Showing posts with label robotic vehicle. Show all posts
Showing posts with label robotic vehicle. Show all posts

Monday, April 30, 2012

Underwater Robot Face Off


With a national title on the line, student teams from across the country are competing with their underwater robots in the Office of Naval Research (ONR)-funded championship in Manassas Park, Va.

The 2012 National SeaPerch Challenge brings top teams from middle and high school together to compete with the underwater robots they’ve built as part of a curriculum designed to boost their skills and interest in science, technology, engineering and mathematics (STEM).

The SeaPerch program is an initiative under the Department of the Navy’s STEM Coordination Office, which facilitates outreach efforts across the service. The chief of naval research, Rear Adm. Matthew Klunder, presented awards to winning teams.

“SeaPerch provides an affordable entry point for underwater robotics, and, from there, directional arrows to other science and engineering competitions and internships—it’s an easy-to-follow ‘yellow brick road’ approach,” said Kelly Cooper, program officer, ONR Sea Platforms and Weapons division. “The goal is to expand student awareness and encourage them to pursue STEM education and careers.”

The competition challenges are designed to reflect Navy-relevant operations. This year, the 70 teams are competing in two events: an obstacle course and a salvage operation. Both take place in a community center indoor pool.

For the obstacle course, teams must navigate through 24-inch rings—which may be oriented in any direction—surface, re-submerge and return through the course. The salvage operation involves five 5-gallon buckets inverted on the pool’s bottom, which each team must float to the surface and then bring poolside.

SeaPerch gives teachers and students the resources they need to build an underwater remotely operated vehicle (ROV) from a kit made up of low-cost, easily accessible parts, following a curriculum that teaches basic engineering and science concepts with a marine engineering theme. The objective is that students will build STEM, problem-solving and teamwork skills.


Since 2007, more than 42,000 students have participated in SeaPerch. The program is funded by ONR and managed by the AUVSI Foundation—the Association for Unmanned Aerial Vehicle Systems International.

Cooper believes that SeaPerch is an educational equalizer. “SeaPerch really resonates with students who do better with hands-on learning,” she said. “It also brings inner-city and magnet schools together to compete, while showing the inner-city students that their ROVs work just as well and that STEM careers are accessible and a real option for them.”

Last year marked the first National SeaPerch Challenge, which was held in Philadelphia with 38 teams. The 2013 event will be May 18 in Indianapolis, with 100 teams expected to compete.

Information for this article provided by the Office of Naval Research

Tuesday, April 3, 2012

Navy's New Robotics Lab Will Speed Technology to the Total Force


By Grace Jean, Office of Naval Research Public Affairs

ARLINGTON, Va. (NNS) -- Scientists based in the nation's capital are stepping into the desert and rainforest to run experiments on autonomous systems without having to set foot outside the Navy's new robotics laboratory, officials said April 2.

The Laboratory for Autonomous Systems Research (LASR), located at the Naval Research Laboratory (NRL) in Washington D.C., is the first addition to NRL's 130-acre campus in nearly a decade. Encompassing approximately 50,000 square feet, LASR boasts facilities that reproduce Earth's ecosystems, including a Tropical High Bay modeled after southeast Asian rainforests, a Littoral High Bay that simulates near-shore waters and a Desert High Bay with a rock wall that simulates a desert-like environment.

"It's the first time that we have, under a single roof, a laboratory that captures all the domains in which our Sailors, Marines and fellow DOD service members operate," said Rear Adm. Matthew Klunder, chief of naval research. "Advancing robotics and autonomy are top priorities for the Office of Naval Research. We want to reduce the time it takes to deliver capability to our warfighters performing critical missions. This innovative facility bridges the gap between traditional laboratory research and in-the-field experimentation-saving us time and money."

The $17.7 million LASR building opened its doors to researchers on March 16. As the nerve center for robotic systems research in the Department of Defense, LASR brings together scientists and engineers from diverse fields to solve the nation's autonomy challenges.

