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I just want to swap the first 64 characters of a file with the last 64 characters of the same binary file.

How can I do that?

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Why do you want to process a binary file with text-oriented tools? –  belisarius Jan 29 '11 at 8:24
    
If it's a binary file, I'd say you're more likely to want to swap 64 bytes than 64 characters. (We live in a Unicode world. Don't assume 1 char = 1 byte.) And, like @belisarius said, text utils are, at best, a risky choice for dealing with binary files. Is this homework? –  Mike Sherrill 'Cat Recall' Jan 29 '11 at 8:42
    
I'm tempted to say something about just loading it into vim in vim's notorious "corrupt" mode, but I won't. Oops. –  Mike Sherrill 'Cat Recall' Jan 29 '11 at 8:43
    
@Catcall That was the right choice :D –  belisarius Jan 29 '11 at 8:55

2 Answers 2

up vote 0 down vote accepted

I'm not sure if this can be done reliably with sed or awk. I can imagine a solution that would work on a specific file, or with certain odd conditions like where newlines might appear.

This is fairly easy to do in C. And if not restricted to sed or awk, it can be done with shell commands, too:

n=64
f=/tmp/test
eval $(stat -s $f)
e=$(($st_size - $n))
dd bs=1  count=$n if=$f          iseek=$e of=/tmp/last64
dd bs=$n count=1  if=$f                   of=/tmp/first64
dd bs=1  count=$n if=/tmp/first64 seek=$e of=$f conv=notrunc
dd bs=$n count=1  if=/tmp/last64          of=$f conv=notrunc
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Thank You, DigitalRoss. –  SHW Jan 29 '11 at 10:22
    
Your solution work for me. But I want to know that 1. bs=1 count=64 and count=64 bs=1 is same or different. After re-swapping the 64-bytes, ( retaining the original binary ), I observed that md5sum values differs. Why is so behavior ? –  SHW Jan 29 '11 at 10:29
1  
stat -s seems to be a BSD option. GNU doesn't seem to have it. st_size=$(wc -c < $f) can probably be used instead. –  Dennis Williamson Jan 29 '11 at 11:00
    
stat -c %s is the option that we can use. –  SHW Jan 29 '11 at 11:15
    
Cross-Verification: Does not matter, what you use, [ bs=1 count=64 ] or [ bs=64 count=1 ], it is one-and-same. Md5sum also retains. ANd for XXD solution, I guess, same thing can be achieved by using hexdump with -r and -p option. Thnx again. –  SHW Jan 29 '11 at 11:59

Using xxd:

n=64
file=data
tmp=tmp
len=$(wc -c < "$file")
offset=$((len - n))
len=$((offset - n))
xxd -s -$n "$file" | xxd -r -s -$offset > "$tmp"
xxd -s $n -l $len "$file" | xxd -r  >> "$tmp"
xxd -l $n "$file" | xxd -r >> "$tmp"
mv "$tmp" "$file"

Edit:

Another approach would be to use xxd and sed:

n=64; hd=$((n * 2))
file=data
tmp=tmp
xxd -c $n -p "$file" |
    sed "1{x;d};:a;N;s/\n//;\${s/\(.*\)\(.\{$hd\}\)\$/\2\1/;G};ba" | 
    xxd -r -p > "$tmp"
mv "$tmp" "$file"

Instead of six calls to xxd, it's two to xxd and one to sed (and fewer file reads and writes, too).

Explanation of the sed command:

  • 1{x;d} - Save the first line of hex digits in hold space. The length of the line is set to the number of bytes to swap using the -c option of xxd.
  • :a - Label "a"
    • N - Append the next line.
    • s/\n// - Remove the embedded newline
    • \${ - If it's the last line of input:
      • s/\(.*\)\(.\{$hd\}\)\$/\2\1/ - Swap the last $hd bytes to the beginning
      • G - Append the first $n bytes from hold space onto the end. Since it's the last line, the script ends.
    • } - end if
  • ba - Branch to label "a".

Additionally, sed could do some manipulation of the data.

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@SHW: Please see my edited answer. –  Dennis Williamson Jan 29 '11 at 23:23

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