Chapter 13 
Nonlinear Regression
Fit Custom Nonlinear Models to Your Data
The Nonlinear platform is a good choice for models that are nonlinear in the parameters. This chapter focuses on custom nonlinear models, which include a model formula and parameters to be estimated. Use the default least squares loss function or a custom loss function to fit models. The platform minimizes the sum of the loss function across the observations.
Figure 13.1 Example of a Custom Nonlinear Fit
Example of a Custom Nonlinear Fit
The Nonlinear platform also provides predefined models, such as polynomial, logistic, Gompertz, exponential, peak, and pharmacokinetic models. See the “Fit Curve” chapter for more information.
Note: Some models are linear in the parameters (for example, a quadratic or other polynomial) or can be transformed to be such (for example, when you use a log transformation of x). The Fit Model or Fit Y by X platforms are more appropriate in these situations. For more information about these platforms, see the Model Specification chapter in the Fitting Linear Models book and the Introduction to Fit Y by X chapter in the Basic Analysis book.
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