基于角点特征检测和光流算法的序列图像航向计算

Daniel Kristianto Haryono, D. Purwanto, Hendra Kusuma
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引用次数: 0

摘要

作为人类,我们拥有许多伟大的能力,其中之一来自我们的视野。仅通过我们的视觉,我们就可以获得大量的信息,如物体的身份、面孔、事件,甚至将部分图像组合成一个完整的图像。许多研究都是为了在机器上复制我们的视觉,这是因为一个场景可以包含很多信息。在本研究中,我们感兴趣的是从相机捕获的图像序列中获取航向信息。获取航向信息的方法有很多种,如陀螺仪和罗经传感器,各有优缺点。通过使用相机,可以避免会干扰航向测量的机械限制,例如车轮打滑,不平坦的地形和倾斜。利用该算法,可以仅从图像序列中计算出标题。实验结果表明,在室外环境下,航向计算的绝对误差平均值为1.23078°,在室内环境下,航向计算的绝对误差平均值为1.02368°。
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Heading Calculation from Sequence of Images Based on Corner Feature Detection and Optical Flow Algorithm
We as human possess many great abilities and one of them comes from our vision. Through our vision alone we can obtain a lot of information namely object's identity, faces, events, or even combining partial images to form a complete image. Many researches have been done to replicate our vision in machines, and that is because a scene can contain a lot of information. In this study we are interested in obtaining heading information from sequence of images captured by a camera. There exist many ways to obtain heading information such as by using gyroscope or compass sensors, each with its own advantages and weaknesses. By using a camera, mechanical limitations which will disrupt the measurement of heading, such as wheel slippage, uneven terrain, and tilt can be avoided. With this proposed algorithm, heading can be calculated solely from the sequence of images. The results of our experiment show that heading can be calculated with an average of absolute error of 1.23078° in outdoor environment, and 1.02368° in indoor environment.
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