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401
Context-Aware Level-Wise Feature Fusion Network with Anomaly Focus for Precise Classification of Incomplete Atypical Femoral Fractures in X-Ray Images
Published 2024-11-01“…We also develop a Level-wise Perspective-preserving Fusion Network (LPFN) that preserves the perspective of features while integrating them at different levels to enhance model representation and sensitivity by learning complex correlations and features that are difficult to obtain independently. …”
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402
YOLO-SRSA: An Improved YOLOv7 Network for the Abnormal Detection of Power Equipment
Published 2025-05-01“…For data enhancement, geometric and color transformations and rain-fog simulations are applied to preprocess the dataset, improving the model’s robustness in outdoor complex weather. In the network structure improvements, first, the ACmix module is introduced to reconstruct the SPPCSPC network, effectively suppressing background noise and irrelevant feature interference to enhance feature extraction capability; second, the BiFormer module is integrated into the efficient aggregation network to strengthen focus on critical features and improve the flexible recognition of multi-scale feature images; finally, the original loss function is replaced with the MPDIoU function, optimizing detection accuracy through a comprehensive bounding box evaluation strategy. …”
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403
Using VGG Models with Intermediate Layer Feature Maps for Static Hand Gesture Recognition
Published 2023-10-01Get full text
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404
Triple-Stream Deep Feature Selection with Metaheuristic Optimization and Machine Learning for Multi-Stage Hypertensive Retinopathy Diagnosis
Published 2025-06-01“…In the first stage, 14 well-known Convolutional Neural Network (CNN) models were evaluated, and the top three models were identified. …”
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405
Multi-task meta-attention network for traditional Chinese medicine diagnostic recommendation
Published 2025-08-01Get full text
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406
FruitsMultiNet: A deep neural network approach to identify fruits through multi-scale feature fusion using mobile interface
Published 2025-08-01“…MobileNet, VGG16, NasNetMobile, DenseNet201, InceptionV3, and Xception were experimented with in the feature extraction and performance evaluation process. …”
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407
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408
Speech emotion recognition with light weight deep neural ensemble model using hand crafted features
Published 2025-04-01Get full text
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409
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410
Graph convolutional network model with a feature compensation module and dual-channel second-order pooling module for multimodal emotion recognition in conversation
Published 2025-07-01“…Consequently, this study developed a graph convolutional network (GCN) model with a feature compensation module and dual-channel second-order pooling module for MERC. …”
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411
LSKAFF-YOLO: Large Separable Kernel Attentional Feature Fusion Network for Transmission Tower Detection in High-Resolution Satellite Remote Sensing Images
Published 2025-01-01“…Moreover, a progressive path aggregation network replaces the original neck network, mitigating information loss or degradation during feature transfer and interaction, thereby realizing multiscale feature fusion of transmission towers. …”
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412
Risk assessment of thyroid nodules with a multi-instance convolutional neural network
Published 2025-07-01“…This enables effective feature extraction and localization of key instance features, facilitating risk assessment of thyroid nodules. …”
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413
Multi-Head Attention-Based Framework with Residual Network for Human Action Recognition
Published 2025-05-01“…It integrates residual networks (ResNet-18) for spatial feature extraction and Bi-LSTM for temporal feature extraction. …”
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414
Novel Approach in Vegetation Detection Using Multi-Scale Convolutional Neural Network
Published 2024-11-01“…This study explores the potential of a multi-scale convolutional neural network (MSCNN) design for object classification, specifically focusing on vegetation detection. …”
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415
Development of a Sound Quality Evaluation Model Based on an Optimal Analytic Wavelet Transform and an Artificial Neural Network
Published 2021-03-01“…The feature matrix is fed into the neural network input to determine the psychoacoustic parameters used for sound quality evaluation. …”
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416
Characteristics Analysis of Mental Health Data of College Students Based on Convolutional Neural Network and TOPSIS Evaluation Model
Published 2022-01-01“…This paper develops a feature analysis method of the mental health data of students in different colleges and regions and of different ages based on a convolutional neural network and TOPSIS evaluation model and studies the college students’ mental health analysis model based on convolutional neural network. …”
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417
Comparative Evaluation of Feed-Forward Neural Networks for Predicting Uniaxial Compressive Strength of Seybaplaya Carbonate Rock Cores
Published 2025-05-01“…This work presents a comprehensive evaluation of four feed-forward artificial neural network (ANN) architectures—radial basis function (RBF), Bayesian regularized (BR), scaled conjugate gradient (SCG), and Levenberg–Marquardt (LM)—to predict UCS from three readily measured variables: water content, interconnected porosity, and real density. …”
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418
CPT-DF: Congestion Prediction on Toll-Gates Using Deep Learning and Fuzzy Evaluation for Freeway Network in China
Published 2023-01-01“…The congestion prediction method is designed including two modules: a deep learning (DL) prediction and a fuzzy evaluation. We propose a modified deep learning method based on graph convolutional network (GCN) structure in the fusion of dilated causal mechanism and optimize the method for spatial feature extraction by constructing a new adjacency matrix. …”
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419
An improved lightweight tongue segmentation model with self-attention parallel network and progressive upsampling
Published 2025-07-01“…The model incorporates three key enhancements: (1) the adoption of a Self-Attention Parallel Network that integrates the self-attention mechanism and residual modules to achieve simultaneous extraction of local and global features; (2) the integration of the Efficient Channel Attention(ECA) mechanism into the Mix-FFN component to enhance feature extraction efficiency; and (3) the utilization of Multi-dimensional Feature Progressive Upsampling to mitigate precision loss during the upsampling process. …”
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420