Publication: Convergence property of Nesterov-accelerated adaptive moment estimation with safety helmet detection and classification in smart industry application
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Abstract
We propose a technique for first-order gradient-based optimization of stochastic objective functions called Nesterov-accelerated adaptive moment assessment, which makes use of dynamic evaluations of lower-order moments. The adaptive moment assessment and the Nesterov acceleration gradient are combined. Consequently, it has perks, and this technique is convenient to use, numerically economical, memory-light, and very well-suited for challenges with massive amounts of information and characteristics. Additionally, we investigate the algorithm's convergence characteristics and propose a conservative constraint on the convergence rate. Finally, we employ this technique for the detection and classification of safety helmets.
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image classification, image detection, Nesterov-accelerated adaptive moment estimation, optimization, regret bound, safety helmet
Citation
Mathematical Methods in the Applied Sciences, 47(16), 12650-12667, 2024
