2024
DOI: 10.3390/math12050684
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Feature Detection Based on Imaging and Genetic Data Using Multi-Kernel Support Vector Machine–Apriori Model

Zhixi Hu,
Congye Tang,
Yingxia Liang
et al.

Abstract: Alzheimer’s disease (AD) is a significant neurological disorder characterized by progressive cognitive decline and memory loss. One essential task is understanding the molecular mechanisms underlying brain disorders of AD. Detecting biomarkers that contribute significantly to the classification of AD is an effective means to accomplish this essential task. However, most machine learning methods used to detect AD biomarkers require lengthy training and are unable to rapidly and effectively detect AD biomarkers.… Show more

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“…Surrogate models are commonly utilized to enhance the computational efficiency of the reliability analysis by approximating the relationship between inputs and outputs [23,24]. Popular surrogate models include the Kriging model [25][26][27], neural network (NN) [28,29], polynomial chaos expansion (PCE) [30,31], support vector machine (SVM) [32,33], etc. Among them, the Kriging model is widely used as an exact interpolation model with the convenience of obtaining the predicted value and prediction deviation simultaneously.…”
Section: Introductionmentioning
confidence: 99%
“…Surrogate models are commonly utilized to enhance the computational efficiency of the reliability analysis by approximating the relationship between inputs and outputs [23,24]. Popular surrogate models include the Kriging model [25][26][27], neural network (NN) [28,29], polynomial chaos expansion (PCE) [30,31], support vector machine (SVM) [32,33], etc. Among them, the Kriging model is widely used as an exact interpolation model with the convenience of obtaining the predicted value and prediction deviation simultaneously.…”
Section: Introductionmentioning
confidence: 99%