Vision Science seminars
June 2021
Flexible codes and loci of visual working memory
R.L. Rademaker· Ernst Strüngmann Institute in cooperation with the Max Planck Society
Thu, Jun 24 · 15:00 UTC
Neural correlates of visual working memory have been found in early visual, parietal, and prefrontal regions. These findings have spurred fruitful debate over how and where in the brain memories might be represented. Here, I will present data from multiple experiments to demonstrate how a focus on behavioral requirements can unveil a more comprehensive understanding of the visual working memory system. Specifically, items in working memory must be maintained in a highly robust manner, resilient to interference. At the same time, storage mechanisms must preserve a high degree of flexibility in case of changing behavioral goals. Several examples will be explored in which visual memory representations are shown to undergo transformations, and even shift their cortical locus alongside their coding format based on specifics of the task.
Assessing and improving vision restoration using ex vivo retina
Günther Zeck· EMCE Institute, TU Wien (Vienna University of Technology)
Tue, Jun 22 · 13:00 UTC
Visual Processing in the Superior Colliculus
Jianhua Cang· University of Virginia
Tue, Jun 22 · 05:00 UTC
Visual working memory representations are distorted by their use in perceptual comparisons
Keisuke Fukuda· University of Toronto Mississauga, University of Toronto
Tue, Jun 22 · 04:00 UTC
Visual working memory (VWM) allows us to maintain a small amount of task-relevant information in mind so that we can use them to guide our behavior. Although past studies have successfully characterized its capacity limit and representational quality during maintenance, the consequence of its usage for task-relevant behaviors has been largely unknown. In this talk, I will demonstrate that VWM representations get distorted when they are used for perceptual comparisons with new visual inputs, especially when the inputs are subjectively similar to the VWM representations. Furthermore, I will show that this similarity-induced memory bias (SIMB) occurs for both simple (e.g. , color, shape) and complex stimuli (e.g., real world objects, faces) that are perceptually encoded and retrieved from long-term memory. Given the observed versatility of the SIMB, its implication for other memory distortion phenomena (e.g., distractor-induced distortion, misinformation effect) will be discussed.
Efficient coding and receptive field coordination in the retina
Greg Field· Duke University School of Medicine
Mon, Jun 21 · 15:00 UTC
My laboratory studies how the retina processes visual scenes and transmits this information to the brain. We use multi-electrode arrays to record the activity of hundreds of retina neurons simultaneously in conjunction with transgenic mouse lines and chemogenetics to manipulate neural circuit function. We are interested in three major areas. First, we work to understand how neurons in the retina are functionally connected. Second we are studying how light-adaptation and circadian rhythms alter visual processing in the retina. Finally, we are working to understand the mechanisms of retinal degenerative conditions and we are investigating potential treatments in animal models.
Perception, attention, visual working memory, and decision making: The complete consort dancing together
Philip Smith· The University of Melbourne
Thu, Jun 17 · 21:00 UTC
Our research investigates how processes of attention, visual working memory (VWM), and decision-making combine to translate perception into action. Within this framework, the role of VWM is to form stable representations of transient stimulus events that allow them to be identified by a decision process, which we model as a diffusion process. In psychophysical tasks, we find the capacity of VWM is well defined by a sample-size model, which attributes changes in VWM precision with set-size to differences in the number evidence samples recruited to represent stimuli. In the first part of the talk, I review evidence for the sample-size model and highlight the model's strengths: It provides a parameter-free characterization of the set-size effect; it has plausible neural and cognitive interpretations; an attention-weighted version of the model accounts for the power-law of VWM, and it accounts for the selective updating of VWM in multiple-look experiments. In the second part of the talk, I provide a characterization of the theoretical relationship between two-choice and continuous-outcome decision tasks using the circular diffusion model, highlighting their common features. I describe recent work characterizing the joint distributions of decision outcomes and response times in continuous-outcome tasks using the circular diffusion model and show that the model can clearly distinguish variable-precision and simple mixture models of the evidence entering the decision process. The ability to distinguish these kinds of processes is central to current VWM studies.
Multisensory development and the role of visual experience
Brigitte Röder· University of Hamburg
Thu, Jun 17 · 16:00 UTC
Encoding local stimulus attributes and higher visual functions in V1 of behaving monkeys
Hamutal Slovin· Bar Ilan University
Thu, Jun 17 · 15:00 UTC
In this lecture, I will present our recent progress on three aspects of population responses in the primary visual cortex: encoding local stimulus attributes, electrical microstimulation and higher visual function. In the first part I will focus on population encoding and reconstruction of contour shapes in V1 and the comparison between monkey and mouse visual responses. In the second part of the talk I will present the effects of microstimulation on neural population in V1 and the relation to evoked saccades. In the final part of the talk I will discuss top-down influences in V1 and their relation to higher visual functions.
