Výsledky vyhľadávania - causal adversarial autoencoder

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    Causal Adversarial Autoencoder for Disentangled SAR Image Representation and Few-Shot Target Recognition Autor Guo, Qian, Xu, Huilin, Xu, Feng

    ISSN: 0196-2892, 1558-0644
    Vydavateľské údaje: New York IEEE 01.01.2023
    “… A Causal Adversarial auto-Encoder (CAE) for SAR-ATR is then proposed to embody this disentangled representation, which incorporates a number of novel built-in network features…”
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    Information Theoretic Learning-Enhanced Dual-Generative Adversarial Networks With Causal Representation for Robust OOD Generalization Autor Zhou, Xiaokang, Zheng, Xuzhe, Shu, Tian, Liang, Wei, Wang, Kevin I-Kai, Qi, Lianyong, Shimizu, Shohei, Jin, Qun

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Vydavateľské údaje: United States IEEE 01.02.2025
    “…) and causal representation learning (CRL) in a dual-generative adversarial network (Dual-GAN) architecture, aiming to enhance the robust OOD generalization in modern machine learning…”
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    De-Occlusion Face Model based on Deep Occlusor Segmentation and Deep Inpainting Models Autor Gutierrez, Miguel, Chacon-Murguia, Mario, Ramirez-Quintana, Juan

    ISSN: 1548-0992, 1548-0992
    Vydavateľské údaje: Los Alamitos IEEE 01.08.2025
    Vydané v Revista IEEE América Latina (01.08.2025)
    “… and generative adversarial networks, fundamental challenges persist, such as the causal interpretation of information loss…”
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    Causal Discovery and Deep Learning Algorithms for Detecting Geochemical Patterns Associated with Gold-Polymetallic Mineralization: A Case Study of the Edongnan Region Autor Luo, Zijing, Zuo, Renguang

    ISSN: 1874-8961, 1874-8953
    Vydavateľské údaje: Berlin/Heidelberg Springer Berlin Heidelberg 01.01.2025
    Vydané v Mathematical geosciences (01.01.2025)
    “… This study investigated the application of a causal discovery algorithm and deep learning models to identify geochemical anomaly patterns associated with mineralization…”
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    DAG-AVAE: Combining GAN with Adversarial VAE to Enhance Causal Structure Learning Autor Jiang, Tao, Cai, Qingsong, Jia, Ming, Cai, Xuanzhi

    Vydavateľské údaje: IEEE 08.11.2024
    “…The task of uncovering the causal structure underlying observed data has garnered significant interest and posed considerable challenges in recent years…”
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    Counterfactual AI in Healthcare: Enhancing Decision-Making and Outcome Prediction Autor Sharma, Harsh, Pradhan, Rajeshwari, Mogha, Harsh, Singh, Shivpratap, Kumar, Rupesh

    Vydavateľské údaje: IEEE 11.04.2025
    “…), Variational Autoencoders (VAEs), and Structural Causal Models (SCMs), to estimate treatment effects accurately…”
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    DR-VIDAL - Doubly Robust Variational Information-theoretic Deep Adversarial Learning for Counterfactual Prediction and Treatment Effect Estimation on Real World Data Autor Ghosh, Shantanu, Feng, Zheng, Bian, Jiang, Butler, Kevin, Prosperi, Mattia

    ISSN: 1942-597X, 1559-4076
    Vydavateľské údaje: United States 2022
    “… DR-VIDAL integrates: (i) a variational autoencoder (VAE) to factorize confounders into latent variables according to causal assumptions; (ii…”
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    Accounting for dependencies among performance shaping factors in SPAR-H using a regularized autoencoder and WINGS-AISM Autor Liu, Xin, Yan, Shengyuan, Zhang, Xiaodan

    ISSN: 1738-5733, 2234-358X
    Vydavateľské údaje: Elsevier B.V 01.01.2025
    Vydané v Nuclear engineering and technology (01.01.2025)
    “… The proposed method comprises three primary aspects: 1) a regularized autoencoder for the denoising and feature extraction of expert evaluation results, 2…”
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    Accounting for dependencies among performance shaping factors in SPAR-H using a regularized autoencoder and WINGS-AISM Autor Xin Liu, Shengyuan Yan, Xiaodan Zhang

    ISSN: 1738-5733, 2234-358X
    Vydavateľské údaje: 2025
    “… The proposed method comprises three primary aspects: 1) a regularized autoencoder for the denoising and feature extraction of expert evaluation results, 2…”
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    Counterfactual Inference for Generalized Zero-Shot Compound-Fault Diagnosis Autor Xu, Juan, Kong, Hui, Ding, Xu, Yuan, Xiaohui

