NASA Science Activation Teams Unite to Support Neurodiverse Learners with Public Libraries

NASA Science Activation Teams Unite to Support Neurodiverse Learners with Public Libraries

3 min read

NASA Science Activation Teams Unite to Support Neurodiverse Learners with Public Libraries

On July 16, 2025, more than 400 public library staff from across the United States joined a powerful webinar, Serving Neurodiverse Library Patrons and Colleagues, hosted by two NASA Science Activation program teams: NASA@ My Library and NASA’s Neurodiversity Network (N3). The event brought together researchers, library professionals, and individuals with lived experience of neurodiversity to share insights and best practices for creating more inclusive and supportive environments in libraries.

Designed to equip library staff with tools and awareness, this interactive webinar explored how libraries can better serve neurodiverse patrons, such as those with autism, attention deficit hyperactivity disorder (ADHD), dyslexia, and other cognitive variations, while also supporting neurodiverse colleagues. Breakout rooms allowed participants to dive deeper into specific topics, including accessible program facilitation, supporting neurodiverse colleagues, and an “Ask Me Anything” space that encouraged open dialogue and learning.

Library staff everywhere are invited to watch the recorded webinar on YouTube and learn more about serving neurodiverse patrons and colleagues.

The collaboration between NASA@ My Library (led by the Space Science Institute), and NASA’s Neurodiversity Network (N3) (led by Sonoma State University), reflects a shared commitment to broadening participation in STEM (Science, Technology, Engineering, and Mathematics). NASA@ My Library works with public libraries nationwide to engage diverse communities in NASA science and discoveries. N3 focuses on empowering neurodiverse learners – particularly those in high school – with opportunities to engage with NASA science and explore potential STEM career pathways.

Participants left inspired, and the demand for more is clear: attendees and speakers alike expressed interest in continuing the conversation, requesting additional training, and expressing interest in organizing a future conference centered on neurodiversity and inclusion in libraries.

Youth Services Librarian and webinar panelist Molly Creveling shared, “This was such a great opportunity, and I’m extremely proud to have been able to contribute to it, I wish I was able to attend everyone’s break out room!” And participant Jason Wood expressed in the chat, “Really, really appreciate this webinar. This is one of those days I am extra proud to be a librarian. Thank you all.” Another enthusiast participant said, “This was the best webinar I’ve attended in years…more of this!”

Watch the recorded webinar.

As NASA continues to reach for the stars, it’s equally committed to ensuring that the journey is accessible to all – especially those whose unique ways of thinking and learning bring fresh perspectives to science, exploration, and discovery.

NASA@ My Library and N3, supported by NASA under cooperative agreement award numbers NNX16AE30A and  80NSSC21M0004, are part of NASA’s Science Activation Portfolio. Learn more about how Science Activation connects NASA science experts, real content, and experiences with community leaders to do science in ways that activate minds and promote deeper understanding of our world and beyond: https://science.nasa.gov/learn

Presentation slide showing photos of webinar presenters.
Presenters included staff from NASA’s Neurodiversity Network, NASA@ My Library, Education Development Center, and the Lunar and Planetary Institute.

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Last Updated

Aug 05, 2025

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What is NASA’s Distributed Spacecraft Autonomy?

What is NASA’s Distributed Spacecraft Autonomy?

Software designed to give spacecraft more autonomy could support a future where swarms of satellites navigate and complete scientific objectives with limited human intervention.

A man stands in front of a computer server and gestures towards the racks and cables.
Caleb Adams, Distributed Spacecraft Autonomy project manager, monitors testing alongside the test racks containing 100 spacecraft computers at NASA’s Ames Research Center in California’s Silicon Valley. The DSA project develops and demonstrates software to enhance multi-spacecraft mission adaptability, efficiently allocate tasks between spacecraft using ad-hoc networking, and enable human-swarm commanding of distributed space missions.
Credit: NASA/Brandon Torres Navarrete

Astronauts living and working on the Moon and Mars will rely on satellites to provide services like navigation, weather, and communications relays. While managing complex missions, automating satellite communications will allow explorers to focus on critical tasks instead of manually operating satellites.  

Long duration space missions will require teaming between systems on Earth and other planets. Satellites orbiting the Moon, Mars, or other distant areas face communications delays with ground operators which could limit the efficiency of their missions.  

