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I am using Python 2.5. Using the standard classes from Python, want to obtain image size. I've heard PIL (Python Image Library), but it requires to install the library.

How about obtaining image size without using any external library but just using only Python 2.5 classes?

Is it possible?

UPDATES want to support common image formats particularly JPG and PNG

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1  
Any suggestion what format of image you want to learn the size of? –  Larry Lustig Nov 7 '11 at 4:13
    
common image formats (PNG and JPG) –  eros Nov 7 '11 at 4:25
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6 Answers 6

Kurts answer needed to be slightly modified to work for me.

First, on ubuntu: sudo apt-get install python-imaging

Then:

from PIL import Image
im=Image.open(filepath)
im.size # (width,height) tuple

Check out the handbook for more info.

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Doesn't answer the question - "(without using external library)?" is specified in the title, and the question then clarifies with "I've heard PIL (Python Image Library), but it requires to install the library." –  nallar Jul 16 at 22:00
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Here's a python 3 script that returns a tuple containing an image height and width for .png, .gif and .jpeg without using any external libraries (ie what Kurt McKee referenced above). Should be relatively easy to transfer it to Python 2.

import struct
import imghdr

def get_image_size(fname):
    '''Determine the image type of fhandle and return its size.
    from draco'''
    fhandle = open(fname, 'rb')
    head = fhandle.read(24)
    if len(head) != 24:
        return
    if imghdr.what(fname) == 'png':
        check = struct.unpack('>i', head[4:8])[0]
        if check != 0x0d0a1a0a:
            return
        width, height = struct.unpack('>ii', head[16:24])
    elif imghdr.what(fname) == 'gif':
        width, height = struct.unpack('<HH', head[6:10])
    elif imghdr.what(fname) == 'jpeg':
        try:
            fhandle.seek(0) # Read 0xff next
            size = 2
            ftype = 0
            while not 0xc0 <= ftype <= 0xcf:
                fhandle.seek(size, 1)
                byte = fhandle.read(1)
                while ord(byte) == 0xff:
                    byte = fhandle.read(1)
                ftype = ord(byte)
                size = struct.unpack('>H', fhandle.read(2))[0] - 2
            # We are at a SOFn block
            fhandle.seek(1, 1)  # Skip `precision' byte.
            height, width = struct.unpack('>HH', fhandle.read(4))
        except Exception: #IGNORE:W0703
            return
    else:
        return
    return width, height
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Your code worked mostly like that in 2.7.3. I had to rewrite it because I had already a file like object. –  xZise Feb 12 at 22:12
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While it's possible to call open(filename, 'rb') and check through the binary image headers for the dimensions, it seems much more useful to install PIL and spend your time writing great new software! You gain greater file format support and the reliability that comes from widespread usage. From the PIL documentation, it appears that the code you would need to complete your task would be:

from PIL import Image
im = Image('filename.png')
print im.size # returns (width, height) tuple

As for writing code yourself, I'm not aware of a module in the Python standard library that will do what you want. You'll have to open() the image in binary mode and start decoding it yourself. You can read about the formats at:

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+1 for the file format documentation, but my direction is not using of external library just to get the image size of png & jpg image file. –  eros Nov 7 '11 at 6:22
3  
You need Image.open not just Image per tjb's answer. –  Ghopper21 Mar 3 '13 at 15:05
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Here's a way to get dimensions of a png file without needing a third-party module. From http://coreygoldberg.blogspot.com/2013/01/python-verify-png-file-and-get-image.html

import struct

def get_image_info(data):
    if is_png(data):
        w, h = struct.unpack('>LL', data[16:24])
        width = int(w)
        height = int(h)
    else:
        raise Exception('not a png image')
    return width, height

def is_png(data):
    return (data[:8] == '\211PNG\r\n\032\n'and (data[12:16] == 'IHDR'))

if __name__ == '__main__':
    with open('foo.png', 'rb') as f:
        data = f.read()

    print is_png(data)
    print get_image_info(data)

When you run this, it will return:

True
(x, y)

And another example that includes handling of JPEGs as well: http://markasread.net/post/17551554979/get-image-size-info-using-pure-python-code

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Beautiful, this works fine. Thank you. –  sleepycal Feb 6 at 16:27
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If you happen to have ImageMagick installed, then you can use 'identify'. For example, you can call it like this:

path = "//folder/image.jpg"
dim = subprocess.Popen(["identify","-format","\"%w,%h\"",path], stdout=subprocess.PIPE).communicate()[0]
(width, height) = [ int(x) for x in re.sub('[\t\r\n"]', '', dim).split(',') ]
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That code does accomplish 2 things:

  • Getting the image dimension

  • Find the real EOF of a jpg file

Well when googling I was more interest in the later one. The task was to cut out a jpg file from a datastream. Since I I didn't find any way to use Pythons 'image' to a way to get the EOF of so jpg-File I made up this.

Interesting things /changes/notes in this sample:

  • extending the normal Python file class with the method uInt16 making source code better readable and maintainable. Messing around with struct.unpack() quickly makes code to look ugly

  • Replaced read over'uninteresting' areas/chunk with seek

  • Incase you just like to get the dimensions you may remove the line:

    hasChunk = ord(byte) not in range( 0xD0, 0xDA) + [0x00] 
    

    ->since that only get's important when reading over the image data chunk and comment in

    #break
    

    to stop reading as soon as the dimension were found. ...but smile what I'm telling - you're the Coder ;)

      import struct
      import io,os
    
      class myFile(file):
    
          def byte( self ):
               return file.read( self,  1);
    
          def uInt16( self ):
               tmp = file.read( self,  2)
               return struct.unpack( ">H", tmp )[0];
    
      jpeg = myFile('grafx_ui.s00_\\08521678_Unknown.jpg', 'rb')
    
      try:
          height = -1
          width  = -1
          EOI    = -1
    
          type_check = jpeg.read(2)
          if type_check != b'\xff\xd8':
            print("Not a JPG")
    
          else:
    
            byte = jpeg.byte()
    
            while byte != b"":
    
              while byte != b'\xff': byte = jpeg.byte()
              while byte == b'\xff': byte = jpeg.byte()
    
    
              # FF D8       SOI Start of Image
              # FF D0..7  RST DRI Define Restart Interval inside CompressedData
              # FF 00           Masked FF inside CompressedData
              # FF D9       EOI End of Image
              # http://en.wikipedia.org/wiki/JPEG#Syntax_and_structure
              hasChunk = ord(byte) not in range( 0xD0, 0xDA) + [0x00]
              if hasChunk:
                   ChunkSize   =  jpeg.uInt16()  - 2
                   ChunkOffset =  jpeg.tell()
                   Next_ChunkOffset = ChunkOffset + ChunkSize
    
    
              # Find bytes \xFF \xC0..C3 That marks the Start of Frame
              if (byte >= b'\xC0' and byte <= b'\xC3'):
    
                # Found  SOF1..3 data chunk - Read it and quit
                jpeg.seek(1, os.SEEK_CUR)
                h = jpeg.uInt16()
                w = jpeg.uInt16()
    
    
                #break
    
    
              elif (byte == b'\xD9'):
                   # Found End of Image
                   EOI = jpeg.tell()
                   break
              else:
                  # Seek to next data chunk
                 print "Pos: %.4x %x" % (jpeg.tell(), ChunkSize)
    
              if hasChunk:       
                 jpeg.seek(Next_ChunkOffset)
    
              byte = jpeg.byte()
    
            width  = int(w)
            height = int(h)
    
            print("Width: %s, Height: %s  JpgFileDataSize: %x" % (width, height, EOI))
      finally:
          jpeg.close()
    
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