue software architecture was implemented to ensure real-time data transmission, display and analysis by LabVIEW software. Results indicate that the input noise of the system is less than 2 [Formula: see text]Vrms, signal frequency bandwidth range is 1 Hz[Formula: see text]10 kHz, and the shunt-current detection range is 0.1–3000 [Formula: see text]A with the accuracy of above 99.985%, meeting the requirements for the detection of neural electrophysiological signal and the research on the dose-response relationship between conductive intensity and therapeutic outcomes of electronic conduction treatment.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

Publisher

World Scientific Pub Co Pte Ltd

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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