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Questions tagged [model-fitting]

Fitting parameters of a function to explain given data

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46
votes
11answers
23k views

Finding the best trade-off point on a curve

Say I had some data, for which I want to fit a parametrized model over it. My goal is to find the best value for this model parameter. I'm doing model selection using a AIC/BIC/MDL type of criterion ...
12
votes
1answer
3k views

trying to display original and fitted data (nls + dnorm) with ggplot2's geom_smooth()

I am exploring some data, so the first thing I wanted to do was try to fit a normal (Gaussian) distribution to it. This is my first time trying this in R, so I'm taking it one step at a time. First I ...
12
votes
2answers
5k views

Vector autoregressive model fitting with scikit-learn

I am trying to fit vector autoregressive (VAR) models using the generalized linear model fitting methods included in scikit-learn. The linear model has the form y = X w, but the system matrix X has a ...
9
votes
2answers
13k views

Fitting a 3 parameter Weibull distribution

I have been doing some data analysis in R and I am trying to figure out how to fit my data to a 3 parameter Weibull distribution. I found how to do it with a 2 parameter Weibull but have come up short ...
7
votes
2answers
2k views

Does 'statsmodels' or another Python package offer an equivalent to R's 'step' function?

Is there a statsmodels or other Python equivalent for R's step functionality for selecting a formula-based model using AIC?
7
votes
3answers
3k views

ValueError: Unknown label type: while implementing MLPClassifier

I have dataframe with columns Year, month, day,hour, minute, second, Daily_KWH. I need to predict Daily KWH using neural netowrk. Please let me know how to go about it Daily_KWH_System year ...
7
votes
0answers
948 views

Fitting a non-homogeneous poisson-process with PyMC

I'm new to PyMC and trying to fit my non-homogeneous poisson-process with a piecewise-constant rate function using the maximum a posteriori estimate. My process describes some events during a day. ...
6
votes
5answers
2k views

finding the best/ scale/shift between two vectors

I have two vectors that represents a function f(x), and another vector f(ax+b) i.e. a scaled and shifted version of f(x). I would like to find the best scale and shift factors. *best - by means of ...
6
votes
1answer
14k views

Correct usage of fmin_l_bfgs_b for fitting model parameters

I have a some experimental data (for y, x, t_exp, m_exp), and want to find the "optimal" model parameters (A, B, C, D, E) for this data using the constrained multivariate BFGS method. Parameter E must ...
6
votes
1answer
3k views

Fitting complex model using Python and lmfit?

I would like to fit ellipsometric data to complex model using lmfit. Two measured parameters, psi and delta, are variables in a complex function rho. I could try with separating problem to real and ...
6
votes
1answer
1k views

Python power law fit with upper limits & asymmetric errors in data using ODR

I'm trying to fit some data to a power law using python. The problem is that some of my points are upper limits, which I don't know how to include in the fitting routine. In the data, I have put the ...
5
votes
1answer
621 views

Producing an MLE for a pair of distributions in python

Ok, so my current curve fitting code has a step that uses scipy.stats to determine the right distribution based on the data, distributions = [st.laplace, st.norm, st.expon, st.dweibull, st.invweibull,...
4
votes
3answers
613 views

Gnuplot fit of a nested function

What is the proper way in gnuplot to fit a function f(x) having the next form? f(x) = A*exp(x - B*f(x)) I tried to fit it as any other function using: fit f(x) "data.txt" via A,B and the output ...
4
votes
2answers
1k views

How to retrieve a list of the original variable names from a GLM call in R?

When using the glm function in R one can use functions like addNA or log inside the formula argument. Let's say we have a dataframe Data with 4 columns: Class, var1 which are factors and var2, var3 ...
4
votes
1answer
770 views

Auto.arima() function does not result in white noise. How else should I go about modeling data

Here is the plot of the initial data (after performing a log transformation). It is evident there is both a linear trend as well as a seasonal trend. I can address both of these by taking the first ...
4
votes
1answer
1k views

Detecting outliers in zero inflated and overdispersed count data

I want to thank you in advance for your consideration of my problem. I have what I naively thought to be a fairly straight forward problem that involves outlier detection for many different sets of ...
3
votes
2answers
5k views

Nonlinear Least Squares in R - Levenberg Marquardt to Fit Heligman Pollard Model Parameters

I am attempting to reproduce the solutions of paper by Kostakis. In this paper an abridged mortality table is expanded to a complete life table using de Heligman-Pollard model. The model has 8 ...
3
votes
3answers
5k views

How to estimate the best fitting function to a scatter plot in R?

