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Alp, N.

Publications and source records attributed to Alp, N..

3 recordsLinked to original sources

Compression of redundant visual information improves feature discrimination in human vision

The visual environment contains more information than can be fully processed. To cope with this information, the visual system selects, integrates, and compresses sensory inputs. These processes are particularly evident in peripheral vision, where nearby items strongly limit access to individual elements, as in crowding and redundancy masking. In redundancy masking, repeated items are compressed into fewer items than are physically present, for example, three spatially separated items presented in the periphery are often perceived as only two items. Whether these interactions among items merely limit access to visual information or serve a functional role in perception remains unknown. Here, we investigated whether redundancy masking, despite reducing the number of perceived items, improves feature discrimination. In two experiments, participants viewed arrays of identical bars in peripheral vision, reported the number of bars they perceived, and adjusted a foveal probe to match perceived width (Experiment 1) or width and spacing (Experiment 2). Strong redundancy masking occurred in both experiments. When participants perceived fewer bars than were presented, perceived width was closer to the presented bar width than when all bars were perceived, where width was systematically underestimated. In Experiment 2, the perceived spacing between the (fewer) perceived bars increased. We modeled feature discrimination under redundancy masking and found that the observed improvement could not be explained by averaging features of the lost and perceived bars. These results suggest that the visual system efficiently compresses redundant information, reducing the number of perceived items while improving feature discrimination.

animal behavior and cognition↗

Redundancy masking and the compression of information in the brain

The visual world is inherently complex, presenting far more information than a human visual system can process in full. To manage this overload, the visual brain employs several mechanisms. One mechanism that possibly contributes to the reduction of information is redundancy masking (RM): the reduction of the number of perceived items in repeating patterns. For example, when three identical lines are presented in the periphery, observers often perceive only two. The underlying neural mechanisms of RM remain unclear. Here, we use steady-state visual evoked potential (SSVEP) to examine whether redundancy-masked items are neurally suppressed or integrated with neighboring items. Three identical arcs (quarter-circles; 0.44{degrees} line width) were presented in the periphery (eccentricities: 17.3{degrees}, 19.5{degrees}, and 21.7{degrees}), each tagged with a unique frequency. Participants maintained central fixation, monitored via a gaze-contingent control, and reported the number of arcs they predominantly perceived after each 10s trial. We analyzed baseline-corrected amplitudes at each tagged frequency and calculated signal-to-noise ratios (SNRs) for fundamental and intermodulation (IM) components, separating trials by behavioral responses (RM: 2 items perceived, non-RM: 3 items perceived). Fundamental frequency comparisons revealed that the outer arc elicited higher SSVEP responses than the inner and middle one under RM, with no significant differences between arcs under non-RM. However, fundamental frequency SNRs did not differ between RM and non-RM perceptions. When we compared IM SNRs, the middle and outer arcs combination was significantly higher during RM compared to non-RM, suggesting increased neural integration between them. These results indicate that RM involves a loss of conscious access to visual information, yet corresponding neural signals are not entirely suppressed. Instead, the neural signatures we found suggest the integration with neighboring elements across space and time. We suggest that redundancy-masked items - although unavailable for conscious report- are still observed in the neural signatures of RM.

neuroscience↗

Non-evoked frequencies: Retinotopic position modulation induces SSVEP signals without intrinsic neural signal processing

Periodic changes in visual input can produce rhythmic patterns in EEG signals, which appear as narrowband frequency components. These components are commonly interpreted as reflecting the activity of neurons sensitive to the modulated stimulus features. Here, we present a scenario in which frequency components arise solely from retinotopic variations in signal strength, without reflecting any specific neural mechanism sensitive to the modulated feature. Using simulated and empirical data, we show that signal fluctuations based purely on retinotopic stimulus position can produce identifiable frequency components in response to position-modulated stimuli. These components likely reflect structural rather than functional cortical factors influencing signal strength across different retinotopic areas. Our results challenge the conventional assumption that frequency components necessarily indicate intrinsic neural signal processing, instead highlighting how interactions between stimuli and cortical architecture can give rise to such components.

neuroscience↗