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Real Time Decoding of Color Symbol for Optical Positioning System:

机译:光学定位系统中颜色符号的实时解码:

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This paper presents the design and real-time decoding of a color symbol that can be used as a reference marker for optical navigation. The designed symbol has a circular shape and is printed on paper using two distinct colors. This pair of colors is selected based on the highest achievable signal to noise ratio. The symbol is designed to carry eight bit information. Real time decoding of this symbol is performed using a heterogeneous combination of Field Programmable Gate Array (FPGA) and a microcontroller. An image sensor having a resolution of 1600 by 1200 pixels is used to capture images of symbols in complex backgrounds. Dynamic image segmentation, component labeling and feature extraction was performed on the FPGA. The region of interest was further computed from the extracted features. Feature data belonging to the symbol was sent from the FPGA to the microcontroller. Image processing tasks are partitioned between the FPGA and microcontroller based on data intensity. Experiments were performed to verify the rotational independence of the symbols. The maximum distance between camera and symbol allowing for correct detection and decoding was analyzed. Experiments were also performed to analyze the number of generated image components and sub-pixel precision versus different light sources and intensities. The proposed hardware architecture can process up to 55 frames per second for accurate detection and decoding of symbols at two Megapixels resolution. The power consumption of the complete system is 342mw.
机译:本文介绍了可以用作光学导航参考标记的颜色符号的设计和实时解码。设计的符号为圆形,并使用两种不同的颜色印刷在纸上。根据可实现的最高信噪比选择这对颜色。该符号旨在携带八位信息。该符号的实时解码使用现场可编程门阵列(FPGA)和微控制器的异构组合来执行。具有1600×1200像素的分辨率的图像传感器用于捕获复杂背景中的符号的图像。动态图像分割,组件标记和特征提取在FPGA上执行。根据提取的特征进一步计算感兴趣区域。属于该符号的特征数据已从FPGA发送到微控制器。根据数据强度在FPGA和微控制器之间划分图像处理任务。进行实验以验证符号的旋转独立性。分析了相机和符号之间的最大距离,以便正确检测和解码。还进行了实验以分析生成的图像分量的数量以及子像素精度与不同光源和强度的关系。所提出的硬件体系结构可以每秒处理多达55帧,以便以2兆像素的分辨率准确检测和解码符号。整个系统的功耗为342mw。

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