0

I've got a number located in result.score. Essentially, if the following calculation {Math.round((result.score / 89).toFixed(2) * 100)} is 0 -> 24 I would like to make the pathColor: in CircularProgressbar red, if 25 -> 50 I would like to make it yellow and if it's 51 -> 100 I would like to make it green. What is the easiest way to do this?

const Graph = () => (
  <div class="score">
    {results.length > 0 && (
      <div>
        {results.map((result) => (
          <CircularProgressbar
            value={result.score}
            text={`${Math.round((result.score / 89).toFixed(2) * 100)}%`}
            styles={buildStyles({
              pathColor: "#2bad60",
              textColor: "#2bad60",
              trailColor: "#0b0c18",
              backgroundColor: "#3e98c7",
            })}
          />
        ))}
      </div>
    )}
  </div>
);

Thank you.

1
  • Sorry, I don't understand your comment. I just want to change the pathColor: #2bad60 based on the result from Math.round((result.score / 89).toFixed(2) * 100). Not sure what other information is required.
    – flowermia
    Apr 14, 2022 at 7:49

2 Answers 2

4

You can declare this calculation in a new constant and then use the following:

const scoreVar = Math.round((result.score / 89).toFixed(2) * 100)

pathColor: scoreVar <= 24 ? "orange" : (scoreVar <= 50 ? "yellow" : "green"),
0
0

You can make some class "red", "yellow", "green" and add one of them to your progress bar depending on the value.

2
  • I'm quite new to React, could you show me how this could be done? Thanks
    – flowermia
    Apr 14, 2022 at 7:52
  • I don't know about React neither but accord to the progress bar I found here : codepen.io/JimmyMultani/pen/mmMqYb you can check the value, add a class depending on it and set the stroke value in css, but it may not be the best way in React
    – Cédric
    Apr 14, 2022 at 8:14

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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