2

I'm having some problem with transforming a multi line string to a single line string.

I have a string like this:

#66 = B_SPLINE_CURVE_WITH_KNOTS ( 'NONE', 3,
 ( #62, #61, #105, #104, #103, #102, #101, #100, #99, #98 ),
 .UNSPECIFIED., .F., .F.,
 ( 4, 3, 3, 4 ),
 ( 7.785145389033986000E-018, 0.0001260065739121398800, 0.0001891785121403045300, 0.0002523514299847038200 ),
 .UNSPECIFIED. ) ;

But I need it as one whole line.

This is what I tried:

/^#[0-9].*;)$/s/

What I'm trying to do:

#[0-9]

This points to the #66. The reason for this #[0-9] is it needs to be dynamic.

.*

This points to everything between the ;

;

This points to the end of the line. But unfortunately it doesn't work.

My regex now:

/([^\n]*)\n* /g
  • What is the output that you're expecting? – CinCout Sep 13 at 7:09
  • 2
    If you want everything on a single line, can't you just remove all \n ? – LogicalKip Sep 13 at 7:11
  • 1
    @CinCout Thanks! If you make it an answer I’ll accept it! – mHvNG Sep 13 at 7:18
  • 1
    This appears to be a follow-up to your previous question, which I answered (and you kindly accepted) but without considering a multiline string. If this is indeed the case, that answer will work with multiline strings as well -- you only need to add /s modifier to the regex. (A "modifier" is what you add after, like /.../s.) I added a comment at the end of my answer there. – zdim Sep 13 at 7:39
  • 1
    Yeah, saw that :) Btw, these strings now are a little different but you can modify the regex in that answer to work with them as well -- add to those character classes ([...]) additional characters to accept, like # (for #62 etc) or . (for .F. etc), depending on what you want to capture out of all terms. – zdim Sep 13 at 7:54
1

Do this:

([^\n]*)\n* /g

Just capture everything except the newline character until the newline character is encountered per line.

Then substitute with the captured group $1

Demo

  • 1
    How do I add the substitute in Perl? – mHvNG Sep 16 at 8:18
  • 1
    Because when I add the regex in my perl script it doesn’t add the ‘;’ to the string. I dont know if the substitutie helps. – mHvNG Sep 16 at 8:21
1

It's unclear what you are asking. I think you are asking how to remove the line feeds from a string. That can be achieved using the following:

$str =~ s/\n//g;
  • I'm trying to do is delete the newlines. So I can split the string from the #1234 to the semicolon. But my problem is when I delete the newlines it doesn't add the semicolon at the end of the line. – mHvNG Sep 16 at 9:17
  • So now instead of this : "#14 = VERTEX_POINT ( 'NONE', #50707 ) ;" I get this: "#14 = VERTEX_POINT ( 'NONE', #50707 ) ". Without the semicolon. – mHvNG Sep 16 at 9:18
  • and the same with the example in my question. – mHvNG Sep 16 at 9:20
  • I'm using the answer of @CinCout, but in the answer he mentions "Then substitute with the captured group $1". I don't know how to do that in Perl. – mHvNG Sep 16 at 9:26
  • Re "I'm trying to do is delete the newlines.", "Newline" doesn't actually mean anything, and that doesn't say from what. Do you mean you want to delete line feeds from a string? That's what the code in my answer does. I even said as much. /// I don't see what any of the other comments have to do with my answer. – ikegami Sep 16 at 10:02

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