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High Performance Data Mining: Scaling Algorithms, Applications and
Systems brings together in one place important contributions and
up-to-date research results in this fast moving area. High
Performance Data Mining: Scaling Algorithms, Applications and
Systems serves as an excellent reference, providing insight into
some of the most challenging research issues in the field.
Advances in technology are making massive data sets common in many
scientific disciplines, such as astronomy, medical imaging,
bio-informatics, combinatorial chemistry, remote sensing, and
physics. To find useful information in these data sets, scientists
and engineers are turning to data mining techniques. This book is a
collection of papers based on the first two in a series of
workshops on mining scientific datasets. It illustrates the
diversity of problems and application areas that can benefit from
data mining, as well as the issues and challenges that
differentiate scientific data mining from its commercial
counterpart. While the focus of the book is on mining scientific
data, the work is of broader interest as many of the techniques can
be applied equally well to data arising in business and web
applications. Audience: This work would be an excellent text for
students and researchers who are familiar with the basic principles
of data mining and want to learn more about the application of data
mining to their problem in science or engineering.
High Performance Data Mining: Scaling Algorithms, Applications and
Systems brings together in one place important contributions and
up-to-date research results in this fast moving area. High
Performance Data Mining: Scaling Algorithms, Applications and
Systems serves as an excellent reference, providing insight into
some of the most challenging research issues in the field.
Advances in technology are making massive data sets common in many
scientific disciplines, such as astronomy, medical imaging,
bio-informatics, combinatorial chemistry, remote sensing, and
physics. To find useful information in these data sets, scientists
and engineers are turning to data mining techniques. This book is a
collection of papers based on the first two in a series of
workshops on mining scientific datasets. It illustrates the
diversity of problems and application areas that can benefit from
data mining, as well as the issues and challenges that
differentiate scientific data mining from its commercial
counterpart. While the focus of the book is on mining scientific
data, the work is of broader interest as many of the techniques can
be applied equally well to data arising in business and web
applications. Audience: This work would be an excellent text for
students and researchers who are familiar with the basic principles
of data mining and want to learn more about the application of data
mining to their problem in science or engineering.
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