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1021
Explainable AI-driven assessment of hydro climatic interactions shaping river discharge dynamics in a monsoonal basin
Published 2025-07-01“…This study presents an interpretable deep learning framework for daily river discharge forecasting in the Subarnarekha river basin (SRB), integrating Kolmogorov Arnold networks (KAN) with Shapley additive exPlanations (SHAP). …”
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1022
gamUnet: designing global attention-based CNN architectures for enhanced oral cancer detection and segmentation
Published 2025-07-01“…Its infiltrative growth patterns and poorly defined boundaries, coupled with the complex architecture of the oral cavity, make accurate segmentation particularly difficult. …”
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1023
Functional connectivity in EEG: a multiclass classification approach for disorders of consciousness
Published 2025-03-01“…Multiclass classification is attempted using various models of artificial neural networks that include different multilayer perceptrons (MLP), recurrent neural networks, long-short-term memory networks, gated recurrent units, and a hybrid CNN-LSTM model that combines convolutional neural networks (CNN) and long-short-term memory network to validate the discriminative power of these FC features. …”
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1024
Automatic Correction System for Learning Activities in Remote-Access Laboratories in the Mechatronics Area
Published 2025-02-01“…The application of CNNs serves to validate the results of the experiments through image analysis, whereas generative AI helps to identify patterns. The system was evaluated in a didactic plant, effectively correcting experiments with digital inputs and outputs. …”
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1025
Enhanced Wind Energy Forecasting Using an Extended Long Short-Term Memory Model
Published 2025-04-01“…This research addresses fundamental limitations in time-sequence forecasting for wind energy by introducing architectural enhancements to traditional LSTM networks. The xLSTM model incorporates two key innovations: exponential gating with memory mixing and a novel matrix memory structure. …”
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1026
Predicting CO<sub>2</sub> Emissions with Advanced Deep Learning Models and a Hybrid Greylag Goose Optimization Algorithm
Published 2025-04-01“…First, experiments showed that ensemble machine learning models such as CatBoost and Gradient Boosting addressed static features effectively, while time-dependent patterns proved more challenging to predict. Transitioning to recurrent neural network architectures, mainly BIGRU, enabled the modeling of sequential dependence on emissions data. …”
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1027
Combining Endpoint Detection and One-Dimensional CNN-Based Classifier for Non-Technical Loss Screening in Smart Grids
Published 2025-01-01“…Subsequently, the STFT is applied to analyze the frequency contains in the drastically changing time-domain data and then generates the visualization color feature patterns. With theses feature patterns, the 1D-CNN based classifier is used to identify the data into normal (Nor), suspected incidents (SI), fraud incidents (FI), and fault or power outage (OUT) events. …”
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1028
RelicNet: highly reliable wireless sensor system for microclimate monitoring in wildland cultural heritage sites
Published 2008-01-01“…The microclimate change patterns in caves were analyzed using the data col- lected by the system, and the reliability and long lifetime of the system were verified through network and battery performance evaluations.…”
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1029
SpaCCC: Large Language Model-Based Cell-Cell Communication Inference for Spatially Resolved Transcriptomic Data
Published 2024-12-01“…SpaCCC also infers known LR pairs concealed by existing aggregative methods and then identifies communication patterns for specific cell types and their signaling pathways. …”
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1030
A Fuzzy-Neural Model for Personalized Learning Recommendations Grounded in Experiential Learning Theory
Published 2025-04-01“…In contrast, AI-based approaches such as artificial neural networks (ANNs) have high adaptability but lack interpretability. …”
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1031
Employee Turnover Prediction Model Based on Feature Selection and Imbalanced Data Handling
Published 2025-01-01“…To address the class imbalance issue, we applied both Synthetic Minority Over-sampling Technique (SMOTE) and Generative Adversarial Network (GAN-based) oversampling techniques. Eight models—Logistic Regression (LR), Naive Bayes (NB), Decision Tree (DT), Support Vector Machine (SVM), Random Forest (RF), Extreme Gradient Boosting (XGBoost), Deep Neural Network (DNN), and a hybrid model (RF+DNN) —were evaluated under different scenarios, including before and after feature selection and imbalance treatment. …”
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1032
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1033
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1034
Characterizing Breast Tumor Heterogeneity Through IVIM-DWI Parameters and Signal Decay Analysis
Published 2025-06-01“…The methodology involved several steps: acquisition of multi-b-value IVIM-DWI images, image pre-processing, including correction for motion and intensity inhomogeneity, treating the multi-b-value data as hyperspectral image stacks, applying hyperspectral techniques like band expansion, and evaluating three tumor detection methods: kernel-based constrained energy minimization (KCEM), iterative KCEM (I-KCEM), and deep neural networks (DNNs). …”
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1035
Short-Term Energy Consumption Forecasting Analysis Using Different Optimization and Activation Functions with Deep Learning Models
Published 2025-06-01“…Regression methods, machine learning, and deep learning methods are used to learn different patterns from data and develop a consumption prediction model. …”
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1036
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1037
MACHINE LEARNING TECHNIQUES FOR RETINOPATHY DETECTION IN DIABETIC PATIENTS
Published 2025-06-01“…The core technology involves deep learning algorithms, particularly Convolutional Neural Networks (CNNs), which are designed to identify complex patterns and features within retinal images. …”
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1038
: Keeping Pedestrian Phone Addicts from Dangers Using Mobile Phone Sensors
Published 2015-05-01Get full text
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1039
Path Prediction Method for Effective Sensor Filtering in Sensor Registry System
Published 2015-07-01“…However most of them do not consider real-time searching and efficiency of mobile networks. In this paper, we suggest a path prediction approach for effective sensor filtering in Sensor Registry System (SRS). …”
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1040
Design and Analysis of High-Performance Smart Card with HF/UHF Dual-Band RFID Tag and Memory Functions
Published 2013-09-01Get full text
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