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GFTT+FREAK的小型测绘无人机遥感图像自动拼接技术 被引量:4
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作者 秦文俊 刘亚伟 +1 位作者 叶洺凯 牛浩 《无线电工程》 2019年第10期871-874,共4页
针对目前广泛应用的小型测绘无人机遥感影像易受尺度、倾斜和光照等变化影响,导致影像拼接难度大的问题,提出了一种基于GFTT+FREAK的局部特征匹配能够适用于小型测绘无人机的遥感影像拼接方法,该算法可以直接提取未经预处理的测绘无人... 针对目前广泛应用的小型测绘无人机遥感影像易受尺度、倾斜和光照等变化影响,导致影像拼接难度大的问题,提出了一种基于GFTT+FREAK的局部特征匹配能够适用于小型测绘无人机的遥感影像拼接方法,该算法可以直接提取未经预处理的测绘无人机拍摄图像的局部特征,通过局部特征匹配进行图像拼接,保证拼接准确性的同时,大大提高了测绘影像拼接的效率。 展开更多
关键词 小型测绘无人机 gftt FREAK 局部特征匹配 图像拼接
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SFTT:A 325 FPS Computational and Hardware Efficient Corner-Detection Accelerator Design for SLAM Applications
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作者 WEIYI ZHANG CHAOYANG DING +7 位作者 XIAORUI MO FEI SHAO YIYANG WANG YUSHI GUO LITING NIU CHENG NIAN FASIH UD DIN FARRUKH CHUN ZHANG 《Integrated Circuits and Systems》 2024年第2期66-79,共14页
Simultaneous Localization and Mapping(SLAM)is the process by which a mobile robot can build a map of the surrounding environment and compute its own location.Feature point extraction is one of the key components of a ... Simultaneous Localization and Mapping(SLAM)is the process by which a mobile robot can build a map of the surrounding environment and compute its own location.Feature point extraction is one of the key components of a SLAM system.The extraction accuracy and efficiency of corner detection directly affect the overall accuracy and throughput of the system.However,the complexity of corner detection algorithms makes it challenging to achieve real-time implementation and efficient,low-cost hardware design,especially for mobile robots.Harris corner detection class algorithms including Harris and GFTT(Good Feature to Track)have improved accuracy.However,those algorithms require high resource consumption and latency when implemented on hardware platforms.The GFTT achieves higher accuracy than Harris while requiring higher computational complexity.To address the throughput problem,SFTT(Simple Feature to Track),a new Harris class detection algorithm is proposed,and the corresponding hardware accelerator is designed.The proposed SFTT significantly reduced the computational complexity compared with the Harris algorithm and GFTT.Experiments have shown SFTT also achieved slightly higher accuracy compared with the two algorithms.Furthermore,the GFTT accelerator is designed which reaches up to 325 fps at the frequency of 100 MHz.The proposed design has achieved an improvement in throughput by 1.3×times and power efficiency by 1.7×times as compared to state-of-the-art design. 展开更多
关键词 SLAM gftt corner detection FPGA ASIC
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