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I am trying modify code from this question to use in Python 3.3 (I installed Pillow, scipy and NumPy):

import struct
from PIL import Image
import scipy
import scipy.misc
import scipy.cluster

NUM_CLUSTERS = 5
print ('reading image')
im = Image.open("image.jpg")
im = im.resize((150, 150))      # optional, to reduce time
ar = scipy.misc.fromimage(im)
shape = ar.shape
ar = ar.reshape(scipy.product(shape[:2]), shape[2])

print ('finding clusters')
codes, dist = scipy.cluster.vq.kmeans(ar, NUM_CLUSTERS)
print ('cluster centres:\n'), codes

vecs, dist = scipy.cluster.vq.vq(ar, codes)         # assign codes
counts, bins = scipy.histogram(vecs, len(codes))    # count occurrences

index_max = scipy.argmax(counts)                    # find most frequent
peak = codes[index_max]
colour = ''.join(chr(c) for c in peak).encode('hex')
print ('most frequent is %s (#%s)') % (peak, colour)

But I get this error:

Traceback (most recent call last):   File
"C:/Users/User/Desktop/pyt33_pic.py", line 24, in <module>
  colour = ''.join(chr(c) for c in peak).encode('hex') LookupError: unknown encoding: hex

What am I doing wrong?

share|improve this question
    
print is a function in Python 3. –  eryksun May 23 '14 at 23:59

1 Answer 1

up vote 0 down vote accepted

In 2.x the codec "hex_codec" is aliased to "hex". This alias is restored in 3.4. A bigger change is that a buffer to bytes encoding requires using codecs.encode in Python 3. Additionally, for string formatting you'll need to decode the result. For example:

>>> peak
array([131, 128, 124], dtype=uint8)

>>> codecs.encode(peak, 'hex_codec').decode('ascii')
'83807c'

Alternatively you can use the format function to individually convert the numbers to hex:

>>> ''.join(format(c, '02x') for c in peak)
'83807c'
share|improve this answer
    
Thank you! Your explanation really helped me. –  Natasha May 24 '14 at 0:29
    
The first example uses peak as a buffer, since it's an array of bytes (i.e. np.uint8). Otherwise, assuming all elements are in range(256), you'd have to use something like codecs.encode(bytes(c for c in peak), 'hex_codec'). Using format is simpler. –  eryksun May 24 '14 at 0:49

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