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[NeRF-CAM 논문리뷰] - COORDINATE-AWARE MODULATION FOR NEURAL FIELDS 💰새해복 많이 받으세요!!💰 *NeRF-CAM를 위한 논문 리뷰 글입니다! 궁금하신 점은 댓글로 남겨주세요! NeRF-CAM paper: arxiv.org/pdf/2311.14993.pdf NeRF-CAM github: Coordinate-Aware Modulation for Neural Fields (maincold2.github.io) Coordinate-Aware Modulation for Neural Fields Neural fields, mapping low-dimensional input coordinates to corresponding signals, have shown promising results in representing various signals. Numerous methodo..
[Relevance-CAM 논문 리뷰] - Relevance-CAM: Your Model Already Knows Where to Look *Relevance-CAM를 위한 논문 리뷰 글입니다! 궁금하신 점은 댓글로 남겨주세요! Relevance-CAM paper: Relevance-CAM: Your Model Already Knows Where To Look (thecvf.com) Relevance-CAM github: GitHub - mongeoroo/Relevance-CAM: The official code of Relevance-CAM GitHub - mongeoroo/Relevance-CAM: The official code of Relevance-CAM The official code of Relevance-CAM. Contribute to mongeoroo/Relevance-CAM development by creating an..
[Grad-CAM++ 논문 리뷰] - Grad-CAM++: Improved Visual Explanations for Deep Convolutional Networks *Grad-CAM++ 논문 리뷰 글입니다. 궁금하신 점은 댓글로 남겨주세요. *수식 많음 주의!!(어렵지는 않아요!) Grad-CAM++ paper: [1710.11063] Grad-CAM++: Improved Visual Explanations for Deep Convolutional Networks (arxiv.org) Grad-CAM++: Improved Visual Explanations for Deep Convolutional Networks Over the last decade, Convolutional Neural Network (CNN) models have been highly successful in solving complex vision problems. However, these ..
[Grad-CAM 논문 리뷰] - Grad-CAM: Visual Explanations from Deep Networks via Gradient-based Localization *Grad-CAM 논문 리뷰 글입니다. 궁금하신 점은 댓글로 남겨주세요. Grad-CAM paper: [1610.02391] Grad-CAM: Visual Explanations from Deep Networks via Gradient-based Localization (arxiv.org) Grad-CAM: Visual Explanations from Deep Networks via Gradient-based Localization We propose a technique for producing "visual explanations" for decisions from a large class of CNN-based models, making them more transparent. Our approac..
[CAM 논문 리뷰] - Learning Deep Features for Discriminative Localization *XAI에서 가장 대표적으로 쓰이는 CAM 논문 리뷰입니다. 궁금하신 점은 댓글로 남겨주세요. CAM paper: [1512.04150] Learning Deep Features for Discriminative Localization (arxiv.org) Learning Deep Features for Discriminative Localization In this work, we revisit the global average pooling layer proposed in [13], and shed light on how it explicitly enables the convolutional neural network to have remarkable localization ability despit..
[Saliency Map 논문 리뷰] - Deep Inside Convolutional Networks: Visualising Image Classification Models and Saliency Maps *eXplainable AI의 기초가 되는 논문입니다. 질문이 있다면 댓글로 남겨주세요. Deep Inside Convolutional Networks paper: [1312.6034] Deep Inside Convolutional Networks: Visualising Image Classification Models and Saliency Maps (arxiv.org) Deep Inside Convolutional Networks: Visualising Image Classification Models and Saliency Maps This paper addresses the visualisation of image classification models, learnt using deep Convo..

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