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I am trying to read a specific line of an html file in a Jenkins stage with Groovy and save its contents to an environment variable. The problem is, File and readLines() are not allowed.

I am able to load a file with

env.WORKSPACE = pwd()
def file = readFile "${env.WORKSPACE}/file.html"

Provided in this answer

But how can I access instantly to the contents of line n? I am using Jenkins 2.32

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  • would it be sufficient to grep for something on the line you want instead of referencing it via line number?
    – burnettk
    May 2, 2017 at 15:39
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    Does file.split(System.getProperty("line.separator"))[n] do it?
    – tim_yates
    May 2, 2017 at 16:12
  • Grep is not sufficient as there are many lines with identical boilerplate. What I want to get out of the file is a percentage number. I'll test the above tomorrow.
    – vkopio
    May 3, 2017 at 10:44
  • fyi this is a jenkins bug: issues.jenkins-ci.org/browse/JENKINS-46988
    – GottZ
    Jul 3, 2019 at 14:40

2 Answers 2

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Just going to leave documented here, but you can also use readLines().

def file = readFile location
def lines = file.readLines()

From this other question

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I Tried the suggestion of tim_yates from the comments but System was also forbidden. What ultimately worked for me was just changing System.getProperty("line.separator") to new line character "\n".

So the full answer was in its simplicity:

file.split("\n")[n]
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  • 4
    You might want to add a .trim() on that just in case there's a Windows \r in there as well. Oct 29, 2017 at 21:50
  • Instead of .trim() you can do file.split("\r?\n")[n] which splits on either \n or \r\n.
    – zett42
    Dec 15, 2021 at 18:16

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