53

I have copied from a website a series of hyperlinks and pasted them in a google sheet. The values show up as linked text, not hyperlink formulas, and are still linked correctly. For each row, I'm trying to extract the URL ONLY (not the friendly text) and insert it into the adjacent column. How could this be accomplished using a formula?

For example:

=SOMEFUNCTION(cellThatHoldsLink, returnedURLOnly)

This and similar scenarios do not apply because the pasted data are not formulas. I will accept a script (GAS) solution, or any solution for that matter, but would prefer if it could be done using a formula. I have found dozens of HYPERLINK manipulation scripts, but nothing on this particular scenario, or even how to access the property that is holding that url. Thanks.

7
  • Provide a couple of real examples of the content in the cells. Then someone can test the output.
    – Alan Wells
    Feb 5, 2016 at 18:52
  • Sandy, here is an example: docs.google.com/spreadsheets/d/…
    – iamtoc
    Feb 5, 2016 at 19:04
  • did you orginially paste some links or hyperlinks in that spot, then delete and paste it again? Feb 5, 2016 at 19:15
  • I selected the text with a mouse direct from a webpage, right clicked and chose copy, then merely pasted it into the sheet. If there is another way of copying the data by which some needed properties can be transferred, i'm open to that as well.
    – iamtoc
    Feb 5, 2016 at 19:18
  • 2
    yes - i use linkclump every day - its a nifty chrome add on - or if you share the source url from which you got the links - ill show you a cool trick on your sheet Feb 5, 2016 at 19:50

13 Answers 13

30

After some update in 2020 all codes I have found on the Internet were broken, so here is my contribution:

/** 
 * Returns the URL of a hyperlinked cell, if it's entered with control + k. 
 * Author: @Frederico Schardong based on https://support.google.com/docs/thread/28558721?hl=en&msgid=28927581 and https://github.com/andrebradshaw/utilities/blob/master/google_apps/convertHiddenLinks.gs 
 * Supports ranges
 */
function linkURL(reference) {
  var sheet = SpreadsheetApp.getActiveSheet();
  var formula = SpreadsheetApp.getActiveRange().getFormula();
  var args = formula.match(/=\w+\((.*)\)/i);
  try {
    var range = sheet.getRange(args[1]);
  }
  catch(e) {
    throw new Error(args[1] + ' is not a valid range');
  }
  
  var formulas = range.getRichTextValues();
  var output = [];
  for (var i = 0; i < formulas.length; i++) {
    var row = [];
    for (var j = 0; j < formulas[0].length; j++) {
      row.push(formulas[i][j].getLinkUrl());
    }
    output.push(row);
  }
  return output
}
7
  • 2
    This is great! Thanks a lot! I still have an edge case to solve, I've multiple links in the same "formula" (formulas[0].length == 1). Do you know how to solve that by any chance?
    – Kikiwa
    Nov 9, 2020 at 22:03
  • 4
    Finally found the solution, using getRuns() made the job. My "specific" script is here: gist.github.com/glureau/833d83099cb74efc937f9afddba2cca4 you'll just have to adapt the format wanted
    – Kikiwa
    Nov 9, 2020 at 23:40
  • 1
    I confirm. This works exactly as expected for pasted hyperlinks in Google sheets. Thank you! Feb 1, 2021 at 16:16
  • 2
    For embedded URLs (that are not like HYPERLINK=...) I used this add-on extract-urls.contributor.pw first to convert them and then this linkURL to get the actual URL
    – cmantas
    Jul 8, 2021 at 9:52
  • @Kikiwa's gist works the best for me in 2021 Nov 17, 2021 at 17:48
21

If your hyperlink is specified in another cell as a formula—for example let's suppose that cell A1 contains the formula =HYPERLINK("https://www.wikipedia.org/","Wikipedia"), you can extract the Link text using a regular expression. All you need to do is:

=REGEXEXTRACT(FORMULATEXT(A1),"""(.+)"",")

This formula will yield the result:

https://www.wikipedia.org/

No custom functions required.