I have scatterplot of two variables, for instance this: x<-c(0.108,0.111,0.113,0.116,0.118,0.121,0.123,0.126,0.128,0.131,0.133,0.136) y<-c(-6.908,-6.620,-5.681,-5.165,-4.690,-4.646,-3.979,-3....
3
votes
1answer
122 views

How to fit 2-D function if some of the data points are NaNs?

I am trying to fit a 2-D surface to a data. More specifically, I want to find a function which maps pixel coordinate to wavelength coordinate, just as FITCOORDS in IRAF does. As an example, I want to ...
3
votes
1answer
14k views

How can I do a least squares fit in python, using data that is only an upper limit?

I am trying to perform a least squares fit in python to a known function with three variables. I am able to complete this task for randomly generated data with errors, but the actual data that I need ...
3
votes
1answer
3k views

What fitting algorithm does Mathematica use in NonlinearModelFit[]?

I need to know the algorithm(s) it uses, because I have to write my own program. Levenberg-Marquardt doesn't really do the same. Is there like a list of algorithms, from which Mathematica chooses what ...
3
votes
1answer
518 views

Advantage of fit_generator() in keras

I was wondering if the fit_generator() in keras has any advantage in respect to memory usage over using the usual fit() method with the same batch_size as the generator yields. I've seen some examples ...
3
votes
1answer
1k views

Active Shape Models' fitting procedure doesn't converge with Statistical Model fitting function

I followed the Active Shape Models approach described by Tim Cootes in textbook and original paper. So far everything went well (Procrustes Analysis, Principal Component Analysis, preprocessing of ...
3
votes
1answer
109 views

Wrong Fit using nls function

When I try to fit an exponential decay and my x axis has decimal number, the fit is never correct. Here's my data below: exp.decay = data.frame(time,counts) time counts 1 0.4 4458 2 0.6 ...
3
votes
1answer
2k views

Difference between Proc univarite and Proc severity for fitting continuous (positive support) distribution

My goal is to fit a data to any distribution which has positive support. (weibull(2p), gamma(2p), pareto(2p), lognormal (2p),exponential(1P)). First attempt,i used proc univariate.This is my code ...
3
votes
1answer
578 views

How to draw fitted graph and actual graph of gamma distribution in one plot?

Step.1. Load the package needed. library(ggplot2) library(MASS) Step.2. Generate 10,000 numbers fitted to gamma distribution. x <- round(rgamma(100000,shape = 2,rate = 0.2),1) x <- x[which(x&...
3
votes
1answer
518 views

Is it possible to combine multiple partially fit estimators in sklearn?

I have a lot of data and I want to parallelize estimator fitting by splitting up my data and fitting multiple estimators running in multiple threads, or multiple machines. Some estimators provide a ...
3
votes
1answer
88 views

Error in `freeParam` in fitting of normal copula [R]

I am using R version 3.3.2 and the package copula version 0.999-15 to evaluate the fitting of the normal copula to my data. My data and code are: Data: https://www.dropbox.com/s/tdg8bfzmy4nd1dd/jumps....
3
votes
1answer
671 views

Fitting Parametric Curves in Python

I have experimental data of the form (X,Y) and a theoretical model of the form (x(t;*params),y(t;*params)) where t is a physical (but unobservable) variable, and *params are the parameters that I want ...
3
votes
1answer
1k views

Fit gaussian integral function to data

I have a problem with finding a least-square-fit for a set of given data. I know the data follows a function witch is a convolution of a gaussian and a rectangle (x-ray through a broad slit). What I ...
2
votes
1answer
2k views

Fit Quadrilateral (Tetragon) to a blob

After applying different filtering and segmentation techniques, I end up with an image like this: I have access to some contours detection functions that return a list of points on the edge of that ...
2
votes
4answers
5k views

uniform distribution fitting in matlab

I have a data set and would like to fit them to uniform distribution and calculate goodness of fit with Matlab. However, I found that uniform is not included in function 'fitdist'. Is there any method ...
2
votes
2answers
159 views

Java: How to draw images on the smallest possible surface?

