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Guide to Mobile Data Analytics in Refugee Scenarios: The 'Data for Refugees Challenge' Study

Editat de Albert Ali Salah Contribuţii de Yves-Alexandre de Montjoye Editat de Alex Pentland Contribuţii de Xiaowen Dong Editat de Bruno Lepri Contribuţii de Patrick Vinck Editat de Emmanuel Letouzé
en Limba Engleză Hardback – 18 sep 2019
After the start of the Syrian Civil War in 2011–12, increasing numbers of civilians sought refuge in neighboring countries. By May 2017, Turkey had received over 3 million refugees — the largest refugee population in the world. Some lived in government-run camps near the Syrian border, but many have moved to cities looking for work and better living conditions. They faced problems of integration, income, welfare, employment, health, education, language, social tension, and discrimination. In order to develop sound policies to solve these interlinked problems, a good understanding of refugee dynamics isnecessary.
This book summarizes the most important findings of the Data for Refugees (D4R) Challenge, which was a non-profit project initiated to improve the conditions of the Syrian refugees in Turkey by providing a database for the scientific community to enable research on urgent problems concerning refugees. The database, based on anonymized mobile call detail records (CDRs) of phone calls and SMS messages of one million Turk Telekom customers, indicates the broad activity and mobility patterns of refugees and citizens in Turkey for the year 1 January to 31 December 2017. Over 100 teams from around the globe applied to take part in the challenge, and 61 teams were granted access to the data.This book describes the challenge, and presents selected and revised project reports on the five major themes: unemployment, health, education, social integration, and safety, respectively. These are complemented by additional invited chapters describing related projects from international governmental organizations, technological infrastructure, as well as ethical aspects. The last chapter includes policy recommendations, based on the lessons learned. The book will serve as a guideline for creating innovative data-centered collaborations between industry, academia, government, and non-profit humanitarian agencies to deal with complex problems in refugee scenarios. It illustrates the possibilities of big data analytics in coping with refugee crises and humanitarian responses, by showcasing innovative approaches drawing on multiple data sources, information visualization, pattern analysis, and statistical analysis.It will also provide researchers and students working with mobility data with an excellent coverage across data science, economics, sociology, urban computing, education, migration studies, and more.
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Specificații

ISBN-13: 9783030125530
ISBN-10: 303012553X
Pagini: 502
Ilustrații: XVI, 500 p. 169 illus., 149 illus. in color.
Dimensiuni: 155 x 235 mm
Greutate: 0.95 kg
Ediția:1st ed. 2019
Editura: Springer International Publishing
Colecția Springer
Locul publicării:Cham, Switzerland

Cuprins

Chapter 1. Introduction to the Data for Refugees Challenge on Mobility of Syrian Refugees in Turkey.- Chapter 2. Call Detail Records to Obtain Estimates of Forcibly Displaced Populations.- Chapter 3. Measuring Fine-Grained Multidimensional Integration Using Mobile Phone Metadata: The Case of Syrian Refugees in Turkey.- Chapter 4. Integration of Syrian Refugees: Insights from D4R, Media Events and Housing Market Data.- Chapter 5. Mobile Phone Data for Humanitarian Purposes: Challenges and Opportunities.- Chapter 6. Improve Education Opportunities for Better Integration of Syrian Refugees in Turkey.- Chapter 7. Measuring and Mitigating Behavioural Segregation as an Optimisation Problem.- Chapter 8. The Use of Big Mobile Data to Gain Multi-layered Insights for Syrian Refugee Crisis.- Chapter 9. Characterizing the Mobile Phone Use Patterns of Refugee Hosting Provinces in Turkey.- Chapter 10. Towards an Understanding of Refugee Segregation, Isolation, Homophily and Ultimately Integration inTurkey Using Call Detail Records.- Chapter 11. Using Call Data and Stigmergic Similarity to Assess the Integration of Syrian Refugees in Turkey Coding Bootcamps for Refugees.- Chapter 12. Quantified Understanding of Syrian Refugee Integration in Turkey.- Chapter 13. Refugees in Undeclared Employment - A Case Study in Turkey.- Chapter 14. Assessing Refugees' Onward Mobility with Mobile Phone Data - A Case Study of (Syrian) Refugees in Turkey.- Chapter 15. Optimizing the Access to Healthcare Services in Dense Refugee Hosting Urban Areas: A Case for Istanbul.- Chapter 16. A Review of Syrian Refugee Integration in Turkey: Evidence from Call Detail Records.- Chapter 17. Conclusions and Lessons Learned.

