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Masaki Fukunaga

Publications and source records attributed to Masaki Fukunaga.

2 recordsLinked to original sources

Detecting outliers of pursuit eye movements: a preliminary analysis of autism spectrum disorder

Background: Autism spectrum disorder (ASD) is characterized by significant clinical and biological heterogeneity. Conventional group-mean analyses of eye movements often mask individual atypicalities, potentially overlooking critical pathological signatures. This study aimed to identify idiosyncratic oculomotor patterns in ASD using an "outlier analysis" of smooth pursuit eye movement (SPEM). Methods: We recorded SPEM during a slow Lissajous pursuit task in 18 adults with ASD and 39 typically developed (TD) individuals. To quantify individual deviations, we derived an "outlier score" based on the Mahalanobis distance. This score was calculated from a feature vector, optimized via Principal Component Analysis (PCA), comprising the temporal lag ($Δ$t) and the spatial deviation ($Δ$s). An outlier was statistically defined as a score exceeding $\sqrt{10}$ (approximately 3.16$σ$) relative to the TD normative distribution. Results: While the TD group exhibited a low outlier rate of 5.1%, the ASD group demonstrated a significantly higher prevalence of 38.9% (7/18) (binomial P = 0.0034). Furthermore, the mean outlier score was significantly elevated in the ASD group (3.00 $\pm$ 2.62) compared to the TD group (1.52 $\pm$ 0.80; P = 0.002). Notably, these extreme deviations were captured even when conventional mean-based comparisons showed limited sensitivity. Conclusions: Our outlier analysis successfully visualized the high degree of idiosyncratic atypicality in ASD oculomotor control. By shifting the focus from group averages to individual deviations, this approach provides a sensitive metric for capturing the inherent heterogeneity of ASD, offering a potential baseline for identifying clinical subtypes.

q-bio.NC

Impact of Brain Anisotropy on Transcranial Temporal Interference Stimulation: Numerical Analysis Toward Reliable Montage Optimization

Background & Aim: Transcranial temporal interference stimulation (TIS) is a novel transcranial electrical stimulation modality that enables focused targeting of deep brain structures. When targeting deep regions, current pathways traverse the highly anisotropic white matter, making anisotropy a potentially critical factor. This study aimed to clarify how anisotropy influences interferential currents in deep brain regions and to assess its impact on TIS montage optimization for the first time. Methods: Anatomical head conductor models with anisotropic and isotropic conductivities were compared to evaluate the role of anisotropy in the intracranial interferential currents distributions and montage optimization. For the anisotropic conductivity, conductivity tensors were derived from diffusion-weighted imaging data for gray matter, white matter, and deep brain structures. Montage optimization was conducted based on Pareto front optimization. Results: In literature-reported TIS montages, anisotropic conductivity significantly altered the interferential electric field intensity, with differences of up to 18% in the white matter, whereas discrepancies in deep brain structures remained below 12%. For TIS-optimized montages, these variations across conductivity models yielded only 50% montage disagreement. However, when constraining differences in focality and target field strength to within 10%, the agreement improved to nearly 90%. Conclusions: Incorporating anisotropic conductivities is important to determine individualized focality and target-field characteristics. Moreover, anisotropy can substantially affect the selection of the optimal montage, but under practical focality and target-field tolerances, montage choices largely converge.

physics.med-ph