37

The typescript compiler works fine when I import a json file using

const tasks = require('./tasks.json')

However, when I run tsc, the output directory does not contain no tasks.json file, causing a runtime error.

Is there a way to tell the compiler that it should copy all json files, or should I manually copy/paste all my json files into the dist directory ?

my tsc compilerOptions currently reads

  "compilerOptions": {
    "target": "es6",
    "module": "commonjs",
    "sourceMap": true,
    "noImplicitAny": true,
    "removeComments": false,
    "outDir": "./dist/",
    "sourceMap": true,
    "pretty": true,
    "noImplicitThis": true,
    "strictNullChecks": true,
    "sourceMap": true
  },

Thanks !

3
  • 4
    This seems like something grunt/gulp would do, not a compiler.
    – user47589
    Nov 7, 2016 at 17:38
  • 1
    You do not compile json you would have a gulp/grunt task to move it to your public directory (wwwroot or the like), my advice just keep it in the public directory if it is only needed there then you do not need a move task.
    – Shawn
    Nov 7, 2016 at 19:54
  • Gulp or grunt could be used to copy the JSON file to your dist, but you'd still have issues with the require() statement at runtime (unless this is actually running in node). See my answer. Nov 7, 2016 at 20:08

6 Answers 6

57

Problem

For people wanting to copy all JSON files, it's really difficult in TypeScript. Even with "resolveJsonModule": true, tsc will only copy .json files which are directly referenced by an import.

Here is some example code that wants to do a dynamic runtime require(). This can only work if all the JSON files have been copied into the dist/ folder, which tsc refuses to do.

// Works
import * as config from './config.default.json';

const env = process.env.NODE_ENV || 'development';

const envConfigFile = `./config.${env}.json`;

// Does not work, because the file was not copied over
if (fs.existsSync(envConfigFile)) {
  const envConfig = require(envConfigFile);
  Object.assign(config, envConfig);
}

Solution 1: Keep json files outside the src tree (recommended)

Assuming you have /src/ and /dist/ folders, you could keep your JSON files in the project's / folder. Then a script located at /src/config/load-config.ts could do this at runtime:

const envConfig = require(`../../config.${env}.json`);

// Or you could read manually without using require
const envConfigFile = path.join(__dirname, '..', '..', `config.${env}.json`);
const envConfig = JSON.parse(fs.readFileSync(envConfigFile, 'utf-8'));

This is the simplest solution. You just need to make sure the necessary config files will be in place in the production environment.

The remaining solutions will deal with the case when you really want to keep the config files in your src/ folder, and have them appear in your dist/ folder.

Solution 2: Import all possible files

For the above example we could do:

import * as config from './config.default.json';
import * as testingConfig from './config.testing.json';
import * as stagingConfig from './config.staging.json';
import * as productionConfig from './config.production.json';

This should cause the specified json files to be copied into the dist/ folder, so our require() should now work.

Disadvantage: If someone wants to add a new .json file, then they must also add a new import line.

Solution 3: Copy json files separately (recommended)

You can add a cpy-cli or copyfiles step to your build process to copy all .json files into the dist/ folder, after tsc has finished.

This assumes you do your builds with npm run build or something similar.

For example:

$ npm install --save-dev cpy-cli

// To copy just the json files, add this to package.json
"postbuild": "cpy --cwd=src --parents '**/*.json' ../dist/",

// Or to copy everything except TypeScript files
"postbuild": "cpy --cwd=src --parents '**/*' '!**/*.ts' ../dist/",

Now npm run build should run tsc, and afterwards run cpy.

Disadvantages: It requires an extra devDependency. And you must make this part of your build process.

Solution 4: Use js files instead of json files

Alternatively, don't use .json files. Move them into .js files instead, and enable "allowJs": true in your tsconfig.json. Then tsc will copy the files over for you.

Your new .js files will need to look like this: module.exports = { ... };

I found this idea recommended here.

Note: In order to enable "allowJs": true you might also need to add "esModuleInterop": true and "declaration": false, and maybe even "skipLibCheck": true. It depends on your existing setup.

And there is one other concern (sorry I didn't test this):

  • Will tsc transpile your config files if they are not all statically referenced by other files? Your files or their folders may need to be referenced explicitly in the files or include options of your tsconfig.json.

Solution 5: Use ts files instead of json files

Sounds easy, but there are still some concerns to consider:

  • Your config files will now look something like this: const config = { ... }; export default config;

  • See the note above about files / include options.

  • If you load the config files dynamically at runtime, don't forget they will have been transpiled into .js files. So don't go trying to require() .ts files because they won't be there!

