A reduced complexity vision system for autonomous helicopter navigation

P. Batavia, M. Lewis, G. Bekey
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引用次数: 6

Abstract

Many current avenues of vision research involve fully analyzing an image with expensive, high powered computers. This approach has major implications in terms of cost, size, and power consumption. Other methods have involved sub-sampling an image to reduce cost and complexity. This has the disadvantage of information loss. We present a low cost, low powered, reduced complexity vision system capable of intelligently sampling an image to reduce this information loss. The design philosophy and methodology is discussed, along with sample applications. Primarily we demonstrate how the reduced complexity vision system will be used to aid in navigation of an autonomous flying vehicle. This is quantified by showing how having multiple sampling schemes result in increased robustness and accuracy of our helicopter line tracking algorithm.
一种用于直升机自主导航的低复杂度视觉系统
目前许多视觉研究的途径都涉及到使用昂贵、高性能的计算机对图像进行全面分析。这种方法在成本、大小和功耗方面具有重要影响。其他方法包括对图像进行次采样以降低成本和复杂性。这样做的缺点是信息丢失。我们提出了一种低成本,低功耗,降低复杂性的视觉系统,能够智能地对图像进行采样,以减少这种信息损失。讨论了设计哲学和方法,以及示例应用程序。首先,我们展示了如何使用降低复杂性的视觉系统来帮助自主飞行器的导航。通过展示多个采样方案如何提高直升机线路跟踪算法的鲁棒性和准确性来量化这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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