6
  • =REGEXEXTRACT(FORMULATEXT(A1),"""(.+?)""") is better because link text is an optional argument and there may be no comma, and also REGEXEXTRACT returns only the first match
    – vstepaniuk
    Jan 12, 2020 at 0:27
  • 2
    Brilliant it works very well when the hyperlink was created with =hyperlink("https ...," ...") but unfortunately, this doesn't work when the hyperlink was pasted from another place. Is it possible to convert a pasted hyperlink to a hyperlink that uses the formula =hyperlink() ? With a macro perhaps? Jul 5, 2020 at 0:31
  • 1. the above =REGEXEXTRACT() is fantastic for the =hyperlink() extractions, thank you @Jordan. 2 @AdolfoCorrea - did you every get an reply/answer/feedback to your above question? I too am interested. Sep 27, 2020 at 0:03
  • 1
    @JohnnyUtahh I haven't found a way to workaround that problem yet. Please if you do, comment here. I'll do the same if I find a way to solve this problem Sep 27, 2020 at 20:05
  • a bit late to the party, but if you copied many links at once from a site straight into a spreadsheet, you can use this extension on firefox or chrome instead addons.mozilla.org/en-US/firefox/addon/copy-selected-links
    – Matt
    Jan 20 at 18:31
9

This can be done for links auto created by pasting them in or with the link button button by going to Tools -> Script editor and creating the following script:

function GETLINK(input){

return SpreadsheetApp.getActiveSheet().getRange(input).getRichTextValue().getLinkUrl();

}

If cell A1 has the link you will need to reference it as =GETLINK("A1") That's not going to update dynamically if you have a lot of links so use =GETLINK(cell("Address",A1)) to get around that.

Credit to morrisjr1989 on reddit.

3
  • This GETLINK is the only thing that helped me today. However, with my linked values all in column B, I ended up using =GETLINK("B"&ROW()). (That after wondering for a long time, why, e.g., =GETLINK(B2) wouldn't want to work directly.)
    – marco
    May 18, 2021 at 15:53
  • This raises an exception :( Exception: Argument cannot be null: a1Notation GETLINK @ Code.gs:3
    – cmantas
    Jul 8, 2021 at 9:42
  • @cmantas A1 is just an example. You need to use the address of the cell that has the link.
    – MrG
    Aug 19, 2021 at 13:25
7

The built-in SpreadsheetApp service doesn't seem to support pulling such URLs out, but the “Advanced” Sheets service does.

Enable the Advanced Sheets service according to Google's instructions, and then try this code:

function onOpen() {
  var menu = SpreadsheetApp.getUi().createMenu("Extract URLs");
  menu.addItem("Process =EXTRACT_URL(A1) formulas", "processFormulas");
  menu.addToUi();
}

function EXTRACT_URL() {
  return SpreadsheetApp.getActiveRange().getFormula();
}

function processFormulas() {
  var spreadsheet = SpreadsheetApp.getActiveSpreadsheet();
  var sheet = spreadsheet.getActiveSheet();
  var rows = sheet.getDataRange().getFormulas();
  for (var r = 0; r < rows.length; r++) {
    var row = rows[r];
    for (var c = 0; c < row.length; c++) {
      var formula = row[c];
      if (formula) {
        var matched = formula.match(/^=EXTRACT_URL\((.*)\)$/i);
        if (matched) {
          var targetRange = matched[1];
          if (targetRange.indexOf("!") < 0) {
            targetRange = sheet.getName() + "!" + targetRange;
          }
          var result = Sheets.Spreadsheets.get(spreadsheet.getId(), {
            ranges: targetRange,
            fields: 'sheets.data.rowData.values.hyperlink'
          });
          try {
            var value = result.sheets[0].data[0].rowData[0].values[0].hyperlink;
            sheet.getRange(r + 1, c + 1).setValue(value);
          } catch (e) {
            // no hyperlink; just ignore
          }
        }
      }
    }
  }
}

This creates a custom function called EXTRACT_URL, which you should call with a reference to the cell that contains the link; for example, =EXTRACT_URL(B3).

Unfortunately it doesn't work immediately, because the Advanced Sheets service can't be used directly by custom functions. So this script adds a menu called “Extract URLs” to the spreadsheet menu bar, with one menu item labeled “Process =EXTRACT_URL(A1) formulas”. When you click it, it will replace all uses of the EXTRACT_URL function with the URL itself.

