Refers to a general estimation technique that selects the parameter value to minimize the squared difference between two quantities, such as the observed value of a variable, and the expected value of that observation conditioned on the parameter value.

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464 views

Optimizing repetitive estimation (currently a loop) in MATLAB

I've found myself needing to do a least-squares (or similar matrix-based operation) for every pixel in an image. Every pixel has a set of numbers associated with it, and so it can be arranged as a ...
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3answers
4k views

Weighted least square - fit a plane to 3D point set

I am fitting a plane to a 3D point set with the least square method. I already have algorithm to do that, but I want to modify it to use weighted least square. Meaning I have a weight for each point ...
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4answers
1k views

Fit simulated and experimental data points with Python

I have written some code which performs a Monte Carlo simulation and produces curves of signal intensity versus time. The shape of such a curve depends on various parameters, two of which my ...
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2answers
2k views

How to do linear regression, taking errorbars into account?

I am doing a computer simulation for some physical system of finite size, and after this I am doing extrapolation to the infinity (Thermodynamic limit). Some theory says that data should scale ...
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2answers
1k views

Least Squares Minimization Complex Numbers

I've been using my Matlab, but it's my vision to eventually switch over to doing all of my analysis in Python since it is an actual programming language and a few other reasons. The recent problem ...
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2answers
4k views

Constrained least-squares estimation in Python

I'm trying to perform a constrained least-squares estimation using Scipy such that all of the coefficients are in the range (0,1) and sum to 1 (this functionality is implemented in Matlab's LSQLIN ...
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2answers
2k views

pseudo inverse of sparse matrix in python

I am working with data from neuroimaging and because of the large amount of data, I would like to use sparse matrices for my code (scipy.sparse.lil_matrix or csr_matrix). In particular, I will need ...
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5answers
759 views

Rating the straightness of a line

I have a data set that defines a set of points on a 2-dimensional Cartesian plane. Theoretically, those points should form a line, but that line may be perfectly horizontal, perfectly vertical, and ...
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2answers
1k views

Python / Scipy - implementing optimize.curve_fit 's sigma into optimize.leastsq

I am fitting data points using a logistic model. As I sometimes have data with a ydata error, I first used curve_fit and its sigma argument to include my individual standard deviations in the fit. ...
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2answers
670 views

R script - NLS not working

I have 5 (x,y) data points and I'm trying to find a best fit solution consisting of two lines which intersect at a point (x0,y0), and which follow these equations: y1 = (m1)(x1 - x0) + y0 y2 = ...
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5answers
1k views

numpy: code to update least squares with more observations

I am looking for a numpy-based implementation of ordinary least squares that would allow the fit to be updated with more observations. Something along the lines of Applied Statistics algorithm AS 274 ...
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6answers
4k views

Finding translation and scale on two sets of points to get least square error in their distance?

I have two sets of 3D points (original and reconstructed) and correspondence information about pairs - which point from one set represents the second one. I need to find 3D translation and scaling ...
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2answers
2k views

matlab - two variables least squares function approximation

I have a function of two variables of the type: y = f(x1,x2) to be approximated and I would like to use least squares method to do it. Polyval and Polyfit work with two-dimensional function, here I ...
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1answer
170 views

Minimize objective function using limfit.minimize in Python

I am having a problem with package lmfit.minimize minimization procedure. Actually, I could not create a correct objective function for my problem. Problem definition My function: yn = a_11*x1**2 + ...
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3answers
844 views

Sine wave least squares curve fitting possible (using GSL)?

Is it possible to fit an A*sin(B*t+C) function with GSL or a similar library? i want to get the A and C parameter of a sine wave present in 4096 samples (8bit) and can provide an good approximation ...
3
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1answer
128 views

How do I associate which singular value corresponds to what entry?

