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Hardware implementation of a scale and rotation invariant object detection algorithm on FPGA for real-time applications

机译:用于实时应用的FPGA上尺度和旋转不变对象检测算法的硬件实现

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A hardware implementation of a computationally light, scale, and rotation invariant method for shape detection on FPGA is devised. The method is based on histogram of oriented gradients (HOG) and average magnitude difference function (AMDF). AMDF is used as a decision module that measures the similarity/dissimilarity between HOG vectors of an image in order to classify the object. In addition, a simulation environment implemented on MATLAB is developed in order to overcome the time-consuming and tedious process of hardware verification on the FPGA platform. The simulation environment provides specific tools to quickly implement the proposed methods. It is shown that the simulator is able to produce exactly the same results as those obtained from FPGA implementation. The results indicate that the proposed approach leads to a shape detection method that is computationally light, scale, and rotation invariant, and, therefore, suitable for real-time industrial and robotic vision applications.
机译:设计了一种在FPGA上用于形状检测的计算轻便,缩放和旋转不变方法的硬件实现。该方法基于定向梯度直方图(HOG)和平均幅度差函数(AMDF)。 AMDF用作决策模块,可测量图像的HOG向量之间的相似度/不相似度以对对象进行分类。此外,开发了一种在MATLAB上实现的仿真环境,以克服在FPGA平台上进行硬件验证所花费的时间和繁琐的过程。仿真环境提供了特定的工具来快速实现建议的方法。结果表明,该模拟器能够产生与从FPGA实现中获得的结果完全相同的结果。结果表明,提出的方法导致了形状检测方法,该方法在计算上具有轻量,缩放比例和旋转不变性,因此适用于实时工业和机器人视觉应用。

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