我有一些数据,y
与x
,我希望使用三次样条线以更精细的分辨率xx
进行插值。
这是我的数据集:
import numpy as np
print np.version.version
import scipy
print scipy.version.version
1.9.2
0.15.1
x = np.array([0.5372973, 0.5382103, 0.5392305, 0.5402197, 0.5412042, 0.54221, 0.543209,
0.5442277, 0.5442277, 0.5452125, 0.546217, 0.5472153, 0.5482086,
0.5492241, 0.5502117, 0.5512249, 0.5522136, 0.5532056, 0.5532056,
0.5542281, 0.5552039, 0.5562125, 0.5567836])
y = np.array([0.01, 0.03108, 0.08981, 0.18362, 0.32167, 0.50941, 0.72415, 0.90698,
0.9071, 0.97955, 0.99802, 1., 0.97863, 0.9323, 0.85344, 0.72936,
0.56413, 0.36997, 0.36957, 0.17623, 0.05922, 0.0163, 0.01, ])
xx = np.array([0.5372981, 0.5374106, 0.5375231, 0.5376356, 0.5377481, 0.5378606,
0.5379731, 0.5380856, 0.5381981, 0.5383106, 0.5384231, 0.5385356,
0.5386481, 0.5387606, 0.5388731, 0.5389856, 0.5390981, 0.5392106,
0.5393231, 0.5394356, 0.5395481, 0.5396606, 0.5397731, 0.5398856,
0.5399981, 0.5401106, 0.5402231, 0.5403356, 0.5404481, 0.5405606,
0.5406731, 0.5407856, 0.5408981, 0.5410106, 0.5411231, 0.5412356,
0.5413481, 0.5414606, 0.5415731, 0.5416856, 0.5417981, 0.5419106,
0.5420231, 0.5421356, 0.5422481, 0.5423606, 0.5424731, 0.5425856,
0.5426981, 0.5428106, 0.5429231, 0.5430356, 0.5431481, 0.5432606,
0.5433731, 0.5434856, 0.5435981, 0.5437106, 0.5438231, 0.5439356,
0.5440481, 0.5441606, 0.5442731, 0.5443856, 0.5444981, 0.5446106,
0.5447231, 0.5448356, 0.5449481, 0.5450606, 0.5451731, 0.5452856,
0.5453981, 0.5455106, 0.5456231, 0.5457356, 0.5458481, 0.5459606,
0.5460731, 0.5461856, 0.5462981, 0.5464106, 0.5465231, 0.5466356,
0.5467481, 0.5468606, 0.5469731, 0.5470856, 0.5471981, 0.5473106,
0.5474231, 0.5475356, 0.5476481, 0.5477606, 0.5478731, 0.5479856,
0.5480981, 0.5482106, 0.5483231, 0.5484356, 0.5485481, 0.5486606,
0.5487731, 0.5488856, 0.5489981, 0.5491106, 0.5492231, 0.5493356,
0.5494481, 0.5495606, 0.5496731, 0.5497856, 0.5498981, 0.5500106,
0.5501231, 0.5502356, 0.5503481, 0.5504606, 0.5505731, 0.5506856,
0.5507981, 0.5509106, 0.5510231, 0.5511356, 0.5512481, 0.5513606,
0.5514731, 0.5515856, 0.5516981, 0.5518106, 0.5519231, 0.5520356,
0.5521481, 0.5522606, 0.5523731, 0.5524856, 0.5525981, 0.5527106,
0.5528231, 0.5529356, 0.5530481, 0.5531606, 0.5532731, 0.5533856,
0.5534981, 0.5536106, 0.5537231, 0.5538356, 0.5539481, 0.5540606,
0.5541731, 0.5542856, 0.5543981, 0.5545106, 0.5546231, 0.5547356,
0.5548481, 0.5549606, 0.5550731, 0.5551856, 0.5552981, 0.5554106,
0.5555231, 0.5556356, 0.5557481, 0.5558606, 0.5559731, 0.5560856,
0.5561981, 0.5563106, 0.5564231, 0.5565356, 0.5566481, 0.5567606])
我正在尝试使用scipy InterpolatedUnivariateSpline
方法,使用三阶样条线k=3
进行插值,并外推为零ext='zeros'
:
import scipy.interpolate as interp
yspline = interp.InterpolatedUnivariateSpline(x,y, k=3, ext='zeros')
yvals = yspline(xx)
import matplotlib.pyplot as plt
fig = plt.figure()
ax = fig.add_subplot(111)
ax.plot(x, y, 'ko', label='Values')
ax.plot(xx, yvals, 'b-.', lw=2, label='Spline')
plt.xlim([min(x), max(x)])
但是,正如您在此图片中看到的,我的Spline返回NaN
值:(
有原因吗?我很确定我的x值都在增加,所以我很难过为什么会发生这种情况。我有许多其他数据集,我使用这种方法,它只适用于这个特定的数据集。
非常感谢任何帮助。 谢谢你的阅读。
解决方案是我有x
个重复值,值不同y
!
答案 0 :(得分:1)
对于此插值,您应该将scipy.interpolate.interp1d
与参数kind='cubic'
一起使用(请参阅related SO question)
我还没有找到一个用例InterpolatedUnivariateSpline
可以在实践中使用(或者我可能只是不了解它的用途)。我得到你的代码,
因此插值工作但显示极强的振荡,使其无法使用,这通常是我过去使用此插值方法得到的结果。使用较低阶样条(例如k=1
)可以更好地工作,但是你会失去立方插值的优势。
答案 1 :(得分:-1)
我也遇到了InterpolatedUnivariateSpline
返回NaN值的问题。但在我的情况下,原因不是在x
数组中有重复项,而是x
中的值减少,而docs表示值“必须为增加”。
因此,在这种情况下,必须提供反向的x
和y
,而不是原始的x[::-1]
和y[::-1]
。