Simón Muñoz
One Paper a Week
Join us each week as we explore groundbreaking academic papers that have shaped our understanding of the world.
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Autor
Simón Muñoz
Categoría
Web del podcast
Último episodio
27 de sep. de 2024
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Episodios
Unsupervised Representation Learning With Deep Convolutional Generative Adversarial Networks 27.09.2024 8:55
Source Unsupervised Representation Learning with Deep Convolutional Generative Adversarial Networks Alec Radford, Luke Metz, Soumith Chintala Main Themes Unsupervised representation learning using deep convolutional generative adversarial networks (DCGANs). Exploring the capabilities of DCGANs in learning hierarchical representations of images. Evaluating the performance of DCGANs on supervised ta...
Markov Logic Networks 27.09.2024 8:46
Source Markov Logic Networks, by Matthew Richardson and Pedro Domingos. Department of Computer Science and Engineering, University of Washington, Seattle. Main Themes Combining first-order logic and probabilistic graphical models to create a powerful representation for uncertain knowledge. Introducing Markov logic networks (MLNs), a framework for representing and reasoning with this type of knowle...
Machine Learning and Deep Learning 27.09.2024 10:23
Source Machine learning and deep learning, by Christian Janiesch &Patrick Zschech & Kai Heinrich Main Themes The definitions and relationships between artificial intelligence (AI), machine learning (ML), shallow machine learning, deep learning (DL), and artificial neural networks (ANNs). How shallow ML and DL build analytical models. Challenges in applying ML and DL to build intelligent sy...
Generative Adversarial Networks 27.09.2024 10:32
Source Generative Adversarial Nets by Ian J. Goodfellow, Jean Pouget-Abadie, et al. Main Themes A new framework for estimating generative models called "adversarial nets." Adversarial nets consist of a generative model (G) and a discriminative model (D) trained in an adversarial process. Theoretical analysis and experimental results demonstrating the potential of this framework. Most Imp...
Deep Learning 27.09.2024 8:52
Source LeCun, Y., Bengio, Y., & Hinton, G. (2015). Deep learning. Nature, 521(7553), 436–444. Main Themes This research review article provides a comprehensive overview of deep learning, covering its history, core concepts, important architectures, key applications, and future directions. The article highlights the ability of deep learning methods to automatically learn intricate structures in...
Attention is All You Need 25.09.2024 7:46
Source Vaswani, A., Shazeer, N., Parmar, N., Uszkoreit, J., Jones, L., Gomez, A. N., ... & Polosukhin, I. (2017). Attention is all you need. Advances in neural information processing systems, 30. Main Themes This paper introduces the Transformer, a novel neural network architecture based solely on attention mechanisms for sequence transduction tasks, particularly machine translation. The autho...
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