  • If someone wants to change a config file, they should do a whole new tsc build. They could hack around with transpiled .js files in the dist folder, but this should be avoided because the changes may be overwritten by a future build.

Testing

When experimenting with this, please be sure to clear your dist/ folder and tsconfig.tsbuildinfo file between builds, in order to properly test the process.

(tsc does not always clean the dist/ folder, sometimes it just adds new files to it. So if you don't remove them, old files left over from earlier experiments may produce misleading results!)

2
  • 1
    Beautifully explained!
    – Vallie
    Nov 10, 2020 at 14:39
  • 1
    Thanks, I took Solution 1 :) Jun 27, 2021 at 22:05
27

In tsconfig.json, add

{
  "compilerOptions": {
     "resolveJsonModule": true,
   },
   "include": [
     "src/config/*.json"
  ]
}

Notice that it won't copy those json files which are required. If you need to dynamically require some json files and need them to be copied to dist, then you need to change from, for example,

return require("some.json") as YourType

to

return (await import("some.json")) as YourType

.

4
  • Sorry, my solution was incomplete. Can you try the above and see? The above solution works for me. Aug 8, 2019 at 9:19
  • If you want to include all sub - folders, you can use "src/config/**/*.json" Oct 17, 2019 at 9:58
  • This was the best solution for me. Note: I had to explicitly have an equivalent line in my include despite the parent folder already being included
    – dockleryxk
    Apr 1, 2020 at 18:38
  • simple and effective Aug 26, 2020 at 12:02
12

In typescript 2.9+ you can use JSON files directly and it automatically copied to dist directories.

This is tsconfig.json with minimum needed configuration:

{
    "compilerOptions": {
        "allowSyntheticDefaultImports": true,
        "esModuleInterop"             : true,
        "module"                      : "commonjs",
        "outDir"                      : "./dist",
        "resolveJsonModule"           : true,
        "target"                      : "es6"
    },
    "exclude"        : [
        "node_modules"
    ]
}

Then you can create a json file.

{
    "address": "127.0.0.1",
    "port"   : 8080
}

Sample usage:

import config from './config.json';

class Main {

    public someMethod(): void {
        console.log(config.port);
    }
}

new Main().someMethod();

If you don't use esModuleInterop property you should access your json properties encapsulated in default field. config.default.port.

1
  • 3
    Note that "resolveJsonModule": true only copies imported json files. It does not copy all json files, or required json files. Dec 20, 2019 at 2:58
2

The typescript compiler works fine when I import a json file using

const tasks = require('./tasks.json')

TypeScript wouldn't complain about this as long as you have a global require() function defined, for example using node.d.ts. With a vanilla setup you would actually get a compile error that require is not defined.

Even if you've told TypeScript about a global require function it just sees it as a function that's expected to return something, it doesn't make the compiler actually analyze what the function is requiring ("tasks.json") and do anything with that file. This is the job of a tool like Browserify or Webpack, which can parse your code base for require statements and load just about anything (JS, CSS, JSON, images, etc) into runtime bundles for distribution.

Taking this a little further, with TypeScript 2.0 you can even tell the TypeScript Compiler about module path patterns that will be resolved and loaded by a bundler (Browserify or Webpack) using wildcard (*) module name declarations:

declare module "*.json" {
    const value: any;
    export default value;
}

Now you can import your JSON in TypeScript using ES6 module syntax:

import tasks from "./tasks.json";

Which will not give any compile error and will transpile down to something like var tasks = require("./tasks.json"), and your bundler will be responsible for parsing out the require statements and building your bundle including the JSON contents.

3
  • So just do be clear, if we still use the syntax import tasks from "./tasks.json" we still need to find some way to get the json file copied over into the outDir directory in tsconfig.json?
    – Blue
    Sep 12, 2017 at 3:05
  • @FrankerZ Correct. Take a look at this answer Sep 12, 2017 at 5:53
  • i don't think json-loader helps here, because it expects the javascript itself to have a proper reference to the json? in this situation the js does not know where the json is, we are copying it to provide it to the js.
    – romnempire
    May 8, 2018 at 1:39
0

you can include this into your build script && ncp src/res build/res, will copy the files directly to your outDir

0

You can always get an absolute path to your project, with typescript code. To do it just read the JSON file not by the required keyword but with the help of the fs module. In a path of file use process.cwd() to access typescript project directory:

import * as fs from 'fs';

const task: any = JSON.parse(fs.readFileSync(`${process.cwd()}/tasks.json`).toString());

To make it work correctly you may need to change your running script to node dist/src/index.js where you specify a dist folder in the path.

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