Welcome to the Treehouse Community
Want to collaborate on code errors? Have bugs you need feedback on? Looking for an extra set of eyes on your latest project? Get support with fellow developers, designers, and programmers of all backgrounds and skill levels here with the Treehouse Community! While you're at it, check out some resources Treehouse students have shared here.
Looking to learn something new?
Treehouse offers a seven day free trial for new students. Get access to thousands of hours of content and join thousands of Treehouse students and alumni in the community today.
Start your free trial
Yisroel stadler
2,910 Pointsjavascript problem
I don't understand this part
function returnValue(accept) {
return accept;
var echo = returnValue('hello');
}
<!DOCTYPE HTML>
<html>
<head>
<meta http-equiv="Content-Type" content="text/html; charset=UTF-8">
<title>JavaScript Basics</title>
</head>
<body>
<script src="script.js"></script>
</body>
</html>
1 Answer
Collin Halliday
Full Stack JavaScript Techdegree Student 17,491 PointsHey, Yisroel.
You want to make sure that your variable declaration and your call to the returnValue() function are outside of the returnValue() function. The way you have it written currently, nothing will happen because your function is never called. The returnValue() function will not execute until called from somewhere outside of itself. However, even if you called the function as you have it written currently, your variable declaration for "echo" and its initialization to "returnValue('hello')" will never run because that line of code is placed after the function's return statement. After that return statement, your program will exit the function and any code included afterword will be ignored.
Try moving the following line outside of and after the function: "var echo = returnValue('hello');"
I hope that is helpful. Best of luck!
Yisroel stadler
2,910 PointsYisroel stadler
2,910 PointsYes it did, thank you so much!