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The Data Grid

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The Data Grid
Lowest price (incl. delivery)
7 168,00 JPY
Typical price492,24 PLN
Lowest (90 days)35,99 PLN
Offers6
Last updatedför 1 vecka sedan
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Price history (90 days)
Full history
2026-08-08 2026-08-15
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UppdateradPris
2026-08-0839,99
2026-08-1435,99
2026-08-1551,99
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SP SpringerNatureLink Shop INT 7 149,00 JPY 19,00 JPY 7 168,00 JPY Tillgänglig för 6 dagar sedan View offer
SP Springer Nature Author 7 149,00 JPY 19,00 JPY 7 168,00 JPY Tillgänglig för 1 vecka sedan View offer
SP SpringerNatureLink Shop INT 49,99 USD 29,00 USD 78,99 USD Tillgänglig för 6 dagar sedan View offer
SP SpringerNatureLink Shop INT 54,99 USD 19,00 USD 73,99 USD Tillgänglig för 6 dagar sedan View offer
SP SpringerNatureLink Shop INT 54,99 USD free 54,99 USD Tillgänglig för 6 dagar sedan View offer
SP SpringerNatureLink Shop INT 59,00 EUR 15,00 EUR 74,00 EUR Tillgänglig för 6 dagar sedan View offer

Priser och tillgänglighet kan ändras. Senast uppdaterad: 08.08.2026 23:08.

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As industries transition from the automation focus of Industry 4.0 to the human–AI collaboration of Industry 5.0, artificial intelligence stands at the forefront. Yet the lasting capability of intelligent systems is rooted in a deeper layer: robust data infrastructures. The Data Grid argues that AI’s true scalability and reliability hinge not just on algorithms, but on stable, governed, and semantically structured data systems. Across industries, fragmented and inconsistent data foundations constrain AI’s potential. By redefining data as infrastructure' imbued with stability, scalability, and lifecycle continuity, this volume establishes the structural foundation for sustainable intelligence. Drawing from systems engineering, industrial engineering, reliability theory, and risk management, this book offers a cross-disciplinary framework for building AI-native data infrastructures. While data engineering originates from computer and software engineering, in the infrastructure context, it is not and should not be confined to these disciplines. It shows how principles such as determinism, fault isolation, boundary control, and semantic layering can be adapted for enterprise-level data environments. Supported by engineering analysis and practical case studies, the book redefines data not as a static resource but as a continuously flowing soft infrastructure: an engineered backbone for resilient, long-term intelligent systems.

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