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Let's say a text file contains the following text:

1.11111111
2.22222222
3.33333333
4.44444444
5.55555555

What would be size of the file? And how can we determine it?

Hypothesis: [5*(10 bytes for ten characters on each line) + 5 null pointers at the end of each string] = 55 bytes.

But windows is showing me 3 extra bytes, total 58 bytes. Where do the 3 bytes come from?

EDIT: NULL pointers take zero bytes. So, we have 8 extra bytes from somewhere.

More EDIT: After some experimenting, each time we press ENTER we create 2 bytes. That's where the 8 bytes came from- from pressing ENTER 4 times. What are these bytes called in programming terms?

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Open it in a hex editor? my guess is either \n and/or overhead –  Karthik T Dec 13 '12 at 2:31
    
lines in files don't have null terminators, only strings do. –  Troy Dec 13 '12 at 2:33
    
Another reason for a few extra bytes that you can't see would be a BOM. en.wikipedia.org/wiki/Byte_order_mark –  therefromhere Dec 13 '12 at 2:41
    
Lines don't end with "null pointers" and "null pointers" don't takes zero bytes to store... –  bames53 Dec 13 '12 at 2:42
    
@bames53, Troy: you are right. sizeof('\0') shows 1 byte. I thought each line would be considered one string, and thus ends with a null pointer. –  user1478983 Dec 13 '12 at 2:50

1 Answer 1

\n and \r in end of each line except the last take 1 byte respectively.

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So at the end of each line we have a \n (1 byte) and \r (1 byte), totalling 2 bytes, except the last one? –  user1478983 Dec 13 '12 at 2:40
    
Yep. By the way in linux we have only \n, so I can bet you have windows :) You can read about control characters on wiki and in this book –  user983302 Dec 13 '12 at 2:44
    
@user1478983 Yes, on Windows CRLF is usually used to end lines (a carriage return followed by a line feed, or '\r' followed by '\n'). Most other platforms just use a line feed. –  bames53 Dec 13 '12 at 2:45

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