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LM101-049: How to Experiment with Lunar Lander Software
Manage episode 230297553 series 2497400
In this episode we continue the discussion of learning when the actions of the learning machine can alter the characteristics of the learning machine’s statistical environment. We describe how to download free lunar lander software so you can experiment with an autopilot for a lunar lander module that learns from its experiences and describe the results of some simulation studies. To learn more, visit:
to download the free lunar lander software which illustrates principles of temporal reinforcement learning and nonlinear control theory. You will also have the opportunity to download free software which illustrates how a simple deep learning neural network with one layer of radial basis functions works and a simple linear regression model learning machine. Check it out!!!
85 episodes
Manage episode 230297553 series 2497400
In this episode we continue the discussion of learning when the actions of the learning machine can alter the characteristics of the learning machine’s statistical environment. We describe how to download free lunar lander software so you can experiment with an autopilot for a lunar lander module that learns from its experiences and describe the results of some simulation studies. To learn more, visit:
to download the free lunar lander software which illustrates principles of temporal reinforcement learning and nonlinear control theory. You will also have the opportunity to download free software which illustrates how a simple deep learning neural network with one layer of radial basis functions works and a simple linear regression model learning machine. Check it out!!!
85 episodes
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1 LM101-086: Ch8: How to Learn the Probability of Infinitely Many Outcomes 35:29


1 LM101-085:Ch7:How to Guarantee your Batch Learning Algorithm Converges 30:51


1 LM101-084: Ch6: How to Analyze the Behavior of Smart Dynamical Systems 33:13


1 LM101-083: Ch5: How to Use Calculus to Design Learning Machines 34:22


1 LM101-082: Ch4: How to Analyze and Design Linear Machines 29:05


1 LM101-081: Ch3: How to Define Machine Learning (or at Least Try) 37:20


1 LM101-080: Ch2: How to Represent Knowledge using Set Theory 31:43


1 LM101-079: Ch1: How to View Learning as Risk Minimization 26:07


1 LM101-078: Ch0: How to Become a Machine Learning Expert 39:18


1 LM101-077: How to Choose the Best Model using BIC 24:15


1 LM101-076: How to Choose the Best Model using AIC and GAIC 28:17


1 LM101-075: Can computers think? A Mathematician's Response (remix) 36:26


1 LM101-074: How to Represent Knowledge using Logical Rules (remix) 19:22


1 LM101-073: How to Build a Machine that Learns to Play Checkers (remix) 24:58


1 LM101-072: Welcome to the Big Artificial Intelligence Magic Show! (Remix of LM101-001 and LM101-002) 22:07
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