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Social Intelligence

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Social Intelligence
Lowest price (incl. delivery)
14 314,00 JPY
Typical price1 415,77 PLN
Lowest (90 days)71,50 PLN
Offers6
Last updated1 settimana fa
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2026-08-08 2026-08-15
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2026-08-0884,99
2026-08-1571,50
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SP SpringerNatureLink Shop INT 14 299,00 JPY 15,00 JPY 14 314,00 JPY Disponibile 4 giorni fa View offer
SP Springer Nature Author 14 299,00 JPY 15,00 JPY 14 314,00 JPY Disponibile 1 settimana fa View offer
SP SpringerNatureLink Shop INT 99,99 USD free 99,99 USD Disponibile 4 giorni fa View offer
SP SpringerNatureLink Shop INT 109,99 USD 19,00 USD 128,99 USD Disponibile 4 giorni fa View offer
SP SpringerNatureLink Shop INT 109,99 USD free 109,99 USD Disponibile 4 giorni fa View offer
SP SpringerNatureLink Shop INT 118,00 EUR 29,00 EUR 147,00 EUR Disponibile 4 giorni fa View offer

I prezzi e la disponibilità possono variare. Ultimo aggiornamento: 08.08.2026 23:20.

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Given the rise of AI and the advent of online collaboration opportunities (e.g., social media, crowdsourcing), emerging research has started to investigate the integration of AI and human intelligence, especially in a collaborative social context. This creates unprecedented challenges and opportunities in the field of Social Intelligence (SI), where the goal is to explore the collective intelligence of both humans and machines by understanding their complementary strengths and interactions in the social space. In this book, a set of novel human-centered AI techniques are presented to address the challenges of social intelligence applications, including multimodal approaches, robust and generalizable frameworks, and socially empowered explainable AI designs. The book then presents several human-AI collaborative learning frameworks that jointly integrate the strengths of crowd wisdom and AI to address the limitations inherent in standalone solutions. The book also emphasizes pressing societal issues in the realm of social intelligence, such as fairness, bias, and privacy. Real-world case studies from different applications in social intelligence are presented to demonstrate the effectiveness of the proposed solutions in achieving substantial performance gains in various aspects, such as prediction accuracy, model generalizability and explainability, algorithmic fairness, and system robustness.

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