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Realization of processing blocks of CNN based CASA system on CPU and FPGA

机译:基于CPU和FPGA的基于CNN的CASA系统处理模块的实现

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In this paper, hardware optimization of the preprocessing and software implementation of the processing blocks of a computer-aided semen analysis (CASA) system are proposed, which is also implemented on an FPGA and ARM device as a working prototype. The software implementation of the track initialization, track maintenance, data validation and classification blocks of the processing part are implemented on a Zynq7000 ARM Cortex-A9 processor. In the preprocessing part, a real-time cellular neural network (CNN) emulator (RTCNNP-v2) is used for the realization of the image processing algorithms, whose regular, flexible and reconfigurable infrastructure simplifies the prototyping process. The CASA system introduced in this paper is capable of processing full-HD 1080p@60 (1080 × 1920) video images in real-time.
机译:在本文中,提出了计算机辅助精液分析(CASA)系统的处理块的预处理和软件实现的硬件优化,其也在FPGA和ARM设备中实现作为工作原型。处理部分的轨道初始化,跟踪维护,数据验证和分类块的软件实现在Zynq7000 ARM Cortex-A9处理器上实现。在预处理部分中,实时蜂窝神经网络(CNN)仿真器(RTCNP-V2)用于实现图像处理算法,其常规,灵活和可重新配置的基础设施简化了原型化过程。本文介绍的CASA系统能够实时处理全高温1080p @ 60(1080×1920)视频图像。

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