Micro-geographic property price and rent indices
Datos Bibliográficos
| ID | 21463630 |
|---|---|
| Autores | Gabriel M Ahlfeldt (0000-0001-5664-3230, London School of Economics and Political Science, autor de correspondencia), Stephan Heblich (0000-0001-6486-3727), Tobias Seidel (0000-0002-0612-6072, University of Duisburg-Essen) |
| Año | 2023 |
| Volumen | 98 |
| Páginas | 103836 |
| Fecha de publicación | 2023-01-01 |
| Peer Reviewed | Sí |
| Open Access | Sí |
| Tipo | ARTICLE |
| Revista | Regional Science and Urban Economics (JOURNAL) |
| Identificadores de la revista | ISSN: 0166-0462 • E-ISSN: 1879-2308 |
| Editorial | Elsevier BV (PUBLISHER) |
| DOI | 10.1016/j.regsciurbeco.2022.103836 |
| OpenAlex | W3197062217 |
| Idioma | EN |
| Citas recibidas | 8 |
| Referencias citadas | 64 |
We develop a programming algorithm that predicts a balanced-panel mix-adjusted house price index for arbitrary spatial units from repeated cross-sections of geocoded micro data. The algorithm combines parametric and non-parametric estimation techniques to provide a tight local fit where the underlying micro data are abundant, and reliable extrapolations where data are sparse. To illustrate the functionality, we generate a panel of German property prices and rents that is unprecedented in its spatial coverage and detail. This novel data set uncovers a battery of stylized facts that motivate further research, e.g. on the positive correlation between density and price-to-rent ratios in levels and trends, both within and between cities. Our method lends itself to the creation of comparable neighborhood-level rent indices (Mietspiegel) across Germany
Cartography · Data set · Econometrics · Economic rent · Economics · Geocoding · Geography · Microeconomics · Panel data · Parametric statistics · Spatial econometrics · Statistics · Stylized fact · Computer Science · Housing Market and Economics · Mathematics · Spatial and Panel Data Analysis · Urbanization and City Planning
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| Obras citantes distintas | 8 |
|---|---|
| Citas por año | 4 |
| Intervalo de citas | 2024 - 2026 (3) |
| Velocidad de citación | current |
| Altamente citado | No |
| Tipos de cita | Neutras: 8 |