Project Grant 2521755
- This $365,758 Project Grant from the National Science Foundation Division of Chemical, Bioengineering, Environmental, and Transport Systems under the Engineering federal grant program (CFDA 47.041) will fund research at Penn State University to develop robust neural decoding approaches for human-machine interactions. The Principal Investigator will work to decode the neural command for individual finger movements by analyzing muscle electrical signals obtained non-invasively from the skin...
- This four-year, $1.96 million project grant from the National Science Foundation's Office of Emerging Frontiers and Multidisciplinary Activities, under the Engineering program (CFDA 47.041), will develop improved brain-machine interface algorithms to restore movement and speech abilities. The University of California, San Diego will apply advances in understanding biological motor control to design decoding strategies enabling robust prosthetic control across contexts. Existing feedforward...
- This $500,003 Project Grant was awarded by the National Science Foundation (NSF) under its Social, Behavioral, and Economic Sciences (CFDA 47.075) program. The grant supports research at the University of California, Davis (UC Davis) to explore how the human brain coordinates the asymmetric, cooperative movements of the two hands when performing bimanual tasks such as hammering a nail or opening a jar. The project aims to provide insights that can inform rehabilitation for stroke patients and...
- The National Science Foundation awarded North Carolina State University $729,000 under the Computer and Information Science and Engineering program to develop smart skins for robotic prosthetic hands. The three-year project grant, awarded on September 1, 2022 and set to conclude on August 31, 2025, will fund research to fundamentally understand adaptive tactile interactions between shape-morphing robotic skins and grasped objects. Researchers will pursue three thrusts: understanding contact...
- The National Institutes of Health (NIH) Office of the Director awarded a $1,255,340 Project Grant under the Trans-NIH Research Support program (CFDA 93.310) to the University of California, Berkeley (UC Berkeley) on September 13, 2024. The grant will fund research to understand how the brain processes somatosensory (touch) feedback to enable skilled movement control. The key products or services to be delivered under this grant include simultaneous high-density neural recordings from the motor...
- This $800,000 National Science Foundation project grant will fund research at Florida Atlantic University to develop technology enabling disabled individuals to control advanced prosthetic devices. Specifically, the grant will support exploration of novel bimodal skin sensors, investigation of machine learning algorithms to classify user intent, and creation of a reinforcement learning paradigm for customized muscle training exercises. The goal is to empower those with upper limb deficiencies to...
- This $300,000 National Science Foundation project grant supports the development of haptic technology innovations to guide student gesturing with dynamic STEM visualizations. Specifically, the University of Illinois will design and develop a custom haptic glove that interacts with a computer visualization of a biological cell. The goal is to determine how sensory feedback delivered to students' hands helps them understand representations displayed in computer simulations. Additionally, the...
- This Project Grant award, funded by the National Science Foundation's Social, Behavioral, and Economic Sciences (CFDA 47.075) program, supports research to investigate how the brain combines sensory predictions and feedback to estimate the body's state during movement. Specifically, the $488,904 award to Thomas Jefferson University's Sidney Kimmel Medical College will examine how sensory predictions update during motor learning to enable successful reaching movements, using subjective reports of...
- This Project Grant award of $1,241,250.00 from the National Science Foundation (NSF) under the Computer and Information Science and Engineering (CFDA 47.070) program supports a collaborative research project to investigate the role of brain waves in the prefrontal cortex during categorization decision-making tasks. The project involves a close collaboration between computational and experimental neuroscientists to leverage a neural modeling framework to link macroscale oscillatory brain activity...
- Federal Grant Award Summary The National Institute of Neurological Disorders and Stroke (NINDS) awarded Georgia Tech Research Corp a Project Grant valued at $377,602 (award date: September 1, 2025; completion date: August 31, 2030) under the Extramural Research Programs in the Neurosciences and Neurological Disorders program (CFDA 93.853). The grant supports fundamental neuroscience research focused on the circuit mechanisms of sensorimotor predictive processing for active touch. Research...
