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A Novel Defibrillator-Specific Coprocessor Capable of Running Entropy and CNN Integration Algorithms
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作者 Xuelong Wang Peng Xia +4 位作者 Changjiang Zhou Zhenyi Huang Hao Zhao haipo cui Shiju Yan 《Journal of Biosciences and Medicines》 2024年第11期310-322,共13页
It is difficult for the existing Automated External Defibrillator (AED) on-board microprocessors to accurately classify electrocardiographic signals (ECGs) mixed with Cardiopulmonary Resuscitation artifacts in real-ti... It is difficult for the existing Automated External Defibrillator (AED) on-board microprocessors to accurately classify electrocardiographic signals (ECGs) mixed with Cardiopulmonary Resuscitation artifacts in real-time. In order to improve recognition speed and accuracy of electrocardiographic signals containing Cardiopulmonary Resuscitation artifacts, a new special coprocessor system-on-chip (SoC) for defibrillators was designed. In this study, a microprocessor was designed based on the RISC-V architecture to achieve hardware acceleration for ECGs classification;Besides, an Approximate Entropy (ApEn) and Convolutional neural networks (CNNs) integrated algorithm capable of running on it was designed. The algorithm differs from traditional electrocardiographic (ECG) classification algorithms. It can be used to perform ECG classification while chest compressions are applied. The proposed co-processor can be used to accelerate computation rate of ApEn by 34 times compared with pure software computation. It can also be used to accelerate the speed of CNNs ECG recognition by 33 times. The combined algorithm was used to classify ECGs with CPR artifacts. It achieved a precision of 96%, which was significantly superior to that of simple CNNs. The coprocessor can be used to significantly improve the recognition efficiency and accuracy of ECGs containing CPR artifacts. It is suitable for automatic external defibrillator and other medical devices in which one-dimensional physiological signals. 展开更多
关键词 DEFIBRILLATOR SoC ENTROPY Vector Multiplication COPROCESSOR RISCV ECG Classification
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基于FPGA的64通道超声相控阵系统设计及参数研究
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作者 杨欣 崔海坡 +4 位作者 孙福佳 刘宇超 李欣瑶 夏玉 顾海航 《建模与仿真》 2025年第2期225-235,共11页
本研究提出了一种基于FPGA的64通道超声相控阵系统,旨在提高超声波束的精确控制和实时成像性能。该系统采用64个通道并行处理,通过FPGA实时计算每个通道的信号延迟和相位,从而实现超声波束的精准聚焦与扫描。系统硬件包括超声发射阵列... 本研究提出了一种基于FPGA的64通道超声相控阵系统,旨在提高超声波束的精确控制和实时成像性能。该系统采用64个通道并行处理,通过FPGA实时计算每个通道的信号延迟和相位,从而实现超声波束的精准聚焦与扫描。系统硬件包括超声发射阵列、接收阵列、模拟前端模块(AFE)和数据处理单元,能够在多个通道间高效传输和处理信号。通过优化相位控制算法和数据传输路径,系统成功减少了信号处理的延迟,提高了响应速度和实时性。实验结果表明,系统具有良好的成像精度和较高的稳定性,能够在高噪声环境和长时间运行中保持较低的误差。图像分辨率达到0.5mm,聚焦深度精度为±1mm,成像清晰度为95%。此外,系统在响应速度和信噪比等方面表现优异,具备较高的抗干扰能力和快速成像能力。本研究为超声成像技术的发展提供了新的思路,具有广泛的应用前景,尤其在医疗诊断和物理治疗领域中具有重要的实际应用价值。 展开更多
关键词 超声相控阵 FPGA 信号处理
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