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   系統號碼928319
   書刊名Spatial data science : with applications in R /
   主要著者Pebesma, Edzer J., author.
   其他著者Bivand, Roger,
   出版項Boca Raton, FL : CRC Press, 2023.
   索書號QA278.2.P367 2023
   ISBN9781138311183
   標題Spatial analysis (Statistics)-Data processing.
R (Computer program language)
R (Computer program language)-fast-(OCoLC)fst01086207
Spatial analysis (Statistics)-Data processing.-fast-(OCoLC)fst01128786
   叢書名Chapman & Hall/CRC Press the R series
   
    
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 資料類型狀態應還日期預約人數館藏地索書號條碼號
預約圖書借出中
(可召回,7天還書)
2024/07/010總館
西文圖書區
QA278.2 .P367 2023W115028

內容簡介"Spatial Data Science introduces fundamental aspects of spatial data that every data scientist should know before they start working with spatial data. These aspects include how geometries are represented, coordinate reference systems (projections, datums), the fact that the Earth is round and its consequences for analysis, and how attributes of geometries can relate to geometries. In the second part of the book, these concepts are illustrated with data science examples using the R language. In the third part, statistical modelling approaches are demonstrated using real world data examples. After reading this book, a number of major spatial data analysis errors should no longer be made because of lack of knowledge. The book gives a detailed explanation of the core spatial software packages for R: sf for simple feature access, and stars for raster and vector data cubes - array data with spatial and temporal dimensions. It also shows how geometrical operations change when going from a flat space to the surface of a sphere, which is what sf and stars use when coordinates are not projected (degrees longitude/latitude). Separate chapters detail a variety of plotting approaches for spatial maps using R, and different ways of handling very large vector or raster (imagery) datasets, locally, in databases, or in the cloud"--

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