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3241
PREDICTION AND PREVENTION OF LIVER FAILURE AFTER MAJOR LIVER PRIMARY AND METASTATIC TUMORS RESECTION
Published 2016-06-01“…The first group included 53 patients who carried out 13C-breath test metallimovie and dynamic scintigraphy of the liver in the preoperative stage in addition to the standard algorithm of examination. Patients of the 2nd group (n=35) had a standard clinical and laboratory examination, the patients were not performed the preoperative evaluation of the functional reserve of the liver, the incidences of total bilirubin, albumin and prothrombin time did not reveal a reduction of liver function. …”
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3242
A machine learning-based model to predict intravenous immunoglobulin resistance in Kawasaki disease
Published 2025-03-01“…Summary: Accurate prediction of intravenous immunoglobulin (IVIG) resistance is crucial for the effective treatment of Kawasaki disease(KD). …”
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3243
Predicting brain age for veterans with traumatic brain injuries and healthy controls: an exploratory analysis
Published 2025-05-01“…This may be driven by underlying biological changes resulting from the injury. Machine learning algorithms can use structural MRIs to give a predicted brain age (pBA). …”
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3244
A machine learning model for predicting anatomical response to Anti-VEGF therapy in diabetic macular edema
Published 2025-05-01“…SHAP analysis revealed that preoperative retinal edema, DRIL, SRF, and CRT had the strongest positive contributions, while intact EZ was a negative predictor of CRT reduction. A nomogram was developed to facilitate individualized clinical decision-making.ConclusionWe successfully developed a predictive model for anatomical response to anti-VEGF therapy in DME patients. …”
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3245
Human-Aware Control for Physically Interacting Robots
Published 2025-01-01“…The computational efficiency of the model also makes it suitable for repetitive predictive simulations within a robot’s control algorithm to predict the user’s behavior in human–robot interactions. …”
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3246
Joint reduction of peak-to-average power ratio and out-of-band power based on subcarrier weighting in OFDM systems
Published 2012-06-01Subjects: Get full text
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3247
Development of a high-performing, cost-effective and inclusive Afrocentric predictive model for stroke: a meta-analysis approach
Published 2025-07-01“…Abstract Background Predicting stroke risk is critical for preventive interventions. …”
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3248
Intelligent System for Reducing Waste and Enhancing Efficiency in Copper Production Using Machine Learning
Published 2025-02-01“…This study addresses this challenge by leveraging advanced machine learning (ML) techniques to enhance the efficiency of pyrometallurgical operations such as slag optimization, composition prediction, and waste minimization. Using a combination of real-world and synthetic data, we developed models capable of both forward prediction, estimating slag and matte compositions from ore characteristics, and backward prediction, inferring ore compositions from output characteristics. …”
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3249
Machine learning models in enhancing prediction of health-related indices among older adults: A scoping review
Published 2025-07-01“…Health status is indicated by a relatively good predictive performance based on ANNs. Conclusion: This review demonstrated that various machine learning algorithms and data types significantly impact predictive ability and preventive strategies in clinical environments.…”
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3250
Link stability metric based on mobility prediction model in mobile ad hoc networks
Published 2007-01-01“…A mobility prediction model based stable link selection algorithm was proposed in which stable neighbor met-ric and local movement metric were defined.Mobility prediction model was applied to predict stability probabilities be-tween each local node and its neighbors by using those two metrics and LZ78 algorithm so as to find the most stable neighbor of each local node and most stable route in a route discovery.The simulation results show that the algorithm outperforms the histogram algorithm and the lowest ID algorithm in selecting stable links.…”
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3251
A Novel Evolutionary Deep Learning Approach for PM<sub>2.5</sub> Prediction Using Remote Sensing and Spatial–Temporal Data: A Case Study of Tehran
Published 2025-01-01“…Concurrently, long short-term memory (LSTM) models have shown considerable promise in enhancing air quality predictions, often outperforming other prediction techniques. …”
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3252
Optimising the Selection of Input Variables to Increase the Predicting Accuracy of Shear Strength for Deep Beams
Published 2022-01-01“…The feature-section algorithm based on the combination of genetic algorithm and information theory (GAITH) was used to select the most important input combinations and introduce them into the prediction models. …”
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3253
Short-term traffic flow prediction based on adaptive rank dynamic tensor analysis
Published 2019-09-01“…Short-term traffic flow prediction in intelligent transportation system can provide data support in areas such as route planning,traffic management,public safety and so on.In order to improve the prediction accuracy with missing and abnormal data,a short-term traffic flow prediction method based on the adaptive rank dynamic tensor analysis was proposed.Firstly,a four dimensional tensor consisted of week,day,time and space was constructed,which could excavate the multimodal correlation of traffic flow data.Secondly,tensor flow data with dynamic structure was formed by using sliding window model.The principal component analysis (PCA) algorithm was extended to an offline tensor analysis algorithm that could accept tensor input.Then the adaptive rank and the forgetting factor were introduced to generate an adaptive rank dynamic tensor analysis algorithm.Finally,the tensor stream data was inputted into the adaptive rank dynamic tensor analysis algorithm to realize the short-term traffic flow prediction.The experimental results show that a good prediction can be achieved even with data missing.…”
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3254
Fault Prediction of Bearing Based on Dual Dimensional Perception and Composite Gated Recurrent Network
Published 2024-01-01“…Finally, by using actual bearing degradation data, the proposed algorithm’s ability to perceive and identify early degradation states of bearings was verified, demonstrating the effectiveness and superiority of the proposed method for bearing fault prediction research.…”
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3255
Short-Term Wind Power Prediction Based on MVMD-AVOA-CNN-LSTM-AM
Published 2025-01-01“…Thereafter, the African vultures algorithm is used to optimize the hyperparameters of the CNN-LSTM algorithm, and the AM is added to increase the prediction effect, and the decomposed subsequences are predicted separately, and the predicted values of each subsequence are superimposed to obtain the final prediction value. …”
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3256
Feasibility of Tunnel TEM Advanced Prediction: A 3D Forward Modeling Study
Published 2023-01-01“…The transient electromagnetic (TEM) method has long been applied in tunnel advanced prediction. However, it remains questionable to what extent a geologic anomaly body will influence the induced electromagnetic response in front of the heading face. …”
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3257
Prediction acrylamide contents in fried dough twist based on the application of artificial neural network
Published 2024-12-01“…Detection measures like LC-MS, HPLC are time-consuming and costly, which inspired us to use back propagation-artificial neural networks (BP-ANN) based on a genetic algorithm to establish an acrylamide prediction model in fried dough twist. …”
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3258
A Location Predicting Method for Indoor Mobile Target Localization in Wireless Sensor Networks
Published 2013-03-01“…Then, one certain localization result can be obtained using MLE algorithm. After that, based on the path-planning model and some previous localization results, the most likely position of the target in the next time interval can be predicted with the proposed predicting approach. …”
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3259
Optimizing Assembly Error Reduction in Wind Turbine Gearboxes Using Parallel Assembly Sequence Planning and Hybrid Particle Swarm-Bacteria Foraging Optimization Algorithm
Published 2025-07-01“…Specifically, the PSBFO algorithm reduced errors from an initial value of 50 to a final value of 5 across 20 iterations, with components such as the low-speed shaft and planetary gear system showing the most substantial reductions. …”
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3260
Prediction model for psychological disorders in ankylosing spondylitis patients based on multi-label classification
Published 2025-03-01“…The Boruta algorithm was applied to select predictive factors, and a multi-label classification learning algorithm based on association rules (AR) was developed. …”
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