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Blending
Design of Experiments with Data Mining - Webinar
Date: Flexible
- per your schedule
Presented by: Robert Launsby, President
Presentation time: 2 hours
Cost: $99.00
Classical
Design of Experiments was introduced nearly 100 years ago
and has slowly evolved in the decades that followed. Thanks
to powerful software, much has recently changed in this arena.
Computer generated designs allow us to conduct incredibly
efficient experiments. Mixed levels for factors can be readily
accommodated. Multiple responses can be traded-off with ease.
We no longer need to assume the model of interest is of a
simple linear or quadratic form. Software allows us
to fit more complex models. Interactions can be more
effectively visualized with three-dimensions. New strategies
have also emerged regarding run order and number of replications.
Organizations are now able to learn amazing things about their
customers and processes using a host of relatively new techniques
referred to as data mining. Instantaneously determining
if a client is a good credit risk, selecting what content
to display on a web page, spotting fraud, optimization of
complex bio-chemical formulations, and predicting which customers
are likely to leave in the next three months are just some
of the amazing things companies have accomplished with data
mining techniques. With the advent of inexpensive computing
capability and powerful software, organizations can now collect
massive amounts of operational and customer data. Collecting
data is not a problem, but collecting the right data and then
being able to extract latent information about relationships
is a huge challenge. These techniques have the potential
of readily determining latent variable relationships
in complex historical datasets.
Exciting areas of application have emerged from the combination
of these seemingly disparate families of tools. One
involves using data mining tools to screen the vital few key
variables from a massive number of dataset variables as well
as identification of intriguing ranges for the key variables.
This information can then be loaded into a modeling designed
experiment so as to approximate underlying relationships between
the key input variables and key responses. Simulation
and optimization strategies can then be applied to the resultant
models.
Who
Should Attend?
Anyone who would like to learn more about how to blend classical
Designed Experiments with Data Mining principles.
About
the Presenter
Robert Launsby is the President of Launsby Consulting in Colorado
Springs, CO. With over 20 years of manufacturing experience,
Robert has trained thousands of people in various techniques
including Experimental Design, Process Control, FMEA, Concept
Selection, Design Control, Process Validation, Data Mining,
Market Research, Six Sigma, Design for Six Sigma, and QFD.
Robert is the co-author of numerous books including:
- "Understanding
Industrial Designed Experiments"
- "Straight
Talk on Designed Experiments"
- "Process
Validation for Business Success"
- "Experimental
Design for Injection Molding"
- "Engineering
Today's Designed Experiments"
- "Design
for Six Sigma"
System
Requirements:
Attendees will need high speed internet access and audio.
The webinar will be run with GoToMeeting software. A quick
(approx. 2 min) install will be needed to view the webinar.
This may be done during registration or upon webinar log-in.
Contact:
For further information or questions, please contact Launsby
Consulting at 1-719-282-1143.
To Order:
Price is $99.00. Call Launsby Consulting at 719-282-1143 or
click on the button below. You will then be contacted regarding
what date and time work best for you
to attend this webinar.
Click
Below To Order
No
Risk Money Back Guarantee!
If you are not completely satisfied with our webinars(within
15 days of the webinar), simply call us and receive a 100%
refund! No questions asked! All courses are totally risk free!
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