3
  • 1
    This works, but I get an error "Insufficient tokens for quota 'ReadGroup' and limit 'USER-100s' of service 'sheets.googleapis.com'" if processing too many at once. Also worth noting this is a one-off operation as it replaces the formula with the result.
    – Simon D
    Apr 29, 2018 at 3:33
  • Yes this works! But is very slow because of the quota problem already mentioned. How can it be solved? May 26, 2020 at 15:15
  • @JoeErcolino You can speed it up by updating the code to take multiple values and then write to the sheet once. Doing so, I was able to get, apply additional processing, and print 184 values in 0.793 seconds.
    – Diego
    Jun 12, 2020 at 23:46
5

You can use importxml to pull in the whole data table and it's contents with this:

=IMPORTXML(A1,"//tr")

next to it we pulled in the url strings in the tags

=IMPORTXML(A1,"//tr/td[1]/a/@href")

and finally concatenated the strings with the original domain to create your hyperlinks

=ARRAYFORMULA("http://www.bnilouisiana.com/"&INDIRECT("A2:A"&COUNTA(A2:A)))
6
  • I tried this where i just had URL in cell, no hyperlink formula, but yes the cell is a link. I pasted above in to new sheet and it imported all the data but just with the string 'url' not the link. Small example of cells are here docs.google.com/a/fuzion.co.nz/spreadsheets/d/… May 24, 2016 at 23:00
  • oop hit "add comment' to soon. Do you think the above should work in this situation? May 24, 2016 at 23:01
  • you havent shared the doc @petednz-fuzion May 25, 2016 at 5:44
  • thank you for trying to assist and confirming this is a 'no hoper' as "they are not string urls" to quote from your PM. May 25, 2016 at 6:09
  • 1
    The second formula. But i also came across posts that said that this function sometimes doesn't work
    – Andy
    Sep 17, 2016 at 9:19
3

So, with a bit of research, I can see that there are 2 types of links in google sheets

  1. hyperlinks (formula like =HYPERLINK=("www.google.com"))
  2. "embedded" links (where you can't see or edit the formula)

For the first kind you can use @frederico-schardong 's linkURL directly.

For the 2nd kind you can first use the extract URLs add-on and then linkURL.

1
  • The Extract URLS addon for google sheets help me extract the urls where i cant see them. Thank you very much. Sep 27 at 20:36
2

If you happy to use Google Apps Script then use below function to get the hyperlink from a text. When you pass the cell, you should send with double quote. Eg: =GETURL("A4") to get the A4 hyperlink.

function GETURL(input) {
  var range = SpreadsheetApp.getActiveSheet().getRange(input);
  var url = /"(.*?)"/.exec(range.getFormulaR1C1())[1];
  return url;
}

Refer here for example.

Edit: Ignore this answer. This will only work if url is linked in cell.

7
  • This wont work if you look at his example - the links were not hyperlink formulas - it is oddly just the text with the links but no visible "link formula" Feb 6, 2016 at 13:39
  • Ohh! got it! sorry this will not work for his example. Feb 6, 2016 at 14:01
  • 1
    @iamtoc i commented above, if you share a sample link from where your grabbing the urls from i will show you the formula to automatically just pull all those urls in via xpath Feb 6, 2016 at 18:44
  • 1
    @iamtoc added a sheet to your sample doc - and put in there the xml extractions - I can only assume that it is not only one page you want to extract - if you have a second link so I can see what the url pattern is we can automatically pull in all the pages for you Feb 6, 2016 at 20:12
  • 1
    also added 4 comments over the formulas for clarification Feb 6, 2016 at 20:18
1

Found an answer that works on Google Groups (by Troy):

  1. Publish your spreadsheet (copy the url)
  2. Create a new spreadsheet and use IMPORTXML function (replace the url with the url you get in step 1)
  3. You will get the data - you can then copy and paste the values where you need them
  4. Unpublish the spreadsheet (if you do not want it public)

Could be done by Script, but I have no time now. :)

1

Updated for 2022:

