IEEE Presidentsâ Scholarship Honors Teen Innovators
About 16 percent of the global populationâmore than 1 billion peopleâlive with some form of disability, according to the World Health Organization. Many of the disabilities affect independence and mobility.
Three high school students working on inventions to help people with disabilities restore movement, translate thoughts, and navigate rough terrain had their work showcased at Regeneronâs International Science and Engineering Fair (ISEF), held in May in Phoenix. Their projects earned them this yearâs IEEE Presidentsâ Scholarship awards.
IEEE President Mary Ellen Randall presented the awards at a ceremony held during the fair. They also received an IEEE Presidentâs coin, which students said was a highlight of their experience.
Hollie Tang won this yearâs IEEE Presidentsâ Scholarship of US $10,000 for her wheelchair navigation system. The award is payable over four years of undergraduate university study and includes a complimentary IEEE student membership.
Partap Sidhu, the second-place winner, received a $600 scholarship for his mind-controlled lower-limb exoskeleton. Third-place winner Calvin Shang Hung received a $400 scholarship for his rough-terrain robot. Sidhu and Hung also got complimentary IEEE student memberships.
Established by the IEEE Foundation and administered by IEEE Educational Activities, the Presidentsâ Scholarship recognizes high school students who demonstrate an exceptional grasp of electrical engineering, computer science, or another IEEE field of interest.
Controlling movements with a tongue
Holly Tang won the 2026 IEEE Presidentsâ Scholarship of US $10,000 for her Tonguage project, which is a noninvasive, computer-vision-based human-machine interface.Lynn Bowlby
Tang, a sophomore at Wilson High School in Hacienda Heights, Calif., secured the top prize for her Tonguage project: a noninvasive, computer-vision-based human-machine interface. Using tongue movements and a standard camera, the interface lets users control a computer and other digital tools as well as assistive technologies including wheelchairs. The tongue pad, one of the systemâs core features, allows the userâs tongue to function as a directional cursor, while eye blinks serve as mouse clicks.
Tonguage translates the personâs tongue and eye motions into actionable commands in several ways, such as the tongueâs position inside the mouth and continuous movement patterns. The systemâs multimodality combines input from the tongue with other facial cues.
The system includes a face-tracking feature for error prevention that verifies commands are coming from the intended user, disregarding anyone else who moves into the cameraâs frame.
That is a critical safety measure for a wheelchair-navigation application, Tang says.
Accessibility was central to Tangâs mission. She built the system to run on relatively affordable, readily available laptop cameras rather than more costly specialized hardware.
âMobility conditions donât discriminate,â she says. âThey can affect anyone of any income, gender, and socioeconomic status.â
Tang initially imagined Tonguage as a simple substitute for a keyboard and mouse. The more research she did, though, the more she realized that it could offer autonomy through applications such as wheelchair navigation, robotic arm control, and gaming, she says.
âWeâre so focused on trying to give people autonomy over just basic human tasks that we often leave out things like gaming,â she says. âThey deserve the freedom to play games and enjoy entertainment as well.â
Tang, who plans to pursue biomedical engineering, says a visit to a rehabilitation center solidified her purpose.
âIncluding empathy in your technological solution is so important,â she says. âEmpathy is hard to teach in a classroom, but it can be learned through experience, and through actually meeting people whose lives your work might change.â
Mind-controlled exoskeleton
Sidhu, a junior at Bethpage High School, in New York, took second place for NeuroGait, a mind-controlled, lower-limb exoskeleton. He says he was inspired by his volunteer work at a community center that lacked elevators. He saw individuals with mobility issues struggle to navigate the three flights of stairs.
NeuroGait operates by reading the Bereitschaftspotential (BP), a faint electrical pattern that emerges one to two seconds before a person consciously initiates movement. Using a custom electroencephalogram (EEG) headset and a convolutional neural network (CNN), the system classifies intended movements and sends commands to a 3D-printed exoskeleton. Rather than rigid motors, the suit relies on pneumatic artificial muscles that Sidhu designed to mimic human anatomy.
âThe pneumatic artificial muscle in itself is so compliant that itâs able to adjust to the limitations of the human body,â he says.
The technical specifications are striking: The CNN achieves a 99.9 percent accuracy in detecting a personâs intended movement, while the full systemâfrom the brainâs signal to physical movementâoperates at 95.2 percent accuracy, according to the results from 500 trials Sidhu conducted.
Perhaps most impressively, Sidhu built the entire system for about $276, less than 1 percent of the $40,000 to $100,000 price tag of commercial exoskeletons, according to a 2025 revenue report from Roots Analysis.
He says he hopes to bring NeuroGait to the community center where the idea for the project began.
He attributes his success to staying current with research from institutions and organizations such as Boston Dynamics and MIT.
âTo be successful in research,â he says, âyou have to know whatâs being done right now.â
A spider-inspired robot
Hung, a sophomore at El Cerrito High School, in California, took third place for Math Into Motion: Robotic Hexapod for Hazardous Environments. The six-legged robot is designed to traverse terrain too unstable for humans or conventional robotic systems.
With only weeks before the science fair deadline for entries and no prior electrical engineering experience, Hung began with an idea inspired by his interest in spaceflight: an insectlike robot. He had spent years watching rovers such as Curiosity and Perseverance struggle on uneven surfaces, leading him to hypothesize that a hexapod design would be better for rugged ground.
As the project progressed, the humanitarian applications for his robot became clearer, he says. Watching news reports of the earthquake that struck TĂźrkiye in 2023, as well as conflicts around the globe, Hung adapted his robot for use in disasters. The hexapodâs stable tripod walking gait, in which three legs stay grounded while the other three move, makes it well suited for navigating in collapsed buildings to locate survivors or to carry sensitive supplies such as insulin in conflict zones.
The current version moves using three mathematical techniques. Inverse kinematics converts a target leg position into the motor angles needed to reach it. Linear interpolation breaks each movement into a series of smaller steps for smoother motion. And Euclidean transformations translate the robotâs travel direction into instructions that each leg can follow, regardless of the way a leg happens to be facing.
Hung taught himself how to design a printed circuit board. He also taught himself 3D modeling, coding, and soldering. Figuring out the complicated mathematical transformations to coordinate legs facing different directions proved to be the toughest hurdle, he says.
After seven months of development and trial and error, a critical circuit board failure in his third version nearly ended the project, he says.
âThere was a really strong moment of âShould I just give up?ââ he recalls.
He simplified the design and rebuilt it from the ground up.
âI just decided to double down,â he says. The fourth version of the robot was the first that successfully walked across his living room floor.
He advises aspiring engineers that âif you find the right project and it truly becomes your passion, designing it almost starts to feel like fun, and thatâs what carries you through.â
As the three young innovators demonstrate, the future of engineering goes far beyond technical ingenuity. Much is rooted in empathy and a commitment to human welfare.
Through initiatives such as the IEEE Presidentsâ Scholarship, the IEEE Foundation showcases and nurtures bright minds poised to shape the next era of assistive technology and robotics.
For Tang, Sidhu, and Hung, the ISEF stage is just the beginning. They can look forward to impactful careers dedicated to advancing technology for the benefit of humanity.
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