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Optimization Research on Magnetic Interference Parameter Identification and Compensation for AUV Platforms
Published 2025-01-01“…To further improve training performance, a stacking ensemble learning (STACKING) model is introduced, with L-SHADE and BPNN as base learners and Convolutional Neural Network (CNN) as the meta-learner, integrating the advantages of both algorithms for optimization. …”
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2362
Detection of litchi fruit maturity states based on unmanned aerial vehicle remote sensing and improved YOLOv8 model
Published 2025-04-01“…The improved model demonstrated robust performance in different application scenarios. …”
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2363
Enhancing Consumer Agent Modeling Through Openness-Based Consumer Traits and Inverse Clustering
Published 2025-01-01Get full text
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2364
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2365
An effectiveness of deep learning with fox optimizer-based feature selection model for securing cyberattack detection in IoT environments
Published 2025-08-01“…Furthermore, the FOFSDL-SCD model utilizes the Fox optimizer algorithm (FOA) method for the feature selection process to select the most significant features from the dataset. …”
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2366
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2367
Electricity Carbon Coupled Market Modeling Method and Market Optimization Mechanism Based on Dynamic Carbon Emission Intensity
Published 2025-05-01“…A Markov decision iterative optimal coordination algorithm (MDIOCA) is proposed to solve the model. …”
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2368
Enhanced insulator fault detection using optimized ensemble of deep learning models based on weighted boxes fusion
Published 2025-07-01“…Using deep learning-based models combined with interpretative techniques can be an alternative to improve power grid inspections and increase their reliability. …”
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2369
Using the proximal policy optimization and prospect theory to train a decision-making model for managing personal finances
Published 2024-11-01“…The subject of this article is the development of a decision-making model that can, in the future, be incorporated into a personal finance simulator to improve personal finance literacy. …”
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2370
Physics-informed modeling and process optimization of friction stir welding of AA7075-T6 with a zinc interlayer
Published 2025-10-01“…This study is the first to combine a zinc interlayer with machine learning (ML) based optimization in the FSW of AA7075-T6. Artificial Neural Networks (ANN), Support Vector Regression (SVR), Random Forest Regression (RFR), a Genetic Algorithm (GA) for optimization, and Response Surface Methodology (RSM) for statistical modeling were used to analyze a dataset of 60 observations. …”
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2371
Tensor Network Methods for Hyperparameter Optimization and Compression of Convolutional Neural Networks
Published 2025-02-01“…However, challenges such as hyperparameter optimization (HPO) and model compression remain critical for improving performance and deploying models on resource-constrained devices. …”
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2372
Personalized metronomic radiopharmaceutical therapy through injection profile optimization via physiologically based pharmacokinetic (PBPK) modeling
Published 2025-02-01“…We designed a treatment algorithm to select optimal regimens with high AD, while investigating what we term radiopharmaceutical delivery payload (RDP). …”
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2373
A Minimized Data Collection Optimization Method for Distribution Networks Considering Multiple-Time and Compressed Candidate Sets
Published 2023-12-01“…The model of this method is solved in two stages: In the first stage, the candidate measurement set is compressed, with the Fisher information matrix (FIM) value used as the pheromone update parameter of ant colony algorithm. …”
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2374
Prediction of UHPC mechanical properties using optimized hybrid machine learning model with robust sensitivity and uncertainty analysis
Published 2025-01-01“…Each dataset was standardized and split into training (80%) and testing (20%) subsets. Hyperparameter optimization was conducted using a random search algorithm to improve prediction accuracy. …”
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2375
Research on real time measurement model and measurement system for gas concentration in extraction drilling
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2376
Optimization of Reverse Logistics Networks for Hazardous Waste Incorporating Health, Safety, and Environmental Management: Insights from Large Cruise Ship Construction
Published 2025-05-01“…To mitigate risks such as stock congestion, production disruption, and occupational hazards, this study proposes a novel reverse logistics network optimization model that integrates cost, efficiency, and Health, Safety, Environment (HSE) risk factors. …”
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2377
A comparative study of different kinematic wake models within metaheuristics for efficient wind farm layout optimization
Published 2025-06-01“…We analyze the performance of seven analytical wake models—Jensen, Park2, Frandsen, Larsen, Bastankhah, Ishihara, and Zhang—to estimate the downstream wind speed deficits included in the objective function of metaheuristics (Genetic Algorithm, Particle Swarm Optimization, and Coral Reefs Optimization with Substrate Layers), for an optimal WFLO solution. …”
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2378
Drought Amplifies the Suppressive Effect of Afforestation on Net Primary Productivity in Semi-Arid Ecosystems: A Case Study of the Yellow River Basin
Published 2025-06-01“…Integrating multi-source remote sensing data (2000–2020), meteorological observations with the Standardized Precipitation Evapotranspiration Index (SPEI) and an improved CASA model, this study systematically investigates spatiotemporal patterns of vegetation net primary productivity (NPP) responses to extreme drought events while quantifying vegetation coverage’s regulatory effects on ecosystem drought sensitivity. …”
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2379
Short-Term Wind Power Prediction Model Based on PSO-CNN-LSTM
Published 2025-06-01“…To improve short-term wind power prediction accuracy, this study constructs a hybrid particle swarm optimization (PSO)-CNN-LSTM model for seasonal forecasting. …”
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2380
Charge and discharge scheduling method for large-scale electric vehicles in V2G mode via MLGCSO
Published 2025-05-01“…Compared with traditional methods, the diversity and convergence of particle swarm learning are enhanced, and the optimization performance is improved. Simulation results indicate that when compared with three state-of-the-art optimizers, the optimization accuracy of the proposed algorithm is increased by at least 34% and the total cost is reduced by 3.14% and 1.62% respectively, demonstrating that the MLGCSO exhibits high optimization performance and remarkable optimization effects.…”
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