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% perl -Ilib -MDevel::Peek -le '$a="34567"; $a=~s/...//; Dump($a)' 
SV = PV(0x8171048) at 0x8186f48   # replaced "12345" with "34567"
  REFCNT = 1
  FLAGS = (POK,OOK,pPOK)
  OFFSET = 3
  PV = 0x8181bdb ( "34\003" . ) "67"\0
  CUR = 2
  LEN = 9

Where do the 2 zeros in the chomped part ( "12\003" . ) between 2 and 3 come from?

Why do I get this kind of output in the chomped part ( "34\003" . )?

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2 Answers 2

up vote 2 down vote accepted

A bug? "\003" is chr(3) in octal form. However:

$ perl -Ilib -MDevel::Peek -le '$a="12345"; $a=~s/...//; Dump($a)'
SV = PVIV(0x869b0bc) at 0x86a5060
  REFCNT = 1
  FLAGS = (POK,OOK,pPOK)
  IV = 3  (OFFSET)
  PV = 0x869fac3 ( "123" . ) "45"\0
  CUR = 2
  LEN = 5

I can't duplicate that; what version of perl are you using?

Note that the part of the string buffer in () is reserved but not currently in use.

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This is perl 5, version 14, subversion 1 (v5.14.1) built for i686-linux. Devel::Peek version = 1.07 –  sid_com Aug 1 '11 at 7:00

I am getting same result as sid_com using perl 5.12.2 on Windows. However the string length is taken from CUR field of structure anyway. I don't see why this should be a bug, there can be any bytes in rest of string buffer.

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To me it looks like that instead of the last character there is the length in octal. –  sid_com Aug 1 '11 at 8:39
    
@sid_com - but the length is just two, not three. It could be the offset, though. –  bvr Aug 1 '11 at 10:07
    
When I chop off 9 characters I get a \t. –  sid_com Aug 1 '11 at 14:16
    
I accepted ysth's answer because it matches better with perlguts/Offsets –  sid_com Aug 1 '11 at 14:23
    
Maybe the \t because perl -E 'say ord "\t"' = 9. –  sid_com Aug 1 '11 at 14:39

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