Welcome to OStack Knowledge Sharing Community for programmer and developer-Open, Learning and Share
Welcome To Ask or Share your Answers For Others

Categories

0 votes
857 views
in Technique[技术] by (71.8m points)

numpy - Python/Scipy 2D Interpolation (Non-uniform Data)

This is a follow-up question to my previous post: Python/Scipy Interpolation (map_coordinates)

Let's say I want to interpolate over a 2d rectangular area. My variable 'z' contains the data as shown below. Each column is at a constant value, however, each row of the array may be at a different value as shown in the comment below.

from scipy import interpolate
from numpy import array
import numpy as np
#                                               # 0.0000, 0.1750, 0.8170, 1.0000
z = array([[-2.2818,-2.2818,-0.9309,-0.9309],   # 0.0000, 0.0000, 0.0000, 0.0000
           [-2.2818,-2.2818,-0.9309,-0.9309],   # 0.2620, 0.2784, 0.3379, 0.3526
           [-1.4891,-1.4891,-0.5531,-0.5531],   # 0.6121, 0.6351, 0.7118, 0.7309
           [-1.4891,-1.4891,-0.5531,-0.5531]])  # 1.0000, 1.0000, 1.0000, 1.0000
# Rows, Columns = z.shape

cols = array([0.0000, 0.1750, 0.8170, 1.0000])
rows = array([0.0000, 0.2620, 0.6121, 1.0000])

sp = interpolate.RectBivariateSpline(rows, cols, z, kx=1, ky=1, s=0)

xi = np.array([0.00000, 0.26200, 0.27840, 0.33790, 0.35260, 0.61210, 0.63510,
               0.71180, 0.73090, 1.00000], dtype=np.float)
yi = np.array([0.000, 0.167, 0.815, 1.000], dtype=np.float)
print sp(xi, yi)

As another way of visualizing this, the array of values I KNOW would be:

rows = array([0.0000, 0.2620, 0.2784, 0.3379, 0.3526,
                      0.6121, 0.6351, 0.7118, 0.7309, 1.0000])
#          # 0.0000, 0.1750, 0.8170, 1.0000
z = array([[-2.2818,-2.2818,-0.9309,-0.9309],   # 0.0000
           [-2.2818,      ?,      ?,      ?],   # 0.2620,
           [      ?,-2.2818,      ?,      ?],   # 0.2784
           [      ?,      ?,-0.9309,      ?],   # 0.3379
           [      ?      ,?,      ?,-0.9309],   # 0.3526
           [-1.4891,      ?,      ?,      ?],   # 0.6121
           [      ?,-1.4891,      ?,      ?],   # 0.6351
           [      ?,      ?,-0.5531,      ?],   # 0.7118
           [      ?,      ?,      ?,-0.5531],   # 0.7309
           [-1.4891,-1.4891,-0.5531,-0.5531]])  # 1.0000

I do not know the '?' values, and they should be interpolated. I tried replacing them with None, but then get 'nan' for all of my results.

EDIT:

I think I need to use either 'griddata' or 'interp2'. griddata seems to produce the result I expect, but 'interp2' does not.

from scipy import interpolate
from numpy import array
import numpy as np

z = array([[-2.2818,-2.2818,-0.9309,-0.9309],
           [-2.2818,-2.2818,-0.9309,-0.9309],
           [-1.4891,-1.4891,-0.5531,-0.5531],
           [-1.4891,-1.4891,-0.5531,-0.5531]])

rows = array([0.0000, 0.0000, 0.0000, 0.0000,
              0.2620, 0.2784, 0.3379, 0.3526,
              0.6121, 0.6351, 0.7118, 0.7309,
              1.0000, 1.0000, 1.0000, 1.0000])

cols = array([0.0000, 0.1750, 0.8180, 1.0000,
              0.0000, 0.1750, 0.8180, 1.0000,
              0.0000, 0.1750, 0.8180, 1.0000,
              0.0000, 0.1750, 0.8180, 1.0000])

xi = array([0.0000, 0.2620, 0.2784, 0.3379, 0.3526, 0.6121, 0.6351, 0.7118,
               0.7309, 1.0000], dtype=np.float)
yi = array([0.000, 0.175, 0.818, 1.000], dtype=np.float)

GD = interpolate.griddata((rows, cols), z.ravel(),
                          (xi[None,:], yi[:,None]), method='linear')
I2 = interpolate.interp2d(rows, cols, z, kind='linear')

print GD.reshape(4, 10).T
print '
'
print I2(xi, yi).reshape(4, 10).T

import matplotlib.pyplot as plt
import numpy.ma as ma

plt.figure()
GD = interpolate.griddata((rows.ravel(), cols.ravel()), z.ravel(),
                          (xi[None,:], yi[:,None]), method='linear')
CS = plt.contour(xi,yi,GD,15,linewidths=0.5,colors='k')
CS = plt.contourf(xi,yi,GD,15,cmap=plt.cm.jet)
plt.colorbar()
plt.scatter(rows,cols,marker='o',c='b',s=5)

plt.figure()
I2 = I2(xi, yi)
CS = plt.contour(xi,yi,I2,15,linewidths=0.5,colors='k')
CS = plt.contourf(xi,yi,I2,15,cmap=plt.cm.jet)
plt.colorbar()
plt.scatter(rows,cols,marker='o',c='b',s=5)
plt.show()
See Question&Answers more detail:os

与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
Welcome To Ask or Share your Answers For Others

1 Answer

0 votes
by (71.8m points)

Looks like you got it.

In your upper code example and in your previous (linked) question you have structured data. Which can be interpolated using RectBivariateSpline or interp2d. This means you have data that can be described on a grid (all points on the grid have a known value). The grid doesn't necessarily have to have all the same dx and dy. (if all dx's and dy's were equal, you'd have a Regular Grid)

Now, your current question asks what to do if not all the points are known. This is known as unstructured data. All you have are a selection of points in a field. You can't necessarily construct rectangles where all vertices have known values. For this type of data, you can use (as you have) griddata, or a flavor of BivariateSpline.

Now which to choose?

The nearest analogy to the structured RectBivariateSpline is one of the unstructured BivariateSpline classes: SmoothBivariateSpline or LSQBivariateSpline. If you want to use splines to interpolate the data, go with these. this makes your function smooth and differentiable, but you can get a surface that swings outside Z.max() or Z.min().

Since you are setting ky=1 and kx=1 and are getting what I am pretty sure is just linear interpolation on the structured data, I'd personally just switch from the RectBivariateSpline spline scheme to the interp2d structured grid interpolation scheme. I know the documentation says it is for regular grids, but the example in the __doc__ itself is only structured, not regular.

I'd be curious if you found any significant differences between the methods if you do end up switching. Welcome to SciPy.


与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
Welcome to OStack Knowledge Sharing Community for programmer and developer-Open, Learning and Share
Click Here to Ask a Question

...