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Kết quả từ khoá "Machine Learning Models"
13 trang
37 lượt xem
1
37
Optimizing machine learning models for enhanced forest fire susceptibility mapping in Gia Lai province

This study advances forest fire susceptibility mapping in Gia Lai province by leveraging optimized machine learning models. We evaluated five models -Deep Neural Networks (DNN), Random Forest (RF), Gradient Boosting (GB), Logistic Regression (LR), and Support Vector Machines (SVM) - using a dataset of 2,827 fire incidents (2007÷2021), an equal number of non-fire points, and 12 influencing factors: slope, aspect, elevation, curvature, land use, NDVI (Normalized Difference Vegetation Index), NDWI (Normalized Difference Water Index), NDMI (Normalized Difference Moisture Index), temperature, wind speed, relative humidity, and rainfall.

vijiraiya
5 trang
27 lượt xem
1
27
Application of image processing and resnet 50-model in diagnosing defects in mechanical product details
Machine learning and computer vision play pivotal roles in detecting product defects across various industries, enhancing effectiveness, precision, and minimizing labor expenditures. This journalutilizes image manipulation through the OpenCV, coupled with machine learning employing the ResNet-50 model, to specifically identify surface defects and dimensions in bearings.
vibenya
9 trang
17 lượt xem
2
17
Predicting load-deflection of composite concrete bridges using machine learning models
The main objective of this study is to predict accurately the loaddeflection of composite concrete bridges using two popular machine learning (ML) models namely Random Tree (RT) and Artificial Neural Network (ANN). Data from 83 track loading tests conducted on various bridges in Vietnam were collected and analyzed.
viengfa
12 trang
18 lượt xem
2
18
Machine learning models for real-time traffic prediction: A case study in urban traffic management
This study introduces and evaluates the Long-term Traffic Prediction Network (LTPN), a specialized machine learning framework designed for realtime traffic prediction in urban environments.
viengfa
11 trang
36 lượt xem
2
36
Estimation of the bond strength between FRP and concrete using ANFIS and hybridized ANFIS machine learning models
Adaptive Neuro-Based Fuzzy Inference System (ANFIS) and Particle Swarm Optimization (PSO) algorithms were utilized to produce numerical tools for predicting the bond strength between the concrete surface and carbon fiber reinforced polymer (CFRP) sheets.
viengfa
44 trang
26 lượt xem
3
26
Build machine learning models for that purpose using the Luxstay
Pricing and guessing the right prices are vital for both hosts and renters on homesharing plat-form from internet based companies. To contribute the growing interest and immense literatureon applying Artificial Intelligence on predicting rental prices, this paper attempts to build ma-chine learning models for that purpose using the Luxstay listings in Hanoi. R2 score is used as the main criterion for the model performance and the results show that Extreme GradientBoostings (XGB) is the model with the best performance with R2= 0.62, beating the most sophisticated machine learning model: Neural Networks.
hoanghung9393
6 trang
54 lượt xem
1
54
A comprehensive comparative analysis of machine learning models for predicting heating and cooling loads
The present study introduces a set of machine learning-based models to predict the heating and cooling loads in buildings. This includes back-propagation artificial neural network, generalized regression neural network, radial basis neural network, radial kernel support vector machines and ANOVA kernel support vector machines.
tohitohi

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