"The LASR capitalizes on the broad multidisciplinary character of NRL, bringing together scientists and engineers from diverse backgrounds to tackle common challenges in autonomy research at the intersection of their respective fields," said Alan Schultz, director of LASR. "This one-of-a-kind laboratory provides specialized facilities to support highly innovative research and testing in intelligent autonomy, sensor systems, power and energy systems, human-system interaction, networking and communications and platforms without leaving NRL."

Several multidisciplinary projects are already utilizing the lab's facilities to advance their research, including Damage Control for the 21st Century-a program to develop firefighting robots for use aboard Navy ships; Pectoral Fin Swimmer-an underwater robot; and hydrogen fuel cell propulsion to power a small unmanned aircraft called Ion Tiger.

Officials expect the number of projects to grow as researchers register to use the facility.

Monday, March 26, 2012

White House S&T Advisor Tours the Naval Research Laboratory


Advisor to President Barack Obama for the Office of Science and Technology Policy, Dr. John P. Holdren visited the Navy’s corporate laboratory, March 16, to dedicate the opening of the Laboratory for Autonomous Systems Research (LASR) and tour the sprawling 130-acre Washington, D.C., campus.

“For nearly 90 years NRL has served the Navy, Marine Corps and our Nation in ever evolving capacities,” said Dr. Holdren, Director of the White House Office of Science and Technology Policy. “This new facility, dedicated today, builds on a grand NRL tradition of military research and innovation.”

The Office of Science and Technology Policy (OSTP), established through Congress in 1976, is mandated to advise the President and others within the Executive Office of the President on the effects of science and technology (S&T) on domestic and international affairs and lead interagency efforts to develop and implement sound S&T policies and budgets to provide the greatest benefit to society.

With the objective to enable continued scientific leadership in autonomy, the state-of-the-art laboratory will become the nerve center for autonomy research for the Department of Defense (DoD) and will provide specialized facilities to support highly innovative research in intelligent autonomy, sensor systems, power and energy systems, human-system interaction and network and communications platforms.

“Today, the Navy and Marine Corps rely on robotics and autonomous systems for a host of missions, including unmanned air vehicles providing intelligence in Afghanistan, robots that defeat improvised explosive devices, and submersibles that explore the depths of the ocean,” added Holdren.

To see a photo album form Dr. Holdren’s tour of the research facilities, visit the Naval Research Laboratory’s Facebook Page.

Monday, March 19, 2012

Sandfish Lizard Slithers Into Science Spotlight


Desert reptile inspires new robot for rescue and other missions

In less than a second, a sandfish lizard can dig its way into the sand and disappear. Blink and you miss it. The sandfish's slithering moves are inspiring new robotic moves that could one day help search-and-rescue crews find survivors in piles of rubble left from disasters like Hurricane Katrina.

"The sandfish is a little lizard that lives in the Sahara Desert," says Daniel Goldman, a physicist at Georgia Tech. Goldman is an assistant professor specializing in the biophysics of locomotion. "It manages to move around on the surface of sand using its limbs and, when startled, it dives into the sand using its body to propel itself forward."

With support from the National Science Foundation (NSF), Goldman and his team at Georgia Tech use x-rays to track the lizard's underground movements. They've also developed a robot to mimic the lizard's locomotion so they can study the way it moves in precise detail. Goldman says the sandfish tucks its limbs close to its body and swims through the sand much like an eel wiggles its way through water.

"The animal propagates a wave down its body from its head to its tail and the wave of the body pushes against the material and the material then pushes the animal forward," says Goldman.

"Part of the complexity of the problem addressed by Goldman stems from the interaction of the lizard with the sand," explains Krastan Blagoev, director of NSF's Physics of Living Systems program in the Division of Physics, which funded the research. "Sand by itself is a complex material with some properties of fluids and some properties of solids. These lizards have learned the laws governing the behavior of sand and use them to survive."

"The sandfish's body is very square-shaped," says Sarah Sharpe, a bioengineer working with research assistant Andrew Masse and Goldman to analyze the sandfish movements. They say the lizard's chiseled body and its shovel-shaped head are what help it to slice through sand like a knife through butter. It happens so fast that the sand around the lizard takes on the characteristics of a fluid and the sandfish literally swims through it.