The solution lies within the Distributed Spacecraft Autonomy (DSA) project, led by NASA’s Ames Research Center in California’s Silicon Valley, which tests how shared autonomy across distributed spacecraft missions makes spacecraft swarms more capable of self-sufficient research and maintenance by making decisions and adapting to changes with less human intervention. 

Adding autonomy to satellites makes them capable of providing services without waiting for commands from ground operators. Distributing the autonomy across multiple satellites, operating like a swarm, gives the spacecraft a “shared brain” to accomplish goals they couldn’t achieve alone. 

The DSA software, built by NASA researchers, provides the swarm with a task list, and shares each spacecraft’s distinct perspective – what it can observe, what its priorities are – and integrates those perspectives into the best plan of action for the whole swarm. That plan is supported by decision trees and mathematical models that help the swarm decide what action to take after a command is completed, how to respond to a change, or address a problem. 

Sharing the Workload

The first in-space demonstration of DSA began onboard the Starling spacecraft swarm, a group of four small satellites, demonstrating various swarm technologies. Operating since July 2023, the Starling mission continues providing a testing and validation platform for autonomous swarm operations. The swarm first used DSA to optimize scientific observations, deciding what to observe without pre-programmed instructions. These autonomous observations led to measurements that could have been missed if an operator had to individually instruct each satellite. 

The Starling swarm measured the electron content of plasma between each spacecraft and GPS satellites to capture rapidly changing phenomena in Earth’s ionosphere – where Earth’s atmosphere meets space. The DSA software allowed the swarm to independently decide what to study and how to spread the workload across the four spacecraft. 

Because each Starling spacecraft operates as an independent member within the swarm, if one swarm member was unable to accomplish its work, the other three swarm members could react and complete the mission’s goals. 

The Starling 1.0 demonstration achieved several firsts, including the first fully distributed autonomous operation of multiple spacecraft, the first use of space-to-space communications to autonomously share status information between multiple spacecraft, the first demonstration of fully distributed reactive operations onboard multiple spacecraft, the first use of a general-purpose automated reasoning system onboard a spacecraft, and the first use of fully distributed automated planning onboard multiple spacecraft. These achievements laid the groundwork for Starling 1.5+, an ongoing continuation of the satellite swarm’s mission using DSA.  

Illustrated image of four satellites orbiting Earth as the sun rises over the planet's horizon.
Advanced testing of DSA onboard Starling shows that distributed autonomy in spacecraft swarms can improve efficiencies while reducing the workload on human operators.
Credit: NASA/Daniel Rutter

A Helping Hand in Orbit 

After DSA’s successful demonstration on Starling 1.0, the team began exploring additional opportunities to use the software to support satellite swarm health and efficiency. Continued testing of DSA on Starling’s extended mission included PLEXIL (Plan Execution Interchange Language), a NASA-developed programming language designed for reliable and flexible automation of complex spacecraft operations. 

Onboard Starling, the PLEXIL application demonstrated autonomous maintenance, allowing the swarm to manage normal spacecraft operations, correct issues, or distribute software updates across individual spacecraft.  

Enhanced autonomy makes swarm operation in deep space feasible – instead of requiring spacecraft to communicate back and forth between their distant location and Earth, which can take minutes or hours depending on distance, the PLEXIL-enabled DSA software gives the swarm the ability to make decisions collaboratively to optimize their mission and reduce workloads. 

Simulated Lunar Swarming 

To understand the scalability of DSA, the team used ground-based flight computers to simulate a lunar swarm of virtual small spacecraft. The computers simulated a swarm that provides position, navigation, and timing services on the Moon, similar to GPS services on Earth, which rely on a network of satellites to pinpoint locations. 

The DSA team ran nearly one hundred tests over two years, demonstrating swarms of different sizes at high and low lunar orbits. The lessons learned from those early tests laid the groundwork for additional scalability studies. The second round of testing, set to begin in 2026, will demonstrate even larger swarms, using flight computers that could later go into orbit with DSA software onboard. 

The Future of Spacecraft Swarms 

Orbital and simulated tests of DSA are a launchpad to increased use of distributed autonomy across spacecraft swarms. Developing and proving these technologies increases efficiency, decreases costs, and enhances NASA’s capabilities opening the door to autonomous spacecraft swarms supporting missions to the Moon, Mars, and beyond.  

