Název: Enhanced Visualization of Customized Manufacturing Data
Autoři: Kurasova, Olga
Marcinkevičius, Virginijus
Mikulskienė, Birutė
Citace zdrojového dokumentu: WSCG 2021: full papers proceedings: 29. International Conference in Central Europe on Computer Graphics, Visualization and Computer Vision, p. 109-114.
Datum vydání: 2021
Nakladatel: Václav Skala - UNION Agency
Typ dokumentu: conferenceObject
konferenční příspěvek
URI: http://hdl.handle.net/11025/45015
ISBN: 978-80-86943-34-3
ISSN: 2464-4617
2464–4625(CD/DVD)
Klíčová slova: vizualizace dat;zmenšení rozměrů;strojové učení;odhad a predikce nákladů/cen;zakázková výroba nábytku
Klíčová slova v dalším jazyce: data visualization;dimensionality reduction;machine learning;cost/price estimation and prediction;customized furniture manufacturing
Abstrakt v dalším jazyce: Recently, customized manufacturing is gaining much momentum. Consumers do not want mass-produced products but are looking for unique and exclusive ones. It is especially evident in the furniture industry. As it is necessary to set an individual price for each individually manufactured product, companies face the need to quickly estimate a preliminary cost and price as soon as an order is received. The task of estimating costs as precise and timely as possible has become critical in customized manufacturing. The cost estimation problem can be solved as a prediction problem using various machine learning (ML) techniques. In order to obtain more accurate price prediction, it is necessary to delve deeper into the data. Data visualization methods are excellent for this purpose. Moreover, it is necessary to consider that the managers who set the price of the product are not ML experts. Thus, data visualization methods should be integrated into the decision support system. On the one hand, these methods should be simple, easily understandable and interpretable. On the other hand, the methods should include more sophisticated approaches that allowed reveal hidden data structure. Here, dimensionality-reduction methods can be employed. In this paper, we propose a data visualization process that can be useful for data analysis in customized furniture manufacturing to get to know the data better, allowing us to develop enhanced price prediction models.
Práva: © Václav Skala - UNION Agency
Vyskytuje se v kolekcích:WSCG 2021: Full Papers Proceedings

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