Choosing a method for nonlinear data-fitting to find parameters
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I'm currently trying to fit nonlinear experimental data to find two parameters. Using lsqcurvefit has been working well about 90% of the time, but I wanted to try to improve that. I have found other methods for fitting data, but I'm confused about the differences between them, and how to choose one. I tried using MultiStart in addition to lsqcurvefit, but that did not seem to improve the results. I also tried lsqnonlin without any luck. Do you have any recommendations about other methods/options to try? I have access to the majority of the toolboxes. Some people were discussing the use of robustfit, but I was confused about the implementation of that. Any insight would be greatly appreciated!
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Yahya Zakaria mohamed
2017 年 8 月 1 日
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You can use the APP for curve fitting.

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It fits very well with about 95% I think nothing more You will get.You can generate code from the app and modify it as You wish.
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ヘルプ センター および File Exchange で Nonlinear Least Squares (Curve Fitting) についてさらに検索
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