Project Grant 2237485
- This Project Grant award from the National Science Foundation's (NSF) Computer and Information Science and Engineering (CISE) program (CFDA 47.070) provides $174,998 to The Trustees of the Stevens Institute of Technology to investigate timing side channels in adaptive neural networks. The project aims to: (1) define a threat model for exploiting timing channels to gain sensitive user information, (2) develop a machine learning-based pipeline to utilize these timing channels, (3) create an...
- This one-year, $150,000 Project Grant from the National Science Foundation's Division of Computing and Communication Foundations, under the Computer and Information Science and Engineering program, will support research into real-time strategies and synchronized time distribution mechanisms to improve exascale performance, portability, and predictability in high performance computing. The grantee, Trustees of Boston University, will conduct five tasks: demonstrating accurate clock distribution...
- This $281,629 Project Grant from the National Science Foundation's Computer and Information Science and Engineering program (CFDA 47.070) supports the development of partition-oblivious real-time hierarchical scheduling mechanisms and education activities at North Carolina State University from October 1, 2022 to March 31, 2023. The project aims to develop algorithmic solutions that make real-time partitions oblivious to variations in other partitions' temporal behaviors, achieving...
- This National Science Foundation (NSF) Computer and Information Science and Engineering (CISE) program Project Grant award of $599,084 to The Research Foundation for The State University of New York (RF SUNY) aims to enhance the timeliness and power-efficiency of real-time data services. The 3-year project, beginning October 1, 2023, will investigate novel methodologies to improve the capabilities of cost-efficient real-time embedded databases supporting data-intensive applications like smart...
- The Washington University received a three-year, $255,669 Project Grant award from the National Science Foundation on February 1, 2021 to conduct research titled "COLLABORATIVE RESEARCH: CPS: MEDIUM: TIMELINESS VS. TRUSTWORTHINESS: BALANCING PREDICTABILITY AND SECURITY IN TIME-SENSITIVE CPS DESIGN." The award is part of the NSF's Computer and Information Science and Engineering program (CFDA #47.070), which supports investigator-initiated research and education in all areas of...
- This National Science Foundation Project Grant of $175,000 supports research at Wichita State University from June 2022 through January 2023 under the Computer and Information Science and Engineering program. The university will develop techniques to integrate security monitoring and detection mechanisms into real-time multicoored systems design. Specifically, the researchers will devise algorithms, scheduling models, and frameworks cognizant of real-time requirements; build design tools and...
- This $599,943 Project Grant award from the National Science Foundation (NSF) Computer and Information Science and Engineering (CISE) Federal Grant Program (CFDA 47.070) aims to develop techniques for more efficient and resilient real-time communications in critical cyber-physical systems like aircraft, automobiles, and industrial control networks. The key innovations include creating holistic models, algorithms, and software designs to achieve the scalability, adaptability, and resiliency...
- Virginia Polytechnic Institute & State University (Virginia Tech) was awarded a $480,000 project grant from the National Science Foundation (NSF) under the Computer and Information Science and Engineering program (CFDA 47.070) for the period of February 1, 2021 through January 31, 2024. The grant will support collaborative research examining how to balance predictability and security in the design of time-sensitive cyber-physical systems (CPS). The NSF's Computer and Information Science...
- The National Science Foundation (NSF) awarded a $353,258 Project Grant under the Computer and Information Science and Engineering (CISE) program to The Regents of the University of Colorado (CU) for the project "CAREER: SECURITY AS A FIRST-CLASS DESIGN CONSTRAINT IN COMPUTER ARCHITECTURE." The project aims to develop new abstract methods for reasoning about hardware vulnerabilities and an evaluation infrastructure that can be integrated into hardware design tools to incorporate...
- PARSEC System Design and Analysis Framework for Real-Time Multicore Scheduling The University of Texas at Dallas received a Project Grant of $173,068 awarded October 1, 2025, under the Computer and Information Science and Engineering program (CFDA 47.070) from the National Science Foundation's Division of Computer and Network Systems. The award supports development of PARSEC (Parallel and Real-Time Multicore Scheduling for an Efficiently-Used Cache), a system design and analysis framework that...