NCS-FO: CHARACTERIZATION AND DECODING OF CORTICAL OSCILLATORY DYNAMICS OF COMPLEX HAND FUNCTION -IN DAILY LIFE, PEOPLE GRASP AND HOLD AN OBJECT WITH THEIR HANDS, SUCH AS A HAMMER OR AN EGG, FREQUENTLY AND DEXTEROUSLY. THESE TASKS REQUIRE DIFFERENT LEVELS OF STEADY GRASP FORCE AND EXERT DIFFERENT SENSATIONS ON THE FINGERS AND PALM. THIS RAISES QUESTIONS OF HOW THE BRAIN REGULATES SUSTAINED GRASP FORCE AND PROCESSES SENSORY INPUT FROM DIFFERENT PARTS OF THE HAND. THIS PROJECT WILL INVESTIGATE CORTICAL OSCILLATIONS USING HIGH-DENSITY ELECTRODE GRIDS WHILE HUMAN SUBJECTS PERFORM SUSTAINED HAND GRASP TASKS AND FEEL TACTILE STIMULI SUCH AS TOUCH AND VIBRATION. NOVEL COMPUTATIONAL ALGORITHMS WILL BE DEVELOPED AND APPLIED TO THE NEURAL DATA TO PREDICT THE PRODUCED GRASP FORCE AND DIFFERENTIATE TACTILE INPUTS TO THE HAND. THIS PROJECT WILL PROVIDE NOVEL KNOWLEDGE REGARDING THE ORGANIZATION OF SENSORIMOTOR CORTEX ACTIVITY IN RELATION TO GRASP FORCE AND TACTILE SENSATIONS. BRAIN REGIONS THAT SHOW UNIQUE ACTIVITY IN RESPONSE TO TOUCH AND VIBRATION WILL THEN BE STIMULATED WITH ELECTRICAL PULSES TO ELICIT ARTIFICIAL SENSATIONS. INSIGHTS GAINED FROM THIS PROJECT WILL PLAY A CRITICAL ROLE IN THE DEVELOPMENT OF CLOSED-LOOP NEUROPROSTHETICS THAT CAN REPLICATE NATURAL HAND FUNCTION. DESPITE CONSIDERABLE PROGRESS REGARDING OUR UNDERSTANDING OF THE NEURAL BASES OF SENSORIMOTOR BEHAVIOR, THERE IS VERY LIMITED KNOWLEDGE ABOUT THE NEURAL DYNAMICS OF SENSORY AND MOTOR CORTICAL CIRCUITS DURING THE GENERATION OF SUSTAINED COMPLEX HAND FUNCTION, SUCH AS GRASPING AND TACTILE EXPLORATION, WHICH ARE ESSENTIAL FOR COMMON DAILY ACTIVITIES. A BETTER UNDERSTANDING OF THE SPATIO-TEMPORAL NEURAL DYNAMICS ASSOCIATED WITH SUSTAINED COMPLEX HAND MOVEMENTS AND SOMATOSENSORY PROCESSING IS A NECESSARY REQUIREMENT FOR THE CONSTRUCTION OF MORE EFFICIENT CLOSED-LOOP NEUROPROSTHETICS. UTILIZING ADVANCED ELECTRODE TECHNOLOGY, THIS PROJECT WILL RECORD CORTICAL ACTIVITY WITH HIGH-DENSITY ELECTROCORTICOGRAPHY (ECOG) GRIDS, THEN DECODE MULTICHANNEL DATA WITH COMPUTATIONAL INTELLIGENCE FOR THE IDENTIFICATION OF OSCILLATORY PATTERNS OF THE SENSORIMOTOR CORTEX DURING THE EXECUTION OF SUSTAINED HAND GRASP FUNCTION. THE HIGH-DENSITY ECOG GRIDS WILL PROVIDE RECORDINGS OF BRAIN ACTIVITY ACROSS A LARGE CORTICAL SPACE AND WITH SUB-CENTIMETER RESOLUTION. SIMULTANEOUSLY, TACTILE SENSORY INPUTS--SUCH AS VIBRATION AND TOUCH--WILL BE DELIVERED TO DIFFERENT FINGERS AND PALM. THE PROJECT WILL EXAMINE TO WHAT EXTENT THE CORTICAL OSCILLATIONS CAN BE USED TO PREDICT THE PRODUCED GRASP FORCE AND DISTINGUISH BETWEEN DIFFERENT PROLONGED SOMATOSENSORY INPUTS TO THE HAND. THE PROJECT WILL ALSO DEVELOP A REAL-TIME SYSTEM FOR THE MAPPING CORTICAL ACTIVATIONS ONLINE, THEN STIMULATE CORTICAL REGIONS USING CHANNEL SUITES AND TEMPORAL PATTERNS MIMICKING THE ECOG MODULATIONS USING A COMPUTER-IN-THE-LOOP SYSTEM. THE PROJECT WILL INTEGRATE NEUROSCIENCE, NEUROSURGERY AND BIOMEDICAL ENGINEERING EXPERTISE, TO UNCOVER SPATIO-SPECTRAL DYNAMICS OF SOMATOSENSORY AND MOTOR CORTICAL OSCILLATIONS, AND DECODE THESE PATTERNS FOR THE CONTROL OF CLOSED-LOOP HAND NEUROPROSTHETICS. OUTCOMES WILL ENABLE THE DESIGN AND DEVELOPMENT OF NEUROPROSTHETICS MORE AKIN TO THE NATURAL FUNCTION OF THE HAND. THIS PROJECT IS FUNDED BY INTEGRATIVE STRATEGIES FOR UNDERSTANDING NEURAL AND COGNITIVE SYSTEMS (NCS), A MULTIDISCIPLINARY PROGRAM JOINTLY SUPPORTED BY THE DIRECTORATES FOR BIOLOGY (BIO), COMPUTER AND INFORMATION SCIENCE AND ENGINEERING (CISE), EDUCATION AND HUMAN RESOURCES (EHR), ENGINEERING (ENG), AND SOCIAL, BEHAVIORAL, AND ECONOMIC SCIENCES (SBE). THIS AWARD REFLECTS NSF'S STATUTORY MISSION AND HAS BEEN DEEMED WORTHY OF SUPPORT THROUGH EVALUATION USING THE FOUNDATION'S INTELLECTUAL MERIT AND BROADER IMPACTS REVIEW CRITERIA.- SUBAWARDS ARE NOT PLANNED FOR THIS AWARD.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $297.7k | 4/1/25 |
GrantNumber | Description | Subgrantee | Prime Award | Dollars Obligated | Updated At |
|---|---|---|---|---|---|
REG344921S | Regents Of The University Of Minnesota | Project Grant 2521755 | $139.2k | 10/24/25 | |
UNI344921S | University Of Houston System | Project Grant 2521755 | $115.0k | 6/30/25 |