The SPLICE Project: Safe and Precise Landing Technology Development and Testing

[1]  Richard W. Powell,et al.  Defining Navigation Requirements for Future Missions , 2019, AIAA Scitech 2019 Forum.

[2]  James S. McCabe,et al.  Anonymous Feature Processing for Efficient Onboard Navigation , 2020 .

[3]  Farzin Amzajerdian,et al.  Development of Navigation Doppler Lidar for Future Landing Mission , 2016 .

[4]  Farzin Amzajerdian,et al.  Open-Loop Performance of COBALT Precision Landing Payload on a Commercial Sub-Orbital Rocket , 2018 .

[5]  Andrew E. Johnson,et al.  ADAPT demonstrations of onboard large-divert Guidance with a VTVL rocket , 2014, 2014 IEEE Aerospace Conference.

[6]  Danylo Malyuta,et al.  A State-Triggered Line of Sight Constraint for 6-DoF Powered Descent Guidance Problems , 2019, AIAA Scitech 2019 Forum.

[7]  Jay N. Estes,et al.  SPLICE Flight Hardware Environmental Test Qualification Program , 2021 .

[8]  Danylo Malyuta,et al.  Discretization Performance and Accuracy Analysis for the Rocket Powered Descent Guidance Problem , 2019, AIAA Scitech 2019 Forum.

[9]  Andrew E. Johnson,et al.  Real-time Terrain Relative Navigation Test Results from a Relevant Environment for Mars Landing , 2015 .

[10]  Andrew E. Johnson,et al.  Flight testing of terrain-relative navigation and large-divert guidance on a VTVL rocket , 2015 .

[11]  Farzin Amzajerdian,et al.  COBALT: Development of a Platform to Flight Test Lander GN&C Technologies on Suborbital Rockets , 2017 .

[12]  Andres Huertas,et al.  Probabilistic Hazard Detection for Autonomous Safe Landing , 2013 .

[13]  David Rutishauser,et al.  NASA and Blue Origin Collaborative Assessment of Precision Landing Algorithms and Computing , 2020, AIAA Scitech 2021 Forum.