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401
Timing data visualization: tactical intent recognition and portable framework
Published 2024-08-01“…By transforming time series into images, a robust and transferable tactical intent recognition framework was proposed, which integrated curve filtering technology and the EfficientNetV2 image recognition network. …”
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402
Timing data visualization: tactical intent recognition and portable framework
Published 2024-08-01“…By transforming time series into images, a robust and transferable tactical intent recognition framework was proposed, which integrated curve filtering technology and the EfficientNetV2 image recognition network. …”
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403
A spatial scene reconstruction framework in emergency response scenario
Published 2024-12-01“…Finally, use graph convolutional neural networks to obtain scene knowledge graph embeddings that consider spatial constraints. …”
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404
Robust graph fusion and recognition framework for fingerprint and finger‐vein
Published 2023-01-01Get full text
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405
A novel framework for segmentation of small targets in medical images
Published 2025-03-01“…This framework leverages the established capacity of convolutional neural networks to acquire effective image representations. …”
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406
Application of Deep Learning Framework for Early Prediction of Diabetic Retinopathy
Published 2025-02-01Get full text
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407
Development of interpretable intelligent frameworks for estimating river water turbidity
Published 2025-12-01Get full text
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408
DEFENDIFY: defense amplified with transfer learning for obfuscated malware framework
Published 2025-04-01“…The proposed framework was configured to test four Convolutional Neural Network architectures: ResNet18, ResNet34, EfficientNetB3, and EfficientNetV2S. …”
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409
Machine learning frameworks to accurately predict coke reactivity index
Published 2025-05-01Get full text
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410
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411
Towards edge-collaborative, lightweight and privacy-preserving classification framework
Published 2022-01-01“…Aiming at the problems of data leakage of perceptual image and computational inefficiency of privacy-preserving classification framework in edge-side computing environment, a lightweight and privacy-preserving classification framework (PPCF) was proposed to supports encryption feature extraction and classification, and achieve the goal of data transmission and computing security under the collaborative classification process of edge nodes.Firstly, a series of secure computing protocols were designed based on additive secret sharing.Furthermore, two non-collusive edge servers were used to perform secure convolution, secure batch normalization, secure activation, secure pooling and other deep neural network computing layers to realize PPCF.Theoretical and security analysis indicate that PPCF has excellent accuracy and proved to be security.Actual performance evaluation show that PPCF can achieve the same classification accuracy as plaintext environment.At the same time, compared with homomorphic encryption and multi-round iterative calculation schemes, PPCF has obvious advantages in terms of computational cost and communication overhead.…”
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412
Similarity based city data transfer framework in urban digitization
Published 2025-03-01“…Afterwards, we build an adaptation transfer learning framework to achieve data transfer within the same city cluster, which ensures the reliability of cross-city data transferring results. …”
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413
MolAttnNet: A Predictive Model for Organic Drug Solubility Based on Graph Convolutional Networks and Transformer-Attention
Published 2025-01-01“…The framework comprises three specialized modules: a Graph Convolutional Network for extracting local molecular structural features, a multi-granularity attention mechanism for capturing both local and global molecular dependencies, and an adaptive LSTM with chemically-informed forget gates for selective feature retention and noise attenuation. …”
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414
Classification of iPSC-derived cultures using convolutional neural networks to identify single differentiated neurons for isolation or measurement
Published 2024-11-01“…Additionally, the 2-stage training framework can be used more broadly for cellular classification tasks. …”
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415
SAITI-DCGAN: Self-Attention Based Deep Convolutional Generative Adversarial Networks for Data Augmentation of Infrared Thermal Images
Published 2024-12-01“…To further expand its applicability, the proposed method is designed not only to address the specific needs of aluminum foil sealing but also to serve as a robust framework that can be adapted to a wide range of industrial defect detection tasks. …”
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416
Acceleration of Urdu Optical Character Recognition on Zynq UltraScale+ MPSoC Using Deep Convolutional Neural Network
Published 2025-01-01“…This study presents a hardware-accelerated Urdu OCR framework using a custom-designed Convolutional Neural Network (CNN) optimized for deployment on the Xilinx Zynq UltraScale+ MPSoC (ZCU104). …”
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417
Identifying key genetic variants in Alzheimer’s disease progression using Graph Convolutional Networks (GCN) and biological impact analysis
Published 2025-07-01“…We present a novel deep learning framework integrating Single Nucleotide Polymorphism (SNP) data with Graph Convolutional Networks (GCNs) to predict gene-disease relationships in AD. …”
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418
Secret Key Generation Driven by Attention-Based Convolutional Autoencoder and Quantile Quantization for IoT Security in 5G and Beyond
Published 2025-01-01“…To overcome these challenges, this paper introduces a deep learning–enhanced PSKG framework that effectively mitigates channel discrepancies and improves key generation reliability under imperfect channel state information (CSI). …”
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419
A High-Efficient Method for Synthesizing Multiple Antenna Array Radiation Patterns Simultaneously Based on Convolutional Neural Network
Published 2023-01-01“…During training, the cost function is designed to represent the difference between each synthesized radiation pattern and the corresponding target radiation pattern, guiding self-learning. The main framework of the method is a convolutional neural network, where the convolutional layer is used to reduce the expansion of input parameters due to the simultaneous input of multiple mask matrices. …”
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420
A sorghum seed variety identification method based on image–hyperspectral fusion and an improved deep residual convolutional network
Published 2025-08-01“…The network was enhanced by integrating depthwise separable convolution (DSC) and the Convolutional Block Attention Module (CBAM) into the ResNet50 framework.ResultsThe CBAM-ResNet50-DSC model demonstrated outstanding performance, achieving a classification accuracy of 94.84%, specificity of 99.20%, recall of 94.39%, precision of 94.52%, and an F1-score of 0.9438 on the fusion dataset.DiscussionThese results confirm that the proposed model can accurately and non-destructively classify sorghum seed varieties. …”
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