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IBM SPSS Modeler cookbook : = over 6...
~
Shearer, Colin.
IBM SPSS Modeler cookbook : = over 60 practical recipes to achieve better results using the experts' methods for data mining /
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
IBM SPSS Modeler cookbook :/ Keith McCormick ... [et al.] ; foreword by Colin Shearer.
其他題名:
over 60 practical recipes to achieve better results using the experts' methods for data mining /
其他題名:
SPSS Modeler cookbook
其他作者:
McCormick, Keith.
出版者:
Birmingham, UK :Packt Pub., : 2013.,
面頁冊數:
iii, 359 p. :ill. ; : 24 cm.;
附註:
Includes index.
標題:
Data mining. -
ISBN:
9781849685467 (Pbk) :
IBM SPSS Modeler cookbook : = over 60 practical recipes to achieve better results using the experts' methods for data mining /
IBM SPSS Modeler cookbook :
over 60 practical recipes to achieve better results using the experts' methods for data mining /SPSS Modeler cookbookKeith McCormick ... [et al.] ; foreword by Colin Shearer. - Birmingham, UK :Packt Pub.,2013. - iii, 359 p. :ill. ;24 cm.
Includes index.
Cover; Copyright; Credits; Foreword; About the Authors; About the Reviewers; www.PacktPub.com; Table of Contents; Preface; Chapter 1: Data Understanding; Introduction; Using an empty aggregate to evaluate sample size; Evaluating the need to sample from the initial data; Using CHAID stumps when interviewing an SME; Using a single cluster K-means as an alternative to anomaly detection; Using an @NULL multiple Derive to explore missing data; Creating an outlier report to give to SMEs; Detecting potential model instability early using the Partition node and Feature Selection.
ISBN: 9781849685467 (Pbk) :NT1881
Nat. Bib. No.: GBB747746bnbSubjects--Topical Terms:
528622
Data mining.
LC Class. No.: QA76.9.D343 / I35 2013
Dewey Class. No.: 006.312
IBM SPSS Modeler cookbook : = over 60 practical recipes to achieve better results using the experts' methods for data mining /
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Chapter 2: Data Preparation -- SelectIntroduction; Using the Feature Selection node creatively to remove, or decapitate, perfect predictors; Running a Statistics node on anti-join to evaluate potential missing data; Evaluating the use of sampling for speed; Removing redundant variables using correlation matrices; Selecting variable using the CHAID modeling node; Selecting variables using the Means node; Selecting variables using single-antecedent association rules; Chapter 3: Data Preparation -- Clean; Introduction; Binning scale variables to address missing data.
505
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Using a full data model/partial data model approach to address missing dataImputing in-stream mean or median; Imputing missing values randomly from uniform or normal distributions; Using random imputation to match a variable's distribution; Searching for similar records using a neural network for inexact matching; Using neuro-fuzzy searching to find similar names; Producing longer Soundex codes; Chapter 4: Data Preparation -- Construct; Introduction; Building transformations with multiple Derive nodes; Calculating and comparing conversion rates; Grouping categorical values.
505
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Transforming high skew and kurtosis variables with a multiple Derive nodeCreating flag variables for aggregation; Using Association Rules for interaction detection/feature creation; Creating time-aligned cohorts; Chapter 5: Data Preparation -- Integrate and Format; Introduction; Speeding up merge with caching and optimization settings; Merging a look-up table; Shuffle-down (nonstandard aggregation); Cartesian product merge using key-less merge by key; Multiplying out using Cartesian product merge, user source, and derive dummy; Changing large numbers of variable names without scripting.
505
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Parsing nonstandard datesParsing and performing a conversion on a complex stream; Sequence processing; Chapter 6: Selecting and Building a Model; Introduction; Evaluating balancing with the Auto Classifier; Building models with and without outliers; Neural Network Feature Selection; Creating a bootstrap sample; Creating bagged logistic regression models; Using KNN to match similar cases; Using Auto Classifier to tune models; Next-Best-Offer for large datasets; Chapter 7: Modeling -- Assessment, Evaluation, Deployment, and Monitoring; Introduction; How (and why) to validate as well as test.
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