SBIR-STTR Award

Novel Mathematical Foundation for Automated Annotation of Massive Image Data Sets
Award last edited on: 3/29/2023

Sponsored Program
SBIR
Awarding Agency
DOD : NGA
Total Award Amount
$99,996
Award Phase
1
Solicitation Topic Code
NGA203-005
Principal Investigator
Stephen D Rosencrantz

Company Information

Skyward Ltd

5717 Huberville Avenue Suite 300
Dayton, OH 45431
   (937) 252-2710
   skyward@skywardltd.com
   www.skywardltd.com
Location: Single
Congr. District: 10
County: Green

Phase I

Contract Number: HM047622C0057
Start Date: 1/27/2022    Completed: 11/14/2022
Phase I year
2022
Phase I Amount
$99,996
Modern Artificial Intelligence (AI) solutions generally employ carefully-crafted Neural Networks (NNs) that require extensive human effort to perform detection, identification, and annotation on each image to create training datasets. AI tools are desired that are optimized for object identification and annotation across diverse families of image data, are reliable and robust, not dependent on extensive training demands, and are applicable to objects of interest for both government and commercial concerns. AI outputs that are explainable and more “lightweight” to human users are needed to overcome these limitations. To remove the demand for human annotation for object detection, Skyward, Ltd. (Skyward), proposes a methodology to produce an Automated Annotation Toolkit (AAT) that takes advantage of object features to reduce labeling demands and sensitivity to view. The AAT incorporates explainability and interpretability methods to provide intuitive outputs for end users.

Phase II

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Start Date: 00/00/00    Completed: 00/00/00
Phase II year
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Phase II Amount
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