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Field programmable gate array (FPGA) based embedded system design for AFM real-time control

机译:基于现场可编程门阵列(FPGA)的AFM实时控制嵌入式系统设计

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This report describes the realization of an embedded hardware system designed to perform fast control for an atomic force microscope (AFM). Traditional implementation of control algorithms for AFMs, either PC-based or DSP-based, does not meet the high-speed scanning requirement. Considering the capability of parallel computing, FPGA is employed to achieve real-time control for an AFM equipment. Specifically, in the designed embedded system, the hardware includes several key components of signal acquisition, signal conversion, data communication as well as the FPGA-based control law implementation. Besides higher control frequency, the designed FPGA-based embedded system provides a general platform for different advanced control strategies, on which a variety of control algorithms can be implemented and tested conveniently by replacing the codes in the software rather than changing hardware structure, due to the merit that FPGA can integrate internal CPU and it has a large number of logic cells and soft-cores. The widely utilized proportional-integral- derivative (PID) algorithm is chosen as an example to demonstrate the implementation of a controller by using powerful hardware description tools.
机译:该报告描述了嵌入式硬件系统的实现,该嵌入式硬件系统旨在执行原子力显微镜(AFM)的快速控制。基于AFM的控制算法的传统实现(无论是基于PC的还是基于DSP的)都无法满足高速扫描的要求。考虑到并行计算的能力,采用FPGA来实现AFM设备的实时控制。具体而言,在设计的嵌入式系统中,硬件包括信号采集,信号转换,数据通信以及基于FPGA的控制法则实现的几个关键组件。除了更高的控制频率外,设计的基于FPGA的嵌入式系统还为不同的高级控制策略提供了一个通用平台,在该平台上,由于替换了软件中的代码而不是更改硬件结构,因此可以方便地实现和测试各种控制算法。 FPGA可以集成内部CPU并具有大量逻辑单元和软核的优点。以广泛使用的比例积分微分(PID)算法为例,以通过使用功能强大的硬件描述工具来演示控制器的实现。

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