106

Not a gulp-specific question per-se, but how would one get info from the package.json file within the gulpfile.js; For instance, I want to get the homepage or the name and use it in a task.

4 Answers 4

142

This is not gulp specific.

var p = require('./package.json')
p.homepage

UPDATE:

Be aware that "require" will cache the read results - meaning you cannot require, write to the file, then require again and expect the results to be updated.

3
  • 7
    I definitely felt like an idiot for searching for this when I saw your answer. Of course!
    – spikeheap
    Mar 26, 2015 at 10:36
  • 1
    Worked for me :P. And +1 for the comment about caching, I later switched to using 'fs.readFileSync()` as pointed out below.
    – Bart
    Sep 25, 2015 at 9:52
  • @spikeheap I don't know if I've ever laughed out loud before reading a comment on StackOverflow, but I was RIGHT there with you! Thanks for the cheers. Haha.
    – Modular
    Jun 19, 2016 at 4:27
121

Don't use require('./package.json') for a watch process, as using require will resolve the module as the results of the first request.

So if you are editing your package.json those edits won't work unless you stop your watch process and restart it.

For a gulp watch process it would be best to re-read the file and parse it each time that your task is executed, by using node's fs method

var fs = require('fs')
var json = JSON.parse(fs.readFileSync('./package.json'))
3
  • 4
    Agreed that "require" does cache the result (making it unsuitable if you intend to read/modify/read-again). That does not make it a bad solution in all cases though. The OP explicitly mentioned he wanted to read information out of it. Apr 14, 2015 at 17:56
  • 4
    It's possible to use require and the remove the cache with delete require.cache[require.resolve(FILEPATH)]; May 24, 2016 at 13:06
  • @KennethB Why not as separate answer? Would drive more then enough upvotes.
    – kaiser
    Jan 6, 2017 at 21:08
6

This is a good solution @Mangled Deutz. I myself first did that but it did not work (Back to that in a second), then I tried this solution:

# Gulpfile.coffee
requireJSON = (file) ->
    fs = require "fs"
    JSON.parse fs.readFileSync file

Now you should see that this is a bit verbose (even though it worked). require('./package.json') is the best solution:

Tip

-remember to add './' in front of the file name. I know its simple, but it is the difference between the require method working and not working.

2
  • Thanks! this helped tremendously.
    – Adam Grant
    Feb 7, 2015 at 17:53
  • 1
    thanks for upvotes, finally have comments. :) Glad it helped you.
    – dewwwald
    Sep 28, 2015 at 7:52
1

If you are triggering gulp from NPM, like using "npm run build" or something

(This only works for gulp run triggers by NPM)

process.env.npm_package_Object

this should be seprated by underscore for deeper objects.

if you want to read some specific config in package.json like you want to read config object you have created in package.json

scripts : {
   build: gulp 
},
config : {
   isClient: false.
}

then you can use

process.env.npm_package_**config_isClient**

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