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Source arXiv Artificial Intelligence export.arxiv.org Analyst
July 7, 2026 ai_technology research

Automated Data Readiness for Scientific AI

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Overview

arXiv:2607.02771v1 Announce Type: new Abstract: Leadership computing facilities steward large-scale scientific datasets that routinely require substantial transformation before serving as AI training data. However, no existing framework fully unifies automated transformation, readiness assessment, provenance tracking, and agent-native deployment. We present REDI, an open-source framework that addresses this gap through a unified five-stage pipeline (ingest, preprocess, transform, structure, and

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