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Questions tagged [lmfit]

lmfit is a Python library for Least-Squares Minimization with Bounds and Constraints.

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About graph plots with multiple models in LMFIT

Here's my code x_1=np.array(x) y_1=np.array(y) exp_model = ExponentialModel(prefix='exp_') pv1_model = PseudoVoigtModel(prefix='pv1_') pv2_model = PseudoVoigtModel(prefix='pv2_') pv3_model = ...
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Fit a model with multiple inputs, multiple outputs, multiple parameters, and covariance matrices for each data point using Python

Note: A similar question has been asked at the Cross Validated site for the mathematical/theoretical part, as suggested by the community. The question here is mostly about the implementation of the ...
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Optimization with multiple losses in lmfit

I am trying to fit parameters to minimize the errors for both ET and T (see below) i.e., with multiple losses using library lmfit. ET and T can have different lengths. What modification do I need to ...
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How to setup LMFit constraints

I've tried to look at other SO answers, but they always have these complicated setups or equations that I can never wrap around my head around how LMFit handles constraints or how they should be setup....
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fitting a log curve using lmfit and scipy.curve_fit - not working! (Dataset: The Ultimate Film Statistics Dataset - for ML)

this dataset is great! However I am stuck… there seems to be a logarithmic relationship between number of Votes (x axis) and Approval Index(y axis), but I tried using both scipy.curve_fit as well as ...
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Get Objective Function values in each iteration while using lmfit.minimize

I am trying to use lmfit.minimize to minimize an objective function (which is a sum of squared error). I can use lmfit.minimize(function,params,args) to do it and it returns a Minimizer object with ...
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Errors when using lmfit library

I am have experimental data for the double slit experiment that I wish to fit a numerical curve to. I have opted to using the lmfit library because I like their fit result output a lot more than other ...
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Dynamically Removing Models From A Composite Model Object

I'm working on a script that automatically deduces the number of peaks in spectroscopic data and attempts to fit them. It first tries a lorentzian at the highest point in the data, and calculates the ...
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Fitting a custom COBRApy model to data

I am trying to fit a model constructed using the cobra package to some data using curve_fit or limfit and I encounter a ValueError as shown in the minimal example below: Here is a minimal cobra model ...
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lmfit - unable to form simple minimisation problem

I am struggling to get what ought to be a fairly basic minimisation problem setup correctly using the lmfit package. Here is my code, which serves as a dumbed-down version of what I am working on. ...
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How to cast array data from object to float64 after reading an Excel file with Pandas/NumPy?

I am trying to import a number of Excel files in a for loop and cast a column from the file as an array of type float64, to be used later in an lmfit function. To do so, I read the Excel files (...
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Using x and y uncertainties in lmfit()

I want to use lmfit in python to fit a simple Linear Model to my data. My data have as well uncertainties on the y component as on the x component. As far as I know, lmfit() gets weights for the y ...
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Using lmfit Minimizer.minimize() leads to error ValueError: "The truth value of an array with more than one element is ambiguous"

I want to use lmfit to fit the function: func(x,region,E0,C0,R1,R3,R4,R5,R6,R7,R8,alpha,beta,rho,theta,delta,d) and get the information on confidence intervals of the parameters. func takes as ...
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How to apply Kramers Kronig transformation on a NiO reflectivity or absorption spectrum?

I have an experimental NiO absorption spectrum recorded in total electron yield across the M edge of Ni. I would like to extract the imaginary (and real) part of the refraction index (which also ...
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Python and lmfit: Fit Multiple Data Sets with different lengths

On the example of fit with multiple data sets from lmfit documentation, the data variable have rows of equal length. I tried to adapt the example to run the fit using datasets with different lengths. ...
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Is the skew parameter from lmfit models like SkewedVoigtModel() absolute or relative?

