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Available Transfer Capability Assessment of Multiarea Power Systems with Conditional Generative Adversarial Network
Published 2024-01-01“…This paper proposes an ATC assessment methodology based on the typical stochastic scenarios of renewable output and load demand of multiarea power systems. Furthermore, the conditional generative adversarial network (CGAN) algorithm is adopted to generate and select representative scenario sets based on historical raw data, which can fully reflect the usual operating condition of a system with high renewable energy penetration. …”
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Simulating Nighttime Visible Satellite Imagery of Tropical Cyclones Using Conditional Generative Adversarial Networks
Published 2025-01-01“…This study presents a conditional generative adversarial networks model to generate nighttime VIS imagery with significantly enhanced accuracy and spatial resolution. …”
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Distributionally Robust Day-Ahead Dispatch Optimization for Active Distribution Networks Based on Improved Conditional Generative Adversarial Network
Published 2025-06-01“…[Methods] To effectively improve the adaptability of day-ahead dispatch plans to uncertainties, this study proposes a distributionally robust day-ahead dispatch optimization method for active distribution networks (ADN) based on an improved conditional generative adversarial network (CGAN). First, an improved CGAN model designed by three-dimensional convolution (Conv3D) is proposed to address the problem of generating day-ahead scenarios for wind turbines (WT) and photovoltaic (PV) outputs considering spatio-temporal correlation, which effectively reduces the conservatism of the generated scenario set. …”
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Well log data generation and imputation using sequence based generative adversarial networks
Published 2025-03-01“…This study introduces a novel framework utilizing sequence-based generative adversarial networks (GANs) specifically designed for well log data generation and imputation. …”
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Fault Recognition Method and Application Based on Generative Adversarial Network
Published 2025-06-01“…To overcome this challenge, this study proposes an innovative solution, which uses generative adversarial network‐UNet (GAN‐UNet) to extract features from data in depth. …”
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A Generative Adversarial Network Approach to EstimateFinite Element Displacement
Published 2019-01-01“…In order to explore solutions other than the finite element method, the displacement response is considered as a picture generation process with given conditions, bypassing the physical method. …”
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Forecasting Lakes' Chlorophyll Concentrations Using Satellite Images and Generative Adversarial Networks
Published 2024-10-01“…Then, we use this data set (∼1,000 Sentinel‐2 images) to train a Generative Adversarial Network (GAN) to recognize spatiotemporal patterns. …”
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A Four‐Dimensional Variational Informed Generative Adversarial Network for Data Assimilation
Published 2025-06-01“…In this study, we propose a novel model called the 4DVar‐informed generative adversarial network (4DVarGAN), which combines prior knowledge from 4DVar with the conditional generative network (CGAN). …”
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Overall Layout Method of Frame Structure Plane Based on Generative Adversarial Network
Published 2025-05-01“…The discriminator determines whether the generated image is real or synthetic. Through adversarial training, the generator and discriminator iteratively improve until reaching a Nash equilibrium. …”
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Sensor-Integrated Inverse Design of Sustainable Food Packaging Materials via Generative Adversarial Networks
Published 2025-05-01“…This study introduces a novel framework for the inverse design of sustainable food packaging materials using generative adversarial networks (GANs) and the recently released OMat24 dataset containing 110 million DFT-calculated inorganic material structures. …”
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GANCHEST: a multi-GAN-based framework for chest CXR image generation and validation
Published 2025-07-01“…To address this problem, this study proposed GANCHEST, a framework that generates Chest CXR images based on two different generative adversarial networks (GANs): the basic GAN (GAN) and the conditional GAN (CGAN). …”
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Ancient Javanese Manuscript Reconstruction Using Generative Adversarial Network with StarGAN v2 Variations
Published 2025-03-01“…This paper presents a manuscript reconstruction using the Generative Adversarial Network model, using the variation of StarGAN v2. …”
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Leveraging generative adversarial networks for data augmentation to improve fault detection in wind turbines with imbalanced data
Published 2025-03-01“…This paper utilizes a Wasserstein Conditional Generative Adversarial Network (WC-GAN), which replaces the KL divergence in CGAN with the Wasserstein distance to rectify data imbalances by generating synthetic fault samples for wind turbine fault classification. …”
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Exploring Bioimage Synthesis and Detection via Generative Adversarial Networks: A Multi-Faceted Case Study
Published 2025-06-01“…Background:Generative Adversarial Networks (GANs), thanks to their great versatility, have a plethora of applications in biomedical imaging with the goal of simulating complex pathological conditions and creating clinical data used for training advanced machine learning models. …”
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A holistic framework for intradialytic hypotension prediction using generative adversarial networks-based data balancing
Published 2025-07-01“…This study evaluates an enhanced conditional Wasserstein Generative Adversarial Network with Gradient Penalty (CWGAN-GP) framework to improve IDH prediction by generating high-utility synthetic data for balancing. …”
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Fast and computationally efficient generative adversarial network algorithm for unmanned aerial vehicle–based network coverage optimization
Published 2022-03-01“…The proposed algorithm is implemented based on a conditional generative adversarial neural network, with a unique multilayer sum-pooling loss function. …”
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Learning From Imbalanced Data Using Triplet Adversarial Samples
Published 2023-01-01“…We present a new synthetic data generation method that addresses this issue by combining adversarial sample generation with a triplet loss method. …”
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Optimized deep learning approach for lung cancer detection using flying fox optimization and bidirectional generative adversarial networks
Published 2025-05-01“…This study presents an optimised deep learning approach for lung cancer classification, integrating flying fox optimization (FFXO) for feature selection and bidirectional generative adversarial networks (Bi-GAN) for classification. …”
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Quasi-Analytical Least-Squares Generative Adversarial Networks: Further 1-D Results and Extension to Two Data Dimensions
Published 2025-01-01“…Generative adversarial networks (GANs) are notoriously difficult to analyse, necessitating empirical studies in high dimensional spaces that suffer from stochastic sampling noise. …”
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