Vision Science seminars
April 2026
Uncovering binary black hole formation mechanisms with gravitational wave detections
Sharan Banagiri· Monash University
Thu, Apr 23 · 17:00 UTC · Waterloo, Canada
Sharan Banagiri uses gravitational-wave observations to investigate how stellar-mass binary black holes form. The first part of the fourth LIGO–Virgo–KAGRA observing run more than doubled the number of detections, revealing new population features and clarifying earlier ones. The talk surveys notable and puzzling subpopulations, relates them to formation channels, and connects the evidence with transient phenomena and compact-object astrophysics. As the sample grows, these identifiable subpopulations can support a broader physical account of binary black-hole formation.
October 2025
Memory Decoding Journal Club: Functional connectomics reveals general wiring rule in mouse visual cortex
Ariel Zeleznikow-Johnston· Monash University
Tue, Oct 21 · 06:00 UTC
Functional connectomics reveals general wiring rule in mouse visual cortex
NeuroscienceNeuro-Informatics+1 moreSeries: Carboncopies Foundation - Brain Emulation ChallengeVideo
September 2025
Go with the visual flow: circuit mechanisms for gaze control during locomotion
Eugenia Chiappe· Champalimaud Foundation
Fri, Sep 12 · 16:00 UTC
July 2025
Continuity and segmentation - two ends of a spectrum or independent processes?
Aya Ben Yakov· Hebrew University
Tue, Jul 8 · 16:00 UTC
June 2025
Seeing a changing world through the eyes of coral fishes
Fabio Cortesi· Queensland University
Thu, Jun 26 · 12:00 UTC
Insights into vision from interpreting a neuronal wiring diagram
Sebastian Seung· Princeton Neuroscience Institute
Wed, Jun 25 · 15:00 UTC
In 2023, the FlyWire Consortium released the neuronal wiring diagram of an adult fly brain. This contains as a corollary the first complete wiring diagram of a visual system, which has been used to identify all 200+ cell types that are intrinsic to the Drosophila optic lobe. About half of these cell types were previously unknown, and less than 20% have ever been recorded by a physiologist. I will argue that plausible functions for many cell types can be guessed by interpreting the wiring diagram. VVTNS Fifth Season Closing Lecture. Presented in the van Vreeswijk Theoretical Neuroscience Seminar series (formerly WWTNS) on 2025-06-25. Recording duration: 00:42:39.
Computational NeuroscienceNeuroscience+1 moreSeries: van Vreeswijk Theoretical Neuroscience SeminarVideo
May 2025
Restoring Sight to the Blind: Effects of Structural and Functional Plasticity
Noelle Stiles· Rutgers University
Thu, May 22 · 16:00 UTC
Visual restoration after decades of blindness is now becoming possible by means of retinal and cortical prostheses, as well as emerging stem cell and gene therapeutic approaches. After restoring visual perception, however, a key question remains. Are there optimal means and methods for retraining the visual cortex to process visual inputs, and for learning or relearning to “see”? Up to this point, it has been largely assumed that if the sensory loss is visual, then the rehabilitation focus should also be primarily visual. However, the other senses play a key role in visual rehabilitation due to the plastic repurposing of visual cortex during blindness by audition and somatosensation, and also to the reintegration of restored vision with the other senses. I will present multisensory neuroimaging results, cortical thickness changes, as well as behavioral outcomes for patients with Retinitis Pigmentosa (RP), which causes blindness by destroying photoreceptors in the retina. These patients have had their vision partially restored by the implantation of a retinal prosthesis, which electrically stimulates still viable retinal ganglion cells in the eye. Our multisensory and structural neuroimaging and behavioral results suggest a new, holistic concept of visual rehabilitation that leverages rather than neglects audition, somatosensation, and other sensory modalities.
The hippocampus, visual perception and visual memory
Morris Moscovitch· University of Toronto
Tue, May 6 · 16:00 UTC
April 2025
An inconvenient truth: pathophysiological remodeling of the inner retina in photoreceptor degeneration
Michael Telias· University of Rochester
Tue, Apr 8 · 16:00 UTC
Photoreceptor loss is the primary cause behind vision impairment and blindness in diseases such as retinitis pigmentosa and age-related macular degeneration. However, the death of rods and cones allows retinoids to permeate the inner retina, causing retinal ganglion cells to become spontaneously hyperactive, severely reducing the signal-to-noise ratio, and creating interference in the communication between the surviving retina and the brain. Treatments aimed at blocking or reducing hyperactivity improve vision initiated from surviving photoreceptors and could enhance the signal fidelity generated by vision restoration methodologies.
