Maybe you missed Part 1 of "The Evolution of Regression Modeling from Classical
Linear Regression to Modern Ensembles " webinar series, but you can still join
for Parts 2, 3, & 4
Register Now for Parts 2, 3, 4: https://www1.gotomeeting.com/register/500959705
Download (optional) a free evaluation of the SPM software suite v7.0 (used in
the hands-on components of the webinar). As a webinar participant you will
qualify for a 60-Day Evaluation of the software at no charge:
http://2.salford-systems.com/the-salford-predictive-modeler-download/
Course Outline: Overcoming Linear Regression Limitations
Regression is one of the most popular modeling methods, but the classical
approach has significant problems. This webinar series addresses these
problems. Are you working with larger datasets? Is your data challenging? Does
your data include missing values, nonlinear relationships, local patterns and
interactions? This webinar series is for you! We will cover improvements to
conventional and logistic regression, and will include a discussion of
classical, regularized, and nonlinear regression, as well as modern ensemble
and data mining approaches. This series will be of value to any classically
trained statistician or modeler.
Part 2 (Hands-on): March 15, 10-11am PST - Hands-on demonstration of concepts
discussed in Part 1 (Classical Regression, Logistic Regression, Regularized
Regression: GPS Generalized Path Seeker, Nonlinear Regression: MARS Regression
Splines)
* Step-by-step demonstration
* Datasets and software available for download
* Instructions for reproducing demo at your leisure
* For the dedicated student: apply these methods to your own data (optional)
* Part 1 recording:
http://www.salford-systems.com/videos/tutorials/805-the-evolution-of-regression-modeling-part-1
Part 3: March 29, 10-11am PST - Regression methods discussed
*Part 1 is a recommended pre-requisite
* Nonlinear Ensemble Approaches: TreeNet Gradient Boosting; Random Forests;
Gradient Boosting incorporating RF
* Ensemble Post-Processing: ISLE; RuleLearner
Part 4: April 12, 10-11am PST - Hands-on demonstration of concepts discussed in
Part 3
* Step-by-step demonstration
* Datasets and software available for download
* Instructions for reproducing demo at your leisure
* For the dedicated student: apply these methods to your own data (optional)
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