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2681
Deep soil contributions to global nitrogen budgets
Published 2025-01-01“…Using a random forest machine learning approach we estimate a total deep soil nitrate pool of 15.2 ( ± 1.1 SD) Pg of N. …”
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2682
The Application of New Educational Concepts in Digital Educational Media
Published 2022-01-01“…The process is as follows: based on the collected education data, mining the specific factors that will affect the application ability of teachers’ digital education resources and building a multiple machine learning regression model using these objective and significant features to predict the score of teachers’ digital education resources application ability. …”
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2683
Training Neural Networks with a Procedure Guided by BNF Grammars
Published 2025-01-01“…Artificial neural networks are parametric machine learning models that have been applied successfully to an extended series of classification and regression problems found in the recent literature. …”
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2684
Advanced Network Traffic Prediction Using Deep Learning Techniques: A Comparative Study of SVR, LSTM, GRU, and Bidirectional LSTM Models
Published 2025-01-01“…This study examines the effectiveness of four machine learning models—Support Vector Regression (SVR), Long Short-Term Memory (LSTM), Gated Recurrent Units (GRU), and Bidirectional Long Short-Term Memory (Bi-LSTM)—in forecasting traffic patterns using both web-based and real-world datasets. …”
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2685
A Novel Prescribed-Time Convergence Acceleration Algorithm with Time Rescaling
Published 2025-01-01“…In machine learning, the processing of datasets is an unavoidable topic. …”
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2686
An Analysis of the Economic Impact of US Presidential Elections Based on Principal Component and Logical Regression
Published 2021-01-01“…In order to investigate the impact of the US presidential election on the economy, this paper first constructs an analysis model of the economic impact on the United States based on stepwise regression and principal component analysis to analyze the focus of different candidates’ attention on the economic issues and its possible impact on the US economy in the election year and after the election; secondly, a Chinese economic impact analysis model based on factor analysis and machine learning logistic regression was constructed to analyze the impact of the US presidential election on the Chinese economy. …”
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2687
Estimating the Physical Properties of Nanofluids Using a Connectionist Intelligent Model Known as Gaussian Process Regression Approach
Published 2022-01-01“…This work aims to develop a robust machine learning model for the prediction of the relative viscosity of nanoparticles (NPs) including Al2O3, TiO2, SiO2, CuO, SiC, and Ag based on the most important input parameters affecting them covering the size, concentration, thickness of the interfacial layer, and intensive properties of NPs. …”
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2688
IMBoost: A New Weighting Factor for Boosting to Improve the Classification Performance of Imbalanced Data
Published 2023-01-01“…Imbalanced datasets pose significant challenges in the field of machine learning, as they consist of samples where one class (majority) dominates over the other class (minority). …”
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2689
An Artificial Intelligence Method for Asphalt Pavement Pothole Detection Using Least Squares Support Vector Machine and Neural Network with Steerable Filter-Based Feature Extractio...
Published 2018-01-01“…A data set consisting of 200 image samples has been collected to train and validate the predictive performance of two machine learning algorithms including the least squares support vector machine (LS-SVM) and the artificial neural network (ANN). …”
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2690
La prochaine génération de téléphonie mobile (5G) et ses implications (Infrastructure, Réglementation)
Published 2018-12-01“…Software Defined Networks (SDN) will be set up and torn down, grown and lessened according to demand.Complex network management will be done by Machine Learning (ML) and Artificial Intelligence (AI). …”
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2691
Class Weighting Approach For Handling Imbalanced Data On Forest Fire Classification Using EfficientNet-B1
Published 2025-01-01“…This study contributes to the development of more effective methods for forest fire monitoring and provides insights for future research in machine learning applications in environmental contexts. …”
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2692
Analysis Technology of Tennis Sports Match Based on Data Mining and Image Feature Retrieval
Published 2020-01-01“…In order to improve the performance of tennis game technical analysis, based on machine learning algorithms, this paper combines image analysis to identify athletes’ movement characteristics and image feature recognition processing with image recognition technology, realizes real-time tracking of athletes’ dynamic characteristics, and records technical characteristics. …”
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2693
Traffic Sign Recognition in Rainy Conditions Based on Federated Learning
Published 2025-01-01“…The proposed method is demonstrated by experimental results to enhance performance in challenging weather conditions while also maintaining data privacy in machine learning applications. Overall, this paper underscores the potential of integrating federated learning with CNNs to improve traffic sign recognition capabilities.…”
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2694
Optimal Embedding of Graphs with Nonconcurrent Longest Paths in Archimedean Tessellations
Published 2023-01-01“…These techniques have wide applications in fields such as machine learning, data mining, and network analysis. Do we have small (if possible minimal) k-connected graphs with the property that for any j vertices there is a longest path avoiding all of them? …”
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2695
Active oversight and quality control in standard Bayesian optimization for autonomous experiments
Published 2025-01-01“…Abstract The fusion of experimental automation and machine learning has catalyzed a new era in materials research, prominently featuring Gaussian Process (GP) Bayesian Optimization (BO) driven autonomous experiments. …”
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2696
Driver identification in advanced transportation systems using osprey and salp swarm optimized random forest model
Published 2025-01-01“…The proposed model achieves an accuracy of 92%, a precision of 91%, a recall of 93%, and an F1-score of 92%, significantly outperforming traditional machine learning models such as XGBoost, CatBoost, and Support Vector Machines. …”
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2697
Classification of Gastrointestinal Diseases Using Hybrid Recurrent Vision Transformers With Wavelet Transform
Published 2024-01-01“…This study highlights the potential of combining RVTs with standard machine learning techniques and wavelet transform to enhance the automated diagnosis of GI diseases. …”
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2698
Morphological Accuracy Data Clustering: A Novel Algorithm for Enhanced Cluster Analysis
Published 2024-01-01“…Clustering algorithms are powerful tools used in data analysis and machine learning to group similar data points together based on their inherent characteristics. …”
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2699
Deep and Reinforcement Learning Technologies on Internet of Vehicle (IoV) Applications: Current Issues and Future Trends
Published 2022-01-01“…In this paper, some concepts related to deep learning networks will be discussed as one of the uses of machine learning in IoV systems, in addition to studying the effect of neural networks (NNs) and their types, as well as deep learning mechanisms that help in processing large amounts of unclassified data. …”
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2700
Automated Particle Shape Identification and Quantification for DEM Simulation of Rockfill Materials in Subgrade Construction
Published 2022-01-01“…This study first identifies the subgrade rockfill particle contour by machine learning algorithms, including AdaBoost, Cascade, and sliding windows. …”
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