I am using the numpy linalg routine lstsq to solve system of equations. My A matrix is size of (11046, 504) while my B matrix is size (11046, 1), and the rank determined is 249, so about half of the ...
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1answer
1k views

matlab plotting linear regression on a 3D scatter plot

I am new to matlab and have just started on the UBC AI course. I used the least squares algorithm to generate the weights for the data-set I'm working with and the weights ive generated are [ 0.3400 ...
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1answer
1k views

Eigen library - least squares

I want to use a least squares problem with the use of Eigen library. My options are 2, sysAAA.jacobiSvd( Eigen::ComputeThinU | Eigen::ComputeThinV ).solve( sysBBB ) ...
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1answer
2k views

python scipy.optimize.leastsq jacobian estimation

I am using frequently scipy.optimize.leastsq() for my Ph.D thesis however I have no idea how can I get the estimate of a jacobian from the data that leastsq() returns. I need to know the estimate of a ...
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2answers
185 views

Get residuals from least squares fit using less memory

I'm fitting least squares models with the same predictor and a large number of responses, and all I need are the residuals. The qr.resid function is the simplest I've found to do this, but it takes ...
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votes
1answer
51 views

How to weight station to Order Least Squares in python?

I have 10 climate stations data about precipitation and it's DEM. I had done a linear regression follow: DEM = [200, 300, 400, 500, 600, 300, 200, 100, 50, 200] Prep = [50, 95, 50, 59, 99, 50, 23, ...
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1answer
395 views

How to find parameters of unknown system using observations by least square

I want to estimate the parameters of an AR model with Least square an Gaussian method. If the system is assumed to be represented by an AR model of order p, , then the output is given as where is a ...
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1answer
7k views

Non linear function parameter estimation - matlab, lsqnonlin, fzero

I'm having difficulty with a fitting problem. From the errors that I get I imagine that the boundaries are not defined correctly and I haven't managed to find a solution. Any help would be very much ...
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1answer
2k views

How to calculate residuals for two curves (matrixes) of different size?

I've got a theoretical curve which was calculated numerically and an experimental curve (better to say a massive of experimental points). I need to calculate the residuals between these two curves to ...
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3answers
4k views

confidence interval with leastsq fit in scipy python

How to calculate confidence interval for the least square fit (scipy.optimize.leastsq) in python?
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2answers
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Python statsmodels OLS: how to save learned model to file

I am trying to learn an ordinary least squares model using Python's statsmodels library, as described here. sm.OLS.fit() returns the learned model. Is there a way to save it to the file and reload ...
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3answers
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Fit a circle or a spline into a bunch of 3D Points

I have some 3D Points that roughly, but clearly form a segment of a circle. I now have to determine the circle that fits best all the points. I think there has to be some sort of least squares best ...
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4answers
571 views

backslash operator in MATLAB for a vector

In MATLAB let us type A = [0.1195952380, 0.2552619050, 0.3235000000,... 0.1289285710, 0.6675476190, -0.0770000000,... 0.1973809520]; and b0 = 1.7250238100; If I use backslash operator ...
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2answers
335 views

How to properly stop iteration in minimization in Python?

I am posting this question because, my code is not stopping iteration at the right place. Could anyone make me sure what is wrong? Everything is working properly (as I always think which is mistake ...
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2answers
275 views

High performance calculation of least squares difference from all possible combinations (n lists)

I'm looking for a very efficient way to calculate all possible combinations from n lists and then keep the combination with the smallest least squares difference. I already have a code that does it, ...
2
votes
1answer
239 views

MATLAB curve fitting - least squares method - wrong “fit” using high degrees

Anyone here that could help me with the following problem? The following code calculates the best polynomial fit to a given data-set, that is; a polynomial of a specified degree. Unfortunately, ...
2
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3answers
46 views

MATLAB polynomial fit selective powers

I have 2 vectors x and y to which I want to fit a polynomial as y = f(x) in MATLAB. I could have used polyfit. However, I want to fit only selective power terms of the polynomial. For example, y = ...
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1answer
94 views

least square estimation in python using numpy and scipy

Both scipy and numpy has least square estimation but I got slightly confused after reading the documentation. So, my problem is classical regression where I am trying to find the best matrix ...
2
votes
1answer
1k views

python optimize.leastsq: fitting a circle to 3d set of points

I am trying to use circle fitting code for 3D data set. I have modified it for 3D points just adding z-coordinate where necessary. My modification works fine for one set of points and works bad for ...
2
votes
1answer
2k views

How do I include errors for my data in the lmfit least squares miniimization, and what is this error for conf_interval2d function in lmfit?