It's unclear to me from the documentation for lmfit's Skewed-type models like (SkewedVoigtModel()) if the skew parameter returned from the fit is absolute or relative. In this sense I mean, if I have ...
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Lmfit issue, the best fit curve is orders of magnitude away from the trial curve

I am trying to fit a measured data to an RC low pass filter equation using Lmfit. The code runs and the trial values for R and C I provided gives a plot close to the data but the best fit is a way out....
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Positional arguments in lmfit cannot be SciPy CubicSpline datatype

Problem: If the array of positional arguments I plug into lmfit minimize() is obtained from scipy.interpolate.CubicSpline. I get the following error: TypeError: unsupported operand type(s) for *: '...
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LMFIT vs. Scipy Why am I getting different results in minimize

In short, I have data I'm trying to fit, and LMFIT and Scipy give 2 different solutions, with LMFIT being significantly worse. Just some detail as to what is going on: The "model" is a ...
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Showing the error of lmfit-model center in plot

I'm working with fitting of data with the python lmfit package. I am looking at several peaks and fitting them with a pseudo-Voigt + constant model. I then extract the center position of the fitted ...
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unexpected results while applying curve fitting to triangular pdf using lmfit

I have a set of points with x & y coordinates x = np.array([0, 30, 60, 90, 120, 150, 180, 210, 240, 270, 300, 330, 360, 390]) y = np.array([0, 1.2, 2.8, 1.7, 1.4, 1.2, 1.1, 0.91, 0.74, 0.61, 0.5, ...
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ImportError: cannot import name 'SplineModel' from 'lmfit.models'

I am trying to use SplineModel to fit background noise as part of a Composite Model to fit a peak and a background using lmfit as per the documentation here: lmfit SplineModel example However when ...
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How to constrain a sum of parameters to one value with Python lmfit?

I'm using python lmfit to minimise the residuals of a fit function with three variables; A, P and S. I've provided a simplified version here: from lmfit import minimize, Parameters import numpy as np ...
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Can lmfit output the correlation matrix as an array?

Can lmfit output a complete correlation matrix as a numpy array? I know result.covar will output the covariance matrix as an array, and correlation coefficients between all the parameters can be shown ...
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lmfit RectangleModel or StepModel

I am trying to fit the model with peak + background, my code is as below: import numpy as np import scipy.stats as stats import lmfit import matplotlib.pyplot as plt # Generate random data np.random....
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lmfit scipy optimize method has "TypeError: brute() got an unexpected keyword argument 'workers'"

I am minimising a function test_fn() using the brute-force method of lmfit (based on scipy minimize). It is a function of 4 parameters a,b,c,d. The edited code I use is below: def test_fn(param): # ...
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why multiply covariance matrix by 2 in lmfit error calculation

When I looked into how the error calculation is done for lmfit when we fit functions, I found that the covariance matrix is calculated as the inverse of Hessian Matrix * 2. Then, the error on each ...
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fit line is too condensed on x-axis (matplotlib, lmfit)

I'm using lmfit to generate a line of best fit for data in the following dataframe: foci_red fold_dil 0 0.986947 20.0 1 0.947788 60.0 2 0.908629 180.0 3 0.765047 540.0 4 ...
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Define a function that fits some parameters to all of the data and some parameters to subsets of the data

I have a set of data contained with a pandas dataframe. I am using lmfit to fit multiple equations to this data. Currently I have the code (below) that works. # read in data df1 = pd.read_excel('Data....
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ValueError: too many values to unpack, while using LMfit with solve_ivp

I am facing ValueError: too many values to unpack (expected 2) while optimizing parameters of a system of ODEs using solve_ivp. In fact I get the same error when I tried to use solve_ivp instead of ...
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103 views

How do I fit this curve?

I am trying to find a function to model my curved dataset using scipy's curve fit function which gets me a line and spits out error message "OptimizeWarning: Covariance of the parameters could ...
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Unable to fit custom model with lmfit - ValueError: The model function generated NaN values and the fit aborted

I have this data: y=[2.103402,2.426855,1.011672,1.595371,1.861879,2.492542,2.567561,4.685010,4.452643,5.321630,6.637233, 6.109260,6.220958,5.928408,5.654726,5.498096,5.468448,6.128418,6.071376,6....
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Reading a hdf5 file, make some processes with Numpy and lmfit accelerated by using multiprocessing

if one of you could help, I would appreciate. I'm struggling in using multiprocessing to speed up the Gaussian fitting (using lmfit) on a dataset saved as a relatively large hdf5 file (4.3 GB). Please ...
alccdesy's user avatar
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Is it possible to limit the accuracy of lmfit?

