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541
A Mobile Agent Routing Algorithm in Dual-Channel Wireless Sensor Network
Published 2012-05-01“…The success rate of packet transmission is improved 15%. Simultaneously, this algorithm can keep the ant agents away from the nodes with less residual energy in searching for the optimal route. …”
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542
Identification of soil texture and color using machine learning algorithms and satellite imagery
Published 2025-08-01“…For future research, it is recommended to explore the combination of SVR with optimization techniques such as genetic algorithms to further improve the accuracy of soil texture and color predictions.…”
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543
Automatic strip layout design in progressive dies using the grouping genetic algorithm
Published 2025-08-01“…In the present study, a new method is presented for the automatic strip layout design for progressive dies using the Grouping Genetic Algorithm. A two-objective function is used in the optimization process. …”
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544
KAB: A new k-anonymity approach based on black hole algorithm
Published 2022-07-01“…Clustering-based approaches have been successfully adapted for k-anonymization as they enhance the data quality, however, the computational complexity of finding an optimal solution has shown as NP-hard. Nature-inspired optimization algorithms are effective in finding solutions to complex problems. …”
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545
Highway Traffic Flow Prediction Algorithm Based on Multiscale Transformation and Convolutional Networks
Published 2022-01-01“…From the standard feedforward wavelet neural network algorithm using global optimization capabilities, we improve the wolf pack algorithm, improve the search accuracy of the algorithm, get the best solution of the estimated value of the work according to the search results when completing the research objectives, and get the ability to predict the work of the model. …”
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546
Identification of polynomial models of static load characteristics based on passive experiment results
Published 2024-04-01“…In the paper, the technique based on the initial identification of the linear model, defined by EM-algorithm, and continued by the Lagrange multiplier method optimization with iterations by the Newton method is suggested.Results and discussion. …”
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547
Newly diagnosed acute myeloid leukemia in unfit patients: 2026 treatment algorithms
Published 2025-08-01Get full text
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548
Optimal Integration of Multiple Shunt Reactive Compensators in Radial Distribution Systems for Loss Reduction using Modified Mountain Gazelle Optimizer (MMGO)
Published 2023-10-01“…This approach reduces the search space and improves the efficiency of the optimization process. …”
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549
Comprehensive Analysis of Lightweight Cryptographic Algorithms for Battery-Limited Internet of Things Devices
Published 2025-01-01“…Among the main trends that were covered were the trade-offs between resource limitations and security strength, hardware–software co-optimization, block and stream cipher optimization, and hybrid encryption techniques. …”
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550
Optimal allocation of STATCOM for multi-objective ORPD problem on thermal wind solar hydro scheduling using driving training based optimization
Published 2025-06-01“…The Driving Training Based Optimization (DTBO) method has been used to achieve the goals, and its performance has been compared to that of other optimization algorithms that have been reported in recent ORPD studies. …”
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551
Construction and Application of Agricultural Talent Training Model Based on AHP-KNN Algorithm
Published 2023-01-01“…To solve this problem, an improved AHP-KNN algorithm is proposed by combining the analytic hierarchy process (AHP) and the optimized K-nearest neighbor algorithm, and an agricultural talent training model is proposed based on this algorithm. …”
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552
Implementation of SVM Algorithm to Predict Song Popularity based on Sentiment Analysis of Lyrics
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553
A Review on Path Planning and Obstacle Avoidance Algorithms for Autonomous Mobile Robots
Published 2022-01-01“…This paper reviews the mobile robot navigation approaches and obstacle avoidance used so far in various environmental conditions to recognize the improvement of path planning strategists. Taking into consideration commonly used classical approaches such as Dijkstra algorithm (DA), artificial potential field (APF), probabilistic road map (PRM), cell decomposition (CD), and meta-heuristic techniques such as fuzzy logic (FL), neutral network (NN), particle swarm optimization (PSO), genetic algorithm (GA), cuckoo search algorithm (CSO), and artificial bee colony (ABC). …”
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554
MODELLING FLUCTUATIONS OF GROUNDWATER LEVEL USING MACHINE LEARNING ALGORITHMS IN THE SOKOTO BASIN
Published 2025-05-01“…Hyperparameters for the XGBoost model were fine-tuned using grid search techniques, resulting in optimal settings that significantly enhanced predictive accuracy with Mean Absolute Error (MAE) ranging from 0.016 – 0.757m and Root Mean Square Error (RMSE) ranging from 0.051 - 2.859m. …”
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555
Machine learning for brain tumor classification: evaluating feature extraction and algorithm efficiency
Published 2024-12-01“…However, performance varied with KNN, Naive Bayes, and Decision Tree, highlighting the importance of tailored approaches for optimal classification accuracy. Further optimization and experimentation are crucial for improving algorithm performance in real-world applications of brain tumor classification. …”
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556
Prediction of Arrival Time of Pure Electric Bus Based on FA-BP Algorithm
Published 2023-01-01“…Based on the analysis of the influencing factors of the arrival time of the pure electric bus, the BP neural network arrival time prediction model optimized by the firefly algorithm (FA-BP prediction model) is established by selecting vehicle type, SOC value, battery age, and time as input conditions. …”
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557
A Data-Driven Parameter Adaptive Clustering Algorithm Based on Density Peak
Published 2018-01-01“…Clustering is an important unsupervised machine learning method which can efficiently partition points without training data set. However, most of the existing clustering algorithms need to set parameters artificially, and the results of clustering are much influenced by these parameters, so optimizing clustering parameters is a key factor of improving clustering performance. …”
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558
Performance of machine learning algorithms to evaluate the physico-mechanical properties of nanoparticle panels
Published 2025-10-01“…This review analyzes secondary data on nanoparticle integration in board production, aiming to evaluate the relationships among physical (water absorption (WA) and thickness swelling (TS)) and mechanical (modulus of rupture (MOR), modulus of elasticity (MOE); and internal bond (IB) strength) properties and to predict performance using machine learning (ML) algorithms. These algorithms include Pearson correlation, hierarchical clustering, and decision tree (DT) models. …”
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559
Machine learning-based optimization of photogrammetric JRC accuracy
Published 2024-11-01“…Abstract To improve the accuracy of photogrammetric joint roughness coefficient (JRC) estimation, this study proposes two optimization models based on ground sample distance (GSD), point density, and the root mean square error (RMSE) of checkpoints. …”
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560
OPTIMIZATION OF HEMISPHERICAL RESONATOR GYROSCOPE STANDING WAVE PARAMETERS
Published 2017-03-01“…In this case, if the output signal of the compensating effects should coincide with the ideal signal at the most.…”
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