Targeting is a commonly used, but much debated, policy tool within global social assistance practice. Revisiting Targeting in Social Assistance: A New Look at Old Dilemmas examines the well-known dilemmas in light of the growing body of experience, new implementation capacities, and the potential to bring new data and data science to bear. The book begins by considering why or whether or how narrowly or broadly to target different parts of social assistance and updates the global empirics around the outcomes and costs of targeting. It illustrates the choices that must be made in moving from an abstract vision to implementable definitions and procedures, and in deciding how the choices should be informed by values, empirics, and context. The importance of delivery systems and processes to distributional outcomes are emphasized, and many facets with room for improvement are discussed. The book also explores the choices between targeting methods and how differences in purposes and contexts shape those. The know-how with respect to the data and inference used by the different household-specific targeting methods is summarized and comprehensively updated, including a focus on "big data" and machine learning. A primer on measurement issues is included. Key findings include the following: - Targeting selected categories, families, or individuals plays a valuable role within the framework of universal social protection. - Measuring the accuracy and cost of targeting can be done in many ways, and judicious choices require a range of metrics. - Weighing the relatively low costs of targeting against the potential gains is important. - Implementing inclusive delivery systems is critical for reducing errors of exclusion and inclusion. - Selecting and customizing the appropriate targeting method depends on purpose and context; there is no method preferred in all circumstances. - Leveraging advances in technology--ICT, big data, artificial intelligence, machine learning--can improve targeting accuracy, but they are not a panacea; better data matters more than sophistication in inference. - Targeting social protection should be a dynamic process.
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The World Bank came into formal existence in 1945 following the international ratification of the Bretton Woods agreements. It is a vital source of financial and technical assistance to developing countries around the world. The organization's activities are focused on education, health, agriculture and rural development, environmental protection, establishing and enforcing regulations, infrastructure development, governance and legal institutions development. The World Bank is made up of two unique development institutions owned by its 185 Member Countries. The International Bank for Reconstruction and Development (IBRD) focuses on middle income and creditworthy poor countries and the International Development Association (IDA), which focuses on the poorest countries in the world.
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Paperback. Etat : new. Paperback. Targeting is a commonly used, but much debated, policy tool within global social assistance practice. Revisiting Targeting in Social Assistance: A New Look at Old Dilemmas examines the well-known dilemmas in light of the growing body of experience, new implementation capacities, and the potential to bring new data and data science to bear. The book begins by considering why or whether or how narrowly or broadly to target different parts of social assistance and updates the global empirics around the outcomes and costs of targeting. It illustrates the choices that must be made in moving from an abstract vision to implementable definitions and procedures, and in deciding how the choices should be informed by values, empirics, and context. The importance of delivery systems and processes to distributional outcomes are emphasized, and many facets with room for improvement are discussed. The book also explores the choices between targeting methods and how differences in purposes and contexts shape those. The know-how with respect to the data and inference used by the different household-specific targeting methods is summarized and comprehensively updated, including a focus on "big data" and machine learning. A primer on measurement issues is included. Key findings include the following: - Targeting selected categories, families, or individuals plays a valuable role within the framework of universal social protection. - Measuring the accuracy and cost of targeting can be done in many ways, and judicious choices require a range of metrics. - Weighing the relatively low costs of targeting against the potential gains is important. - Implementing inclusive delivery systems is critical for reducing errors of exclusion and inclusion. - Selecting and customizing the appropriate targeting method depends on purpose and context; there is no method preferred in all circumstances. - Leveraging advances in technology--ICT, big data, artificial intelligence, machine learning--can improve targeting accuracy, but they are not a panacea; better data matters more than sophistication in inference. - Targeting social protection should be a dynamic process. Targeting is a commonly used but much debated policy within global social assistance practice. This book examines the well-known dilemmas in light of the growing body of experience, new implementation capacities, and the potential to bring new data and data science to bear. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. N° de réf. du vendeur 9781464818141
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