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Michael Diener - Python Geospatial Analysis Cookbook [2015, PDF/EPUB, ENG]

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Post 18-Sep-2016 01:01


Python Geospatial Analysis Cookbook
Год издания: 2015
Автор: Michael Diener
Жанр или тематика: Программирование
Издательство: Packt Publishing
ISBN: 9781783555079
Язык: Английский
Формат: PDF/EPUB
Качество: Издательский макет или текст (eBook)
Интерактивное оглавление: Да
Количество страниц: 310
Описание: Geospatial development links your data to places on the Earth’s surface. Its analysis is used in almost every industry to answer location type questions. Combined with the power of the Python programming language, which is becoming the de facto spatial scripting choice for developers and analysts worldwide, this technology will help you to solve real-world spatial problems.
This book begins by tackling the installation of the necessary software dependencies and libraries needed to perform spatial analysis with Python. From there, the next logical step is to prepare our data for analysis; we will do this by building up our tool box to deal with data preparation, transformations, and projections. Now that our data is ready for analysis, we will tackle the most common analysis methods for vector and raster data. To check or validate our results, we will explore how to use topology checks to ensure top-quality results. This is followed with network routing analysis focused on constructing indoor routes within buildings, over different levels.
Finally, we put several recipes together in a GeoDjango web application that demonstrates a working indoor routing spatial analysis application. The round trip will provide you all the pieces you need to accomplish your own spatial analysis application to suit your requirements.
What You Will Learn
- Discover the projection and coordinate system information of your data and learn how to transform that data into different projections
- Import or export your data into different data formats to prepare it for your application or spatial analysis
- Use the power of PostGIS with Python to take advantage of the powerful analysis functions
- Execute spatial analysis functions on vector data including clipping, spatial joins, measuring distances, areas, and combining data to new results
- Create your own set of topology rules to perform and ensure quality assurance rules in Python
- Find the shortest indoor path with network analysis functions in easy, extensible recipes revolving around all kinds of network analysis problems
- Visualize your data on a map using the visualization tools and methods available to create visually stunning results
- Build an indoor routing web application with GeoDjango to include your spatial analysis tools built from the previous recipes

Примеры страниц


Table of Contents
1: Setting Up Your Geospatial Python Environment
2: Working with Projections
3: Moving Spatial Data from One Format to Another
4: Working with PostGIS
5: Vector Analysis
6: Overlay Analysis
7: Raster Analysis
8: Network Routing Analysis
9: Topology Checking and Data Validation
10: Visualizing Your Analysis
11: Web Analysis with GeoDjango
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