Search alternatives:
maximization algorithm » optimization algorithms (Expand Search), classification algorithm (Expand Search)
process maximization » process optimization (Expand Search), profit maximization (Expand Search), process optimisation (Expand Search)
based optimization » whale optimization (Expand Search)
library based » laboratory based (Expand Search)
data process » data processing (Expand Search), damage process (Expand Search), data access (Expand Search)
based based » based case (Expand Search), based basis (Expand Search), ranked based (Expand Search)
binary data » primary data (Expand Search), dietary data (Expand Search)
maximization algorithm » optimization algorithms (Expand Search), classification algorithm (Expand Search)
process maximization » process optimization (Expand Search), profit maximization (Expand Search), process optimisation (Expand Search)
based optimization » whale optimization (Expand Search)
library based » laboratory based (Expand Search)
data process » data processing (Expand Search), damage process (Expand Search), data access (Expand Search)
based based » based case (Expand Search), based basis (Expand Search), ranked based (Expand Search)
binary data » primary data (Expand Search), dietary data (Expand Search)
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Comparison of ranks for classification algorithms across performance metrics.
Published 2022Subjects: -
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Tradeoff between execution time and predictive performance for classification algorithms.
Published 2022Subjects: -
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RosettaAMRLD: A Reaction-Driven Approach for Structure-Based Drug Design from Combinatorial Libraries with Monte Carlo Metropolis Algorithms
Published 2025“…The Rosetta automated Monte Carlo reaction-based ligand design (RosettaAMRLD) integrates a Monte Carlo Metropolis (MCM) algorithm and reaction-driven molecule proposal to enhance structure-based <i>de novo</i> drug discovery. …”
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Comparison based on hard instances from [79].
Published 2025“…Secondly, based on the data libraries of the IPMMPO, two tuple sets suitable for constraint programming modeling are further designed as data preprocessing. …”
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Proposed Algorithm.
Published 2025“…Hence, an Energy-Harvesting Reinforcement Learning-based Offloading Decision Algorithm (EHRL) is proposed. EHRL integrates Reinforcement Learning (RL) with Deep Neural Networks (DNNs) to dynamically optimize binary offloading decisions, which in turn obviates the requirement for manually labeled training data and thus avoids the need for solving complex optimization problems repeatedly. …”
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