"We've discovered the sandfish actually creates a fluid around it and swims through that fluid. The animal is essentially pushing off the fluid that it creates," explains Goldman.

Goldman says there are engineers working to incorporate the sandfish movement into deployable robots that could one day help canine search-and-rescue teams find survivors more quickly. "It would be nice to have a device like a sandfish robot that could swim around in rubble or debris after a landslide, an earthquake or any number of disasters--to get into small spaces to look for trapped people or hazardous chemicals," he says.

David Atkins with the DeKalb County Fire and Rescue Canine Unit in Georgia agrees. "Anything we can do to save lives is a good idea," he says. "You only have so much time to get those people out."

So while the little sandfish may not look like a hero, it is teaching us a lot about what it takes to worm through rugged terrain and debris. And that could one day save lives.

Miles O'Brien, Science Nation Correspondent
Ann Kellan, Science Nation Producer

Wednesday, March 7, 2012

VIDEO: DARPA Autonomous Robotic Manipulation (ARM) – Phase 1


DARPA’s Autonomous Robotic Manipulation (ARM) program is developing software to perform human-level tasks quickly and with minimal direction.

This video shows the ARM robot performing 18 grasping and manipulation tasks using vision, force, and tactile sensing with full autonomy – no active human control. The DARPA-supplied robot was built using commercial components that include an arm, hand, neck, and head sensors.

During rigorous testing in November 2011, the best team achieved 93% success in grasping modeled and unmodeled objects.  The ARM program has entered its second phase, where focus turns to complex bimanual manipulation scenarios.

Tuesday, February 21, 2012

Self-Sufficient Robots

By Randy Roughton

Military planners and scientists envision a day when robots may replace human beings on the battlefield. That day may not be as far away as you think, as the armed forces continue a recent drive toward more autonomous robotic systems.

“By the end of the century, there will be virtually no humans on the battlefield,” Globalsecurity.org director John Pike told The Washington Post in 2009. “Robots do what you tell them, and they don’t have to be trained.”

Pike’s prediction recently appeared again in an Armed Forces Journal article co-written by Dr. Morley Stone, chief scientist with the Air Force Research Laboratory’s 711th Human Performance Wing at Wright-Patterson Air Force Base, Ohio. “The Autonomy Paradox,” also co-written by Jack L. Blackhurst and Dr. Jennifer S. Gresham, addressed one of the main challenges of robotic autonomy facing the military and robotic industry. Autonomous robotic systems probably won’t eliminate the problems they were designed to solve, only change the nature of those problems. The autonomy paradox, according to the article, is the systems that are designed to reduce manpower will actually require more people to support them, Stone said.

 “People need to understand the work doesn’t go away, it’s the nature of the work they’re going to be doing that changes,” Stone said. “Part of the research is figuring out how that work changes. The example I often give people that they can relate to is when they were first rolling out personal computers, there was this notion that personal computers were going to make all of our work easier and go away, and we’d all have three-day work weeks. Of course, quite the opposite happened. They really just changed the nature of the work that we do. That happens time and time again with different technological advances.”

The wars in Afghanistan and Iraq have been a driving force behind the emphasis on autonomous systems. Robots became increasingly more important in combat operations, with one robot deployed for every 30 military members in Afghanistan, according to iRobot’s government and industrial robots division research group.

“There’s no doubt the success of our (remotely piloted aircraft) today is what has created an insatiable demand for them in the future, with the continued growth of combat air patrols,” Stone said. “But those systems are remote or tele-operated and by and large have a very limited autonomous capability. There’s this desire to continue to increase the degree of autonomy within those platforms, such as that one human can control multiple RPAs or unmanned air systems.

“The other double-edged sword is because those systems have become so pervasive, and they’re becoming such good collectors of information on the battlefield in the form of things like full-motion video, they’re creating huge amounts of data. So people are understanding that we can’t keep throwing manpower at the analysis of this data, and we need to start making greater use of autonomous tools to sift through and triage the amount of data these systems will continue to gather.

“I may not need as many pilots, but all of a sudden, I need many more data analysts.”