Let's say I have 256 images with an average size of 70x150 (So, size if variable). And I have a Graphic-instance (Created from a BufferedImage with a given size) on which I want to draw the images. ...
2
votes
1answer
56 views

Plotting estimates using ggplot2 & facet_wrap WITHOUT re-fitting models

I am pretty new to ggplot2 and am looking to produce a figure with multiple scatter plots with their respective regression estimates. However I am using non-standard regression approaches (e.g ...
2
votes
1answer
630 views

Fitting a lognormal or poisson distribution

I have a vector of 1096 numbers, the daily average concentration of NOx measured in 3 years in a measurement station. You can observe the type of distribution in the image: I used these commands to ...
2
votes
2answers
965 views

R best fit of 45 degree line

(i know it must be incredibely easy, but i'm strugling with it in R:) i have dataset of x and y values saved in X and Y vectors. I know that plot of the data should follow exactly -45 degree line (...
2
votes
2answers
252 views

Find local minima/maxima and and use only this range for plotting

Below I have some data. Please paste into a text file as CSV, as I couldn't figure out how to export it as vectors :) Anyway, when scatterplotted you'll notice there's a maximum. How can I make a fit ...
2
votes
1answer
864 views

Local minimum at initial point when fitting gaussian with `lsqcurvefit`

I am writing MATLAB code with the intention to do some fittings. I simulated a plot using a second-order Gaussian (see my code below) and tried fitting using the lsqcurvefit function. Unfortunately, ...
2
votes
1answer
52 views

Fitting data with a strange function in python

I am fitting data with a strange function,I have to solve a equation to get one term. there is the code: import numpy as np import matplotlib.pyplot as plt from scipy.optimize import fsolve import ...
2
votes
1answer
316 views

why curve_fit does not converge for a beta function fit?

I have a small problem with my Python code when I try to fit a beta function to a few points. The problem is that either the solution does not converge (and the result coefficients are nans), or it ...
2
votes
1answer
760 views

Fitting ODE in R, with the use of the FME package

I'm trying to fit an ODE model to some data and solve for the values of the parameters in the model. I know there is a package called FME in R which is designed to solve this kind of problem. However,...
2
votes
1answer
293 views

Fitting a two-layer model to wind profile data in python

I'm trying to fit a model to my dataset of wind profiles, i.e. wind speed values u(z) at different altitudes z. The model consists of two parts, which I for now simplified to: u(z) = ust/k * ln(z/...
2
votes
2answers
633 views

Fitting time series with Fourier components: estimating Fourier series coefficients

Problem: I have a set of measurements (time, measurement, error) that exhibit periodic variations and I want to fit them with a Fourier series of the form where A0 is the mean value of my ...
2
votes
1answer
1k views

How to get measures of model fit (AIC, F-statistics) in zelig for multiply imputed data?

Following up on an earlier post, I am interested in learning how to get the usual measures of the relative quality of a statistical model in zelig for regression using multiply imputed data (created ...
2
votes
1answer
628 views

Fitted value iteration algorithm of Markov Reinforcement Learning

In Andrew Ng's fitted value iteration algorithm, which I gave the detail steps as below, it will try to find the best action of one state s(i) in step 3. when the agent was in s(i), we execute the ...
2
votes
3answers
93 views

Modular (pythonic) way for fitting combined parameters of a composite function

My question is about fitting parameters of a complicated model composed of different parametric functions. More precisely, I want to describe a complicated experiment. The experiment produces a one-...
2
votes
2answers
780 views

nonlinear curve fitting in python with two variables

I am trying to define a function that fits input x and y data of the form: def nlvh(x,y, xi, yi, H,C): return ((H-xi*C)/8.314)*((1/xi) - x) + (C/8.314)*np.log((1/x)/xi) + np.log(yi) The x and y ...
2
votes
0answers
102 views

Rolling window with Copulas

I would like to apply a rolling window to fit a student t Copula and then to do a forecast based on the results from the fitting process. I already tried it with a for loop, but it always state errors ...
2
votes
1answer
173 views

Deviance loss scores on the training data don't match clf.train_score_

TL;DR: I'm trying to understand the meaning of the train_score_ attribute of a GradientBoostingClassifier, and specifically why it doesn't match my following attempt to calculate it directly: ...
2
votes
1answer
121 views

How to implement automatic model determination and two state model fitting in python?

Currently, I've been doing model fitting in Prism manually for all my data. It's quite tedious and time consuming. I wonder if there is any way to improve the efficiency in data analysis. I'm familiar ...