Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm trying to plot a 2D image in Matplotlib (imported from a png) and rotate it by arbitrary angles. I want to create a simple animation showing the rotation of an object over time, but for now I'm just trying to rotate the image. I've tried several variations on the following code with no success:

import matplotlib.pyplot as plt
import matplotlib.transforms as tr
import matplotlib.cbook as cbook

image_file = cbook.get_sample_data('ada.png')
image = plt.imread(image_file)

imAx = plt.imshow(image)
rot = tr.Affine2D().rotate_deg(30)
imAx.set_transform(imAx.get_transform()+rot)

plt.axis('off') # clear x- and y-axes
plt.show()

I'm sure I'm missing something, but I haven't been able to figure it out from the matplotlib docs and examples.

Thanks!

share|improve this question

1 Answer 1

Take a loot at this code:

import scipy
from scipy import ndimage
import matplotlib.pyplot as plt
import numpy as np

lena = scipy.misc.lena()
lx, ly = lena.shape
# Copping
crop_lena = lena[lx/4:-lx/4, ly/4:-ly/4]
# up <-> down flip
flip_ud_lena = np.flipud(lena)
# rotation
rotate_lena = ndimage.rotate(lena, 45)
rotate_lena_noreshape = ndimage.rotate(lena, 45, reshape=False)

plt.figure(figsize=(12.5, 2.5))


plt.subplot(151)
plt.imshow(lena, cmap=plt.cm.gray)
plt.axis('off')
plt.subplot(152)
plt.imshow(crop_lena, cmap=plt.cm.gray)
plt.axis('off')
plt.subplot(153)
plt.imshow(flip_ud_lena, cmap=plt.cm.gray)
plt.axis('off')
plt.subplot(154)
plt.imshow(rotate_lena, cmap=plt.cm.gray)
plt.axis('off')
plt.subplot(155)
plt.imshow(rotate_lena_noreshape, cmap=plt.cm.gray)
plt.axis('off')

plt.subplots_adjust(wspace=0.02, hspace=0.3, top=1, bottom=0.1, left=0,
                    right=1)

plt.show()
share|improve this answer
    
Looks like ndimage.rotate() is what I was after. Thanks! –  user2844064 Oct 3 '13 at 20:21

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.