In 2010, the Defense Advanced Research Projects Agency launched the Autonomous Robotic Manipulation program to provide robots with enough autonomy to require only occasional high-level supervision by human operators.

Ironically, the main motivation behind the push toward autonomous systems is manning, said Air Force Chief Scientist Dr. Mark Maybury. There’s a major drive to reduce the human effort required to manage unmanned aerial systems like the RQ-1 Predator, he said.

“We know, for example, just in terms of the Predator, on the order of about 40 percent of our human talent is spent on exploitation and another 35 percent on maintenance,” Maybury said. “So obviously, we’d like to automate much of that.

“Manning is a major objective, but the most successful implementation of autonomy actually provides an operational benefit as well. So, for example, there’s a very well-known phrase called the dull, dirty and dangerous. We’d like to offload some of the very laborious tasks — the dull, dirty and dangerous tasks — like in deep sea or deep space.”

There are different levels of autonomy. With human-in-the-loop, a person is on the scene at all times to direct the robot’s movements. However, in human-on-the-loop, a human observes and controls, but the robot performs functions with some automation. Completely autonomous systems are programmed to be self-sufficient, such as air bag deployment in automobiles, Maybury said.

An important step in the debate is to ensure that people understand the difference between automation and autonomy, Stone said. He recently introduced a depiction of the difference between the two at a National Defense Industrial Association meeting in Washington.

“We have systems right now that people will claim to be autonomous, but they’re doing really simple tasks, and they’re doing things where we understand the space and environment in which they work,” Stone said. “The trickier part comes when you don’t have a good awareness of what that boundary space is, and you get things that are uncertain and that are very hard to predict. That’s where a lot of people are focusing their attention today, having systems that deal with uncertainty. What that really necessitates is the need to develop systems that have the ability to reason. We are still quite far from that realization.

“I think one of the key obstacles is this call to try to get different communities at work on this problem. The key communities we need to bring together are those working on things like machine learning, working together with folks like human factors engineers and those who do cognitive modeling, the group trying to understand human cognition from a top-down perspective. Those are three communities that typically do not work together. But if we’re going to make progress to get machines that can reason on par with the human, we’re going to need to make progress on getting those communities together.”

One aspect of the debate that has a practically universal viewpoint is the question of autonomous systems’ role in the use of potentially lethal force. Almost no one wants to relinquish that operation to an autonomous system, dating back to the first of Isaac Asimov’s laws of robotics: “A robot may not injure a human being or, through inaction, allow a human being to come to harm.”

“One of the things you can do, like Asimov tried to do, is create a set of rules that will capture the boundaries of proper behavior,” Maybury said. “You can put governors around the robots’ behavior in the same way that you put training wheels around a kid’s bike so when the kid rides the bike, you know he’s going to tip over, but you avoid it or at least limit how badly he can get hurt. Within the next decade or two, we are likely to see increasing amounts of ‘training wheels,’ or automation governors, that will limit the damage of an autonomous system if there’s a failure. It may make the machine less independent, but it should also make it safer.”

In years past, the service branches would sometimes compete with each other for unmanned systems. However, Stone said a spirit of cooperation has developed since then-Secretary of Defense Dr. Robert M. Gates signed the department’s science and technology priorities in April. Those priorities are data to decision, engineered resilient systems, cyber science and technology, electronic warfare and electronic protection, counter weapons of mass destruction, autonomy and human systems.

“One of the good things to result from Secretary Gates signing the letter on the seven priority areas was that it was really a galvanizing event in terms of getting the services to work together to solve these common problems,” Stone said. “So there has been some very good coordination among the services in these areas, and we work them across the services in formal constructs called communities of interest. These are formal organization constructs that cut across Army, Navy and Air Force to work these areas.”

Even with the challenges scientists face with the drive toward autonomous systems, the next couple of decades should be a revolutionary time for the Air Force and sister services.

“When historians look back at this period,” said Peter W. Singer, a senior fellow and director of the 21st Century Defense Initiative at Brookings Institute, “they may conclude that we are today at the start of the greatest revolution that warfare has seen since the introduction of atomic bombs.”