• Python Geospatial Development reading note(1)


    chapter 1, Summary:

    In this chapter, we briefly introduced the Python programming language and the main concepts behind geospatial development. We have seen:

      ~That Python is a very high-level language eminently suited to the task of geospatial development.

      ~That there are a number of libraries which can be downloaded to make it easier to perform geospatial development work in Python.

      ~That the term "geospatial data" refers to information that is located on the earth's surface using coordinates.

      ~That the term "geospatial development" refers to the process of writing computer programs that can access, manipulate, and display geospatial data.

      ~That the process of accessing geospatial data is non-trivial, thanks to differing file formats and data standards.

      ~What types of questions can be answered by analyzing geospatial data.

      ~How geospatial data can be used for visualization.

      ~How mash-ups can be used to combine data(often geospatial data) in useful and interesting ways.

      ~How Google Maps, Google Earth, and the development of cheap and portable GPS units have "democratized" geospatial development.

      ~The influence the open source software movement has had on the availability of high quality, freely-available tools for geospatial development.

      ~How various standards organizations have defined formats and protocols for sharing and storing geospatial data.

      ~The increasing use of geolocation to capture and work with geospatial data in surprising and useful ways.

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  • 原文地址:https://www.cnblogs.com/nuaalida/p/4295832.html
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