A unifying principle of chromatic coding across biological and artificial systems

Color is a defining feature of human vision, yet its integration with spatial structure across stages of the visual system is still not fully understood. Classical accounts assumed that color provides little spatial information, being represented coarsely and separately from luminance. Here, we show that the spatial selectivity of color is not fixed, but dynamically transforms with temporal frequency. In human observers, steady-state visual evoked potentials reveal a clear shift from low-pass tuning at higher temporal frequencies to band-pass tuning at lower frequencies. Local field potentials recorded from macaque V1 exhibit the same transition, and color-deficient observers show a selective loss of the low-pass component, pointing to distinct underlying mechanisms. Analyses of deep neural networks trained for object recognition reveal an analogous transformation, demonstrating that this principle also emerges in artificial vision systems. Together, these findings establish that the spatial tuning of color evolves systematically with temporal scale, providing a unifying principle of chromatic coding across biological and artificial systems.

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Publication Details

Journal
Science Advances
Published
2026-09-11
DOI
https://doi.org/10.1126/sciadv.aec6658
Primary Topic
Visual perception and processing mechanisms
Type
article
Field-Weighted Citation Impact
0.00

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article

A unifying principle of chromatic coding across biological and artificial systems

Yingfan Liu, Karl R. Gegenfurtner, Ye Liu, Wei Wang et al.
Science Advances
Visual perception and processing mechanisms
article

A unifying principle of chromatic coding across biological and artificial systems

Yingfan Liu, Karl R. Gegenfurtner, Ye Liu, Wei Wang, Jing Chen, Hetian Cao, Qiao Songlin
article en

Abstract

Color is a defining feature of human vision, yet its integration with spatial structure across stages of the visual system is still not fully understood. Classical accounts assumed that color provides little spatial information, being represented coarsely and separately from luminance. Here, we show that the spatial selectivity of color is not fixed, but dynamically transforms with temporal frequency. In human observers, steady-state visual evoked potentials reveal a clear shift from low-pass tuning at higher temporal frequencies to band-pass tuning at lower frequencies. Local field potentials recorded from macaque V1 exhibit the same transition, and color-deficient observers show a selective loss of the low-pass component, pointing to distinct underlying mechanisms. Analyses of deep neural networks trained for object recognition reveal an analogous transformation, demonstrating that this principle also emerges in artificial vision systems. Together, these findings establish that the spatial tuning of color evolves systematically with temporal scale, providing a unifying principle of chromatic coding across biological and artificial systems.

Science AdvancesVol. 12(37)
Shanghai Jiao Tong University (CN), Shanghai University of Sport (CN), Justus-Liebig-Universität Gießen (DE), Center for Excellence in Brain Science and Intelligence Technology (CN), University of Chinese Academy of Sciences (CN)
Deutsche Forschungsgemeinschaft, National Natural Science Foundation of China, European Research Council
Openalex Percentile: Top 9%
Visual perception and processing mechanisms
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