  1. Record a dummy macro, save it as "ExtractLinks".
  2. Then edit the macro to get to the script editor.
  3. Then paste the following and save:
function ExtractLinks() {
  var spreadsheet = SpreadsheetApp.getActiveSpreadsheet();
  var sheet = spreadsheet.getActiveSheet();
  var rows = sheet.getActiveRange().getValues();
  var z = sheet.getActiveRange().getRowIndex();
  var s = sheet.getActiveRange().getColumn();

  for (var r = 0; r < rows.length; r++) {
    var row = rows[r];
    for (var c = 0; c < row.length; c++) {
      var val = row[c];
      if (val) {
        var targetRange = sheet.getRange(r+z, c+s).getA1Notation();
        var result = Sheets.Spreadsheets.get(spreadsheet.getId(), {
          ranges: sheet.getName() + "!" + targetRange,
          fields: 'sheets.data.rowData.values'
        });
        if (result.sheets[0].data[0].rowData[0].values[0].hyperlink) {
          var url = result.sheets[0].data[0].rowData[0].values[0].hyperlink;
          var text = result.sheets[0].data[0].rowData[0].values[0].effectiveValue.stringValue;
          sheet.getRange(r + z, c + s).setValue(''+url);
        }
      }
    }
  }
};
  1. You can run the macro from Extensions > Macros > ExtractLinks

This is an adaptation of Natso's code, and will work for a range.

1
  • Two additional thoughts: Be sure to have the Sheets API turned on. And watch out for requests per minute quota limitations. Aug 3 at 4:42
0

I was able to solve this for Jotform in a very simple way.

I was looking to include the Edit link in a query, but it would only give me the text "Edit Submission."

However, I noticed that I had the form ID in Column R. I was then able copy the JotForm link and combine it with the cell reference "https://www.jotform.com/edit/"&R2

0

Ryan Tarpine's Example helped a lot. Thanks!

With the code below, you can replace all embedded links by standard HYPERLINK formulas within a selected Range. Please note, that the Advanced Sheets Service must be activated.

function embeddedURLsToHyperlink() {
  var spreadsheet = SpreadsheetApp.getActiveSpreadsheet();
  var sheet = spreadsheet.getActiveSheet();
  var rows = sheet.getActiveRange().getValues();
  var z = sheet.getActiveRange().getRowIndex();
  var s = sheet.getActiveRange().getColumn();

  for (var r = 0; r < rows.length; r++) {
    var row = rows[r];
    for (var c = 0; c < row.length; c++) {
      var val = row[c];
      if (val) {
        var targetRange = sheet.getRange(r+z, c+s).getA1Notation();
        var result = Sheets.Spreadsheets.get(spreadsheet.getId(), {
          ranges: sheet.getName() + "!" + targetRange,
          fields: 'sheets.data.rowData.values'
        });
        if (result.sheets[0].data[0].rowData[0].values[0].hyperlink) {
          var url = result.sheets[0].data[0].rowData[0].values[0].hyperlink;
          var text = result.sheets[0].data[0].rowData[0].values[0].effectiveValue.stringValue;
          sheet.getRange(r + z, c + s).setFormula('=HYPERLINK("' + url + '","' + text + '")');
        }
      }
    }
  }
}

I you want to process the full sheet, replace lines 4-6 by the following code:

var rows = sheet.getDataRange().getValues();
var z = 1;
var s = 1;
0

You can create a macro "ExtractURLs", then edit it with the following code which parses consistent text style blocks in the active cell, tries to retrieve URLs, and pastes them into a neighbor cell.


    function ExtractURLs() {
      
      var spreadsheet = SpreadsheetApp.getActive();
    
      var richTextCell = SpreadsheetApp.getActiveRange().getRichTextValue();
    
      var richTextStrings = richTextCell.getRuns();
      
      var linksStr = "";
      var linkCell = spreadsheet.getCurrentCell()
      var link = "";
      var richTextString = "";
    
      for (var x=0; x < richTextStrings.length; x++)
      {
        richTextString = richTextStrings[x].getText();
        
        Logger.log(richTextString);
    
        link = richTextStrings[x].getLinkUrl();
        Logger.log(link);
    
        if (link != null)
        {
         linksStr += link;
         linksStr += ', '; 
        }  
      }  
    
      var targetCell = linkCell.offset(0, 1).activate();
      targetCell.setValue(linksStr.substr(0,linksStr.length-2));
    };

-3

Quick way to do it If cell rows are limited --->

  1. just right click cell and click edit link
  2. Remove Text and Click Apply
  3. Use f4 for every cell that follow

Please if you have more to this or can be done with selection of cell. Let me know

2
  • But then you also lose the link text
    – brendan
    Jan 31, 2020 at 16:59
  • the main problem here is that the F4 overwrites the first url address over the current cell instead of removing the link name as it was desired. Jul 5, 2020 at 0:39

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