Milestones:

  • October 2018: DSA project development begins.
  • April 2020: Lunar position, navigation, and timing (LPNT) simulation demonstration development begins.
  • July 2023: DSA launches onboard the Starling spacecraft swarm.
  • March 2024: DSA experiments onboard Starling reach the necessary criteria for success.
  • July 2024: DSA software development begins for the Starling 1.5+ mission extension.
  • September 2024: LPNT simulation demonstration concludes successfully.
  • October 2024: DSA’s extended mission as part of Starling 1.5+ begins.

Partners:

NASA Ames leads the Distributed Spacecraft Autonomy and Starling projects. NASA’s Game Changing Development program within the agency’s Space Technology Mission Directorate provided funding for the DSA experiment. NASA’s Small Spacecraft Technology program within the Space Technology Mission Directorate funds and manages the Starling mission and the DSA project.  

Learn More:

For researchers:

For media:

Members of the news media interested in covering this topic should reach out to the NASA Ames newsroom.

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Tara Friesen

Station Expands to 11 Before Next Crew Leaves This Week

Station Expands to 11 Before Next Crew Leaves This Week

Expedition 73 welcomes NASA's SpaceX Crew-11 mission aboard the International Space Station. In the front from left are, Crew-11 members Oleg Platonov, Mike Fincke, Zena Cardman, and Kimiya Yui. In the back are, Expedition 73 members Takuya Onishi, Kirill Peskov, Alexey Zubritsky, Sergey Ryzhikov, Jonny Kim, Nichole Ayers, and Anne McClain.
Expedition 73 welcomes NASA’s SpaceX Crew-11 mission aboard the International Space Station. In the front from left are, Crew-11 members Oleg Platonov, Mike Fincke, Zena Cardman, and Kimiya Yui. In the back are, Expedition 73 members Takuya Onishi, Kirill Peskov, Alexey Zubritsky, Sergey Ryzhikov, Jonny Kim, Nichole Ayers, and Anne McClain.
@Astro_Ayers

Four new crew members are adjusting to life on the International Space Station and gearing up for several months of microgravity research to benefit humans living on and off the Earth. Meanwhile, another quartet that has been orbiting Earth since March is packing up and handing over responsibilities to the new crew before returning to Earth this week.

Expedition 73 expanded to eleven individuals on Saturday when NASA’s SpaceX Crew-11 mission docked to the orbital outpost aboard the Dragon spacecraft after launching from Florida about 15 hours earlier. Crew 11’s Commander and Pilot, Zena Cardman and Mike Fincke, both from NASA, and Mission Specialists Kimiya Yui from JAXA (Japan Aerospace Exploration Agency) and Oleg Platonov from Roscosmos spent the weekend unpacking their Dragon spacecraft, reviewing safety procedures, and getting familiar with space station systems.

The crew is well trained for its space research program and will soon begin investigating a wide variety of microgravity phenomena to gain insights only achievable in space. They will explore manufacturing high quality stem cells, alternatives to antibiotics to treat bacterial infections, cell division in plants to promote space agriculture, and more.

NASA astronauts Anne McClain and Nichole Ayers along with JAXA astronaut Takuya Onishi and Roscosmos cosmonaut Kirill Peskov are helping their new crewmates get up to speed with living and working on the orbital lab. NASA’s SpaceX Crew-10 crewmates also will be going home this week aboard another Dragon spacecraft completing a five-month mission. During their stay in space, the crew studied space-caused mental and physical changes in astronauts, blood flow from the brain to the heart, future lunar navigation techniques, and more.

The homebound foursome has spent the last two weeks gathering personal items and cargo for loading inside Dragon. Over the next couple of days, Crew-10 will also pack critical research samples stowed in portable science freezers inside Dragon for retrieval and analysis back on Earth. During the final cargo-packing and scientific sample-stowing duties, the crew will also review departure procedures before entering Dragon and undocking.

NASA astronaut Jonny Kim and Roscosmos cosmonauts Sergey Ryzhikov and Alexey Zubritsky will continue their mission aboard the station and conduct their complement of space research until December. The trio have been assisting with the crew swap activities as Kim helped Fincke learn to work out on the advanced resistive exercise device. Ryzhikov showed the Crew-11 foursome the location of emergency hardware and how to use NASA and Roscosmos station hardware. Zubritsky helped Peskov as he tested the lower body negative pressure suit that may counteract space-caused head and eye pressure and help crews adjust quicker to the return to Earth’s gravity.

Learn more about station activities by following the space station blog, @space_station on X, as well as the ISS Facebook and ISS Instagram accounts.

