Case Studies of AI Policy Development in Africa

Fuente: arXiv
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Main Authors: Diallo, Kadijatou, Smith, Jonathan, Okolo, Chinasa T., Nyamwaya, Dorcas, Kgomo, Jonas, Ngamita, Richard
Format: Preprint
Published: 2024
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author Diallo, Kadijatou
Smith, Jonathan
Okolo, Chinasa T.
Nyamwaya, Dorcas
Kgomo, Jonas
Ngamita, Richard
author_facet Diallo, Kadijatou
Smith, Jonathan
Okolo, Chinasa T.
Nyamwaya, Dorcas
Kgomo, Jonas
Ngamita, Richard
contents Artificial Intelligence (AI) requires new ways of evaluating national technology use and strategy for African nations. We conduct a survey of existing 'readiness' assessments both for general digital adoption and for AI policy in particular. We conclude that existing global readiness assessments do not fully capture African states' progress in AI readiness and lay the groundwork for how assessments can be better used for the African context. We consider the extent to which these indicators map to the African context and what these indicators miss in capturing African states' on-the-ground work in meeting AI capability. Through case studies of four African nations of diverse geographic and economic dimensions, we identify nuances missed by global assessments and offer high-level policy considerations for how states can best improve their AI readiness standards and prepare their societies to capture the benefits of AI.
format Preprint
id arxiv_https___arxiv_org_abs_2403_14662
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Case Studies of AI Policy Development in Africa
Diallo, Kadijatou
Smith, Jonathan
Okolo, Chinasa T.
Nyamwaya, Dorcas
Kgomo, Jonas
Ngamita, Richard
Computers and Society
Artificial Intelligence
Machine Learning
Artificial Intelligence (AI) requires new ways of evaluating national technology use and strategy for African nations. We conduct a survey of existing 'readiness' assessments both for general digital adoption and for AI policy in particular. We conclude that existing global readiness assessments do not fully capture African states' progress in AI readiness and lay the groundwork for how assessments can be better used for the African context. We consider the extent to which these indicators map to the African context and what these indicators miss in capturing African states' on-the-ground work in meeting AI capability. Through case studies of four African nations of diverse geographic and economic dimensions, we identify nuances missed by global assessments and offer high-level policy considerations for how states can best improve their AI readiness standards and prepare their societies to capture the benefits of AI.
title Case Studies of AI Policy Development in Africa
topic Computers and Society
Artificial Intelligence
Machine Learning
url https://arxiv.org/abs/2403.14662