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Detecting information transparency in the italian real estate market: a machine learning approach = Identificare la trasparenza informativa nel mercato immobiliare italiano: un approccio machine learning

Academic Article
Publication Date:
2022
abstract:
This research aims to understand how market transparency and data reliability can influence valuation procedures and decision-making processes in the Italian real estate market.
Through the analysis of three different real estate markets and the validation of information, this paper’s goal is to understand whether and to what extent the use of asking prices instead of actual purchase and sale prices can lead to valuation errors, increase the uncertainty of valuation, and undermine investment decision-making processes.
The research results highlight the primary sources of information opacity in the Italian real estate market, classifying them according to their impact on real estate value. The novelty of this research lies in the integrated use of machine learning techniques, computer programming and multi-parametric valuation procedures to understand and manage information opacity in the Italian real estate market, particularly regarding the estimation of the most probable market value of properties belonging to the residential segment.
Iris type:
1.1 Articolo su Rivista
Keywords:
Real Estate Market analysis; Market value; Asking price; Market transparency; Machine learning; Artificial Neural Networks.
List of contributors:
Gabrielli, Laura; Ruggeri, Aurora Greta; Scarpa, Massimiliano
Authors of the University:
Energy and the city
SCARPA MASSIMILIANO
Handle:
https://air.iuav.it/handle/11578/325668
Published in:
VALORI E VALUTAZIONI
Journal
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Overview

URL

https://siev.org/4-31-2022/
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