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koltton fox
2,576 PointsCreate a New Float Variable named $float On with a value of 1.5. Without changing the value of $integer On or $float On,
Create a New Float Variable named $floatOne with a value of 1.5. Without changing the value of $integerOne or $floatOne, multiply $integerOne by $floatOne and display the results.
$results = $integerOne *$floatOne
echo $results
NOt working
2 Answers
Joel Benitez
749 PointsQuestion:Create a New Float Variable named $floatOne with a value of 1.5. Without changing the value of $integerOne or $floatOne, multiply $integerOne by $floatOne and display the results.
Issue: I used the same php opening tag and it didn't work. why is it still asking "Are you sure you multiplied correctly?"
<?php
//Place your code below this comment $integerOne = 1; $integerTwo = 2; $floatOne = 1.5;
$integerOne = $integerOne + 5; var_dump($integerOne);
$integerTwo = $integerTwo - 1; var_dump($integerTwo);
$results = $integerOne * $floatOne;
echo($results); ?>
Vijay Ramdass
13,275 PointsHello,
Try removing the parenthesis around $results.
Joel Benitez
749 PointsVijay Ramdass
Thank you it worked!!
Vijay Ramdass
13,275 PointsVijay Ramdass
13,275 PointsNot sure if you are terminating your code or if it's in a php opening tag, but it should look something like this.