Won Mok Shim
Sungkyunkwan University · 神経科学
研究室紹介
Professor Won Mok Shim's research lab specializes in cognitive neuroscience and neuroimaging, focusing on the neural mechanisms underlying visual perception, attention, and working memory. The lab investigates how the brain represents and processes visual information, particularly through fMRI and psychophysical methods, with an emphasis on feedback mechanisms, ensemble coding, and the role of attentional control in frontoparietal networks. Key research directions include the neural basis of visual attention, the integration of perceptual information across space and time, and the optimization of neuroimaging techniques for high-field brain scanning.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15A previous study by Williams et al. (2008) provided evidence for a novel form of feedback in the visual system, whereby peripheral information is contained in foveal retinotopic cortex. Beyond its possible implication for peripheral object recognition, few studies have examined the effect of a direct behavioral manipulation of the foveal feedback representation. To address this question, we measured participants' peripheral visual discrimination performance while modulating their foveal represen
Many everyday tasks require us to track moving objects with attention. The demand for attention increases both when more targets are tracked and when the targets move faster. These 2 aspects of attention-assigning multiple attentional foci (or indices) to targets and monitoring each focus with precision-may tap into different cognitive and brain mechanisms. In this study, we used functional magnetic resonance imaging to quantify the response profile of dorsal attentional areas to variations in t
The respective roles of occipital, parietal, and frontal cortices in visual working memory maintenance have long been under debate. Previous work on whether parietal and frontal regions convey mnemonic information has yielded mixed findings. One possibility for this variability is that the mnemonic representations in high-level frontoparietal regions are modulated by attentional priority, such as temporal order. To test this hypothesis, we examined whether the most recent item, which has a highe
The human visual system is able to extract summary statistics from sets of similar items, but the underlying neural mechanism remains poorly understood. Using functional magnetic resonance imaging (fMRI) and an encoding model, we examined how the neural representation of ensemble coding is constructed by manipulating the task-relevance of ensemble features. We found a gradual increase in orientation-selective responses to the mean orientation of multiple stimuli along the visual hierarchy only w
It is widely claimed that interactions among simultaneously presented visual stimuli are suppressive and that these interactions primarily occur when stimuli fall within the same receptive field (Desimone and Duncan 1995). Here, we show evidence for a novel form of interaction between simultaneously presented but distant stimuli that does not fit either pattern. To examine interactions between simultaneously presented stimuli, we measure the response to a single stimulus as a function of whether
Susceptibility-induced static field (B<sub>0</sub>) inhomogeneity near the nasal cavity degrades high-field MRI image quality. Many studies have addressed this problem by hardware- or sequence-based methods to improve local B<sub>0</sub> shimming or minimize the impact of inhomogeneity. Here, we investigate the feasibility of the head-tilted brain scan as an easily accessible way to reduce B<sub>0</sub> inhomogeneity and associated gradient echo signal loss in the prefrontal cortex (PFC). We exp
Our naturalistic experiences are organized into memories through multiple processes, including novelty encoding, memory formation, and retrieval. However, the neural mechanisms coordinating these processes remain elusive. Using fMRI data acquired during movie viewing and subsequent narrative recall, we examine hippocampal neural subspaces associated with distinct memory processes and characterized their relationships. We quantify novelty in character co-occurrences and the valence of relationshi
Narrative comprehension requires encoding individual events and sequencing them into coherent structures. This study demonstrates how the hippocampus contributes to these processes during ongoing narrative processing. Participants viewed a temporally scrambled movie and subsequently recounted its inferred original story during functional magnetic resonance imaging (fMRI) scans. Content encoding and event sequencing abilities were assessed by comparing semantic similarity and temporal order betwe
Abstract Cognition and attention arise from the adaptive coordination of neural systems in response to external and internal demands. The low-dimensional latent subspace that underlies large-scale neural dynamics and the relationships of these dynamics to cognitive and attentional states, however, are unknown. We conducted functional magnetic resonance imaging as human participants performed attention tasks, watched comedy sitcom episodes and an educational documentary, and rested. Whole-brain d