Forecasting of Electricity Consumption using Gaussian Processes的封面
书籍主题:

Forecasting of Electricity Consumption using Gaussian Processes

GlobeEdit (2014-06-17 )

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ISBN-13:

978-3-639-80666-3

ISBN-10:
3639806662
EAN:
9783639806663
书籍语言:
英文
作品简介:
On a broad view, the problem of forecasting electricity consumption can be categorized under machine learning, which is the study of computer algorithms that improve automatically through experience. In order to predict how a trend will continue, the prediction model should be able to generalize the knowledge in historical data to unseen future. In this book, the following areas has been covered: ✪ The use of Gaussian Processes for electricity consumption forecasting ✪ Use of kNN similarity search with Gaussian Processes to reduce the size of the training data (reduce computational cost) ✪ Neural Networks for electricity consumption forecasting ✪ Exploratory Data Analysis for feature selection and visual analysis of data ✪ Combining kNN similarity search with the classical linear regression model to improve prediction accuracy. ✪ Comparison of different prediction models including Gaussian Processes, Neural Networks and Local Linear Regression.
出版社 :
GlobeEdit
网址:
https://www.globeedit.com
由(作者):
Girma Kejela
页码 :
100
发表日期:
2014-06-17
现货:
备有现货
类别:
信息学,信息技术
价格:
39.90 €
关键词:
machine learning, Neural Networks, Gaussian Processes, local linear regression, K-Nearest Neighbors, Electricity Consumption Forecasting, Feature selection, regression, prediction, Data analysis, linear regression, Data Structure, load forecasting, energy forecasting, Data Mininig, exploratory data analysis, KD tree, Gaussian

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