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I want to create a file of particular size (say, 1GiB). The content is not important since I will fill stuff into it.

What I am doing is:

f = open("E:\\sample", "wb")
size = 1073741824 # bytes in 1 GiB
f.write("\0" * size)

But this takes too long to finish. It spends me roughly 1 minute. What can be done to improve this?

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1 min sounds about as good as it gets to me. BTW, what exactly are you doing with this file? –  David Robinson Jan 11 '12 at 8:14
4  
1073741824 bytes != 1GB. Use an SSD instead of a mechanical HDD? Write to local disk rather than a network share? –  Johnsyweb Jan 11 '12 at 8:17
1  
@Johnsyweb why? isn't that 1024 * 1024 * 1024 ? –  onemach Jan 11 '12 at 9:05
    
@DavidRobinson A p2p system. I am creating the file and filling stuff in it later –  onemach Jan 11 '12 at 9:06
2  
@onemach 1 GB = 10^9 B. 1 GiB = 2^30 B. –  glglgl Jan 11 '12 at 9:38
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2 Answers 2

up vote 21 down vote accepted

WARNING This solution gives the result that you might not expect. See UPD ...

1 Create new file.

2 seek to size-1 byte.

3 write 1 byte.

4 profit :)

f = open('newfile',"wb")
f.seek(1073741824-1)
f.write("\0")
f.close()
import os
os.stat("newfile").st_size

1073741824

UPD: Seek and truncate both create sparse files on my system (Linux + ReiserFS). They have size as needed but don't consume space on storage device in fact. So this can not be proper solution for fast space allocation. I have just created 100Gib file having only 25Gib free and still have 25Gib free in result.

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cool, works fine –  onemach Jan 11 '12 at 13:02
    
If your system supports it, the truncate() solution might - strictly seen - be better, as this solution here consumes 1 allocation block for this file although it would not be necessary. –  glglgl Jan 11 '12 at 13:50
1  
Doesn't that generate a sparse file, though? (This may be what was needed, but it's not quite the same) –  Arafangion Jan 11 '12 at 13:51
    
In python 3 it's f.write(b"\0") –  qed May 30 at 14:32
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The question has been answered before. Not sure whether the solution is cross platform, but it works in Windows (NTFS file system) flawlessly.

with open("file.to.create", "wb") as out:
    out.truncate(1024 * 1024 * 1024)

This answer uses seek and write:

with open("file.to.create", "wb") as out:
    out.seek((1024 * 1024 * 1024) - 1)
    out.write('\0')
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6  
Docs: Note that if a specified size exceeds the file’s current size, the result is platform-dependent: possibilities include that the file may remain unchanged, increase to the specified size as if zero-filled, or increase to the specified size with undefined new content. –  Janne Karila Jan 11 '12 at 8:38
    
@JanneKarila In this case file.to.create is an empty file, so the specified size will always exceed the file's current size? –  qed May 30 at 14:34
    
@qed Yes it will. –  Janne Karila May 30 at 15:36
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