LAPSE:2023.10280v1
Published Article
LAPSE:2023.10280v1
TSxtend: A Tool for Batch Analysis of Temporal Sensor Data
February 27, 2023
Abstract
Pre-processing and analysis of sensor data present several challenges due to their increasingly complex structure and lack of consistency. In this paper, we present TSxtend, a software tool that allows non-programmers to transform, clean, and analyze temporal sensor data by defining and executing process workflows in a declarative language. TSxtend integrates several existing techniques for temporal data partitioning, cleaning, and imputation, along with state-of-the-art machine learning algorithms for prediction and tools for experiment definition and tracking. Moreover, the modular architecture of the tool facilitates the incorporation of additional methods. The examples presented in this paper using the ASHRAE Great Energy Predictor dataset show that TSxtend is particularly effective to analyze energy data.
Keywords
deep learning, Machine Learning, pre-processing, prediction, time series
Suggested Citation
Morcillo-Jimenez R, Gutiérrez-Batista K, Gómez-Romero J. TSxtend: A Tool for Batch Analysis of Temporal Sensor Data. (2023). LAPSE:2023.10280v1
Author Affiliations
Morcillo-Jimenez R: Department of Computer Science and Artificial Intelligence, University of Granada, 18071 Granada, Spain [ORCID]
Gutiérrez-Batista K: Department of Computer Science and Artificial Intelligence, University of Granada, 18071 Granada, Spain [ORCID]
Gómez-Romero J: Department of Computer Science and Artificial Intelligence, University of Granada, 18071 Granada, Spain [ORCID]
Journal Name
Energies
Volume
16
Issue
4
First Page
1581
Year
2023
Publication Date
2023-02-04
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en16041581, Publication Type: Journal Article
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LAPSE:2023.10280v1
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https://doi.org/10.3390/en16041581
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