Notă biografică

Dr. Albert Ali Salah is affiliated with the Computer Engineering Department at Boğaziçi University, Turkey, and with Department of Information and Computing Sciences at Utrecht University, the Netherlands. He has co-authored over 150 publications on multimodal interfaces, pattern recognition, computer vision, and computer analysis of human behavior. Dr. Salah has received the inaugural EBF European Biometrics Research Award (2006), BUVAK Award of Research Excellence (2014), and the BAGEP Award of the Science Academy (2016). He is a Senior Member of the IEEE, and a member of the ACM.
Prof. Alex ‘Sandy’ Pentland directs MIT’s Human Dynamics Laboratory and the MIT Media Lab Entrepreneurship Program, co-leads the World Economic Forum Big Data and Personal Data initiatives, and is a member of the advisory boards for Nissan, Motorola Mobility, Google, Telefonica, and a variety of start-up firms. He has previously helped create and direct MIT’s Media Laboratory, the Media Lab Asia laboratories at the Indian Institutes of Technology, and Strong Hospital’s Center for Future Health. In 2012 Forbes named Sandy one of the ‘seven most powerful data scientists in the world’, along with Google founders and the CTO of the United States. His research has been featured in Nature, Science, and Harvard Business Review, as well as being the focus of TV features on BBC World, Discover and Science channels.
Dr. Bruno Lepri is the Research Director of the Mobile and Social Computing Lab (MobS Lab) at Fondazione Bruno Kessler (FBK), Trento, Italy. Bruno is also the Head of Research of Data-Pop Alliance, the first think-tank on big data and development co-created by the Harvard Humanitarian Initiative, MIT Media Lab, Overseas Development Institute, and Flowminder to promote a people-centered big data revolution. In 2010 he won a Marie Curie post-doctoral fellowship and he has held post-doc positions at MIT Media Lab and FBK. He also serves as consultant ofseveral companies and international organizations. Recently, he co-founded Profilio, a startup active in the field of AI-driven computational marketing. His research has received attention from several international press outlets and obtained several prizes.
Dr. Emmanuel Letouzé is the Director and co-Founder of Data-Pop Alliance, a coalition on big data and development co-created in 2013 by the Harvard Humanitarian Initiative (HHI), MIT Media Lab, and Overseas Development Institute (ODI), and joined in 2016 by the Flowminder Foundation as its 4th core member. He is a Visiting Scholar at MIT Media Lab, a Research Affiliate at HHI and a Research Associate at ODI. He is the author of the UN Global Pulse’s White Paper “Big Data for Development” (2012) and of the 2013 and 2014 OECD Fragile States reports. His research and work focuses on big data applications and implications for official statistics, poverty and inequality, conflict, crime, and fragility, climate change, vulnerability and resilience, and human rights, ethics, and politics.

Dr. Yves-Alexandre de Montjoye is an Assistant Professor at Imperial College London, where he heads the Computational Privacy Group. His research aims to understand how the unity of human behavior impacts the privacy of individuals – through re-identification or inference – in rich high-dimensional datasets such as mobile phone, credit card, or browsing data. Yves-Alexandre was recently named an Innovator under 35 for Belgium (TR35). His research has been published in Science and Nature SRep. and covered by the BBC, CNN, New York Times, Wall Street Journal, Harvard Business Review, Le Monde, Die Spiegel, Die Zeit, and El Pais, as well as in his TEDx talks. His work on the shortcomings of anonymization has appeared in reports of the World Economic Forum, United Nations, OECD, FTC, and the European Commission. Before coming to MIT, he was a researcher at the Santa Fe Institute in New Mexico.

Dr. Xiaowen Dong is a Departmental Lecturer in the Department of Engineering Science, a faculty member of the Oxford-Man Institute, and a research fellow of Somerville College, all at the University of Oxford. He is primarily interested in developing novel techniques that lie at the intersection of machine learning,  signal processing, and game theory in the context of networks, and applying them to study questions across social and economic sciences, with a particular focus on understanding human behaviour, decision making and societal changes.

Dr. Patrick Vinck is the Research Director of the Harvard Humanitarian Initiative.  He is assistant professor at the Harvard T.H. Chan School of Public Health and Harvard Medical School. His current research examines resilience, peacebuilding, and social cohesion in contexts of mass violence, conflicts and natural disasters. This research has lead him to examine the use and ethics of data and technology in the field. He is the co-founder and director of KoBoToolbox a data collection service, and the Data-Pop Alliance, a Big Data partnership with MIT and ODI. He serves as a regular advisor and evaluation consultant to the United Nations and other agencies.



Textul de pe ultima copertă

After the start of the Syrian Civil War in 2011–12, increasing numbers of civilians sought refuge in neighboring countries. By May 2017, Turkey had received over 3 million refugees — the largest r efugee population in the world. Some lived in government-run camps near the Syrian border, but many have moved to cities looking for work and better living conditions. They faced problems of integration, income, welfare, employment, health, education, language, social tension, and discrimination. In order to develop sound policies to solve these interlinked problems, a good understanding of refugee dynamics isnecessary.
This book summarizes the most important findings of the Data for Refugees (D4R) Challenge, which was a non-profit project initiated to improve the conditions of the Syrian refugees in Turkey by providing a database for the scientific community to enable research on urgent problems concerning refugees. The database, based on anonymized mobile call detailrecords (CDRs) of phone calls and SMS messages of one million Turk Telekom customers, indicates the broad activity and mobility patterns of refugees and citizens in Turkey for the year 1 January to 31 December 2017. Over 100 teams from around the globe applied to take part in the challenge, and 61 teams were granted access to the data.This book describes the challenge, and presents selected and revised project reports on the five major themes: unemployment, health, education, social integration, and safety, respectively. These are complemented by additional invited chapters describing related projects from international governmental organizations, technological infrastructure, as well as ethical aspects. The last chapter includes policy recommendations, based on the lessons learned. The book will serve as a guideline for creating innovative data-centered collaborations between industry, academia, government, and non-profit humanitarian agencies to deal with complex problems in refugee scenarios. It illustrates the possibilities of big data analytics in coping with refugee crises and humanitarian responses, by showcasing innovative approaches drawing on multiple data sources, information visualization, pattern analysis, and statistical analysis.It will also provide researchers and students working with mobility data with an excellent coverage across data science, economics, sociology, urban computing, education, migration studies, and more.

Caracteristici

Provides evidence-based insights into issues of refugee health, education, unemployment, social integration, safety, and security Serves as a sourcebook for refugee policy interventions based on big data analysis Describes best practices for ethically processing sensitive data on refugee mobility Presents results from the first big data challenge on refugees, offering insights into the dynamics of the Syrian refugee population in Turkey, currently the world’s largest refugee population