    ISSN: 0018-9456, 1557-9662
    Vydavateľské údaje: New York IEEE 2025
    “… This a typically true for fault diagnosis in machinery, particularly for compound faults. The counterfactual inference reveals the causal components inherent in the fault data…”
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    A WGAN-based Missing Data Causal Discovery Method Autor Gao, Yanyang, Cai, Qingsong

    Vydavateľské údaje: IEEE 25.08.2023
    “…The state-of-the-art causal discovery algorithms are typically based on complete observed data…”
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    Fairness without the sensitive attribute via Causal Variational Autoencoder Autor Grari, Vincent, Lamprier, Sylvain, Detyniecki, Marcin

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 10.09.2021
    Vydané v arXiv.org (10.09.2021)
    “… Based on a causal graph, we rely on a new variational auto-encoding based framework named SRCVAE to infer a sensitive information…”
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    Using Causality-Driven Graph Representation Learning for APT Attacks Path Identification Autor Cheng, Xiang, Kuang, Miaomiao, Yang, Hongyu

    ISSN: 2073-8994, 2073-8994
    Vydavateľské údaje: Basel MDPI AG 01.09.2025
    Vydané v Symmetry (Basel) (01.09.2025)
    “…In the cybersecurity attack and defense space, the “attacker” and the “defender” form a dynamic and symmetrical adversarial pair…”
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    Algorithmic Recourse in Sequential Decision-Making for Long-Term Fairness Autor Gumucio, Francisco

    ISBN: 9798293886449
    Vydavateľské údaje: ProQuest Dissertations & Theses 01.01.2025
    “…Algorithmic decision-making systems are increasingly being deployed in high-stakes domains such as criminal justice, education, and financial services. While…”
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    A transformer guided multi modal learning framework for predictive and causal assessment of thermal runaway in high energy batteries Autor Gajghate, Sameer Sheshrao, Noor, Muhamad Mat, Kumar, Subhash, Bansod, Premendra Janardan, Shelare, Sagar Dnyaneshwar, Nikam, Keval Chandrakant, Jathar, Laxmikant Dattatray, Dennison, Milon Selvam

    ISSN: 2045-2322, 2045-2322
    Vydavateľské údaje: London Nature Publishing Group UK 23.10.2025
    Vydané v Scientific reports (23.10.2025)
    “…) FUSE-GEN, adversarial trained dual-encoder variational autoencoder, fusing acoustic emission (AE…”
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    DR-VIDAL -- Doubly Robust Variational Information-theoretic Deep Adversarial Learning for Counterfactual Prediction and Treatment Effect Estimation on Real World Data Autor Ghosh, Shantanu, Zheng, Feng, Bian, Jiang, Butler, Kevin, Prosperi, Mattia

    ISSN: 2331-8422
    Vydavateľské údaje: Ithaca Cornell University Library, arXiv.org 07.05.2023
    Vydané v arXiv.org (07.05.2023)
    “… DR-VIDAL integrates: (i) a variational autoencoder (VAE) to factorize confounders into latent variables according to causal assumptions; (ii…”
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    Constraint-Driven Causal Representation Learning for Vigilance Robust Estimation in Brain-Computer Interface Autor Zhang, Xuan, Zheng, Wang, Li, Zhigang, Yang, Yi, Liu, Weijia, Cai, Hongxin, Zhu, Junru, Liu, Jingyu, Hu, Bin, Dong, Qunxi

    ISSN: 2162-237X, 2162-2388, 2162-2388
    Vydavateľské údaje: United States IEEE 2025
    “…, out-of-distribution (OOD) scenarios. The core idea of this study is to learn constraints that capture causal information from the input based on the assumed underlying data generating process…”
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    A Novel Causal Federated Transfer Learning Method for Power Transformer Fault Diagnosis Based on Voiceprint Recognition Autor Zhang, Kai, Lu, Hongming, Han, Shuai, Zhao, Xin

    ISSN: 1530-437X, 1558-1748
    Vydavateľské údaje: New York IEEE 15.09.2025
    Vydané v IEEE sensors journal (15.09.2025)
    “… First, a causal FTL framework is proposed by integrating a causal graph autoencoder into FTL to capture nonlinear causal features between voiceprint features and faults…”
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    Integrating causal representations with domain adaptation for fault diagnosis Autor Jiang, Ming, Zhou, Kuang, Gao, Jiahui, Zhang, Fode

    ISSN: 0951-8320
    Vydavateľské údaje: Elsevier Ltd 01.08.2025
    “… In this paper, a Cross-domain Fault Diagnosis model based on Causal Representation learning (CFDCR) is proposed. This method employs causal representation learning…”
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