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GBNSS: A Method Based on Graph Neural Networks (GNNs) for Global Biological Network Similarity Search
Published 2024-10-01Get full text
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Structural Similarity-Guided Siamese U-Net Model for Detecting Changes in Snow Water Equivalent
Published 2025-05-01“…Time series analysis of gridded SWE data holds the potential to unravel the impacts of climate change and global warming on daily, weekly, and monthly changes in snow during the winter season. …”
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A Deep Learning Inversion Method for 3D Temperature Structures in the South China Sea with Physical Constraints
Published 2025-05-01“…This study develops a Convolutional Long Short-Term Memory (ConvLSTM) neural network, integrating multi-source satellite remote sensing data, to reconstruct the Ocean Subsurface Temperature Structure (OSTS). …”
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CCDR: Combining Channel-Wise Convolutional Local Perception, Detachable Self-Attention, and a Residual Feedforward Network for PolSAR Image Classification
Published 2025-07-01“…In the channel-wise convolutional local perception module, channel-wise convolution operations enable accurate extraction of local features from different channels of PolSAR images. …”
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Optimizing AlexNet for accurate tree species classification via multi-branch architecture and mixed-domain attention
Published 2025-04-01“…The multi-branch convolutional module extracts diverse features by processing input with branches of different kernel sizes, capturing both fine and global details. …”
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Interesting Concept Mining With Concept Lattice Convolutional Networks
Published 2025-01-01“…In this paper, we introduce the Concept Lattice Convolutional Network (<inline-formula> <tex-math notation="LaTeX">$\mathcal {LCN}$ </tex-math></inline-formula>), an efficient semi-supervised learning approach to identify actionable concepts (i.e., interesting conceptual structures) based on a scalable convolutional neural network architecture that operates on concept lattices. …”
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Target Tracking via Particle Filter and Convolutional Network
Published 2018-01-01“…The global representation is generated by combining local features without changing their structures and space arrangements. …”
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YOLOv8-GO: A Lightweight Model for Prompt Detection of Foliar Maize Diseases
Published 2024-11-01“…Additionally, Omni-dimensional Dynamic Convolution was employed to optimize the model’s basic convolutional structure, bottleneck structure, and C2f (Faster Implementation of CSP (Cross Stage Partial) Bottleneck with two convolutions) module, improving feature fusion quality and reducing computational complexity. …”
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On the convolutive development of elastic substrate media as nano foundation
Published 2025-06-01“…The validity of the proposed model is verified through comparisons with established theories, demonstrating its precision and broader applicability to complex structural scenarios. The convolution-based formulation also enhances the analysis of advanced loading conditions and nonlinear material responses, making it highly adaptable to real-world engineering applications. …”
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DualPlaqueNet with dual-branch structure and attention mechanism for carotid plaque semantic segmentation and size prediction
Published 2025-07-01“…Notably, a multi-layer one-dimensional convolutional structure is introduced within the Efficient Channel Attention (ECA) module. …”
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gamUnet: designing global attention-based CNN architectures for enhanced oral cancer detection and segmentation
Published 2025-07-01“…Traditional CNNs which sturggle to capture critical global contextual information often fail to distinguish the complex tissue structures in OSCC images.MethodsTo address these challenges, we propose a novel architecture called gamUnet, which integrates the Global Attention Mechanism (GAM) to enhance the model's ability to capture global cross-modal information. …”
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SVEA: an accurate model for structural variation detection using multi-channel image encoding and enhanced AlexNet architecture
Published 2025-02-01“…Additionally, SVEA integrates multi-head self-attention mechanisms and multi-scale convolution modules, enhancing its ability to capture global context and multi-scale features. …”
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D3GNN: Double dual dynamic graph neural network for multisource remote sensing data classification
Published 2025-05-01“…Graph Neural Network (GNN), capable of extracting features from the topological structure, is considered as a solution for capturing global information. …”
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Parking space number detection with multi‐branch convolution attention
Published 2023-06-01“…Since no scholar has proposed a high‐performance method for such problems, a parking space number detection model based on the multi‐branch convolutional attention is presented. Firstly, using ResNet50 as the backbone network, a multi‐branch convolutional structure is proposed in the backbone network, which aims to process and fuse the feature map through three parallel branches, and enhance the network to represent ability information by convolutional attention, learn global features to selectively strengthen the features containing helpful information, and improve the ability of the model to detect the parking space number area. …”
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Fault Diagnosis of Rotating Machinery Based on Evolutionary Convolutional Neural Network
Published 2022-01-01“…This paper proposes a fault diagnosis method for rotating machinery based on evolutionary convolutional neural network (ECNN). With the time-frequency images as the network input, with the help of the global optimization ability of the genetic algorithm, the structure of the convolutional neural network can evolve autonomously, and the adaptive configuration of the structural hyperparameters for the target task is realized. …”
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A point cloud segmentation network with hybrid convolution and differential channels
Published 2025-04-01“…Specifically, we design a hybrid convolutional feature extraction (HCFE) module for processing 3D semantic information and spatial information independently, using different convolution kernels to obtain the subtle geometric structure differences between points. …”
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SMS spam detection using BERT and multi-graph convolutional networks
Published 2025-01-01“…This multigraph approach captures diverse features and models both global and local structures using tailored Graph Convolutional Networks. …”
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TIER: Temporal Convolutional Network Information Extractor With Conditional Random Field
Published 2025-01-01“…The dilated convolution structure of TCN is used to expand the Receptive Fields (RFs) to capture long-distance context features, and the global dependency between labels is modeled through the CRF layer to improve the information extraction performance further. …”
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