maps-as-data / MapReader

A computer vision pipeline for exploring and analyzing images at scale
https://mapreader.readthedocs.io/en/latest/
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MapReader

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Table of Contents


What is MapReader?

MapReader is a open-source python library for exploring and analyzing map images at scale.

It contains two different pipelines:

MapReader was developed in the Living with Machines project to analyze large collections of historical maps but is a generalizable computer vision tool which can be applied to any images in a wide variety of domains.

Overview

MapReader classification pipeline

The MapReader classification pipeline enables users to train a classification model to recognize visual features within map images and to identify patches containing these features across entire map collections:

MapReader pipeline

MapReader text spotting pipeline

The MapReader text spotting pipeline enables users to detect and recognize text in map images using a pre-trained text spotting model:

MapReader text spotting pipeline

Documentation

The MapReader documentation can be found at https://mapreader.readthedocs.io/en/latest/.

New users should refer to the Installation instructions and Input guidance for help with the initial set up of MapReader.

All users should refer to our User Guide for guidance on how to use MapReader. This contains end-to-end instructions on how to use the MapReader pipeline.

Developers and contributors may also want to refer to the API documentation and Contribution guide for guidance on how to contribute to the MapReader package.

Stay in touch

All users are encouraged to join our community! Please refer to the Community and contributions page for information on ways to get involved.

Join our Slack workspace! Please fill out this form to receive an invitation to the Slack workspace.

What is included in this repo?

This repository contains everything needed for running MapReader.

The repository is structured as follows:

How to cite MapReader

If you use MapReader in your work, please cite:

Acknowledgements

This work was supported by Living with Machines (AHRC grant AH/S01179X/1), Data/Culture (AHRC grant AH/Y00745X/1) and The Alan Turing Institute (EPSRC grant EP/N510129/1).

Living with Machines, funded by the UK Research and Innovation (UKRI) Strategic Priority Fund, is a multidisciplinary collaboration delivered by the Arts and Humanities Research Council (AHRC), with The Alan Turing Institute, the British Library and the Universities of Cambridge, East Anglia, Exeter, and Queen Mary University of London.

Maps above reproduced with the permission of the National Library of Scotland https://maps.nls.uk/index.html

Contributors

Katie McDonough
Katie McDonough

🔬 🤔 📖 📋 📆 👀 📢
Daniel C.S. Wilson
Daniel C.S. Wilson

🔬 🤔 📢 📖 📋
Kasra Hosseini
Kasra Hosseini

💻 🤔 🔬 👀 📢
Rosie Wood
Rosie Wood

💻 📖 🤔 📢 👀 🚧 🔬
Kalle Westerling
Kalle Westerling

💻 📖 🚧 👀 📢
Chris Fleet
Chris Fleet

🔣
Kaspar Beelen
Kaspar Beelen

🤔 👀 🔬
Andy Smith
Andy Smith

💻 📖 🧑‍🏫 👀