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SAS JMP PRO 17.1

cadcamaec@protonmail.com2023-07-25CAD.CAID103
ExtendthevalueofJMPtosolvebiggerandmorechallenginganalyticproblemswiththelatestdata

Extend the value of JMP to solve bigger and more challenging analytic problems with the latest data science techniques, including predictive modeling and machine learning.

Build better models
Without the right predictive analytics tools, building a model to predict what will happen with new customers, new processes or new risks becomes much more difficult. JMP Pro offers a rich set of algorithms that lets you build better models.

JMP PRO predictive models
Enhance the power of your predictive models with various types of data, including unstructured text data you’ve collected – repair logs, engineering reports, customer survey response comments and more. Use JMP Pro to organize and transform data into usable additions to your predictive models, enabling more confident decision making.

JMP PRO central modeling
Handling your models doesn’t have to be painful – JMP Pro makes it easy to find the best fit to your data with model screening. Easily build candidate models then profile, compare and generate score code in C, Python, JavaScript, SAS or SQL.

The Key Features of JMP Pro
Predictive Modeling and Cross-Validation
Use the JMP Pro set of rich algorithms to build and validate your models more effectively.

Model Screening and Comparison
Build a variety of models and determine the best for the problem you are trying to solve.

Formula Depot and Score Code
Organize your models and save model score code in SAS, C, Python, Javascript, SQL.

Structural Equation Modeling (SEM)
Framework to fit a variety of models, including confirmatory factor analysis, path models, measurement error models, and latent growth curve models.

Modern Modeling
Use new modeling techniques, including Generalized Regression with penalized methods, to build better models, even with challenging data.

Functional Data Analysis
Create models of data that are functions, signals or series with Functional Data Explorer (FDE).

Reliability Block Diagrams
Easily fix weak spots in your system and be better informed to prevent future system failures.

Repairable Systems Simulation
Simulate system repair events to understand downtime and number and cost of repairable events.

Covering Arrays
Design your experiment to maximize the probability of finding defects while minimizing cost and time.

Term Selection and Sentiment Analysis
Use your unstructured data to identify terms associated with a response and explore basic sentiment.

Mixed Models
Analyze data involving both time and space, where multiple subjects are measured or groups of variables are correlated.

Uplift Models
Predict consumer segments most likely to respond favorably to an action, allowing targeted marketing decisions.

Advanced Computational Statistics
Use exact statistical tests, exact non-parametric statistical tests and bootstrapping statistics.

Generalized Linear Mixed Models (GLMM)
Enables fitting of models with both non-Gaussian response variables and random design effects.


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