Software
- NLSR (Named-data Link State Routing): http://named-data.net/doc/NLSR/current/
- Mini-NDN (NDN Emulator): https://github.com/named-data/mini-ndn and http://minindn.memphis.edu
- PSync (Data Synchronization Protocol): https://github.com/named-data/PSync
- NFD (NDN Forwarding Daemon): http://named-data.net/doc/NFD/current/
Projects
- The Multi-UAS Multi-Sensor Intelligence, Surveillance and Reconnaissance project
- Mission-Integrated Network Control (MINC)
- CC* Integration-Large: mGuard: A Secure Real-time Data Distribution System with Fine-Grained Access Control for mHealth Research
- Map901: Building Rich Interior Hazard Maps for First Responders
- NSF CRI-New: Collaborative: Building the Core NDN Infrastructure
- NSF FIA-NP: Colloborative Research: Named Data Networking Next Phase
- NSF FIA: Colloborative Research: Named Data Networking
- NSF CRI: Collaborative Research: Building the Next-Generation Global Routing Monitoring System
- NSF eFIT: Enabling Future Internet Innovation via Transit Wire
- SNAP: Sensor Networks for Assessment of Patients
- PATRICIA: Passive and Active Traffic Regulation using Covered IP Addresses
Collaborating institutions: University of Memphis, University of Arizona, University of Central Florida
I worked with Peraton Labs in the MINC program to ensure that critical data finds a path to the right user at the right time in highly contested, highly dynamic communication environments using secure control of any available communication or networking resources (communications, compute, or storage capabilities).
mGuard is a collaboration with Santosh Kumar (U. Memphis) and Lixia Zhang (UCLA) to address data access challenges encountered by the MD2K Center of Excellence.
Map901 is a collaboration with the City of Memphis to survey 1.86 million square feet of indoor space across seven facilities in Memphis to develop 3D annotated building models for public safety.
Collaborating Institutions: UCLA, Washington University, University of Memphis, and University of Arizona
Collaborating Institutions: UCLA, Colorado State University, the University of Illinois at Urbana-Champaign, University of California San Diego, Washington University, University of Memphis, University of Michigan, and University of Arizona
Collaborating Institutions: UCLA, Colorado State University, University of Arizona, University of Illinois/Urbana-Champaign, University of Memphis, Northeastern University, UC Irvine, UC San Diego, PARC, and Washington University at St. Louis
NSF Press Release: "Current Internet's traditional approach to communications is based on a client-server model of interaction; communicating parties establish a relationship and then proceed to transfer information where data contained within IP packets are transported along a single path. Today, however, the most predominant use of the Internet is centered on content creation, dissemination and delivery, and this trend will continue into the foreseeable future. While the basic client-server model has enabled a wide range of services and applications, it does not incorporate adequate mechanisms to support secure content-oriented functionality, regardless of the specific physical location where the content resides. The proposed Named Data Networking (NDN) architecture moves the communication paradigm from today's focus on "where", i.e., addresses, servers, and hosts, to "what", i.e., the content that users and applications care about. By naming data instead of their location (IP address), NDN transforms data into first-class entities. While the current Internet secures the communication channel or path between two communication points and sometimes the data with encryption, NDN secures the content and provides essential context for security. This approach allows the decoupling of trust in data from trust in hosts and servers, enabling trustworthiness as well as several radically scalable communication mechanisms, for example, automatic caching to optimize bandwidth and the potential to move content along multiple paths to the destination. This project addresses the technical challenges in creating NDN, including routing scalability, fast forwarding, trust models, network security, content protection and privacy, and a new fundamental communication theory enabling its design."
The project is a joint 3-year development effort among Advanced Network Technology Center (ANTC) at the University of Oregon, Colorado State University, University of Memphis, and University of California at Los Angeles to build the next generation of the Route Views system.
eFIT is a new Internet architecture designed to address serious challenges in scalability, stability and security facing today's global routing infrastructure. It is proposed by a team of researchers at UCLA, Colorado State University, University of Arizona, and University of Memphis.
Traditional methods of monitoring the health of patients have usually involved the use of bulky equipment that confines the patient to a limited area. However, recent advances in sensor tech have enabled the development of small, lightweight medical sensors such as pulse oximeters and EKGs that can be worn by the patient while wirelessly transmitting their data. The aim of this work is to develop an architecture for the effective deployment of such a system, and to evaluate this architecture via implementation on a preliminary testbed.
My PhD projects are here.