Search Results - (( java optimization modified algorithm ) OR ( parameter centred learning algorithm ))
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OPTIMIZED MIN-MIN TASK SCHEDULING ALGORITHM FOR SCIENTIFIC WORKFLOWS IN A CLOUD ENVIRONMENT
Published 2023“…To achieve this, we propose a new noble mechanism called Optimized Min-Min (OMin-Min) algorithm, inspired by the Min-Min algorithm. …”
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An ensemble learning method for spam email detection system based on metaheuristic algorithms
Published 2015“…In order to address the challenges that mentioned above in this study, in the first phase, a novel architecture based on ensemble feature selection techniques include Modified Binary Bat Algorithm (NBBA), Binary Quantum Particle Swarm Optimization (QBPSO) Algorithm and Binary Quantum Gravita tional Search Algorithm (QBGSA) is hybridized with the Multi-layer Perceptron (MLP) classifier in order to select relevant feature subsets and improve classification accuracy. …”
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3
Kernerlized Correlation Filters Parameters Optimization For Enhanced Visual Tracking
Published 2017“…In this research, the tracking is proposed by using the overlap ratio (OR) and centre location error (CLE). In our case, our target is to obtain a better accuracy, which is higher overlap ratio and lower centre location error than the result from the algorithms available in public. …”
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4
A Mininet emulation study for SDN fat tree data center sleep mode routing algorithms
Published 2025“…The proposed sleep mode method obtained enhancement in the performance parameter with uses less energy in the network. ? 2024 by the authors; licensee Learning Gate.…”
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A genetically trained adaptive neuro-fuzzy inference system network utilized as a proportional-integral-derivative-like feedback controller for non-linear systems.
Published 2009“…The GA, with real-coding operators, is used to adjust all of the ANFIS parameters, which include the input and output scaling factors, the centres and widths of the input membership functions (MFs), and the consequent parameters. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural networkbwith open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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13
Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Quality prediction and classifcation of resistance spot weld using artifcial neural network with open‑sourced, self‑executable andGUI‑based application tool Q‑Check
Published 2023“…Unfortunately, existing software to optimize the parameters are expensive, licensed and infexible which makes small industries and research centres refused to acquire. …”
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Model Prediction Of Pm2.5 And Pm10 Using Machine Learning Approach
Published 2021“…This study was done to develop a multi-input-single-output (MISO) and multi-input-multi-output (MIMO) models using an artificial neural network by MATLAB software to predict the concentrations of PM2.5 and PM10 respectively based on meteorological parameters. For the purpose of this research, the historical dataset is obtained from the Beijing Municipal Environmental Monitoring Centre to be used as the case study. …”
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Evolutionary cost-cognizant regression test case prioritization for object-oriented programs
Published 2019“…Afterward evolutionary algorithm (EA) was employed to prioritize test cases based on the rate severity of fault detection per unit test cost. …”
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Thesis
