5

I need to extract the directory and file name in a different input of user URL's.

Some examples would include:

What I really need is the TOP_PROD_IMAGE and WS-25612-BK_IMRO_1.jpg file name.

So I would need to account for users who enter http:// or https:// or just www. so I tried using string.split('/') but that obviously wouldn't work in all cases. Is there something that could give me an array despite the double // in cases where user enters http? Thanks!

3
  • I'd use path-to-regexp for this. it's used within Express internally, and can be quite robust. npmjs.com/package/path-to-regexp If this really is just a one-off use case though, you could do it directly with regex.
    – Brad
    Dec 23, 2019 at 23:08
  • ([^/]+)\/([^/]+)$ as a regexp?
    – vsh
    Dec 23, 2019 at 23:09
  • This question reminded me of a similar one here But this one should be a lot easier.
    – LukStorms
    Dec 23, 2019 at 23:11

4 Answers 4

6

Consider:

const [file, folder] = url.split('/').reverse();

With this you wouldn't need to consider http:// or any //

0
4

How about:

const url = new URL('https://foo/s3.amazonaws.com/TOP_PROD_IMAGE/WS-25612-BK_IMRO_1.jpg')
const urlParams = url.pathname.split('/') // you'll get array here, so inspect it and get last two items

Will this do the trick? You'll get exactly what you need within the pathname.

3
  • 1
    Also handled query parameters gracefully
    – ug_
    Dec 23, 2019 at 23:10
  • Wow, this is super nice! Also anyway to isolate file name? I guess I could work with URL.pathname would just be nicer to have them separate.
    – rec0nstr
    Dec 23, 2019 at 23:11
  • 1
    The answer below will get you there. Answer from @C_Ogoo.
    – dvlden
    Dec 23, 2019 at 23:16
0

If the urls have to start with either http and optional s or www. you could also use a pattern with 2 capturing groups to get the part before the last slash and the part after the last slash.

^(?:https?:\/\/|www\.)\S+\/([^/]+)\/(\S+)$

Regex demo

urls = [
  "https://foo/s3.amazonaws.com/TOP_PROD_IMAGE/WS-25612-BK_IMRO_1.jpg",
  "http://192.168.12.44:8090/TOP_PROD_IMAGE/R3CRDT-HZWT_IMRO_1.jpg",
  "www.foobar-images.s3.amazonaws.com/TOP_PROD_IMAGE/WS-25612-BK_IMRO_1.jpg"
].forEach(s => {
  let m = s.match(/^(?:https?:\/\/|www\.)\S+\/([^/]+)\/(\S+)$/, s);
  console.log(m[1]);
  console.log(m[2]);
  console.log("\n");
});

0

You can use negative look-aheads to only match the final URI segments:

/(?!([https?:\/\/]|[www.]))(?!([\d]))(?!(.*[com])).*/

const re = /(?!([https?:\/\/]|[www.]))(?!([\d]))(?!(.*[com])).*/
const arr = [
  "https://foo/s3.amazonaws.com/TOP_PROD_IMAGE/WS-25612-BK_IMRO_1.jpg",
  "http://192.168.12.44:8090/TOP_PROD_IMAGE/R3CRDT-HZWT_IMRO_1.jpg",
  "www.foobar-images.s3.amazonaws.com/TOP_PROD_IMAGE/WS-25612-BK_IMRO_1.jpg"
]

const res = arr.map(str => re.exec(str)[0].split("/"))

console.log(res)

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