Encoding local stimulus attributes and higher visual functions in V1 of behaving monkeys
Hamutal Slovin· Bar Ilan
Tue, Jun 15 · 13:00 UTC
Towards a neurally mechanistic understanding of visual cognition
Kohitij Kar· Massachusetts Institute of Technology
Mon, Jun 14 · 13:00 UTC
I am interested in developing a neurally mechanistic understanding of how primate brains represent the world through its visual system and how such representations enable a remarkable set of intelligent behaviors. In this talk, I will primarily highlight aspects of my current research that focuses on dissecting the brain circuits that support core object recognition behavior (primates’ ability to categorize objects within hundreds of milliseconds) in non-human primates. On the one hand, my work empirically examines how well computational models of the primate ventral visual pathways embed knowledge of the visual brain function (e.g., Bashivan*, Kar*, DiCarlo, Science, 2019). On the other hand, my work has led to various functional and architectural insights that help improve such brain models. For instance, we have exposed the necessity of recurrent computations in primate core object recognition (Kar et al., Nature Neuroscience, 2019), one that is strikingly missing from most feedforward artificial neural network models. Specifically, we have observed that the primate ventral stream requires fast recurrent processing via ventrolateral PFC for robust core object recognition (Kar and DiCarlo, Neuron, 2021). In addition, I have been currently developing various chemogenetic strategies to causally target specific bidirectional neural circuits in the macaque brain during multiple object recognition tasks to further probe their relevance during this behavior. I plan to transform these data and insights into tangible progress in neuroscience via my collaboration with various computational groups and building improved brain models of object recognition. I hope to end the talk with a brief glimpse of some of my planned future work!
Science and technology to understand developmental multisensory processing
Monica Gori· Italian Institute of Technology
Thu, Jun 10 · 16:00 UTC
Faces influence saccade programming
Nathalie Guyader· Grenoble Institute of Technology
Wed, Jun 9 · 13:00 UTC
Several studies have showed that face stimuli elicit extremely fast and involuntary saccadic responses toward them, relative to other categories of visual stimuli. In the talk, I will mainly focus on a quite recent research done in our team that investigated to what extent face stimuli influence the programming and execution of saccades. In this research, two experiments were performed using a saccadic choice task: two images (one with a face, one with a vehicle) were simultaneously displayed in the left and right visual fields of participants who had to execute a saccade toward the image (Experiment 1) or toward a cross added in the center of the image (Experiment 2) containing a target stimulus (a face or a vehicle). As expected participants were faster to execute a saccade toward a face than toward a vehicle and did less errors. We also observed shorter saccades toward vehicle than face targets, even if participants were explicitly asked to perform their saccades toward a specific location (Experiment 2). Further analyses, that I will detailed in the talk, showed that error saccades might be interrupted in mid-fight to initiate a concurrently programmed corrective saccade.
Visual restoration from prosthesis to optogenetic therapy
Serge Picaud· Institut de la Vision
Tue, Jun 8 · 13:00 UTC
Neuronal and Vascular Dysfunction in Optic Neuropathies: New Insights from Live Imaging Studies
Adriana Di Polo· Universite de Montreal
Tue, Jun 8 · 05:00 UTC
Tectal and Pretectal Circuits of the Visual Thalamus
Martha Bickford· Department of Anatomical Sciences & Neurobiology, University of Lousiville, USA
Mon, Jun 7 · 16:00 UTC
Visual processing of feedforward and feedback signals in mouse thalamus
Laura Busse· LMU Munich
Mon, Jun 7 · 14:00 UTC
Traditionally, the dorsolateral geniculate nucleus (dLGN) of the thalamus has been considered a feedforward relay station for retinal signals to reach primary visual cortex. The local and long-range circuits of dLGN, however, suggest that this view is not correct. Indeed, besides the thalamo-cortical relay cells, dLGN contains local inhibitory interneurons, and receives not only feedforward input from the retina, but also massive direct and indirect feedback from primary visual cortex. Furthermore, it is one of the earliest processing stages in the visual system that integrates visual information with neuromodulatory signals.
Experience-independent brain development in perception and action systems
Ella Striem-Amit· Georgetown University
Thu, Jun 3 · 16:00 UTC
Photovoltaic Restoration of Sight in Age-related Macular Degeneration
Daniel Palanker· Department of Ophthalmology, School of Medicine, Stanford University / Hansen Experimental Physics Laboratory (HEPL), Stanford University
Wed, Jun 2 · 15:00 UTC
In the past several years, I have been involved in building a biologically realistic model of the monkey visual cortex. Work on one of the input layers (4Ca) of the primary visual cortex (V1) is now nearly complete, and I would like to share some of what I have learned with the community. After a brief overview of the model and its capabilities, I would like to focus on three sets of results that represent three different aspects of the modeling. They are: (i) emergent E-I dynamics in local circuits; (ii) how visual cortical neurons acquire their ability to detect edges and directions of motion, and (iii) a view across the cortical surface: nonequilibrium steady states (in analogy with statistical mechanics) and beyond.
Genetics and Therapy of Inherited Retinal Diseases
Dror Sharon· Hebrew University
Tue, Jun 1 · 13:00 UTC