
This manuscript provides a systemic and data-centric view of what we term essential data science, as a natural ecosystem with challenges and missions stemming from the fusion of data universe with its multiple combinations of the 5D complexities (data structure, domain, cardinality, causality, and ethics) with the phases of the data life cycle. Data agents perform tasks driven by specific goals. The data scientist is an abstract entity that comes from the logical organization of data agents with their actions. Data scientists face challenges that are defined according to the missions. We define specific discipline-induced data science, which in turn allows for the definition of pan-data science, a natural ecosystem that integrates specific disciplines with the essential data science. We semantically split the essential data science into computational, and foundational. By formalizing this ecosystemic view, we contribute a general-purpose, fusion-oriented architecture for integrating heterogeneous knowledge, agents, and workflows-relevant to a wide range of disciplines and high-impact applications.
[INFO.INFO-AI] Computer Science [cs]/Artificial Intelligence [cs.AI], FOS: Computer and information sciences, [SPI.OTHER] Engineering Sciences [physics]/Other, Databases (cs.DB), Machine Learning (stat.ML), Mission, Route-to-Discovery, Divergence, Machine Learning (cs.LG), Machine Learning, Databases, Artificial Intelligence (cs.AI), Artificial Intelligence, Data Agent, Data Universe
[INFO.INFO-AI] Computer Science [cs]/Artificial Intelligence [cs.AI], FOS: Computer and information sciences, [SPI.OTHER] Engineering Sciences [physics]/Other, Databases (cs.DB), Machine Learning (stat.ML), Mission, Route-to-Discovery, Divergence, Machine Learning (cs.LG), Machine Learning, Databases, Artificial Intelligence (cs.AI), Artificial Intelligence, Data Agent, Data Universe
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