5

I created this simple Php example to begin my study.

This is Index.html:

<!DOCTYPE html>
<html>
<head>
    <title>Prova</title>
</head>
<body>
<form action="script.php" method="get"/>
<table>
    <tr>
        <td>Cognome</td>
        <td><input type="text" name="cognome" id="cognome"/></td>
    </tr>
</table>
<table>
    <tr>
        <td><input type="submit" value="Invia"/></td>
    </tr>
</table>
</form>
</body>
</html>

This is script.php:

<?php
    $cognome = $_REQUEST['cognome'];
    if ($cognome = "Giacomo" )
        {
        echo "<p><img src='Giacomo.jpg'<p>/>";
        }
    else 
        {
        echo "<img src='IMG.jpg'<p>/>";
        }
?>

Its run, but if i write Giacomo show Giacomo.jpg and image.jpg. I want only Giacomo.jpg.

Thanks

  • 3
    As well as the answer below you have HTML errors should be <p><img src='Giacomo.jpg' /></p>. – chris85 May 2 '15 at 15:33
  • Your form is sent as a GET request, so you should use the $_GET variable. Using the $_REQUEST variable may cause unintended problems (unless you specifically design your code to be method agnostic). – Sverri M. Olsen May 2 '15 at 15:43
4

You are assigning $cognome = "Giacomo" in the if statement (which is evaluated to true after that), you should compare with == or === instead:

if ($cognome === "Giacomo")
   echo "<p><img src='Giacomo.jpg'></p>";
else
   echo "<p><img src='IMG.jpg'></p>";

P.S. It should be <p></p> and <img >.

  • ok notulysse now a can see only one image. But at the end of image it appear ";} else {echo " this part of the code. Why? – Francesco Irrera May 2 '15 at 15:36
  • @Frik: there is only one line proceeding after each if/else, so I've omitted curly braces. – potashin May 2 '15 at 15:38
2

You have at least two options:

1) Use the === or == operator

<?php
  $cognome = $_REQUEST['cognome'];
  if ($cognome === "Giacomo")
  {
    echo "<p><img src='Giacomo.jpg'<p>/>";
  } else {
    echo "<img src='IMG.jpg'<p>/>";
  }
?>

2) Use the strcmp function:

<?php
  $cognome = $_REQUEST['cognome'];
  if (strcmp($cognome,"Giacomo") === 0)
  {
    echo "<p><img src='Giacomo.jpg'<p>/>";
  } else {
    echo "<img src='IMG.jpg'<p>/>";
  }
?>

I hope I have helped you in it.

  • Ahh , if you use the '=' operator you assign the value to the variable. – Caio Ladislau May 2 '15 at 15:41
1

You need to use == for comparison, not = and you should fix your HTML tags like so:

<?php
  $cognome = $_REQUEST['cognome'];
  if ($cognome == "Giacomo" )
    {
    echo "<p><img src='Giacomo.jpg'></p>";
    }
  else 
    {
    echo "<p><img src='IMG.jpg'></p>";
    }
?>
1

Like notulysses mentioned, using $cognome = "Giacomo" will set the variable (even in an if statement) because of the single =

Using == is an evaluation, used to question and compare values of the two objects on either side of the == but it only compares the value, not the type.

Comparing the value and type is done with === So for example;

$number1 = 5;
$number2 = "5"; //notice the quotes
if ($number1 == $number2) { echo "true"; } else { echo "false"; }
// this will echo true

However

$number1 = 5;
$number2 = "5";
if ($number1 === $number2) { echo "true"; } else { echo "false"; }
// this will echo false`

The reason for this is $number1 is evaluated as a number, while $number2 is a string because of the quotes.

Another thing I see in your code is

echo "<img src='IMG.jpg'<p>/>";

should be

echo "<p><img src='IMG.jpg' /></p>";

And the same goes for your other image.

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