Crowdsourcing Subjective Perceptions of Neighbourhood Disorder
Interpreting Bias in Open Data
Reka Solymosi, Kate J Bowers, Taku Fujiyama
New forms of data are now widely used in social sciences, and much debate surrounds their ideal application to the study of crime problems. Limitations associated with this data, including the subjective bias in reporting are often a point of this debate. In this article, we argue that by re-conceptualizing such data and focusing on their mode of production of crowdsourcing, this bias can be understood as a reflection of peopleās subjective experiences with their environments. To illustrate, we apply the theoretical framework of signal crimes to empirical analysis of crowdsourced data from an online problem reporting website. We show how this approach facilitates new insight into peopleās experiences and discuss implications for advancing research on perception of crime and place.
Contents
- Abstract
- Introduction
- Background
- FMS
- Signal Crimes
- Crowdsourcing as an Alternative Measure
- Data
- Assumptions
- Reporting Behaviour
- Subjective Experiences with Disorder
- Exposure to Signal Disorders as a Function of Routine Activities
- Discussion
- Funding
- Acknowledgements
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