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301
FFAE-UNet: An Efficient Pear Leaf Disease Segmentation Network Based on U-Shaped Architecture
Published 2025-03-01Get full text
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302
CGFTNet: Content-Guided Frequency Domain Transform Network for Face Super-Resolution
Published 2024-12-01“…The network features a channel attention-linked encoder-decoder architecture with two key components: the Frequency Domain and Reparameterized Focus Convolution Feature Enhancement module (FDRFEM) and the Content-Guided Channel Attention Fusion (CGCAF) module. …”
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303
Artificial intelligence networks for assessing the prognosis of gastrointestinal cancer to immunotherapy based on genetic mutation features: a systematic review and meta-analysis
Published 2025-04-01“…Methods This study, adhering to PRISMA guidelines, aimed to evaluate AI networks for predicting gastrointestinal cancer prognosis in response to immunotherapy using genetic mutation features. …”
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304
AMFEF-DETR: An End-to-End Adaptive Multi-Scale Feature Extraction and Fusion Object Detection Network Based on UAV Aerial Images
Published 2024-09-01“…Additionally, the bidirectional adaptive feature pyramid network (BAFPN) is proposed for cross-scale feature fusion, integrating semantic information and enhancing adaptability. …”
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305
YOLO-Ssboat: Super-Small Ship Detection Network for Large-Scale Aerial and Remote Sensing Scenes
Published 2025-06-01“…Additionally, it employs a high-resolution feature layer and incorporates a Multi-Scale Weighted Pyramid Network (MSWPN) to enhance feature diversity. …”
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306
Back Propagation Neural Network model for analysis of hyperspectral images to predict apple firmness
Published 2025-01-01“…The potential of employing hyperspectral imaging (HSI) in the near-infrared (NIR) range (386.82−1,004.50 nm) for predicting the firmness of 'Fuji' apples cultivated in Aksu has been evaluated. The performance of seven preprocessing algorithms and two feature selection algorithms was evaluated. …”
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307
MCADNet: A Multi-Scale Cross-Attention Network for Remote Sensing Image Dehazing
Published 2024-11-01“…In order to overcome this difficulty, we propose the multi-scale cross-attention dehazing network (MCADNet), which offers a powerful solution for RSID. …”
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308
MSTNet: a multi-stage progressive network with local–global transformer fusion for image restoration
Published 2025-04-01“…We also introduce a fusion module to combine the features from different Transformer branches and obtain a comprehensive and accurate feature representation. …”
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309
Research on Pantograph Defect Classification Based on Vibration Signals
Published 2024-12-01Get full text
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310
An efficient approach for diagnosing faults in photovoltaic array using 1D-CNN and feature selection Techniques
Published 2025-05-01“…A simple and accurate one-dimensional convolutional neural network (1D-CNN) model is developed to classify the faults based on the selected features. …”
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311
Osteoarthritis Classification Using Hybrid Quantum Convolutional Neural Network
Published 2025-01-01“…Using a QCNN, this model harnesses the ability of quantum computing to represent high-dimensional data transformations, a novel approach that complements classical CNN layers by exploring patterns that are not captured in traditional networks. The initial results showed a high classification accuracy of 97.26%, suggesting that quantum-enhanced layers can significantly bolster feature extraction and classification in medical diagnostics. …”
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312
FMCNN: Raw-Data Type Identification Using Feature Matrix and CNN
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313
Adversarial Threats to Cloud IDS: Robust Defense With Adversarial Training and Feature Selection
Published 2025-01-01Get full text
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314
Deep Learning Algorithm for Optimized Sensor Data Fusion in Fault Diagnosis and Tolerance
Published 2024-12-01“…Data fusion is then carried out utilizing an enhanced RPN (region proposal network). The enhanced RPN also has a loss function (object detection loss, bounding box loss and target classification loss), an estimate of ROI and feature extraction network (FEN). …”
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315
Efficient GDD feature approximation based brain tumour classification and survival analysis model using deep learning
Published 2024-12-01“…A convolutional neural network (CNN) based on BTC and a survival analysis model based on GDD (growth distribution depth) are presented. …”
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316
Fault diagnosis in photovoltaic arrays: A robust and efficient approach using feature engineering and 1D-CNN
Published 2025-09-01“…To overcome these challenges and limitations, this study proposes a robust and efficient method based on feature engineering and one-dimensional convolutional neural networks (1D-CNN). …”
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317
An approach to arousal disorder classification using deformable convolution and adaptive multiscale features in EEG signals
Published 2025-10-01“…In this research, we propose a novel method to classify arousal disorders from EEG data and extract post-classification diagnostic features. To our knowledge, this is the first instance of such categorization achieved using a deformable convergence network. …”
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318
Simulation-Based Electrothermal Feature Extraction and FCN–GBM Hybrid Model for Lithium-ion Battery Temperature Prediction
Published 2025-08-01“…Leveraging the nonlinear feature extraction capability of FCN and the ensemble learning robustness of GBM, an FCN–GBM hybrid model is developed and evaluated using different input configurations, including voltage alone, internal resistance alone, and the combination of both. …”
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319
Defect detection in textiles using back propagation neural classifier
Published 2023-09-01“…After successful training of the neural network on train dataset, the performance of the trained neural network was evaluated on the test dataset. …”
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320
An Approach using Skeleton-based Representations and Neural Networks for Yoga Pose Recognition
Published 2025-01-01“…Therefore, we present an approach grounded in skeleton-based feature extraction and neural networks to find a solution to the recognition of yoga postures, creating a premise for researching a smart virtual trainer that supports home workouts for users from input image data converted into skeleton data through MoveNet. …”
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