Recurrent neural circuits for contour detection
Drew Linsley, Junkyung Kim, Alekh Ashok, Thomas Serre
Abstract
We introduce a deep recurrent neural network architecture that approximates visual cortical circuits (Mely et al., 2018). We show that this architecture, which we refer to as the 𝜸-net, learns to solve contour detection tasks with better sample efficiency than state-of-the-art feedforward networks, while also exhibiting a classic perceptual illusion, known as the orientation-tilt illusion. Correcting this illusion significantly reduces contour detection accuracy by driving it to prefer low-level edges over high-level object boundary contours. Overall, our study suggests that the orientation-tilt illusion is a byproduct of neural circuits that help biological visual systems achieve robust and efficient contour detection, and that incorporating these circuits in artificial neural networks can improve computer vision.
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Install the CLIlune papers fulltext ca57c0a2-9fef-4bce-8a5b-2263b90581fbCited by top-tier papers8
- Harmonizing the object recognition strategies of deep neural networks with humansThomas Fel, Ivan F. Rodriguez Rodriguez, Drew Linsley, Thomas SerreNeurIPS 2022 · 111 citations
- Visual Planning: Let's Think Only with ImagesYi Xu, Chengzu Li, Han Zhou, Xingchen Wan et al.ICLR 2026 · 93 citations
- Disentangling neural mechanisms for perceptual groupingJunkyung Kim, Drew Linsley, Kalpit Thakkar, Thomas SerreICLR 2020 · 61 citations
- Stable and expressive recurrent vision modelsDrew Linsley, Alekh Karkada Ashok, Lakshmi Narasimhan Govindarajan, Rex G. Liu et al.NeurIPS 2020 · 56 citations
- Tracking Without Re-recognition in Humans and MachinesDrew Linsley, Girik Malik, Junkyung Kim, Lakshmi Narasimhan Govindarajan et al.NeurIPS 2021 · 21 citations
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