Suggested Topics within your search.
Suggested Topics within your search.
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13681
Intensive Care in Ulcerative Gastroduodenal Hemorrhages
Published 2008-08-01“…The Rockall scale was used to predict the outcome of treatment and to determine needs for intensive care. …”
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13682
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13683
Molecular sub-classification of renal epithelial tumors using meta-analysis of gene expression microarrays.
Published 2011-01-01“…The lists of genes obtained from the meta-analysis were used to create predictive signatures through the use of a pair-based method. …”
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13684
Optimal Placement of Wind Power System Using Machine Learning
Published 2025-06-01“…These models have taken raw data from 2000 to 2019 and tested from 2020 to 2023 and finally predict the future from 2023 to 2030. The results show that for renewable energy variables such as temperature and wind speed, statistical models such as SARIMAX perform better than traditional models such as LSTM, PT, SVR, LR, and KNN. …”
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13685
Hilbert-Huang Transform and machine learning based electromechanical analysis of induction machine under power quality disturbances
Published 2024-12-01“…Monitoring and predicting Power Quality (PQ) is crucial for quickly minimizing risk, protecting induction machines (IMs), and increasing productivity. …”
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13686
Artificial intelligence in respiratory care
Published 2024-12-01“…Despite barriers, the current decade is witnessing an increased utility of AI into diverse specialities of the medical field to enhance precision medicine, predict diagnosis, therapeutic results, and prognosis; this includes respiratory medicine, critical care, and in their allied specialties. …”
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13687
BREAST-CAD: A Computer-Aided Diagnosis System for Breast Cancer Detection Using Machine Learning
Published 2025-06-01“…In the final phase, the DT model was embedded within a user-friendly client application, empowering clinicians to input patient diagnostic data directly and receive immediate, AI-driven predictions of cancer probability, with results securely transmitted and managed by a dedicated server, facilitating remote access and centralized data storage and ensuring data integrity.…”
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13688
Trustworthiness of Deep Learning Under Adversarial Attacks in Power Systems
Published 2025-05-01“…Nevertheless, these models are susceptible to adversarial attacks, which could lead to inaccurate predictions and system failure. In this paper, the impact of these attacks on DL models is analyzed by employing the use of defensive countermeasures such as Adversarial Training, Gaussian Augmentation, and Feature Squeezing, to investigate vulnerabilities in industrial control systems with potentially disastrous real-world impacts. …”
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13689
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13690
Improving computational drug repositioning through multi-source disease similarity networks
Published 2025-08-01“…We applied a tailored Random Walk with Restart (RWR) algorithm to predict novel drug-disease associations. …”
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13691
Amortized Fairness for Drive-Thru Internet
Published 2013-03-01“…The amortized fairness MAC requires predictions of future link quality. For this, we fully exploit the inner and inter-AP correlations revealed from our extensive field studies and design a link quality prediction algorithm. …”
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13692
Deep Neural Network for Supervised Single-Channel Speech Enhancement
Published 2019-01-01“…During the training stage the network learns and predicts the magnitude spectrums of the clean and noise signals from input noisy speech acoustic features. …”
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13693
XFEM for Fracture Analysis of Centrally Cracked Laminated Plates Subjected to Biaxial Loads
Published 2021-04-01“…The effect of loadings on the crack growth and crack propagation direction and their effects on the MSIFs using global tracking crack growth algorithm is also presented. The results of the present investigation will be useful for accurate prediction of fracture response of cracked composite structures, crack growth and crack propagation behavior which ultimately effects on the structural safety and integrity of the composite structures.…”
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13694
Fault Diagnosis of Industrial Process Based on FDKICA-PCA
Published 2018-12-01“…Because the dynamic characteristics of autocorrelation and lag correlation in production process are neglected in fault diagnosis,Kernel Independent Component AnalysisPrincipal Component Analysis (KICAPCA) is very poor in detecting small and gradual faults because of lacking available variable contribution analysis.In this paper, a dynamic kernel independent component analysis (KICAPCA) fault diagnosis method based on wavelet packet filtering is proposed.This method integrates wavelet packet filtering theory and AR model prediction data characteristics into KICAPCA to extract the feature information of process variable autocorrelation and lagrelated .In this paper, KICAPCA algorithm is used to extract the independent components and principal components of process variables to determine the control limits of three monitoring indicators T2, SPE,I2.Nonlinear contribution graph is used for fault diagnosis, and the advantage of FDKICAPCA method is verified by simulation results of Tennessee process.…”
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13696
BSG-WSL: BackScatter-guided weakly supervised learning for water mapping in SAR images
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13697
Enhancing Sustainable Manufacturing in Industry 4.0: A Zero-Defect Approach Leveraging Effective Dynamic Quality Factors
Published 2025-06-01“…Moreover, the gathered data from defect detection can be used in two ways: to prevent defect occurrence in the future (detect-prevent) and to design algorithms for predicting when a defect may occur in the future, hence, to prevent defects before they arise (predict-prevent). …”
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Combination treatment optimization using a pan-cancer pathway model.
Published 2021-12-01“…In recent years, sophisticated mechanistic, ordinary differential equation-based pathways models that can predict treatment responses at a molecular level have been developed. …”
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13699
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Methods to Quantitatively Evaluate the Effect of Shale Gas Fracturing Stimulation Based on Least Squares
Published 2025-07-01“…During the step-down tests, a high level of agreement was observed between the predicted and measured friction pressure curves, confirming the model's robustness under complex field conditions. …”
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