Data Science, Learning by Latent Structures, and Knowledge Discovery

Data Science, Learning by Latent Structures, and Knowledge Discovery

아직 평점이 없습니다
2015 · 영어 · 페이퍼백 · 판본 2개
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설명

This collection brings together insightful papers that delve into the realms of data science, emphasizing the critical process of knowledge extraction from diverse data types. The authors, each distinguished in their fields, explore how latent structures influence learning and facilitate a deeper understanding of complex datasets.

Through a collaborative lens, they discuss innovative methodologies for harnessing the power of data and transforming it into actionable insights. The interplay between advanced analytics and real-world applications underscores the importance of adapting data science techniques to meet the evolving challenges of knowledge discovery.

Readers will find a wealth of perspectives that illuminate the multifaceted nature of data science. The discussions aim to bridge theoretical concepts with practical implementations, making this volume essential not just for researchers, but also for practitioners seeking to enhance their data-driven decision-making capabilities.

책 세부 정보

형식 페이퍼백
페이지 582 페이지
언어 영어
출판됨 May 18, 2015
출판사 Springer
ISBN-10 366244982X
ISBN-13 9783662449820
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