• Anglický jazyk

Cluster analysis for purpose oriented data mining in large databases

Autor: Mahesh Kandakatla

Our book attempt to predict the business' failure or success. A strong point of our book is that, produces perfect solutions compared to other cluster techniques and produced consistently in all runs. The advantage of our book is exploited to decrease the... Viac o knihe

Na objednávku

51.75 €

bežná cena: 57.50 €

O knihe

Our book attempt to predict the business' failure or success. A strong point of our book is that, produces perfect solutions compared to other cluster techniques and produced consistently in all runs. The advantage of our book is exploited to decrease the setup time and concentrate on the finding of solutions. It has been confirmed that Genetic Programming can be used to solve real-world problems with less computational time. In this book survival analysis is also used to find the existence of the business/customer. This book discusses a framework for the measurable properties of the QoS delivered to the end-user and QoS provided by the business. Before we come up with time series data mining methods, we itemize which problems need to be tackled. As a general rule, large time series comes along with super-high dimensionality, noise along characteristic patterns, outliers and dynamism. The problems that need to be tackled in time series data mining arise from typical properties of large time series. This book discusses state-of-the-art for QoS frameworks for the business like Telecommunication, retail etc.

  • Vydavateľstvo: LAP LAMBERT Academic Publishing
  • Rok vydania: 2017
  • Formát: Paperback
  • Rozmer: 220 x 150 mm
  • Jazyk: Anglický jazyk
  • ISBN: 9786202095716

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