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Application Of Fuzzy Logic Neural Network Based Reinforcement Learning To Proximity And Docking Operations by Yashvant Jani

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1NASA Technical Reports Server (NTRS) 19930013895: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Attitude Control Results

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As part of the RICIS activity, the reinforcement learning techniques developed at Ames Research Center are being applied to proximity and docking operations using the Shuttle and Solar Max satellite simulation. This activity is carried out in the software technology laboratory utilizing the Orbital Operations Simulator (OOS). This report is deliverable D2 Altitude Control Results and provides the status of the project after four months of activities and outlines the future plans. In section 2 we describe the Fuzzy-Learner system for the attitude control functions. In section 3, we provide the description of test cases and results in a chronological order. In section 4, we have summarized our results and conclusions. Our future plans and recommendations are provided in section 5.

“NASA Technical Reports Server (NTRS) 19930013895: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Attitude Control Results” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19930013895: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Attitude Control Results
  • Author: ➤  
  • Language: English

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The book is available for download in "texts" format, the size of the file-s is: 236.45 Mbs, the file-s for this book were downloaded 65 times, the file-s went public at Sat Oct 01 2016.

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2NASA Technical Reports Server (NTRS) 19930013207: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Translational Controller Results

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The reinforcement learning techniques developed at Ames Research Center are being applied to proximity and docking operations using the Shuttle and Solar Maximum Mission (SMM) satellite simulation. In utilizing these fuzzy learning techniques, we also use the Approximate Reasoning based Intelligent Control (ARIC) architecture, and so we use two terms interchangeable to imply the same. This activity is carried out in the Software Technology Laboratory utilizing the Orbital Operations Simulator (OOS). This report is the deliverable D3 in our project activity and provides the test results of the fuzzy learning translational controller. This report is organized in six sections. Based on our experience and analysis with the attitude controller, we have modified the basic configuration of the reinforcement learning algorithm in ARIC as described in section 2. The shuttle translational controller and its implementation in fuzzy learning architecture is described in section 3. Two test cases that we have performed are described in section 4. Our results and conclusions are discussed in section 5, and section 6 provides future plans and summary for the project.

“NASA Technical Reports Server (NTRS) 19930013207: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Translational Controller Results” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19930013207: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Translational Controller Results
  • Author: ➤  
  • Language: English

“NASA Technical Reports Server (NTRS) 19930013207: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Translational Controller Results” Subjects and Themes:

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The book is available for download in "texts" format, the size of the file-s is: 135.92 Mbs, the file-s for this book were downloaded 72 times, the file-s went public at Sat Oct 01 2016.

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3NASA Technical Reports Server (NTRS) 19930013494: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Special Approach/docking Testcase Results

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As part of the RICIS project, the reinforcement learning techniques developed at Ames Research Center are being applied to proximity and docking operations using the Shuttle and Solar Maximum Mission (SMM) satellite simulation. In utilizing these fuzzy learning techniques, we use the Approximate Reasoning based Intelligent Control (ARIC) architecture, and so we use these two terms interchangeably to imply the same. This activity is carried out in the Software Technology Laboratory utilizing the Orbital Operations Simulator (OOS) and programming/testing support from other contractor personnel. This report is the final deliverable D4 in our milestones and project activity. It provides the test results for the special testcase of approach/docking scenario for the shuttle and SMM satellite. Based on our experience and analysis with the attitude and translational controllers, we have modified the basic configuration of the reinforcement learning algorithm in ARIC. The shuttle translational controller and its implementation in ARIC is described in our deliverable D3. In order to simulate the final approach and docking operations, we have set-up this special testcase as described in section 2. The ARIC performance results for these operations are discussed in section 3 and conclusions are provided in section 4 along with the summary for the project.

“NASA Technical Reports Server (NTRS) 19930013494: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Special Approach/docking Testcase Results” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19930013494: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Special Approach/docking Testcase Results
  • Author: ➤  
  • Language: English

“NASA Technical Reports Server (NTRS) 19930013494: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations: Special Approach/docking Testcase Results” Subjects and Themes:

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The book is available for download in "texts" format, the size of the file-s is: 38.61 Mbs, the file-s for this book were downloaded 72 times, the file-s went public at Mon Oct 03 2016.

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4NASA Technical Reports Server (NTRS) 19920020147: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations

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As part of the Research Institute for Computing and Information Systems (RICIS) activity, the reinforcement learning techniques developed at Ames Research Center are being applied to proximity and docking operations using the Shuttle and Solar Max satellite simulation. This activity is carried out in the software technology laboratory utilizing the Orbital Operations Simulator (OOS). This interim report provides the status of the project and outlines the future plans.

“NASA Technical Reports Server (NTRS) 19920020147: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19920020147: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations
  • Author: ➤  
  • Language: English

“NASA Technical Reports Server (NTRS) 19920020147: Application Of Fuzzy Logic-neural Network Based Reinforcement Learning To Proximity And Docking Operations” Subjects and Themes:

Edition Identifiers:

Downloads Information:

The book is available for download in "texts" format, the size of the file-s is: 38.33 Mbs, the file-s for this book were downloaded 114 times, the file-s went public at Sat Oct 01 2016.

Available formats:
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