March 2025
A perturbative approach to understand retinal computations
Olivier Marre· Institut de la Vision, Paris
Wed, Mar 12 · 15:00 UTC
A major challenge in sensory systems is to understand how neurons extract information from the natural environment. Models derived from their responses to artificial stimuli often have a hard time to generalize and predict responses to natural scenes. However, models directly learned on the responses to natural scenes can be hard to interpret. To address this issue, we have recently developed an approach where we add small perturbations to natural scenes and measure how these perturbations change neuronal responses, to better understand the features extracted by sensory neurons. I will show several applications of this approach in the retina, and how it allowed us to uncover non-linear computations performed by ganglion cells, the retinal output. Presented in the van Vreeswijk Theoretical Neuroscience Seminar series (formerly WWTNS) on 2025-03-12. Recording duration: 00:47:06.
Altered grid-like coding in early blind people and the role of vision in conceptual navigation
Roberto Bottini· CIMeC, University of Trento
Thu, Mar 6 · 16:00 UTC
January 2025
Dynamics of braille letter perception in blind readers
Santani Teng· Smith-Kettlewell Eye Research Institute
Thu, Jan 23 · 17:00 UTC
November 2024
Perceptual illusions we understand well, and illusions which aren’t really illusions
Michael Bach· University of Freiburg
Tue, Nov 12 · 16:00 UTC
August 2024
Why age-related macular degeneration is a mathematically tractable disease
Christine Curcio· The University of Alabama at Birmingham Heersink School of Medicine
Mon, Aug 19 · 14:00 UTC
Among all prevalent diseases with a central neurodegeneration, AMD can be considered the most promising in terms of prevention and early intervention, due to several factors surrounding the neural geometry of the foveal singularity. • Steep gradients of cell density, deployed in a radially symmetric fashion, can be modeled with a difference of Gaussian curves. • These steep gradients give rise to huge, spatially aligned biologic effects, summarized as the Center of Cone Resilience, Surround of Rod Vulnerability. • Widely used clinical imaging technology provides cellular and subcellular level information. • Data are now available at all timelines: clinical, lifespan, evolutionary • Snapshots are available from tissues (histology, analytic chemistry, gene expression) • A viable biogenesis model exists for drusen, the largest population-level intraocular risk factor for progression. • The biogenesis model shares molecular commonality with atherosclerotic cardiovascular disease, for which there has been decades of public health success. • Animal and cell model systems are emerging to test these ideas.
June 2024
Using ML tools in neuroscience to define optimality in complex natural behavior
Stephanie Palmer· University of Chicago
Wed, Jun 5 · 15:00 UTC
Biological systems must selectively encode partial information about the environment, as dictated by the capacity constraints at work in all living organisms. For example, we cannot see every feature of the light field that reaches our eyes; temporal resolution is limited by transmission noise and delays, and spatial resolution is limited by the finite number of photoreceptors and output cells in the retina. Classical efficient coding theory describes how sensory systems can maximize information transmission given such capacity constraints, but it treats all input features equally. Not all inputs are, however, of equal value to the organism. Our work quantifies whether and how the brain selectively encodes stimulus features, specifically predictive features, that are most useful for fast and effective movements. We have shown that efficient predictive computation starts at the earliest stages of the visual system in the retina. We borrow techniques from machine learning, statistical physics, and information theory to assess how we get terrific, predictive vision from these imperfect (lagged and noisy) component parts. In broader terms, we aim to build a more complete theory of efficient encoding in the brain, and along the way have found some intriguing connections between approaches to coarse graining in biology, machine learning, and physics. Presented in the van Vreeswijk Theoretical Neuroscience Seminar series (formerly WWTNS) on 2024-06-05. Recording duration: 00:41:40.
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Retinal Photoreceptor Diversity Across Mammals
Leo Peichl· Goethe University Frankfurt
Mon, Jun 3 · 15:00 UTC