Python - calculating trendlines with errors

為{幸葍}努か 提交于 2020-01-10 07:43:07

问题


So I've got some data stored as two lists, and plotted them using

plot(datasetx, datasety)

Then I set a trendline

trend = polyfit(datasetx, datasety)
trendx = []
trendy = []

for a in range(datasetx[0], (datasetx[-1]+1)):
    trendx.append(a)
    trendy.append(trend[0]*a**2 + trend[1]*a + trend[2])

plot(trendx, trendy)

But I have a third list of data, which is the error in the original datasety. I'm fine with plotting the errorbars, but what I don't know is using this, how to find the error in the coefficients of the polynomial trendline.

So say my trendline came out to be 5x^2 + 3x + 4 = y, there needs to be some sort of error on the 5, 3 and 4 values.

Is there a tool using NumPy that will calculate this for me?


回答1:


I think you can use the function curve_fit of scipy.optimize (documentation). A basic example of the usage:

import numpy as np
from scipy.optimize import curve_fit

def func(x, a, b, c):
    return a*x**2 + b*x + c

x = np.linspace(0,4,50)
y = func(x, 5, 3, 4)
yn = y + 0.2*np.random.normal(size=len(x))

popt, pcov = curve_fit(func, x, yn)

Following the documentation, pcov gives:

The estimated covariance of popt. The diagonals provide the variance of the parameter estimate.

So in this way you can calculate an error estimate on the coefficients. To have the standard deviation you can take the square root of the variance.

Now you have an error on the coefficients, but it is only based on the deviation between the ydata and the fit. In case you also want to account for an error on the ydata itself, the curve_fit function provides the sigma argument:

sigma : None or N-length sequence

If not None, it represents the standard-deviation of ydata. This vector, if given, will be used as weights in the least-squares problem.

A complete example:

import numpy as np
from scipy.optimize import curve_fit

def func(x, a, b, c):
    return a*x**2 + b*x + c

x = np.linspace(0,4,20)
y = func(x, 5, 3, 4)
# generate noisy ydata
yn = y + 0.2 * y * np.random.normal(size=len(x))
# generate error on ydata
y_sigma = 0.2 * y * np.random.normal(size=len(x))

popt, pcov = curve_fit(func, x, yn, sigma = y_sigma)

# plot
import matplotlib.pyplot as plt

fig = plt.figure()
ax = fig.add_subplot(111)
ax.errorbar(x, yn, yerr = y_sigma, fmt = 'o')
ax.plot(x, np.polyval(popt, x), '-')
ax.text(0.5, 100, r"a = {0:.3f} +/- {1:.3f}".format(popt[0], pcov[0,0]**0.5))
ax.text(0.5, 90, r"b = {0:.3f} +/- {1:.3f}".format(popt[1], pcov[1,1]**0.5))
ax.text(0.5, 80, r"c = {0:.3f} +/- {1:.3f}".format(popt[2], pcov[2,2]**0.5))
ax.grid()
plt.show()


Then something else, about using numpy arrays. One of the main advantages of using numpy is that you can avoid for loops because operations on arrays apply elementwise. So the for-loop in your example can also be done as following:

trendx = arange(datasetx[0], (datasetx[-1]+1))
trendy = trend[0]*trendx**2 + trend[1]*trendx + trend[2]

Where I use arange instead of range as it returns a numpy array instead of a list. In this case you can also use the numpy function polyval:

trendy = polyval(trend, trendx)



回答2:


I have not been able to find any way of getting the errors in the coefficients that is built in to numpy or python. I have a simple tool that I wrote based on Section 8.5 and 8.6 of John Taylor's An Introduction to Error Analysis. Maybe this will be sufficient for your task (note the default return is the variance, not the standard deviation). You can get large errors (as in the provided example) because of significant covariance.

def leastSquares(xMat, yMat):
'''
Purpose
-------
Perform least squares using the procedure outlined in 8.5 and 8.6 of Taylor, solving
matrix equation X a = Y

Examples
--------
>>> from scipy import matrix
>>> xMat = matrix([[  1,   5,  25],
                   [  1,   7,  49],
                   [  1,   9,  81],
                   [  1,  11, 121]])
>>> # matrix has rows of format [constant, x, x^2]
>>> yMat = matrix([[142],
                   [168],
                   [211],
                   [251]])
>>> a, varCoef, yRes = leastSquares(xMat, yMat)
>>> # a is a column matrix, holding the three coefficients a, b, c, corresponding to
>>> # the equation a + b*x + c*x^2

Returns
-------
a: matrix
    best fit coefficients
varCoef: matrix
    variance of derived coefficents
yRes: matrix
    y-residuals of fit 
'''
xMatSize = xMat.shape
numMeas = xMatSize[0]
numVars = xMatSize[1]

xxMat = xMat.T * xMat
xyMat = xMat.T * yMat
xxMatI = xxMat.I

aMat = xxMatI * xyMat
yAvgMat = xMat * aMat
yRes = yMat - yAvgMat

var = (yRes.T * yRes) / (numMeas - numVars)
varCoef = xxMatI.diagonal() * var[0, 0]

return aMat, varCoef, yRes


来源:https://stackoverflow.com/questions/7171356/python-calculating-trendlines-with-errors

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