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DeepGamingAI's video: Can AI Replace An Entire Game Engine Nvidia GameGAN Game Futurology 5

@Can AI Replace An Entire Game Engine? (Nvidia GameGAN) | Game Futurology #5
This is episode of the video series "Game Futurology" covering the paper "Learning to Simulate Dynamic Environments with GameGAN" by Seung Wook Kim, Yuhao Zhou, Jonah Philion, Antonio Torralba and Sanja Fidler. PDF: https://arxiv.org/pdf/2005.12126.pdf Project Page: https://nv-tlabs.github.io/gameGAN/ Game Futurology: This is a video series consisting of short 2-3 minute overview of research papers in the field of AI and Game Development. This series aims to ponder over what the future games might look like based on the latest academic research going on in the field today. Subscribe for more weekly videos! Abstract: Simulation is a crucial component of any robotic system. In order to simulate correctly, we need to write complex rules of the environment: how dynamic agents behave, and how the actions of each of the agents affect the behavior of others. In this paper, we aim to learn a simulator by simply watching an agent interact with an environment. We focus on graphics games as a proxy of the real environment. We introduce GameGAN, a generative model that learns to visually imitate a desired game by ingesting screenplay and keyboard actions during training. Given a key pressed by the agent, GameGAN “renders” the next screen using a carefully designed generative adversarial network. Our approach offers key advantages over existing work: we design a memory module that builds an internal map of the environment, allowing for the agent to return to previously visited locations with high visual consistency. In addition, GameGAN is able to disentangle static and dynamic components within an image making the behavior of the model more interpretable, and relevant for downstream tasks that require explicit reasoning over dynamic elements. This enables many interesting applications such as swapping different components of the game to build new games that do not exist. Music Credits: https://www.fesliyanstudios.com/ ---------------------------------------------------------------- • YouTube - https://www.youtube.com/c/DeepGamingA... • Twitter - https://twitter.com/deepgamingai • Medium - https://medium.com/@chintan.t93 • GitHub - https://github.com/ChintanTrivedi --------------------------------------------------------------------

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This video was published on 2020-06-17 18:26:33 GMT by @DeepGamingAI on Youtube. DeepGamingAI has total 5.4K subscribers on Youtube and has a total of 71 video.This video has received 45 Likes which are lower than the average likes that DeepGamingAI gets . @DeepGamingAI receives an average views of 2.1K per video on Youtube.This video has received 5 comments which are lower than the average comments that DeepGamingAI gets . Overall the views for this video was lower than the average for the profile.DeepGamingAI #5 #DeepLearning #GameDesign #GenerativeAdversarialNetworks #GAN #GameGAN #NvidiaAI has been used frequently in this Post.

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