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How can I send $_POST values from a form to an image tag? Image is created by another PHP file with post values. Code example:

<form name="grafiks" action="<?php echo $_SERVER['PHP_SELF'];?>" method="post"     onsubmit="check()">

<select name="kolsk" onchange="this.form.submit()" >
                <option></option>
                <option <?php if(isset($_POST['kolsk']) &&     $_POST['kolsk'] == '1') echo 'selected="selected"' ?> value="1">1</option>
                <option <?php if(isset($_POST['kolsk']) &&     $_POST['kolsk'] == '2') echo 'selected="selected"' ?> value="2">2</option>
                <option <?php if(isset($_POST['kolsk']) &&     $_POST['kolsk'] == '3') echo 'selected="selected"' ?> value="3">3</option>

</select>

</form>
<?php
if(isset($_POST['kolsk'])){ 
$kolsk = $_POST['kolsk'];
}


echo '<img src = "myplot2.php" ?$kolsk >';
?>
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I don't get it. You mean you want the POST variable kolsk to be in the src attribute for the image? –  Robert Dundon Apr 3 '14 at 17:51

2 Answers 2

up vote 1 down vote accepted

You just need to wrap your server-side code in the <?php ?> tags, just as you do earlier in the file. Something like this:

<?php
  if(isset($_POST['kolsk'])){ 
    $kolsk = $_POST['kolsk'];
?>
    <img src="myplot2.php?<?php echo $kolsk ?>" />
<?php
  }
?>

It's not 100% clear if that src value is a valid URL for your needs. If that's a query string parameter then you'd need a key to go with that value, perhaps something like:

<img src="myplot2.php?kolsk=<?php echo $kolsk ?>" />
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Thanks tahats work. Nowhere on internet cant find this thing. –  user3492788 Apr 3 '14 at 18:13

Not sure if you're trying to set the image src dynamically or something else, but

<img src = "myplot<?php echo $_POST['kolsk'];?>.jpg" >

should produce myplot1.jpg, myplot2.jpg, myplot3.jpg depending upon the user selection.

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