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921
A Deep Learning Model for NOx Emissions Prediction of a 660 MW Coal-Fired Boiler Considering Multiscale Dynamic Characteristics
Published 2025-04-01“…MSGNet employs Fast Fourier Transform (FFT) for automatic periodic pattern recognition, adaptive graph convolution for dynamic inter-variable relationships, and a multihead attention mechanism to assess temporal dependencies comprehensively. …”
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922
Systematic Approach for Malware Detection in IoT Devices: Enhancing Security and Performance
Published 2025-07-01“…Using the IoT23 dataset, which contains a wide range of network traffic patterns from various IoT devices and malware families, the research explores and evaluates multiple machine learning techniques. …”
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923
SegAN for Recognition of Caries From 2D-Panoramic X-Ray Images
Published 2025-01-01“…The current study uses a Generative Adversarial Network (GAN) model named SegAN to segment the X-ray samples to recognize the caries. …”
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924
Metro Station Passenger Volume Prediction Algorithm Based on Improved LSTNet Model
Published 2025-07-01“…[Objective] To effectively address the pressure of inbound/outbound passenger volume on metro lines during peak hours, it is necessary to develop an accurate passenger volume prediction model to understand the spatiotemporal distribution patterns of metro station inbound/outbound volumes and enhance the scientific basis for operational and scheduling decisions of metro lines. …”
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925
SHIFA: SBERT-Based Healthcare Information Focused Arabic Question Answering
Published 2025-01-01Get full text
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926
A hybrid approach for cervical cancer detection: Combining D-CNN, transfer learning, and ensemble models
Published 2025-09-01“…Specifically, we evaluate the performance of four deep convolutional neural networks architectures: AlexNet, ZfNet, HighwayNet, and LeNet-5, as well as four transfer learning architectures: EfficientNetB0, ResNet50, MobileNetV2, and DenseNet201. …”
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927
An approach to arousal disorder classification using deformable convolution and adaptive multiscale features in EEG signals
Published 2025-10-01“…To our knowledge, this is the first instance of such categorization achieved using a deformable convergence network. Our proposed model, a hierarchical multiscale deformable attention module, excels at detecting complex and abnormal patterns in EEG data. …”
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928
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929
Prediction of Reservoir Flow Capacity in Sandstone Formations: A Comparative Analysis of Machine Learning Models
Published 2025-04-01“…Given a large number of input variables that enclose geological and environmental factors, the study set the correlation of these conditions to provide profound analysis and reveal profound patterns within the data. With the following supervised machine learning algorithms: Random Forest, Artificial Neural Network (ANN) and Support Vector Regression (SVR); the study modeled RFC. …”
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930
MangoLeafXNet: An Explainable Deep Learning Model for Accurate Mango Leaf Disease Classification
Published 2025-01-01“…Our proposed model comprises six layers optimized to capture intricate disease patterns, demonstrating superior performance compared with prevalent pre-trained models. …”
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931
Time-Domain Versus Frequency-Embedded EEG Sequences for Sensorimotor BCI Using 1D-CNN
Published 2025-01-01“…This study proposed a motor imagery (MI) classification pipeline featuring a 1−dimensional convolutional neural network (1D-CNN) with different time/frequency feature representation techniques. …”
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932
Impact of fractures on convective-mixing characteristics of carbon dioxide in saline aquifers
Published 2025-05-01“…In aquifers with combined fractures, horizontal parallel fractures create backflow patterns similar to low-angle fractures. Intersecting fractures help reduce backflow in the smaller area above them, while inclined parallel fractures help reduce backflow at the upper end of high-angle fractures. …”
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933
Deep learning based identification of rock minerals from un-processed digital microscopic images of undisturbed broken-surfaces
Published 2025-06-01“…Patterns such as banding and chromatic contrasts further enhanced classification accuracy. …”
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934
Combining Circular and Gauss-Markov Mobility Models for FANET Enhancement
Published 2025-07-01“…To achieve this realism and improve network performance metrics of the network, multiple Mobility Models (MMs) can be integrated, allowing UAVs to exhibit complex movement patterns that reflect real-world dynamics. …”
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935
Transforming tabular data into images via enhanced spatial relationships for CNN processing
Published 2025-05-01“…Abstract Convolutional neural networks (CNNs), renowned for their efficiency in image analysis, have revolutionized pattern and structure recognition in visual data. …”
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936
Qualitative changes in clinical records after implementation of pharmacist-led antimicrobial stewardship program: a text mining analysis
Published 2025-04-01“…Using Python-based text mining with standardized technical terms and compound word extraction, we performed morphological analysis, co-occurrence network analysis, and hierarchical clustering to evaluate documentation patterns before and after ASP implementation in April 2018. …”
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937
Raman spectroscopy and bioinformatics-based identification of key genes and pathways capable of distinguishing between diffuse large B cell lymphoma and chronic lymphocytic leukemi...
Published 2025-02-01“…PPI network analyses and the evaluation of clustered network modules indicated the top 10 up- and down-regulated genes involved in disease onset and development. …”
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938
CGFL: A Robust Federated Learning Approach for Intrusion Detection Systems Based on Data Generation
Published 2025-02-01“…The effectiveness of pattern detection in models is diminished as a result of the difficulty in extracting attack information from extremely large datasets and obtaining an adequate number of examples for specific types of attacks. …”
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939
Artificial Intelligence in the New Era of Decision-Making: A Case Study of the Euro Stoxx 50
Published 2024-12-01Get full text
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940
Federated learning-enhanced generative models for non-intrusive load monitoring in smart homes
Published 2025-07-01“…In our method, each client trains its own generative neural network to estimate load power, while a discriminator network evaluates these estimates. …”
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