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So far, I have written a script to take screenshots and save them. But I want the files to be named "snap", followed by a number (e.g. snap1.jpg, snap2.jpg, snap3.jpg). The plan is to make a ew picture every time the script executes. Here is the current script:

import ImageGrab
img = ImageGrab.grab()
img.save('snap1.jpg','JPEG')
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Do you want this to be a continuous loop, or do you want to just create a file with the next open number after "snap" every time you run it? –  William Kunkel Oct 13 '12 at 3:57
    
I want it to be every time I run it. –  Frustrated Python Coder Oct 13 '12 at 4:03

4 Answers 4

import os
import sys

basename = sys.argv[1]

# for each file in the current directory, check if its name starts with basename
# if it does, split on basename this will yield ['', N] where N is the number in the filename
# call int on the number since it is currently a string
numbers = [int(f.split(basename)[1]) for f in os.listdir('.') if f.startswith(basename)]
last_number = max(numbers) # I broke this up so it was easier to see
new_name = "%s%03d.jpg" % (basename, last_number + 1)
print new_name

Notes.

  • uses '.' aka current dir as the location, update as needed.
  • the new_name is written like snap003.jpg. Again, adjust as needed. The zeroes help a file listing line up

Enjoy.

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Just put this into a loop, and each time you take a screenshot increment a counter.

i = 1
while (condition):
    ImageGrab.grab()
    img.save('snap'+str(i)+'.jpg','JPEG')

However, since you want to simply run the application and have it know what to name it, you could always create another file to hold the number you're on. Let's say you call it screen.txt and put nothing but a zero in this file. Now modify your code to be something like:

f = open('screen.txt')
i = int(f.read())
f.close()
print ('snap'+str(i)+'.jpg')
f = open('screen.txt', 'w')
i+=1
f.write(str(i))

You'll want to replace that print statement with your img.save statement. This should work and is pretty darn easy to understand.

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Thanks for the comment! –  Frustrated Python Coder Oct 13 '12 at 4:00
1  
Python doesn't do concatenation that way - your 'snap' + i + '.jpg' should be something like 'snap%i.jpg' % i. –  chthonicdaemon Oct 13 '12 at 4:03
    
I changed it to make i into a string, so that should fix it. –  Linell Oct 13 '12 at 4:06

The generation of the filename could be simple

i = 1 # somewhere above the grabbing

filename = 'snap%i.jpg' % i
i += 1
img.save(filename, 'JPEG')

itertools provides a nice counter generator, so you can do

import itertools
filecounter = itertools.count(1)

filename = 'snap%i.jpg' % filecounter.next()

The advantage of having the counter is that you can send it around to other functions without bothering to transfer state back. You might also want to construct a function to figure out the next filename based on what files already exist, but that's a little more involved.

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If you're saving to the same directory every time you run the script, then you can check the directory for files named /snap[0-9]+.jpeg/ (That is, files named snap, followed by a number, followed by ".jpg") and name your new file the next available file name. So something like this should work:

import os
import ImageGrab
import re

snapPattern = re.compile('snap([0-9]+)\.jpeg')

usedNumbers = []
fileList = os.listdir('.')
for filename in fileList:
    m = snapPattern.match(filename)
    if( m ):
        usedNumbers.append( m.group(1) )
usedNumbers.sort()
i = 0
while usedNumbers.count( str(i) ):
    i++
img = ImageGrab.grab()
img.save('snap'+str(i)+'.jpg','JPEG')

I apologize in advance if I screwed this up, I'm not extremely proficient with Python.

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