You should have my favorite flavor of ice cream in a variable named $flavor, and now it's time to display it to the scre

Question

Hello,

I have no idea what's wrong.... The preview looks good and right but I keep get errors all time.

output.php

<?php
include ("flavor.php");
$flavor = get_flavor();
echo "Randy's favorite flavor of ice cream is ".$flavor.".";

?>

Answer 1 · 2016-02-28T17:25:47Z

February 28, 2016 5:25pm

Hey Eitay,

Your code is correct, but (for some reason) you changed the name in the echo statement from "Hal's" to "Randy's". This is what is giving you the error. The code checker compares your code to a very specific value, so if you change a value that you weren't instructed to, it will throw an error. Just change that name back and you will be good to go.

Also, just a tip. While it isn't necessary, it is good practice to leave spaces around the concatenating periods. This just helps with code readability. Syntactically, both are correct... it's just more common to have spacing.

eg. Instead of

echo "Randy's favorite flavor of ice cream is ".$flavor.".";

Have

echo "Randy's favorite flavor of ice cream is " . $flavor . ".";

Keep Coding!

Answer 2 · 2016-02-28T17:29:33Z

February 28, 2016 5:29pm

Thank you Jason That was stupid error :)

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Eitay Zilbershmidet

Eitay Zilbershmidet

You should have my favorite flavor of ice cream in a variable named $flavor, and now it's time to display it to the scre

2 Answers

Jason Anders

Jason Anders

Eitay Zilbershmidet

Eitay Zilbershmidet