I would like to ask some questions about lmfit accuracy (and possibly obtain better fit results by obtaining the answer). All experimental spectra are limited by sampling, that is, by the distance ...
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Classes, attributes and functions in lmfit library

I have a general problem that I don't know how to navigate library modules to get the result that I want. Here is an example of what I mean: Let's say I use lmfit library to do a fitting of a function:...
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Fitting data with Voigt profile in lmfit in python - huge errors

I am trying to fit some RIXS data with Voigt profiles (lmfit in Python), and I have defined the Voigt profile in the following way: def gfunction_norm(x, pos, gwid): gauss= (1/(gwid*(np.sqrt(2*np....
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Lmfit fit produces huge uncertainties

I am using the lmfit library in Python and I get huge uncertainties. I have noticed it happens when the best fit parameter itself is very small. Do you know how the fitting uncertainties are evaluated?...
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lmfit - SineModel+ConstantModel appears inaccurate fit

I'm trying to fit a simple sine function to some experimental data using lmfit and I find that the SineModel with a constant model offset returns, what looks like an inaccurate fit to the data (to me)....
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Adding constraints to my fitting model using lmfit

I am trying to fit a complex conductivity model (the drude-smith-anderson model) using lmfit.minimize. In that fitting, I want constraints on my parameters c and c1 such that 0<c<1, -1<c1<...
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Adding constraints to my fitting model using lmfit

I want to fit a model using lmfit. The model has 2 parameters c and c1. For these parameters, i have 3 constraints (0<=c<=1) (-1<=c1<=0) and (1+c1-c>0). How do I incorporate these ...
Garvit Bansal's user avatar
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Is there a way to extract the variables from `lmfit` report?

I'm using the python package lmfit to fit my dataset with this model: def GaussianFit(results, highest_num, Peak_shot, nuni, dif = None): ... Gauss_mod = GaussianModel(prefix='gauss_')...
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Curve fitting with determination of phonon number associated with each motional state

I have to write a program in python for curve fitting for at least 20 different parameters of occupation probability as explained below. I have added a model for fitting as well. Later when from the ...
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Fit data with a function that equals 0 and could not be converted to the form f(x) = x

I have 2 columns and 31 rows in a pandas dataframe. I want to plot this x,y data and fit them to a complex function with 4 parameters. The function looks something like this. The function has to be 0 #...
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Using the Kramers-Kronig (Hilbert) transform in Python via scipy or sympy

I am trying to use the Kramers-Kronig algorithm to transform the real and imaginary contributions to the anomalous scattering factor from a diffraction anomalous fine structure (DAFS) experiment. I ...
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LMFIT - How to get best fit with only positive values

I would like to force the best fit to be always positive. from lmfit.models import ExpressionModel from lmfit.models import StepModel step_mod = StepModel(form='linear', prefix='step_') gmod = ...
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Fitting a model with some known parameters to an experimental dataset in python, in order to optimise other parameters

I have an experimental dataset 1 which plots intensity as a function of energy. These are arrays of 1800 datapoints. I have been trying to fit a model to this data, given by the equation below: ...
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One parameter fit function for a poisson generated dataset

I have data generated by the following function: def generator(photons): runs = 10000 sectors = [] events = np.random.poisson(photons, runs) for i in events: hit = np.random....
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Python lmfit - how to properly fix parameters while fitting?

I am using an user-defined model function to fit a dataset with lmfit. However it seems I am not capable of fixing some of the parameters of the function, so they won't be changed during the fitting ...
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A Python module that can perform fitting with asymmetrical X and Y errors, and introduce bounds on fitted parameters?

I am fitting datasets with some broken powerlaws, the data has assymetrical errors in X and Y, and I'd like to be able to introduce constrains on the fitted parameters (i.e. not below 0, or within a ...
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Fitting a Lorentzian with lmfit to a histogram

I am currently trying to fit a Lorentzian using lmfit to my histogram and have code like this: from scipy.stats import norm import matplotlib.mlab as mlab import matplotlib.pyplot as plt import numpy ...
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