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7061
Application and prospects of machine learning for rockfalls, landslides and debris flows
Published 2025-07-01“…Future research should prioritize enhancing data quality and quantity, optimizing model interpretability, improving model reliability and generalization, and establishing real-time monitoring and warning systems for automatic identification and rapid response to geological hazards. …”
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7062
Radiomics analysis of thoracic vertebral bone marrow microenvironment changes before bone metastasis of breast cancer based on chest CT
Published 2025-02-01“…Multiple machine learning algorithms were utilized to construct various radiomics models for predicting the risk of bone metastasis, and the model with optimal performance was integrated with clinical features to develop a nomogram. …”
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7063
Advanced GPU Techniques for Dynamic Remeshing and Self-Collision Handling in Real-Time Cloth Tearing
Published 2025-01-01“…We also present a method to optimize kernels based on a complete binary tree in arbitrary triangular meshes, improving performance. …”
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7064
ICT-Net: A Framework for Multi-Domain Cross-View Geo-Localization with Multi-Source Remote Sensing Fusion
Published 2025-06-01“…To facilitate practical deployment, we propose a deep embedding clustering algorithm optimized for rapid parsing of geo-localization information. …”
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7065
CPT-DF: Congestion Prediction on Toll-Gates Using Deep Learning and Fuzzy Evaluation for Freeway Network in China
Published 2023-01-01“…The comparative tests show the proposed CPT-DF (congestion prediction on toll-gates using deep learning and fuzzy evaluation) outperforms the current-used other models by 6-15%. The successful prediction could extend to the real-time prediction and early warning of traffic congestion in the toll system to improve the intelligent level of traffic emergency management and guidance on the key road of disasters to some extent.…”
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7066
A Novel Ensemble Classifier Selection Method for Software Defect Prediction
Published 2025-01-01“…The experimental results demonstrate that the DFD ensemble learning-based software defect prediction model outperforms the ten other models, including five common machine learning (ML) classification algorithms (logistic regression (LR), naïve Bayes (NB), K-nearest neighbor (KNN), decision tree (DT), and support vector machine (SVM)), two deep learning (DL) algorithms (multi-layer perceptron (MLP) and convolutional neural network (CNN)), and three ensemble learning algorithms (random forest (RF), extreme gradient boosting (XGB), and stacking). …”
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7067
Sustainable Energy and Exergy Analysis in Offshore Wind Farms Using Machine Learning: A Systematic Review
Published 2025-05-01“…By integrating theoretical insights with empirical evidence, this study proposes a unified framework that leverages ML algorithms to optimize turbine performance, reduce maintenance costs, and minimize environmental impacts. …”
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7068
The Emerging Role of Artificial Intelligence in Dermatology: A Systematic Review of Its Clinical Applications
Published 2025-05-01“…Conclusions: AI has demonstrated robust clinical potential in dermatology, particularly in cancer detection and workflow optimization. However, further studies are required to address challenges such as algorithmic bias, data privacy, and regulatory oversight. …”
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7069
Collaborative filtering-based Madura Island tourism recommendation system using RecommenderNet
Published 2024-01-01“…The collected data were processed, formatted, and modeled using the RecommenderNet architecture, with training and validation to optimize system performance. …”
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7070
River Surface Space–Time Image Velocimetry Based on Dual-Channel Residual Network
Published 2025-05-01“…An adaptive threshold Sobel operator in the edge channel improves the model’s ability to extract edge features in STI. …”
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7071
IDENTIFYING IMPORTANT GENES IN OVARIAN CANCER FROM HIGH-DIMENSIONAL MICROARRAY DATA USING SIFS-CART METHOD
Published 2024-07-01“…Many studies only focus on improving the machine learning classification algorithms to achieve higher performance. …”
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7072
Duck Egg Crack Detection Using an Adaptive CNN Ensemble with Multi-Light Channels and Image Processing
Published 2025-07-01“…In current practice, human inspectors use standard white light for crack detection, and many researchers have focused primarily on improving detection algorithms without addressing lighting limitations. …”
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7073
Impacts of noise and interference on the bit error rate of the FBMC-OQAM modulation scheme in 5G systems
Published 2024-05-01“…The graphical and numerical data obtained through computer modeling demonstrates improved BER in 5G networks using FBMC-OQAM. …”
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7074
From Misinformation to Insight: Machine Learning Strategies for Fake News Detection
Published 2025-02-01“…We rigorously evaluate a diverse set of detection models across multiple content types, including social media posts, news articles, and user-generated comments. …”
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7075
Performance Evaluation of Neighbors-Based Learning Methods for Network Intrusion Detection System
Published 2025-05-01“…In this study, we apply data preprocessing techniques such as Random Under Sampling to balance the dataset and Robust Scaler to reduce the effect of outliers, thereby improving model performance. Three classification algorithms are implemented, including k-Nearest Neighbors (k-NN), Radius Nearest Classifier (RNC), and Nearest Centroid Classifier (NCC), with the goal of evaluating their effectiveness in detecting cyber-attacks. …”
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7076
Research on Credit Risk Prevention in Supply Chain Finance Driven by Blockchain
Published 2025-01-01“…The article concludes by proposing innovative strategies based on blockchain technology, including constructing a credit information sharing platform, improving the credit assessment model, and establishing a risk early warning and monitoring system, with the aim of improving the efficiency and credit level of supply chain management and further promoting the healthy development of supply chain finance.…”
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7077
Predicting Employee Turnover Using Machine Learning Techniques
Published 2025-01-01“…This study aims to identify the most effective machine learning model for predicting employee attrition, thereby providing organizations with a reliable tool to anticipate turnover and implement proactive retention strategies.Objective: This study aims to address the challenge of employee attrition by applying machine learning techniques to provide predictive insights that can improve retention strategies.Methods: Nine machine learning algorithms are applied to a dataset of 1,470 employee records. …”
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7078
Anchor Dragging Risk Estimation Strategy from Supervised Cost-Sensitive Learning
Published 2024-10-01“…This study also demonstrated potential applications of the model, discussed its limitations, and suggested possible improvements for the ML approach. …”
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7079
A Novel Ensemble of Deep Learning Approach for Cybersecurity Intrusion Detection with Explainable Artificial Intelligence
Published 2025-07-01“…Recursive Feature Elimination is utilized for optimal feature selection, while SHapley Additive exPlanations (SHAP) provide both global and local interpretability of the model’s decisions. …”
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7080
HybridBranchNetV2: Towards reliable artificial intelligence in image classification using reinforcement learning.
Published 2025-01-01“…In particular, a 14% improvement obtained on the Visual Genome dataset and ImageNet 1K compared to the original HybridBranchNet model. …”
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