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Discover the power of location data to build effective, intelligent data models with Geospatial ecosystems Key Features Manipulate location-based data and create intelligent geospatial data models Build effective location recommendation systems used by popular companies such as Uber A hands-on guide to help you consume spatial data and parallelize GIS operations effectively Book DescriptionData scientists, who have access to vast data streams, are a bit myopic when it comes to intrinsic and extrinsic location-based data and are missing out on the intelligence it can provide to their models. This book demonstrates effective techniques for using the power of data science and geospatial intelligence to build effective, intelligent data models that make use of location-based data to give useful predictions and analyses. This book begins with a quick overview of the fundamentals of location-based data and how techniques such as Exploratory Data Analysis can be applied to it. We then delve into spatial operations such as computing distances, areas, extents, centroids, buffer polygons, intersecting geometries, geocoding, and more, which adds additional context to location data. Moving ahead, you will learn how to quickly build and deploy a geo-fencing system using Python. Lastly, you will learn how to leverage geospatial analysis techniques in popular recommendation systems such as collaborative filtering and location-based recommendations, and more. By the end of the book, you will be a rockstar when it comes to performing geospatial analysis with ease. What you will learn Learn how companies now use location data Set up your Python environment and install Python geospatial packages Visualize spatial data as graphs Extract geometry from spatial data Perform spatial regression from scratch Build web applications which dynamically references geospatial data Who this book is forData Scientists who would like to leverage location-based data and want to use location-based intelligence in their data models will find this book useful. This book is also for GIS developers who wish to incorporate data analysis in their projects. Knowledge of Python programming and some basic understanding of data analysis are all you need to get the most out of this book.
Recently many governments embraced electronic means to engage with citizens in service provision and interacting with their citizens. Therefore the study of E-government has gained rather considerable attention. Unfortunately many of the E-government studies focused on the supply side. this study has tried to breach that gap by focusing on the demand side of the E-government. E-grievance systems is the main theme of this book because it is one of the main reasons citizens contact to their governments. in fact, more people complain or suggest improvements to their governments than telling them "job well done." Therefore, it is considered essential that processes of complaint redresal are clearly defined and publicly available. but little has been discussed about the development of an integrated system to handle citizen's electronic complaints( E-grievance) and its consequences which will be elaborated in this book. This book will be beneficial to public administrators, local government workers and E-government researchers.
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