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1961
An efficient algorithmic framework to minimize the summand matrix in binary multiplication
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1962
Predictive Control for Earthquake Response Mitigation of Buildings Using Semiactive Fluid Dampers
Published 2014-01-01“…A predictive control strategy in conjunction with semiactive control algorithms is proposed for damping control of base-isolated structures employing semiactive fluid dampers when subjected to earthquake loads. …”
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1963
A New Self-Tuning Nonlinear Model Predictive Controller for Autonomous Vehicles
Published 2023-01-01“…The model predictive controller (MPC) is one of the efficient approaches by which the speed and direction of the near future of an automobile could be predicted and controlled. …”
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1964
Systematic review railway infrastructure monitoring: From classic techniques to predictive maintenance
Published 2025-01-01“…Recent Artificial Intelligence (AI) algorithms, which enable the use of digital tools such as Data-Driven models that can automatically adapt system operation, make decisions and suggest strategies based on collected data, form the basis of modern Predictive Maintenance (PdM). …”
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1965
Predictive diagnostics of computer systems logs using natural language processing techniques
Published 2025-07-01“…This study aims to develop and validate a method for predictive diagnostics and anomaly detection in computer system logs, using the Vertica database as a case study. …”
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1966
Assessment of Machine Learning Methods for Concrete Compressive Strength Prediction
Published 2024-10-01“…The study considered a wide range of literature data and examined the efficiency of boosted algorithms in predicting the strength of ordinary Portland cement concrete. …”
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1967
The Artificial Intelligence and the dispute for different ways in its predictive use in the criminal process
Published 2019-10-01“…Given the delicate cooperation that must exist between experts in criminal procedure and knowledge engineers in the selection and construction of the algorithms that will teach the machine for the preparation of the predictive research, which one would be appropriate? …”
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1968
Machine learning in predicting firm performance: a systematic review
Published 2025-07-01“…It aims to assess the effectiveness of various ML methods and algorithms used in recent research, focusing on the prediction of firm performance across multiple dimensions. …”
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1969
An Ensemble Learning-Based Predictive Parameterization Approach for Permanent Magnet Synchronous Machines
Published 2025-01-01“…An averaging voting ensemble model is developed by integrating the two highest-performing algorithms, LRNN and TRF, leveraging the strengths of both algorithms. …”
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1970
ML-Based Control Strategy for PHEV Under Predictive Vehicle Usage Behaviour
Published 2025-02-01“…This study, based on extended real-world data (journeys history from 10 vehicles over 12 months), shows that trip patterns can be learnt quite effectively using classic ML classification algorithms. In particular, the RusBoosted ensemble classifier performed consistently well across the heterogeneous dataset (volume of data for training and variable imbalance in the datasets, reflecting the natural variability in the vehicle usage profiles), providing sufficiently accurate predictions for the proposed EMS strategy. …”
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1971
A Decreasing Horizon Model Predictive Control for Landing Reusable Launch Vehicles
Published 2025-01-01“…A novel approach to model predictive control (MPC) with a decreasing horizon is analysed for guiding and controlling reusable launch vehicles (RLVs) during powered descent phases. …”
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1972
Population-level predictive variation in machine learning diagnosis of symptomatic bacterial vaginosis
Published 2025-07-01“…To determine the ability of ML models to perform equitably, this study evaluates the performance of ML algorithms in predicting symptomatic BV across different ethnic groups using 16S rRNA sequencing data. …”
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1973
A Simplified Predictive Control of Constrained Markov Jump System with Mixed Uncertainties
Published 2014-01-01“…A simplified model predictive control algorithm is designed for discrete-time Markov jump systems with mixed uncertainties. …”
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1974
A network-based approach for predicting missing pathway interactions.
Published 2012-01-01“…Unlike existing algorithms for predicting general protein interactions, by focusing on proteins involved in specific responses our approach homes-in on pathway-consistent interactions. …”
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1975
Continuous prediction of knee joint angle in lower limbs based on sEMG: a method combining an improved ZOA optimizer and attention-enhanced GRU
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1976
Drug discovery and mechanism prediction with explainable graph neural networks
Published 2025-01-01“…Abstract Apprehension of drug action mechanism is paramount for drug response prediction and precision medicine. The unprecedented development of machine learning and deep learning algorithms has expedited the drug response prediction research. …”
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1977
Advancements in Predictive Microbiology: Integrating New Technologies for Efficient Food Safety Models
Published 2024-01-01“…Machine learning algorithms commonly employed in predictive modeling are discussed with emphasis on their application in research and industry and their advantages over traditional models.…”
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1978
Prediction of formation pressure in underground gas storage based on data-driven method
Published 2023-05-01“…The experimental results show that predictive performances of three predictive models are ranked from high to low: SVR, XGBoost, LSTM, among which the predictive performance of SVR is the most stable. …”
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1979
PREDICTION OF SOFTWARE ANOMALIES METHODS BASED ON ENSEMBLE LEARNING METHODS
Published 2025-07-01“…The model applies the basic algorithms (Random Forest (RF), Decision Tree (DT), Extra Tree) and the learning model ensemble (Adaboost, xgboost ,Stack, Voting, bagging) and metrics (accuracy, recall, F1 score, accuracy) to measure the prediction performance of the models and a comparison was made between the proposed model algorithms. …”
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1980
Advanced Deep Learning Based Predictive Maintenance of DC Microgrids: Correlative Analysis
Published 2025-03-01“…This paper presents advanced frameworks for microgrid predictive maintenance by performing a comprehensive correlative analysis of advanced recurrent neural network (RNN) architectures, i.e., RNNs, Long Short-Term Memory (LSTM), and Gated Recurrent Units (GRUs) for photovoltaic (PV) based DC microgrids (MGs). …”
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