Kristen Magas, Anderson Wilder, Obaid Alsuwaidi, and Tiffany Snyder (from left to right) will live in a Mars simulation for 45 days. Photos courtesy of NASA

Four individuals have been selected to go to Mars. Well, sort of.

Obaid Alsuwaidi, Kristen Magas, Tiffany Snyder, and Anderson Wilder were picked by NASA to live for 45 days in a 650-square-foot Mars simulation located at Johnson Space Center in Houston. The participants will enter the Human Exploration Research Analog, or HERA, on Friday, November 1, and will live and work like astronauts until Monday, December 16.

Jordan Hundley and Robert Wilson also were named as alternate crew members.

"Scientists use HERA studies to examine how crew members adapt to isolation, confinement, and remote conditions before NASA sends astronauts on deep space missions to the Moon, Mars, and beyond," reads NASA's announcement. "The studies provide data about human health and performance in an enclosed environment over time with crews facing different challenges and tasks."

In the experiment, the participants will complete research and operational duties, including raising shrimp, farming, and completing virtual reality-simulated walks on Mars. In addition to these tasks, the crew will experience communication delays similar to ones astronauts will face on future missions to Mars and beyond, which could be as long as 20 minutes each way.

Through NASA’s Human Research Program, the crew members will participate in 18 human health studies focused on physiological, behavioral, and psychological health during the mission.

Here's a little more about each of the crew members:

  • As captain engineer for the United Arab Emirates’ Ministry of Defense, Obaid Alsuwaidi, provides guidance in civil and marine engineering and addresses challenges facing the organization.
  • Kristen Magas, an educator and engineer currently teaching at Tri-County Regional Vocational Technical High School in Franklin, Massachusetts, mentors students involved in a NASA design and prototyping program.
  • With more than 20 years of information technology and cybersecurity experience, Tiffany Snyder is a supervisor for the Cybersecurity Mission Integration Office at NASA, helping to ensure agency missions are shielded against cybersecurity threats.
  • Currently researching team resiliency and human-machine interactions, Anderson Wilder is a Florida Institute of Technology graduate student working on his doctorate in Psychology and previously served as an executive officer and engineer for an analog mission at the Mars Desert Research Station in Utah.
  • Jordan Hundley (alternate) is a senior consultant at a professional services firm, offering federal agencies technical and programmatic support.
  • Robert Wilson (alternate) is a senior researcher and project manager at the Johns Hopkins University Applied Physics Laboratory in Laurel, Maryland.
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Houston researcher builds radar to make self-driving cars safer

eyes on the road

A Rice University researcher is giving autonomous vehicles an “extra set of eyes.”

Current autonomous vehicles (AVs) can have an incomplete view of their surroundings, and challenges like pedestrian movement, low-light conditions and adverse weather only compound these visibility limitations.

Kun Woo Cho, a postdoctoral researcher in the lab of Rice professor of electrical and computer engineering Ashutosh Sabharwal, has developed EyeDAR to help address such issues and enhance the vehicles’ sensing accuracy. Her research was supported in part by the National Science Foundation.

The EyeDAR is an orange-sized, low-power, millimeter-wave radar that could be placed at streetlights and intersections. Its design was inspired by that of the human eye. Researchers envision that the low-cost sensors could help ensure that AVs always pick up on emergent obstacles, even when the vehicles are not within proper range for their onboard sensors and when visibility is limited.

“Current automotive sensor systems like cameras and lidar struggle with poor visibility such as you would encounter due to rain or fog or in low-lighting conditions,” Cho said in a news release. “Radar, on the other hand, operates reliably in all weather and lighting conditions and can even see through obstacles.”

Signals from a typical radar system scatter when they encounter an obstacle. Some of the signal is reflected back to the source, but most of it is often lost. In the case of AVs, this means that "pedestrians emerging from behind large vehicles, cars creeping forward at intersections or cyclists approaching at odd angles can easily go unnoticed," according to Rice.

EyeDAR, however, works to capture lost radar reflections, determine their direction and report them back to the AV in a sequence of 0s and 1s.

“Like blinking Morse code,” Cho added. “EyeDAR is a talking sensor⎯it is a first instance of integrating radar sensing and communication functionality in a single design.”

After testing, EyeDAR was able to resolve target directions 200 times faster than conventional radar designs.

While EyeDAR currently targets risks associated with AVs, particularly in high-traffic urban areas, researchers also believe the technology behind it could complement artificial intelligence efforts and be integrated into robots, drones and wearable platforms.

“EyeDAR is an example of what I like to call ‘analog computing,’” Cho added in the release. “Over the past two decades, people have been focusing on the digital and software side of computation, and the analog, hardware side has been lagging behind. I want to explore this overlooked analog design space.”

12 winners named at CERAWeek clean tech pitch competition in Houston

top teams

Twelve teams from around the country, including several from Houston, took home top honors at this year's Energy Venture Day and Pitch Competition at CERAWeek.

The fast-paced event, held March 25, put on by Rice Alliance, Houston Energy Transition Initiative and TEX-E, invited 36 industry startups and five Texas-based student teams focused on driving efficiency and advancements in the energy transition to present 3.5-minute pitches before investors and industry partners during CERAWeek's Agora program.

The competition is a qualifying event for the Startup World Cup, where teams compete for a $1 million investment prize.

PolyJoule won in the Track C competition and was named the overall winner of the pitch event. The Boston-based company will go on to compete in the Startup World Cup held this fall in San Francisco.

PolyJoule was spun out of MIT and is developing conductive polymer battery technology for energy storage.

Rice University's Resonant Thermal Systems won the second-place prize and $15,000 in the student track, known as TEX-E. The team's STREED solution converts high-salinity water into fresh water while recovering valuable minerals.

Teams from the University of Texas won first and second place in the TEX-E competition, bringing home $25,000 and $10,000, respectively. The student winners were:

Companies that pitched in the three industry tracts competed for non-monetary awards. Here are the companies named "most-promising" by the judges:

Track A | Industrial Efficiency & Decarbonization

Track B | Advanced Manufacturing, Materials, & Other Advanced Technologies

  • First: Licube, based in Houston
  • Second: ZettaJoule, based in Houston and Maryland
  • Third: Oleo

Track C | Innovations for Traditional Energy, Electricity, & the Grid

The teams at this year's Energy Venture Day have collectively raised $707 million in funding, according to Rice. They represent six countries and 12 states. See the full list of companies and investor groups that participated here.

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This article originally appeared on our sister site, EnergyCapitalHTX.com.