2022 2nd International Conference of Smart Systems and Emerging Technologies (SMARTTECH) 2022
DOI: 10.1109/smarttech54121.2022.00025
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Are Formal Methods Applicable To Machine Learning And Artificial Intelligence?

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Cited by 73 publications
(56 citation statements)
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“…This area is also known as the formal method, which is a field of study that examines and strictly verifies machine learning systems both in hardware and software systems. Several approaches have been proposed to provide verification framework for the high dimensionality, complexity, and uncertainty of machine learning algorithms [ 63 , 64 ].…”
Section: Resultsmentioning
confidence: 99%
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“…This area is also known as the formal method, which is a field of study that examines and strictly verifies machine learning systems both in hardware and software systems. Several approaches have been proposed to provide verification framework for the high dimensionality, complexity, and uncertainty of machine learning algorithms [ 63 , 64 ].…”
Section: Resultsmentioning
confidence: 99%
“…Intelligent video surveillance systems are widely used in many applications, such as crime prevention, security, monitoring and controlling essential infrastructures, and the smart agriculture industry [ 63 , 64 ]. From 2010 until 2019, there were 220 video surveillance system (VSS) studies, which highlights the continuous relevance of research in this field [ 64 ].…”
Section: Resultsmentioning
confidence: 99%
“…Additionally, if such a system is deployed in a healthcare environment, it would be of benefit to look at the transparency of the networks to better understand their decision-making process. One method of improvement would be to evaluate the formal verification of deep neural networks [ 46 , 47 ] to best ensure that their behaviour is in line with what we would expect.…”
Section: Discussionmentioning
confidence: 99%
“…With the increasing role of neural networks in the field of artificial intelligence, verifying their credibility has become a focus of attention, including their availability, reliability, robustness, and interpretability, among other factors [ 33 ]. In this experiment, a noise interference method was used to assess the robustness of the model, where unprocessed PPG test data was used to evaluate the model previously trained to verify its ability to resist interference.…”
Section: Methodsmentioning
confidence: 99%