Small Summaries for Big Data Small Summaries for Big Data

Small Summaries for Big Data

    • ‏59٫99 US$
    • ‏59٫99 US$

وصف الناشر

The massive volume of data generated in modern applications can overwhelm our ability to conveniently transmit, store, and index it. For many scenarios, building a compact summary of a dataset that is vastly smaller enables flexibility and efficiency in a range of queries over the data, in exchange for some approximation. This comprehensive introduction to data summarization, aimed at practitioners and students, showcases the algorithms, their behavior, and the mathematical underpinnings of their operation. The coverage starts with simple sums and approximate counts, building to more advanced probabilistic structures such as the Bloom Filter, distinct value summaries, sketches, and quantile summaries. Summaries are described for specific types of data, such as geometric data, graphs, and vectors and matrices. The authors offer detailed descriptions of and pseudocode for key algorithms that have been incorporated in systems from companies such as Google, Apple, Microsoft, Netflix and Twitter.

النوع
كمبيوتر وإنترنت
تاريخ النشر
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١٢ نوفمبر
اللغة
EN
الإنجليزية
عدد الصفحات
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الناشر
Cambridge University Press
البائع
Cambridge University Press
الحجم
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‫م.ب.‬
Models of Computation for Big Data Models of Computation for Big Data
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Combinatorics, Algorithms, Probabilistic and Experimental Methodologies Combinatorics, Algorithms, Probabilistic and Experimental Methodologies
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Algorithms - ESA 2008 Algorithms - ESA 2008
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Approximation and Online Algorithms Approximation and Online Algorithms
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Algorithms and Applications Algorithms and Applications
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Pattern Recognition Pattern Recognition
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