# pylab subplot bounds altered when overlaying image

I'm trying to stick an image on top of some simple line plots which are arranged using the subplot() function of pylab. However when I call imshow it appears that the bounds of the subplot are altered and I am unable to change these bounds even using the set_position function.

Basically, I would like the top subplot to be the same width as the bottom in this image.

I have tried turning off autoscale as per this post and I get no difference.

Here's my source:

import pylab as pl

#Plotting results
F=pl.figure()

#First plot the unzoomed plot
ax1=pl.subplot(211)
ax2=pl.subplot(212)

#Not relevant to problem... ax1.plot() & ax2.plot() commands
for bl in range(len(bondLengths)):
ls=styles[bl]
lw=widths[bl]
for cf in range(len(chgcarfiles)):
c=colors[cf]
avgi=avgIBLs[cf][bl]
L=len(avgi)
ax1.plot([bondLengths[bl]*(x+0.5)/L for x in range(-1,L/2,1)],avgi[len(avgi)/2-1:],c=c,ls=ls,lw=lw)
ax2.plot([bondLengths[bl]*(x+0.5)/L for x in range(-1,L/2,1)],avgi[len(avgi)/2-1:],c=c,ls=ls,lw=lw)

ax1.set_xlim([0,2.5])
ax1.set_ylim([0.5,4.9])
ax2.set_xlim([0,1.2])
ax2.set_ylim([0.88,0.96])

#Load up & insert an image
ax1.autoscale(False)
ax1.imshow(slice,extent=[0.05,0.75,3.4,4.1])

pl.figtext(0.45,0.03,r"Distance ($\AA$)")
pl.figtext(0.05,0.65,r"Partial Charge Density ($\rho / rho_{avg}$)",rotation='vertical')

pl.show()

-

Just specify aspect='auto' to imshow.

By default, imshow will set the aspect ratio of the axes to 1 (or a different number if you specify a scalar to the aspect kwarg in imshow.

E.g.

import matplotlib.pyplot as plt
import numpy as np

fig, axes = plt.subplots(nrows=2)

for ax in axes:
ax.plot(np.random.random(100))

axes[1].autoscale(False)
imdata = np.random.random((10,10))
axes[1].imshow(imdata, aspect='auto', extent=[5, 20, 0.3, 0.8])

plt.show()


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Of course its the aspect ratio <face palm> I think that is the one property I didn't check. Its always the last one you think of. Thanks for the help. –  Adam Cadien Apr 24 '12 at 2:32

You can create anonther axe on top of ax1:

import pylab as pl

F=pl.figure()

ax1=pl.subplot(211)
ax2=pl.subplot(212)

ax1.plot(pl.randn(100))
ax2.plot(pl.randn(100))

img = pl.randn(100, 100)
ax3 = pl.axes([0.2, 0.65, 0.2, 0.2])
ax3.imshow(img)

pl.show()


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It's annoying having to reset all the properties for the new axes, otherwise this is a great work around. Thanks for the help. –  Adam Cadien Apr 24 '12 at 2:06