I am new to python, and trying to use the lmfit package to check my own calculations, however I am unsure (1) as to how to include the errors for data (sig) for the following test (and 2) of an error ...
2
votes
1answer
1k views

Logarithmic Least Square Method on Matlab

How can I use this function y=(a*x)./(b+x) to approximate this data x = [1.5 4 5 8 12 16 17], y = [1.6 2.6 2.4 3.2 3.4 3.6 3.4] with the least square method using matlab? I used logarithms and got ...
2
votes
1answer
2k views

Fitting a 3d points of an arc to a circle (regression in Python)

I am relatively new to python. My problem is as follows I have a set of noisy data points (x,y,z) on an arbitrary plane that forms a 2d arc. I would like a best fit circle through these points and ...
2
votes
1answer
590 views

R script - nls function

Can anyone give me a good explanation for what the parameter "algorithm" does in the nls function in R? Also, how does the formula work? I know it uses a tilda, but I can't really find a ...
2
votes
1answer
78 views

least squares with seasonal component in matlab

I was reading a paper which looked at investigating trends in monthly wind speed data for the past 20 years or so. The paper uses a number of different statistical approaches, which I am trying to ...
2
votes
1answer
2k views

MATLAB: Piecewise function in curve fitting toolbox using fittype

Ignore the red fitted curve first. I'd like to get a curve to the blue datapoints. I know the first part (up to y~200 in this case) is linear, then a different curve (combination of two logarithmic ...
2
votes
3answers
569 views

User-specified function in mpfit

I have been an IDL programmer for sometime now and looking to transition to Python. I find that MPFIT's IDL version exists in Python. However, I am looking for MPFITFUN version in Python ...
2
votes
1answer
4k views

Compute least squares using java

I am trying to find a java code to compute the least squares solution (x) in the Ax=b equation. Suppose that A = [1 0 0;1 0 0]; b = [1; 2]; x = A\b returns the x = 1.5000 0 ...
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2answers
2k views

plot 3D line, matlab

My question is pretty standard but can't find a solution of that. I have points=[x,y,z] and want to plot best fit line. I am using function given below (and Thanx Smith) % LS3DLINE.M ...
2
votes
1answer
426 views

Implementing additional constraints in R's nnls

I am using the R interface to the Lawson-Hanson NNLS implementation of an algorithm for non-negative linear least squares that solves ||A x - b||^2 with the constraint that all elements of vector x ≥ ...
2
votes
2answers
81 views

scipy.optimize.curve_fit raises a runtime error

This is the first time I'm using curve_fit and I haven't found examples that would match my problem. My question is, am I using curve_fit correctly data-format-wise ? If yes then my problem is ...
2
votes
2answers
122 views

linalg.lstsq with fixed slope?

Suppose that we have two arrays of data: x = [1,2,3] y = [2,4,6] Obviously a linear fit would return a slope of 2 and an intercept of 0 and, of course, both routines in Numpy linalg.lstsq and polyfit ...
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2answers
625 views

Ceres Solver: unable to disable logging (google glog)

I'm using ceres solver for a project, and when I call the ceres::Solve function, the library starts to output lines such as this one: iterative_schur_complement_solver.cc:88 No parameter blocks left ...
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1answer
878 views

MATLAB implementation for Flexible Least Squares (FLS) regression

Is there a MATLAB implementation for Flexible Least Squares (FLS) regression1? I am looking for a decent (well, the least painful) way to handle regression with time-varying coefficients. All ideas ...
2
votes
1answer
248 views

R script - least squares solution to the following [duplicate]

Possible Duplicate: Finding where two linear fits intersect in R Given some points on a graph (usually only about 6 or 7 points), I need to find a best fit solution where the solution ...
2
votes
1answer
1k views

Run a function in between each iteration of fsolve in MATLAB

I am using fsolve to minimise an energy function in MATLAB. The algorithm I am using fits a grid to noisy lattice data, with costs for the distances of the grid from each data point. The objective ...