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Maryam Bibi

Publications and source records attributed to Maryam Bibi.

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ROBUST-WT: Robust Uncertainty-aware Segmentation Transform via Whitening and Training Enhancements

Generalized segmentation of medical images prevents performance degradation when different imaging devices and clinical protocols are used across multiple domains. The Whitening Transform-based Probabilistic Shape Regularization Extractor (WT-PSE), published in IEEE Transactions on Medical Imaging in 2024, addresses this challenge by employing feature decorrelation and Wasserstein distance-based knowledge distillation to achieve robust cross-domain segmentation. This study systematically examines improvements to the WT-PSE learning framework. Four limitations in the original implementation are identified: limited training augmentations that fail to simulate real scanner variations, reliance on per-pixel binary cross-entropy loss that is sensitive to edge noise, the absence of a scheduled loss weighting strategy that may destabilize early training, and the lack of ablation switches for controlled scientific comparison. To address these issues, we propose four enhancements: (1) domain-adaptive augmentation including random erasing, gamma correction, and salt-and-pepper noise; (2) a hybrid BCE and Dice loss function for improved edge-aware segmentation under noisy conditions; (3) a curriculum-based Dice weight scheduling strategy; and (4) command-line control flags for systematic ablation studies. Experiments on the fundus optic disc segmentation benchmark demonstrate that the improved pipeline achieves a final epoch optic-disc Dice score of 0.956 and an ASD score of 13.31, outperforming the baseline epoch-5 Dice score of 0.939. These results indicate that training-level improvements can provide consistent performance gains without modifying the underlying WT-PSE architecture.

cs.CV

One Loop Calculations of Rare B-decays Beyond the Standard Model

Rare $B$-meson decays, suppressed in the Standard Model (SM) by the GIM mechanism, are sensitive probes of new physics. In particular, loop-level $b \to s$ transitions can reveal effects of heavy virtual particles such as vector-like quarks (VLQs). VLQs, which do not require electroweak symmetry breaking for mass generation, can mix with SM quarks and induce flavor-changing neutral currents (FCNCs). We investigate the impact of down-type iso-singlet VLQs on the rare decay $B^+ \to K^+ \nu \bar{\nu}$, a theoretically clean channel sensitive to new physics. The Belle-II collaboration recently reported a branching ratio of $[2.3 \pm 0.5] \times 10^{-5}$, significantly higher than the SM prediction of $[0.45 \pm 0.07] \times 10^{-5}$, suggesting possible new contributions. To constrain the relevant mixing parameter $U_{sb}$, we also analyze related decays such as $B_s \to \mu^+ \mu^-$ and $B \to X_s \mu^+ \mu^-$. Incorporating VLQ effects into the effective field theory framework, we compute modified Wilson coefficients ($C_7$, $C_9$, $C_{10}$, $C_L$) and predict enhanced branching ratios for $B \to X_s \nu \bar{\nu}$ and $B \to K \nu \bar{\nu}$. $\chi^2$ contour analyses indicate that VLQs can account for observed anomalies, providing a viable and testable extension to the SM.

hep-ph