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I am writing javascript and am currently doing simple exercises/programs. At times, I wish to run my file for testing purposes. I am aware I could create an HTML file and do this within the console. In Sublime, there exists a way to "build" the current file and immediately see the results (say, whatever is sent to console.log).

With VS Code, it seems that for every file I want to "build"/debug in this manner, I must manually change the launch.json file to reflect the name of the current program.

I have been researching a way around this, and I learned that there are variables like ${file} , but when I use that in the launch.json "program" attribute, for example:

"program": "${workspaceRoot}/${file}"

with or without the workspaceRoot part, I get the following error:

Attribute "program" does not exist" (file name here). 

Am I missing a simple way to accomplish this, or must I keep editing launch.json every time I want to run the file?

Thanks in advance!

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  • Sorry for the poor formatting. I am still struggling with this issue, if anyone comes across this. – jdb79 Jul 25 '16 at 21:55
  • I thinks this one has an update. Now we can just debug a js file directly by pressing the debug start button. Unless there is a config already there. It starts debugging current file automatically. – klvenky May 5 '19 at 10:47
131

Change to:

"program": "${file}"
7
  • Not sure why this was downvoted because it is ABSOLUTELY the solution I needed!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!! THANK YOU so much!!!!!!!!!! It works like a charm--great for those learning javascript with lots of random files to run. THANK YOU once again! – jdb79 Sep 27 '16 at 18:00
  • I use different names to debug different files in the project and delete the entry from launch.json file once I'm done. – zubair1024 Jan 8 '18 at 10:59
  • @jdb79 You should accept the answer by clicking the green tick on the left – MuhsinFatih Apr 9 '18 at 7:58
  • 3
    I also added on occasion "cwd": "${fileDirname}" to make it start in the current file's folder (useful for instance when loading files using a relative path to the current file's location - eg: fs.readFile('./somefile.txt')) – Razvan Pocaznoi Sep 18 '18 at 21:13
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    I can't understand why this is not mentioned in the VSCode manual, nor there is any section mentioning these variables. Or if there is, it is hidden very well. – Jindrich Vavruska Apr 12 '20 at 11:18
48

For reference this is the full launch.json

{
    "version": "0.2.0",
    "configurations": [
    {
        "type": "node",
        "request": "launch",
        "name": "Debug File",
        "program": "${file}"
    }
    ]
}
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  • In my project's launch.json there is entry "name": "Launch Program", will it make difference instead of "Debug File" use "Launch Program" ? – vikramvi Apr 12 '19 at 8:57
  • @vikramvi no difference, it is only for reference (eg it will show in status bar the name of current active task) – Bernardo Dal Corno Nov 8 '19 at 20:59
  • What makes a diff is type I think: you can have similar configuration objects, but having diffs in the name and type keys. type is the language. – Timo Mar 23 at 8:56
1

For a single file, you can skip the launch.json file entirely. Just click the green arrow in the debugger panel and choose Node as your environment.

From here.

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    If you have no launch config setup yet, then clicking the green arrow will give you a choice of environments and then create the launch file with an item in it. Otherwise, the green arrow will run the selected item in the droplist. – MikeCPT Jul 9 '19 at 10:41
  • Or just press F5 – Bernardo Dal Corno Nov 8 '19 at 21:00

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