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February 12, 2026Science Robotics5 citations

Bioinspired adaptive pupil reflex based on liquid-metal shape-shifters for machine vision

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KLKun LiangRWRui WangGLGavin Lyda

Key Points

  • To develop a bioinspired vision system that adapts to environmental changes by mimicking biological pupil reflex behaviors.
  • Integrated a hemispherical imaging array functioning as an artificial retina.
  • Employed liquid-metal shape-shifters to simulate various animal pupil shapes.
  • Implemented an adaptive pupil that adjusts to light conditions using controlled deformation.
  • Created a system that mimics biological spike nerve signals with circuit switching.
  • The adaptive pupil effectively reduces light exposure in bright conditions, enhancing image recognition accuracy.
  • The system features an ultrawide field of view and adaptive light adjustment.
  • Demonstrated ability to simulate multiple animal pupil shapes for potential robotic applications.

Abstract

Inspired by the evolutionary diversification of biological eyes for environmental adaptation, recently emerged artificial counterparts offer a variety of visual features that can emulate the eyes of humans, insects, fish, eagles, cats, and others. However, grand challenges reside in developing transformational artificial pupils to address drastic environmental change. Here, we propose a bioinspired vision system that integrates a hemispherical imaging array as an artificial retina with liquid-metal shape-shifters as visual neurons and an adaptive artificial pupil to comprehensively simulate visual recognition with closed-loop pupil reflex behavior. The controlled deformation of the liquid metal allows the design of a range of animal pupil shapes, and the rapid switching of short and open circuits simulates biological spike nerve signals. Under strong light, the system adaptively adjusts the pupil deformation of liquid metal to reduce the amount of exposure, which improves the image recognition accuracy of the artificial vision system under high-light conditions and confirms the key characteristics and functions of the artificial vision system, including ultrawide field of view, adaptive adjustment of light, and image recognition functions. The ability to simulate multiple shapes of animal pupils further demonstrates the programmability of the system and highlights its potential for bioinspired robotic systems, advanced machine vision, and autonomous driving.

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Cite This Study

Liang et al. (2026) studied this question.

synapsesocial.com/papers/698d6edc5be6419ac0d54ccdhttps://doi.org/10.1126/scirobotics.adx0715
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