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Mark A. Garcia

Curiosity Blog, Sols 4616-4617: Standing Tall on the Ridge

Curiosity Blog, Sols 4616-4617: Standing Tall on the Ridge

4 min read

Curiosity Blog, Sols 4616-4617: Standing Tall on the Ridge

An extreme wide-angle, grayscale photo from the Mars surface shows uneven terrain ahead of the rover, covered in numerous small to medium-sized rocks, all light gray and illuminated by sunlight. Impressions in the middle ground ahead form swooping backward Cs, and in the far distance a mountain rises from the ground, but looks very broad and squat, because of the distortion from the wide-angle lens. Parts of the rover are visible around the sides and bottom of the image, and its shadow fills much of the foreground.
NASA’s Mars rover Curiosity acquired this image, showing the impressive landscape it is currently navigating. The rover is standing tall on the ridge, its shadow casting forward, and Mount Sharp towers over the scene in the distance. Curiosity captured this image with its Front Hazard Avoidance Camera (Front Hazcam) on July 30, 2025 — Sol 4614, or Martian day 4,614 of the Mars Science Laboratory mission — at 02:24:02 UTC.
NASA/JPL-Caltech

Written by Susanne P. Schwenzer, Professor of Planetary Mineralogy at The Open University, UK

Earth planning date: Wednesday, July 30, 2025

The day started with a little celebration of NISAR, a new Earth observation satellite that made it successfully into orbit a few hours before our planning started. We joined in by saying “GO NISAR, NASA, JPL, and ISRO” (the Indian Space Research Organisation, NASA’s mission partner, which launched NISAR). Learn more at the NISAR mission hub. Although our team studies Mars, Earth is a planet, too, and we are very happy for our colleagues’ successful launch!

On Mars, it’s still winter and the topic of every planning is how to maximize the science we can do given the increased power needs for heating our rover at this time of the year. Curiosity is parked on top of the main ridge, nicknamed the “autobahn.” It turned out to be not as smooth as its terrestrial namesake, as you can see in the image above. To arrive at this parking position, our rover drivers decided to take a small detour down into a flatter area and back up onto the ridge for safe off-road driving. The rover’s parking position allows for beautiful views around us, laying out the land of hollows and ridges perfectly to plan our next steps and to admire Mount Sharp in the distance.

Standing tall on the ridge, we got several investigations of the ridge-forming materials into today’s plan. APXS, MAHLI, and ChemCam are all teaming up to investigate the target “El Salto.” This is a target that could get us a glimpse into what formed the central line that is running along the big ridge. If you look closely at the images there are subtle differences in color and texture, and we are all curious whether that translates to chemical differences, too.

Of course, it’s not all about chemistry. Mastcam is busy documenting a small mound, and its context with veins and the hollow surrounding it, at the target “Llullaillaco.” The target “Cementerio De Tortugas” will capture sand ripples within a trough area, there is an extension of the workspace imaging in the plan for more context of today’s observations, and finally the ridge intersection is of interest at the target “Villa Abecia.” Of course, Mastcam didn’t forget the documentation of the ChemCam target “El Salto” and the AEGIS target from the last plan. Speaking of ChemCam: It’s using its imaging capabilities to document the side of the ridge to give finer details of the sedimentary structures of the target “Llullaillaco.”

Atmospheric observations are also of highest interest at this time of the day. We continue our atmospheric monitoring by looking for dust devils as well as up toward the clouds in a joint observation with the CASSIS instrument, which is aboard the European Space Agency’s Trace Gas Orbiter. In addition, Curiosity continues to monitor wind and temperature throughout the plan, and the DAN (dynamic albedo of neutrons) instrument observes the rocks underneath the rover for their water content.

After completing the observations at the current parking location, Curiosity will be driving off the ridge again, but this time to stay within the hollow, so we can make observations of the material that forms those hollows. Let’s see if we can find any chemical differences between those materials that might explain why one is standing up tall and the other one is weathering out. If you want to get a better impression of what I am talking about when I say ridges and troughs, have a look at this recent navigation camera mosaic.

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Aug 04, 2025

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NASA’s Black Marble: Stories from the Night Sky

NASA’s Black Marble: Stories from the Night Sky

1 min read

NASA’s Black Marble: Stories from the Night Sky

Viewed from space, Earth at night tells endless stories. Using satellite data, we can track population growth, natural disaster damage, cultural celebrations, and even space weather. Studying these glowing patterns helps us understand human activity, respond to disasters, and witness a changing world.

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Aug 04, 2025

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