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dc.contributor.authorBivand, Roger S.
dc.date.accessioned2008-12-18T09:34:38Z
dc.date.available2008-12-18T09:34:38Z
dc.date.issued1998
dc.identifier.issn1503-2701
dc.identifier.urihttp://hdl.handle.net/11250/162352
dc.description.abstractWhile the new economic geography of trade and location has, understandably enough, concentrated on developing models of stylised relationships, it now seems that a review of some techniques which may be applied in empirical testing could prove useful. It is this task that will be approached here, conditioned by the advances taking place in new economic geography on the one hand, and in spatial data analysis on the other. Spatial data analysis ranges from the visualization and exploration of spatial data, through spatial statistics to spatial econometrics. The techniques involved are intended to explore for and demonstrate the presence of dependence between observations in space. Typically, observations are classified into three broad types: fields or surfaces with values at least theoretically observable over the whole study area, as in geostatistics, point patterns representing the occurrence of an observation, such as reported cases in epidemiology, and finally lattice observations, where attribute values adhere to a tesselation of the study area. This last form has much in common with time series studies, and shares a number of key testing techniques with econometrics. The paper reviews chosen techniques which can be applied in new economic geography. Point patterns, for instance, can be readily used to attempt to detect clustering. Lattice observations are used in the study of dynamic externalities, and consequently the effects of testing hypotheses based on spatial series should be examined. Finally, attention will be drawn to problems arising from spatial non-stationarity, when causal relationships may vary across space, and from the modifiable areal unit problem, when test results are influenced by the choice of spatial aggregation employed.en
dc.language.isoengen
dc.publisherUniversity of Bergen. Department of Geographyen
dc.relation.ispartofseriesGeografi i Bergenen
dc.relation.ispartofseries221en
dc.titleA review of spatial statistical techniques for location studiesen
dc.typeResearch reporten
dc.subject.nsiVDP::Samfunnsvitenskap: 200::Samfunnsgeografi: 290en


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