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281
Association prediction of lncRNAs and diseases using multiview graph convolution neural network
Published 2025-04-01“…Our framework constructs a heterogeneous network combining disease semantics, lncRNA similarity, and miRNA-lncRNA-disease interactions to address isolation issues. …”
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282
A lightweight fabric defect detection with parallel dilated convolution and dual attention mechanism
Published 2025-08-01“…Furthermore, a lightweight cross-stage partial (CSP) layer was deployed by dual convolution for feature fusion, reducing redundant parameters to further lighten the model. …”
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283
FCSwinU: Fourier Convolutions and Swin Transformer UNet for Hyperspectral and Multispectral Image Fusion
Published 2024-10-01“…FCSwinU employs a UNet-like encoder–decoder framework to effectively merge spatiospectral features. …”
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284
Robust remaining useful life prediction of lithium-ion battery with convolutional denoising autoencoder
Published 2024-07-01“…The DAE is built with convolutional layers instead of traditional feed-forward networks here. …”
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285
Convolutional Neural Networks for Real Time Classification of Beehive Acoustic Patterns on Constrained Devices
Published 2024-10-01“…Recent research has demonstrated the effectiveness of convolutional neural networks (CNN) in assessing the health status of bee colonies by classifying acoustic patterns. …”
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286
Time Series Classification Using Federated Convolutional Neural Networks and Image-Based Representations
Published 2025-01-01“…This research introduces a federated hybrid TSC method that combines image-based time series representation techniques with Convolutional Neural Networks (CNNs) in a decentralized framework. …”
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287
A Mathematical Survey of Image Deep Edge Detection Algorithms: From Convolution to Attention
Published 2025-07-01“…This survey presents a mathematically grounded analysis of edge detection’s evolution, spanning traditional gradient-based methods, convolutional neural networks (CNNs), attention-driven architectures, transformer-backbone models, and generative paradigms. …”
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288
Vehicle load identification based on bridge response using deep convolutional neural network
Published 2025-05-01“…This research highlights the efficacy of deep convolutional neural networks (DCNNs) in analyzing bridge responses. …”
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289
ASCDet: cross-space UAV object detection method guided by adaptive sparse convolution
Published 2025-08-01“…ASCDet introduces a plug-and-play detection head compatible with various detection frameworks, significantly reducing computational costs. …”
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290
Region search based on hybrid convolutional neural network in optical remote sensing images
Published 2019-05-01“…Compared with traditional region search methods, such as region-based convolutional neural network and newest feature extraction frameworks, our proposed methods show better robustness with complex context semantic information and backgrounds.…”
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291
Residual learning based convolution neural network for improved channel estimation for VehA channel
Published 2025-07-01“…To address these challenges, this paper proposes a novel convolutional neural network (CNN)-based channel estimation framework utilizing residual learning and iterative refinement. …”
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292
DBANet: a dual-branch convolutional neural network with attention enhancement for motor imagery classification
Published 2024-12-01“…Finally, the combined features are applied for classification.Results The subject-dependent results of our proposed framework on the three datasets (BCI Competition IV dataset 2b, 2a and ECUST dataset) are 85.19%, 85.15% and 75.24%, respectively.Comparison with existing methods We conduct an extensive study between the proposed framework and five State-of-the-Art models, including FBCSP, ShallowConvNet, EEGNet, FBCNet, and IFNet.Conclusions for research articles We certificate the superiority of the proposed framework by conducting comparative experiments on three datasets with advanced MI decoding algorithms.…”
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293
ChaMTeC: CHAnnel Mixing and TEmporal Convolution Network for Time-Series Anomaly Detection
Published 2025-05-01“…This paper introduces ChaMTeC (CHAnnel Mixing and TEmporal Convolution Network), a novel deep learning framework designed for time-series anomaly detection. …”
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294
Medical Image Retrieval Based on Ensemble Learning using Convolutional Neural Networks and Vision Transformers
Published 2022-09-01“…Our proposed framework can be very effective in retrieving multimodal medical images with the images of different organs in the body.…”
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295
Multi-task advanced convolutional neural network for robust lymphoblastic leukemia diagnosis, classification, and segmentation
Published 2025-07-01“…This article introduces a novel multi-task advanced convolutional neural network (MTA-CNN) framework for ALL detection in medical imaging data by simultaneously performing, expression classification, and disease detection. …”
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296
Hyperspectral Image-Based Identification of Maritime Objects Using Convolutional Neural Networks and Classifier Models
Published 2024-12-01“…This study proposes a novel maritime object identification framework that integrates hyperspectral imaging with machine learning models. …”
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297
Inverse binary optimization of convolutional neural network in active learning efficiently designs nanophotonic structures
Published 2025-04-01“…In this paper, we introduce an inverse binary optimization (IBO) scheme that optimizes a surrogate function based on a convolutional neural network (CNN) within an active learning framework. …”
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298
Efficient Gearbox Fault Diagnosis Based on Improved Multi-Scale CNN with Lightweight Convolutional Attention
Published 2025-04-01“…In this paper, we propose an intelligent diagnosis framework based on Empirical Mode Decomposition and multimodal feature co-optimization and innovatively construct a fault diagnosis model by fusing a multi-scale convolutional neural network and a lightweight convolutional attention model. …”
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299
GP-DGECN: Geometric Prior Dynamic Group Equivariant Convolutional Networks for Specific Emitter Identification
Published 2024-01-01“…This framework combines group-equivariant convolutional layers and dynamic convolution kernel strategies to resolve the limitation of traditional CNN models that only possess translational equivariance. …”
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300
Spatiotemporal Flood Hazard Classification in Bangkok Using Graph Convolutional Network and Temporal Fusion Transformer
Published 2025-01-01“…To address this problem, this study proposes a hybrid deep learning framework combining Graph Convolution Network (GCN) and the Temporal Fusion Transformer (TFT) for predicting flood hazard levels in 50 Bangkok districts. …”
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