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Aggressive AI Self-Learning Defense Network

Award Information
Agency: Department of Defense
Branch: Army
Contract: W15QKN-20-C-0020
Agency Tracking Number: A2-7972
Amount: $549,997.66
Phase: Phase II
Program: SBIR
Solicitation Topic Code: A18-118
Solicitation Number: 18.2
Timeline
Solicitation Year: 2018
Award Year: 2020
Award Start Date (Proposal Award Date): 2019-12-05
Award End Date (Contract End Date): 2021-07-21
Small Business Information
1845 West 205th Street
Torrance, CA 90501
United States
DUNS: 153865951
HUBZone Owned: No
Woman Owned: No
Socially and Economically Disadvantaged: No
Principal Investigator
 Tri Tuc Cao
 Senior Software Engineer
 (310) 320-3088
 atproposals@poc.com
Business Contact
 Keith Baker
Phone: (424) 835-9475
Email: contracts@poc.com
Research Institution
N/A
Abstract

To address the Army’s need for an artificial-intelligence (AI)-based Automated Fire Control System (AFCS), Physical Optics Corporation (POC) proposes to advance the new Aggressive AI Self-Learning Defense Network (ASSAILNET) technology proven feasible in Phase I. The innovation in ASSAILNET enables each AI node in the network to interface seamlessly with a wide range of attached sensors, weapons, and other AI nodes; to share its sensor data with all nodes; to correlate shared data from other nodes with its own data; and then, together with other nodes, make coordinated collective decisions and, as a whole network, stage concerted effective actions to mitigate identified threats. As a result, this technology offers a solution to provide fire control awareness to weapons, sensors, and other systems, which directly addresses the Army requirements for an AI-based AFCS. In Phase I, POC successfully met all the objectives and conclusively demonstrated the feasibility of ASSAILNET. Key technical risks associated with the technology were reduced by designing, developing, and testing a limited-scale prototype in a controlled virtual environment. As a result, Phase II development is now a straightforward process of engineering, optimization, and risk-reduction. In Phase II, POC plans to mature this technology and conduct a field test.

* Information listed above is at the time of submission. *

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