Continuity and segmentation - two ends of a spectrum or independent processes?
Aya Ben Yakov· Hebrew University
Tue, Jul 8 · 16:00 UTC
Seminars and recordings
Aya Ben Yakov· Hebrew University
Tue, Jul 8 · 16:00 UTC
Yoram Bonneh· Bar-Ilan
Tue, Jun 10 · 16:00 UTC
Marsha Benshir
Tue, May 27 · 16:00 UTC · Online
Russell Epstein· U Penn
Tue, May 13 · 16:00 UTC
Morris Moscovitch· University of Toronto
Tue, May 6 · 16:00 UTC
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.
Ran Hassin· Hebrew University
Mon, Mar 24 · 16:30 UTC
Jorge Almeida· University of Coimbra
Tue, Jan 28 · 16:00 UTC
Our ability to recognize an object amongst many others is one of the most important features of the human mind. However, object recognition requires tremendous computational effort, as we need to solve a complex and recursive environment with ease and proficiency. This challenging feat is dependent on the implementation of an effective organization of knowledge in the brain. Here I put forth a novel understanding of how object knowledge is organized in the brain, by proposing that the organization of object knowledge follows key object-related dimensions, analogously to how sensory information is organized in the brain. Moreover, I will also put forth that this knowledge is topographically laid out in the cortical surface according to these object-related dimensions that code for different types of representational content – I call this contentopic mapping. I will show a combination of fMRI and behavioral data to support these hypotheses and present a principled way to explore the multidimensionality of object processing.
Sarah Shomstein· George Washington University
Tue, Jan 7 · 16:00 UTC
Decades of research on understanding the mechanisms of attentional selection have focused on identifying the units (representations) on which attention operates in order to guide prioritized sensory processing. These attentional units fit neatly to accommodate our understanding of how attention is allocated in a top-down, bottom-up, or historical fashion. In this talk, I will focus on attentional phenomena that are not easily accommodated within current theories of attentional selection – the “attentional platypuses,” as they allude to an observation that within biological taxonomies the platypus does not fit into either mammal or bird categories. Similarly, attentional phenomena that do not fit neatly within current attentional models suggest that current models need to be revised. I list a few instances of the ‘attentional platypuses” and then offer a new approach, the Dynamically Weighted Prioritization, stipulating that multiple factors impinge onto the attentional priority map, each with a corresponding weight. The interaction between factors and their corresponding weights determines the current state of the priority map which subsequently constrains/guides attention allocation. I propose that this new approach should be considered as a supplement to existing models of attention, especially those that emphasize categorical organizations.
Baingio Pinna· University of Sassari
Tue, Dec 17 · 16:00 UTC
Eli Brenner· VU University Amsterdam
Tue, Dec 10 · 16:00 UTC
Alan Kingstone· University of British Columbia
Tue, Nov 19 · 16:00 UTC
Michael Bach· University of Freiburg
Tue, Nov 12 · 16:00 UTC
Jason Barton· University of British Columbia
Tue, Nov 5 · 16:00 UTC
Avital Hahamy· UCL
Tue, Jul 2 · 16:00 UTC
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