0

My spreadsheet has a column (A) with over 1000 rows of values like 10.99€, 25.99 € and so on. for optimizing purposes, I am looping through this column and removing the "EUR" mark and replacing "." with ",". While the code works, my problem is that it takes super long to execute and for thousands of products it sometimes time outs. I know I am probably not following the best practices, but this was the best solution I could come up with because of my limited JavaScript skills. Any help?

function myFunction() {
  var ss = SpreadsheetApp.getActive();
  var sheet = ss.getSheetByName('Table');
  var lastRow = sheet.getRange(1,1).getDataRegion(SpreadsheetApp.Dimension.ROWS).getLastRow();
  for (var i = 1; i < lastRow +1; i++) {
    var price = sheet.getRange(i,1).getValue();
    var removeCur = price.toString().replace(" EUR","").replace(".",",");
    sheet.getRange(i,1).setValue(removeCur);
  }
}

3
  • 1
    You have a an API call in every for loop iteration, that indeed is slow. What you need to do is get your range values, run map() through every value and then paste the new array into your spreadsheet once. There is more on best practices on Google Developers here if you like. Jul 16, 2021 at 10:24
  • I see no accepted answer. Why? Are you waiting another correct answer? Jul 17, 2021 at 12:12
  • Yuri, thank you for a brilliant answer. Marked it correct.
    – Tane
    Jul 18, 2021 at 17:06

2 Answers 2

7

It's a classic question. Classic answer -- you need to replace cell.getValue() with range.getValues(). To get this way 2D-array. Process the array with a loop (or map, etc). And then set all values of the array at once back on sheet with range.setValues()

https://developers.google.com/apps-script/guides/support/best-practices?hl=en

For this case it could be something like this:

function main() {
  var ss    = SpreadsheetApp.getActive();
  var sheet = ss.getSheetByName('Table');
  var range = sheet.getDataRange();
  var data  = range.getValues(); // get a 2d array

  // process the array (make changes in first column)
  const changes = x => x.toString().replace(" EUR","").replace(".",",");
  data = data.map(x => [changes(x[0])].concat(x.slice(1,)));

  range.setValues(data);  // set the 2d array back to the sheet
}

Just in case here is the same code with loop for:

function main() {
  var ss    = SpreadsheetApp.getActive();
  var sheet = ss.getSheetByName('Table');
  var range = sheet.getDataRange();
  var data  = range.getValues();

  for (var i=0; i<data.length; i++) {
    data[i][0] = data[i][0].toString().replace(" EUR","").replace(".",",")
  }
  
  range.setValues(data);  
}

Probably the loop for looks cleaner in this case than map.

And if you sure that all changes will be in column A you can make the script even faster if you change third line in the function this way:

var range = sheet.getRange("A1:A" + sheet.getLastRow());

It will narrow the range to one column.

0
0

Well, there's something you can do to improve your code, can't guarantee it will help you to make it faster, but we'll see.

Here's the updated version

function myFunction() {
   var ss = SpreadsheetApp.getActive();
   var sheet = ss.getSheetByName('Table');
   var lastRow = sheet.getRange(1,1).getDataRegion(SpreadsheetApp.Dimension.ROWS).getLastRow() + 1;
   var price;
   var removeCur;
   for (var i = 1; i < lastRow; i++) {
       price = sheet.getRange(i,1).getValue();
       removeCur = price.toString().replace(" EUR","").replace(".",",");
       sheet.getRange(i,1).setValue(removeCur);
   }
}

What I did:

  1. Line 5: I removed the +1 in the loop and added on lastRow directly. If you have 1000 rows, you'll save 1000 assignments
  2. Line 6-7: removed declarations in the loop. If you have 1000 rows, you'll save 2000 re-declarations (not sure if it does, but it's best practise anyway)

You could use regex for the replace, so you do it only once, but I think it's slower, so I kept the 2 replaces there

1
  • Thank you for your answer and improvements. Unfortunately its still running as slow as before.
    – Tane
    Jul 16, 2021 at 10:07

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.