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对比度独立的生物启发平移光流估计。

Contrast independent biologically inspired translational optic flow estimation.

机构信息

Centre for Defence Engineering Research and Training, College of Science and Engineering, Flinders University, 1284 South Road, Tonsley, South Australia, 5042, Australia.

Science, Technology, Engineering, and Mathematics, University of South Australia, 1 Mawson Lakes Boulevard, Mawson Lakes, South Australia, 5095, Australia.

出版信息

Biol Cybern. 2022 Dec;116(5-6):635-660. doi: 10.1007/s00422-022-00948-3. Epub 2022 Oct 27.

Abstract

The visual systems of insects are relatively simple compared to humans. However, they enable navigation through complex environments where insects perform exceptional levels of obstacle avoidance. Biology uses two separable modes of optic flow to achieve this: rapid gaze fixation (rotational motion known as saccades); and the inter-saccadic translational motion. While the fundamental process of insect optic flow has been known since the 1950's, so too has its dependence on contrast. The surrounding visual pathways used to overcome environmental dependencies are less well known. Previous work has shown promise for low-speed rotational motion estimation, but a gap remained in the estimation of translational motion, in particular the estimation of the time to impact. To consistently estimate the time to impact during inter-saccadic translatory motion, the fundamental limitation of contrast dependence must be overcome. By adapting an elaborated rotational velocity estimator from literature to work for translational motion, this paper proposes a novel algorithm for overcoming the contrast dependence of time to impact estimation using nonlinear spatio-temporal feedforward filtering. By applying bioinspired processes, approximately 15 points per decade of statistical discrimination were achieved when estimating the time to impact to a target across 360 background, distance, and velocity combinations: a 17-fold increase over the fundamental process. These results show the contrast dependence of time to impact estimation can be overcome in a biologically plausible manner. This, combined with previous results for low-speed rotational motion estimation, allows for contrast invariant computational models designed on the principles found in the biological visual system, paving the way for future visually guided systems.

摘要

昆虫的视觉系统相对简单,与人类相比。然而,它们能够在昆虫能够出色地避开障碍物的复杂环境中导航。生物学使用两种可分离的光流模式来实现这一目标:快速注视固定(称为眼跳的旋转运动);和眼跳之间的平移运动。虽然昆虫光流的基本过程自 20 世纪 50 年代以来就已经为人所知,但它对对比度的依赖也是如此。用于克服环境依赖性的周围视觉途径知之甚少。以前的工作已经显示出在低速旋转运动估计方面的前景,但在平移运动的估计方面仍存在差距,特别是在估计撞击时间方面。为了在眼跳之间的平移运动中始终如一地估计撞击时间,必须克服对比度依赖性的基本限制。通过从文献中改编一个精心设计的旋转速度估计器来适用于平移运动,本文提出了一种使用非线性时空前馈滤波来克服撞击时间估计的对比度依赖性的新算法。通过应用仿生过程,在估计目标撞击时间时,在 360 个背景、距离和速度组合中,能够实现每十年约 15 个点的统计区分:比基本过程提高了 17 倍。这些结果表明,可以以生物上合理的方式克服撞击时间估计的对比度依赖性。这一点,加上以前在低速旋转运动估计方面的结果,允许基于生物视觉系统中发现的原理设计对比度不变的计算模型,为未来的视觉引导系统铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e39f/9691503/735da6d22d64/422_2022_948_Fig1_HTML.jpg

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