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processing algorithm » modeling algorithm (Expand Search), routing algorithm (Expand Search), tracking algorithm (Expand Search)
learning algorithm » learning algorithms (Expand Search)
develop learning » deep learning (Expand Search), reverse learning (Expand Search), ever learning (Expand Search)
data processing » image processing (Expand Search)
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4021
Shapley value analysis results.
Published 2025“…However, the training data of this model comes from the simulation environment, which may deviate from the real game data. …”
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4022
Performance comparison of different models.
Published 2025“…However, the training data of this model comes from the simulation environment, which may deviate from the real game data. …”
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4023
S1 Dataset -
Published 2025“…However, the training data of this model comes from the simulation environment, which may deviate from the real game data. …”
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4024
Experimental environment.
Published 2025“…However, the training data of this model comes from the simulation environment, which may deviate from the real game data. …”
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4025
The range of hyperparameters.
Published 2025“…However, the training data of this model comes from the simulation environment, which may deviate from the real game data. …”
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4026
Dataset.
Published 2025“…Meanwhile, we design two simple and tractable parameter estimation procedures based on cross-validation technique to speed up the model selection processes for DGRL and KDGRL. Finally, we conduct comprehensive experiments on diverse benchmark databases drawn from different areas to evaluate the proposed theories and algorithms. …”
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4027
Table 1_Development of an upper limb muscle strength rehabilitation assessment system using particle swarm optimisation.xlsx
Published 2025“…Machine learning models, including Backpropagation Neural Network (BPNN), Support Vector Machines (SVM), and particle swarm optimization algorithms (PSO-BPNN, PSO-SVR), were applied for regression analysis. …”
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4028
Case Distribution in ADNI and ROSMAP Cohorts.
Published 2025“…We then developed an AD-GCN for both multi-omics and single-omics classification tasks and compared its performance with that of machine learning ensemble methods. …”
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4029
Summary of the ADNI participants.
Published 2025“…We then developed an AD-GCN for both multi-omics and single-omics classification tasks and compared its performance with that of machine learning ensemble methods. …”
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4030
The Guardian Reading Dataset
Published 2025“…Each participant evaluated 18 articles sampled at three levels of textual complexity (low, medium, high), determined by a readability algorithm (Van der Sluis, 2014). The data captures subjective appraisals of complexity, comprehensibility, and interest, alongside eye-tracking metrics to provide an objective view of readers' processing difficulty and engagement with the text.…”
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4031
Data Sheet 1_A comprehensive review of machine learning for heart disease prediction: challenges, trends, ethical considerations, and future directions.docx
Published 2025“…To systematically investigate this field, the literature is organized into five thematic categories such as “Heart Disease Detection and Diagnostics,” “Machine Learning Models and Algorithms for Healthcare,” “Feature Engineering and Optimization Techniques,” “Emerging Technologies in Healthcare,” and “Applications of AI Across Diseases and Conditions.” …”
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4032
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4033
Chemical Composition-Driven Machine Learning Models for Predicting Ionic Conductivity in Lithium-Containing Oxides (Supporting Information)
Published 2025“…<p>A machine learning model that can predict the ionic conductivity of lithium-containing oxides using chemical composition and ionic conductivity data was previously developed. …”
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4034
Data Sheet 1_Machine learning models predict coagulopathy in traumatic brain injury patients in ER.csv
Published 2025“…We developed a machine learning model to predict coagulopathy in TBI patients in the emergency room. …”
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4035
Data Sheet 1_Identification of signature genes and subtypes for heart failure diagnosis based on machine learning.xlsx
Published 2025“…</p>Methods<p>HF datasets were acquired from the Gene Expression Omnibus (GEO) database (GSE57338), and through the application of bioinformatics and machine-learning algorithms. We identified four candidate genes (FCN3, MNS1, SMOC2, and FREM1) that may serve as potential diagnostics for HF. …”
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4036
Collaborative research: CyberTraining: Implementation: Medium: Training users, developers, and instructors at the chemistry/physics/materials science interface
Published 2025“…We achieve our aims by providing learners with various backgrounds exposure to state-of-the-art techniques and skills, showing them how to overcome the challenges of complexity by combining theories and algorithms or by unbiased learning of patterns. We will foster community-building among learners, developers, and instructors at different stages of their careers in multiple successive events designed to create a cohesive and sustainable environment where research and educational developments can grow beyond the project's duration. …”
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4037
Data Sheet 1_Bi-modal contrastive learning for crop classification using Sentinel-2 and Planetscope.pdf
Published 2024“…However, the existing algorithms require a huge amount of annotated data. …”
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4038
Data Sheet 1_Deep learning-based beat-to-beat delineation of heart sounds and fiducial points in seismocardiography.pdf
Published 2025“…Therefore, the aim of this study was to develop an adaptive and data-driven algorithm for automatic delineation of 11 fiducial points in SCG.…”
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4039
Supplementary file 1_Personalized machine learning–based prognostic model for ICU-acquired bloodstream infections.docx
Published 2025“…Background<p>Intensive care unit–acquired bloodstream infections (ICU-BSIs) are among the most prevalent healthcare-associated infections and a major cause of mortality among ICU patients. We developed a machine learning (ML)–based model to predict the prognosis of ICU-BSIs.…”
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4040
Supplementary file 1_Quantum natural language processing and its applications in bioinformatics: a comprehensive review of methodologies, concepts, and future directions.png
Published 2025“…However, this study also acknowledges the future of QNLP in bioinformatics in the discussion of the challenges and weaknesses of quantum hardware, data representation, encoding, and the construction and enhancement of the algorithms. …”