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Determinants of Residential Satisfaction: Ordered Logit vs. Regression Models

1999/01/01 by Max Lu · 3 citations
Environmental Science · Social Sciences · #Place Attachment and Urban Studies #Urban Green Space and Health #Urban, Neighborhood, and Segregation Studies

paper · doi:10.1111/0017-4815.00113

openalex publication_date 1999/01/01 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/23

Abstract

Residential satisfaction is not only an important component of individuals' quality of life but also determines the way they respond to residential environment. An understanding of the factors that facilitate a satisfied or dissatisfied response can play a critical part in making successful housing policies. This study reinvestigates the effects of housing, neighborhood, and household characteristics on individuals' satisfaction with both dwelling and neighborhood, in order to reconcile the inconsistencies in the previous research. The empirical analysis uses data drawn from the American Housing Survey (AHS) and ordered logit models (OLM). OLM is more appropriate than the widely‐used regression technique in such analysis due to the ordinal nature of the dependent variables representing satisfaction. The results show that residential satisfaction is a complex construct, affected by a variety of environmental and socio‐demographic variables. While the actual effects of the variables by and large confirm earlier findings in the literature, significant differences between the results from the OLM and regression models were found. This indicates that regression models should be used with caution and their results accepted with a grain of salt.

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