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The automatic classification of sleep stages and Cyclic Alternating Pattern (CAP) subtypes from electroencephalogram (EEG) recordings remains a significant challenge in computational sleep research because of the short duration of CAP events and the inherent class imbalance in clinical datasets. The research introduces a domain-specific deep learning system that employs an LSTM network optimized through a PSO-Hyperband hybrid hyperparameter tuning method. The research enhances EEG-based sleep analysis through the implementation of hybrid optimization methods within an LSTM architecture that addresses CAP sequence classification requirements without requiring architectural changes. The developed model demonstrates strong performance on the CAP Sleep Database by achieving 97% accuracy for REM and 96% accuracy for stage S0 and ROC AUC scores exceeding 0.92 across challenging CAP subtypes (A1-A3). The model transparency is improved through the application of SHAP-based interpretability techniques, which highlight the role of spectral and morphological EEG features in classification outcomes. The proposed framework demonstrates resistance to class imbalance and better discrimination between visually similar CAP subtypes. The results demonstrate how hybrid optimization methods improve the performance, generalizability, and interpretability of deep learning models for EEG-based sleep microstructure analysis.
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http://dx.doi.org/10.3390/brainsci15080854 | DOI Listing |
Infect Genet Evol
September 2025
Veterinary Diagnostic Laboratory, Veterinary Diagnostic and Production Animal Medicine, Iowa State University, IA, USA. Electronic address:
Porcine circovirus type 3 (PCV3) was identified in 2016 and has since been associated with reproductive failure, multisystemic inflammation, and subclinical infection in swine. Numerous countries have retrospectively detected the presence of PCV3 before its first clinical description in 2016. The reported detection rate of PCV3 has varied from 6.
View Article and Find Full Text PDFInt J Mol Sci
August 2025
Department of Human Pathology, Juntendo University School of Medicine, Tokyo 113-8421, Japan.
High-grade sarcomas often lack typical morphological features and exhibit no clear differentiation, often leading to a diagnosis of undifferentiated sarcoma (US). Pleomorphic leiomyosarcoma (PLMS) is a high-grade sarcoma consisting of a typical leiomyosarcoma (LMS) component alongside dedifferentiated high-grade areas. A few decades ago, PLMS was regarded as a subtype of high-grade sarcoma previously referred to as malignant fibrous histiocytoma; it is now classified as a variant of LMS.
View Article and Find Full Text PDFBrain Sci
August 2025
Department of Health Information Management and Technology, College of Applied Medical Sciences, King Faisal University, Al-Ahsa 36362, Saudi Arabia.
The automatic classification of sleep stages and Cyclic Alternating Pattern (CAP) subtypes from electroencephalogram (EEG) recordings remains a significant challenge in computational sleep research because of the short duration of CAP events and the inherent class imbalance in clinical datasets. The research introduces a domain-specific deep learning system that employs an LSTM network optimized through a PSO-Hyperband hybrid hyperparameter tuning method. The research enhances EEG-based sleep analysis through the implementation of hybrid optimization methods within an LSTM architecture that addresses CAP sequence classification requirements without requiring architectural changes.
View Article and Find Full Text PDFAnn Med Surg (Lond)
August 2025
Department of Neurology, Henry Ford Health, USA.
Background: Meningiomas are the second most prevalent adult central nervous system neoplasm, developing from arachnoid cap cells. While most are benign (WHO Grade I), atypical (Grade II), and anaplastic (Grade III), meningiomas portray aggressive behavior, higher relapse rates, and resistance to standard treatments.
Objective: To study the progression of treatment strategies for meningiomas, underscoring emerging treatments and challenges, especially in recurrent and high-grade subtypes.
Front Immunol
August 2025
Department of Women's Health, University of Tübingen, Tübingen, Germany.
Triple-negative breast cancer (TNBC), characterized by the absence of ER, PR, and HER2 receptors, remains one of the most aggressive breast cancer subtypes, with limited therapeutic options and a high relapse rate. While immune checkpoint inhibitors (ICIs) have shown promise by leveraging TNBC's immunogenic profile, their use is often accompanied by significant toxicity, necessitating the development of safer immunomodulatory strategies. Non-invasive physical plasma (NIPP), a novel low thermal plasma technology that can be generated using various gases, including argon, and producing reactive oxygen and nitrogen species (RONS), has emerged as a potential alternative.
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