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361
Macro and mesoscopic mechanical behavior of concrete with actual aggregate segmented by hybrid Transformers and convolutional neural networks
Published 2025-07-01“…This study presents a deep learning-based numerical framework aimed at investigating both macro- and mesoscopic mechanical behavior of concrete, focusing on the actual aggregate morphology and distribution in 2D cross-sections. …”
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362
A novel intelligent fault diagnosis method for gearbox based on multi-dimensional attention denoising convolution
Published 2024-10-01“…Abstract In the field of intelligent fault diagnosis, particularly concerning rotating machinery, convolutional neural networks (CNNs) face significant challenges when applied to real industrial vibration data. …”
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363
Improving Fire and Smoke Detection with You Only Look Once 11 and Multi-Scale Convolutional Attention
Published 2025-04-01“…You Only Look Once (YOLO), as an efficient deep learning object detection framework, can rapidly locate and identify fire and smoke objects in visual images. …”
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364
Multi‐omics graph convolutional networks for digestive system tumour classification and early‐late stage diagnosis
Published 2024-12-01“…The MGTCN model incorporates the Graph Transformer Layer framework to meticulously transform the multi‐omics adjacency matrix, thereby illuminating potential associations among diverse samples. …”
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365
A Multilevel Multimodal Hybrid Mamba-Large Strip Convolution Network for Remote Sensing Semantic Segmentation
Published 2025-08-01“…Specifically, this paper introduces a new multistage Mamba multimodal fusion framework (FMB) for UHR remote sensing image segmentation. …”
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366
DEDSWIN-Net: Dual Encoder Dilated Convolution and Swin Transformer Network for the Classification of Liver CT Images
Published 2025-07-01“…To resolve this concern, this paper suggests a novel dual encoder deep learning structure named DEDSWIN-Net to mitigate this problem. The proposed framework consists of four components: a dilated convolution-based encoder, a transformer-based encoder, a multi-scale multiple feature fusion decoder (MSMFD), and a DL training model. …”
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367
SNet: A novel convolutional neural network architecture for advanced endoscopic image classification of gastrointestinal disorders
Published 2025-08-01“…To enable the exhaustive evaluation of proposed framework across different datasets, the model has undergone training on a very complex HyperKvasir dataset, and later tested on Kvasir v1 and v2 datasets. …”
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368
Use of a convolutional neural network for direct detection of acid-fast bacilli from clinical specimens
Published 2025-08-01“…We present the development of an artificial intelligence computer vision process using a deep convolutional neural network to detect acid-fast bacilli (AFB) from Kinyoun acid-fast stained slides. …”
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369
Advancements and outlooks in utilizing Convolutional Neural Networks for plant disease severity assessment: A comprehensive review
Published 2024-12-01“…Once limited to disease detection, Convolutional Neural Networks (CNNs) applications now exhibit automatic severity calculation and classification solutions. …”
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370
A Dual-Branch Network of Strip Convolution and Swin Transformer for Multimodal Remote Sensing Image Registration
Published 2025-03-01“…However, current advanced registration frameworks are unable to accurately register large-scale rigid distortions, such as rotation or scaling, that occur in multi-source remote sensing images. …”
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371
An intelligent framework for crop health surveillance and disease management.
Published 2025-01-01“…Additionally, environmental parameters such as temperature, humidity, and water levels are continuously monitored to aid in informed decision-making. The proposed framework incorporates Convolutional Neural Network (CNN), MobileNet-1, MobileNet-2, Residual Network (ResNet-50), and ResNet-50 with InceptionV3 to ensure precise disease identification and improved agricultural productivity.…”
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372
A Crowd Counting Framework Combining with Crowd Location
Published 2021-01-01“…In this paper, a new framework is proposed to resolve the problem. The proposed framework includes two parts. …”
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373
Clinical Applicability of Machine Learning Models for Binary and Multi-Class Electrocardiogram Classification
Published 2025-03-01Subjects: Get full text
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374
A densely connected framework for cancer subtype classification
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375
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376
Blockchain-Based Smart Monitoring Framework for Defense Industry
Published 2024-01-01“…Conspicuously, the current research presents a comprehensive framework based on the IoT-empowered Digital Twin technology for assessing the national integrity of defense personnel. …”
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377
MTAGCN: Multi-Task Graph-Guided Convolutional Network with Attention Mechanism for Intelligent Fault Diagnosis of Rotating Machinery
Published 2025-04-01“…To overcome this issue, a graph convolutional network (GCN)-based fault diagnosis framework is introduced, which not only captures structural characteristics but also enhances diagnostic effectiveness. …”
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378
Convolutional neural networks to predict dispersion surfaces-based properties of acoustic metamaterials with arbitrary-shaped unit cells
Published 2025-06-01“…This study presents a deep-learning framework for predicting and optimizing the bandgap properties of 2D acoustic metamaterials with arbitrary-shaped unit cells. …”
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379
Gramian Angular Field and Convolutional Neural Networks for Real-Time Multiband Spectrum Sensing in Cognitive Radio Networks
Published 2025-06-01“…This paper presents a distinctive framework where a central entity collects power spectral density data from multiple geographically distributed secondary users and applies the Gramian angular field (GAF) summation method to transform the time-series data into image representations. …”
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380
Constrained Heat Kernel Graph Diffusion Convolution: A High-Dimensional Statistical Approximation via Information Theory
Published 2025-01-01“…Our method demonstrates consistent performance improvements in downstream graph-mining tasks across six public datasets, offering a principled framework and faster approximation method for the diffusion time. …”
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