News

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Researchers Develop New Method to Predict and Optimize Performance of Deep Learning Models

March 30, 2022
Over the past decade, the world has seen tremendous increases in the deployment of artificial intelligence (AI) technology. The main horsepower behind the success of AI systems is provided by deep learning models and machine learning (ML) algorithms. Recently, a new AI paradigm has emerged: Automated Machine Learning (AutoML) including its subfield Neural Architecture Search (NAS). State-of-the-art ML models consist of complex workflows with numerous design choices and variables that must be tuned for optimal performance.
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‘Off Label’ Use of Imaging Databases Could Lead to Bias in AI Algorithms

March 25, 2022
Significant advances in artificial intelligence over the past decade have relied upon extensive training of algorithms using massive, open-source databases. But when such datasets are used “off label” and applied in unintended ways, the results are subject to machine learning bias that compromises the integrity of the AI algorithm, according to a new study by researchers at The University of Texas at Austin and the University of California, Berkeley.
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Atlas Wang Receives Multiple Grants for Work on Artificial Intelligence

Oct. 4, 2021
WNCG professor Atlas Wang has received several grants for his work on artificial intelligence. 
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Todd Humphreys Elected Fellow of the Royal Institute of Navigation

July 19, 2021
WNCG professor Todd Humphreys has been elected Fellow of the Royal Institute of Navigation “for improving understanding of GNSS vulnerabilities and pioneering the use of alternate techniques to achieve resilience.” Formed in 1947, the Royal Institute of Navigation aims to advance the art, science, and practice of navigation while promoting knowledge of the subject and its associated sciences such as positioning, timing, and tracking.
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UT Austin Selected as Home of National AI Institute Focused on Machine Learning

Aug. 26, 2020
The National Science Foundation has selected The University of Texas at Austin to lead the NSF AI Institute for Foundations of Machine Learning, bolstering the university’s existing strengths in this emerging field. Machine learning is the technology that drives AI systems, enabling them to acquire knowledge and make predictions in complex environments. This technology has the potential to transform everything from transportation to entertainment to health care.