CAREER: SECURE TIMING ARCHITECTURE FOR UNTRUSTED EDGE SYSTEMS -A RELIABLE NOTION OF TIME HAS ALWAYS BEEN CRITICAL FOR THE SECURITY OF NATIONAL AND INDUSTRIAL INFRASTRUCTURE, SUCH AS SMART GRIDS AND INDUSTRIAL CONTROL SYSTEMS. WITH THE EMERGENCE OF HUMAN-IN-THE-LOOP SYSTEMS AT THE NETWORK EDGE, SUCH AS VIRTUAL REALITY, AUTONOMOUS VEHICLES, MOBILE HEALTH, AND SMART FINANCIAL SYSTEMS, THE INTEGRITY OF TIMING PRIMITIVES IS MORE IMPORTANT THAN EVER FOR USER SECURITY AND SAFETY. ALTHOUGH THERE HAVE BEEN ADVANCES IN ISOLATED DOMAINS SUCH AS TRUSTED CLOCK SOURCES IN SHIELDED HARDWARE SYSTEMS, SECURE TIME SYNCHRONIZATION PROTOCOLS, AND RESILIENT HIGH-RESOLUTION TIMERS, REALIZING SECURE TIME ARCHITECTURES FOR WIDESPREAD ADOPTION IN ZERO-TRUST EDGE ENVIRONMENTS IS HINDERED BY TWO KEY CHALLENGES. FIRST, TRUSTED PROCESSORS DO NOT PROVIDE SECURE AND PRECISE ACCESS TO THEIR TIMEKEEPING SOURCE. SECOND, THERE IS NO UNIVERSAL TIME TRANSFER TECHNIQUE THAT IS RESILIENT TO DELAY ATTACKS IN THE NETWORK, AND HENCE, EXISTING APPROACHES ARE NOT SUITABLE FOR ADOPTION OVER HETEROGENEOUS AND LARGE-SCALE EDGE DEPLOYMENTS. THE PROPOSED WORK IS THE FIRST EFFORT TO PROVIDE AN END-TO-END, SECURE TIME ARCHITECTURE FOR EDGE SYSTEMS WITH DIVERSE CLOCKS, FOR TIMESTAMPING AND TIME TRANSFER. THIS PROJECT IS ALSO THE FIRST TO STUDY ACTIVE AND PASSIVE SENSING MECHANISMS FOR SECURE TIME COORDINATION. THE PROPOSED WORK ALSO INVESTIGATES CHALLENGES TO SECURE TIME-SENSITIVE NETWORKING IN 5G NETWORKS, DISTINGUISHED BY SUPPORT FOR EMERGING TIME-CRITICAL APPLICATIONS AT LARGE SCALES. THIS PROJECT WILL ADVANCE THE STATE-OF-THE-ART IN SECURE TIMING WITH NEW CLOCK SOURCES, TIME TRANSFER CHANNELS, AND NETWORK PROTOCOLS. THE PROPOSED CROSS-STACK APPROACH REIMAGINES CORE CONCEPTS IN TIMING -A FUNDAMENTAL PRIMITIVE USED BY ALL NETWORKED SYSTEMS- AND WILL CREATE A FOUNDATION FOR DESIGNING SAFE, SECURE, AND EFFICIENT SYSTEMS. THE DIVERSE AND SECURE CLOCK SOURCES WILL ENABLE RESEARCHERS AND INDUSTRY PARTNERS TO SUPPORT EMERGING APPLICATIONS WITH STRICT TIMING REQUIREMENTS OVER REAL-WORLD EDGE DEPLOYMENTS. THE PROJECT ALSO CREATES OPPORTUNITIES FOR EDUCATION AND OUTREACH: THE PROJECT WILL INCORPORATE RESEARCH ON TIME SECURITY INTO NEW AND EXISTING GRADUATE AND ADVANCED UNDERGRADUATE CLASSES AT THE PIS' HOME INSTITUTION AS PART OF THE CYBERSECURITY INSTITUTE. IT WILL EMPHASIZE INCREASING PARTICIPATION AMONG A DIVERSE STUDENT POPULATION IN COMPUTING VIA N2WOMEN PROFESSIONAL PROGRAMMING, INSTITUTIONAL DIVERSITY EFFORTS, AND LOCAL COMMUNITY OUTREACH TO GIRL SCOUT TROOPS. 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.
Mod # | Description | ReasonForModification | Federal Obligation | Date |
|---|---|---|---|---|
| Not listed | $143.0k | 9/15/25 | ||
| Not listed | $136.8k | 8/26/25 | ||
| Not listed | $221.3k | 1/18/23 |