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Showing 1–4 of 4 results for author: Kim, N Y

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  1. arXiv:2607.08533  [pdf

    cs.AI cs.LG

    AI-guided stimuli discovery and generation to optimize facial emotion perception studies in autism

    Authors: Kushin Mukherjee, Na Yeon Kim, Maren Wehrheim, Ralph Adolphs, Kohitij Kar

    Abstract: Understanding perceptual differences between autistic and neurotypical adults requires behavioral assays that are sensitive, reliable, and mechanistically informative. Facial emotion perception is a useful test case because group differences have been reported, but findings vary across studies. Here we show that this variability may reflect image-level sparsity: autistic-neurotypical differences i… ▽ More

    Submitted 9 July, 2026; originally announced July 2026.

  2. arXiv:2604.08217  [pdf

    cs.CY

    Co-design for Trustworthy AI: An Interpretable and Explainable Tool for Type 2 Diabetes Prediction Using Genomic Polygenic Risk Scores

    Authors: Ralf Beuthan, Megan Coffee, Heejin Kim, Na Yeon Kim, Pedro Kringen, Elisabeth Hildt, Haekyung Lee, Seunggeun Lee, Emilie Wiinblad Mathez, Sira Maliphol, Vadim Pak, Yuna Park, Stephan Sonnenberg, Jesmin Jahan Tithi, Magnus Westerlund, Roberto V. Zicari

    Abstract: The polygenic risk scores (PRS) have emerged as an important methodology for quantifying genetic predisposition to complex traits and clinical disease. Significant progress has been made in applying PRS to conditions such as obesity, cancer, and type 2 diabetes (T2DM). Studies have demonstrated that PRS can effectively identify individuals at high risk, thereby enabling early screening, personaliz… ▽ More

    Submitted 9 April, 2026; originally announced April 2026.

    Comments: 57 pages, 1 figure, 3 tables

    ACM Class: K.4.1; J.3; I.2.0

  3. arXiv:2206.07272  [pdf

    cs.CV cs.AI

    Machine vision for vial positioning detection toward the safe automation of material synthesis

    Authors: Leslie Ching Ow Tiong, Hyuk Jun Yoo, Na Yeon Kim, Kwan-Young Lee, Sang Soo Han, Donghun Kim

    Abstract: Although robot-based automation in chemistry laboratories can accelerate the material development process, surveillance-free environments may lead to dangerous accidents primarily due to machine control errors. Object detection techniques can play vital roles in addressing these safety issues; however, state-of-the-art detectors, including single-shot detector (SSD) models, suffer from insufficien… ▽ More

    Submitted 14 June, 2022; originally announced June 2022.

  4. arXiv:2206.00086  [pdf, other

    physics.app-ph cs.LG physics.comp-ph

    Extensive Study of Multiple Deep Neural Networks for Complex Random Telegraph Signals

    Authors: Marcel Robitaille, HeeBong Yang, Lu Wang, Na Young Kim

    Abstract: Time-fluctuating signals are ubiquitous and diverse in many physical, chemical, and biological systems, among which random telegraph signals (RTSs) refer to a series of instantaneous switching events between two discrete levels from single-particle movements. Reliable RTS analyses are crucial prerequisite to identify underlying mechanisms related to performance sensitivity. When numerous levels pa… ▽ More

    Submitted 31 May, 2022; originally announced June 2022.

    Comments: 10 pages, 6 figures