3

I beginner in php and I am making small project which will help me learn more php. any way on webserver I have uploaded pictures which in this format:

1.jpg
2.jpg
3.jpg
4.jpg
5.jpg 

and so on....

in the body of my page I have:

<?php
$imageNumber = 1;
?>
<img src="'$imageNumber'.'.jpg'">

why is this code is not working ? also I want to create a function that every time the user click a button the $imageNumber get incremented by 1

2
  • 1
    <img src="<?php echo $imageNumber ?>.jpg"> would probably do it for you. – Christofer Eliasson Feb 9 '12 at 21:09
  • First you need Array on images, than calculate this array, for each keyitem of array create template your <img src="<?php echo $val?; >".jpg alt="echo url " /> – Александр Сонич Jan 29 '19 at 12:54

10 Answers 10

7

You can only use PHP variables inside PHP tags.

<?php
   $imageNumber = 1;
   echo '<img src="'.$imageNumber.'.jpg'">';
?>

Or

<?php
   $imageNumber = 1;
?>
<img src="<?php echo $imageNumber ?>.jpg">

For the function, use javascript. jQuery would be simplest, but I've included a raw version too:

  <!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 4.01 Transitional//EN"
        "http://www.w3.org/TR/html4/loose.dtd">
  <html>
  <head>
     <title></title>
     <script type="text/javascript" src="http://code.jquery.com/jquery-1.5.1.min.js"></script>

  </head>
  <body>

  <img id="the_image" src="1.jpg">

  <input type="button" id="the_button" value="change" />

  <script type="text/javascript">
     var maxNumImages = 5;
     // for the function, use javascript. jQuery would be simplest:
     jQuery(function($) {

        $('#the_button').click(function() {
           var num = ($('#the_image').attr('src').match(/(\d+).jpg$/)||[false])[1];
           if( num !== false ) {
              if( num == maxNumImages ) { num = 0; }
              $('#the_image').attr('src', (++num)+'.jpg');
           }
        });

     });
  </script>

  <img id="the_image2" src="1.jpg">

  <input type="button" id="the_button2" value="change" />

  <script>
     // or in old fashioned (i.e. boring,sad,pathetic,vanilla) js:
     var maxNumImages = 5;
     var button = document.getElementById('the_button2');
     button.onclick = function() {
        var image  = document.getElementById('the_image2');
        console.log(image.src);
        var num = (image.src.match(/(\d+).jpg$/)||[false])[1];
        console.log(num);
        if( num !== false ) {
           if( num == maxNumImages ) { num = 0; }
           image.src = (++num)+'.jpg';
        }
     }
  </script>


  </body>
  </html>
6
  • as others have stated, you would do the button in javascript – Kato Feb 9 '12 at 21:12
  • Don't forget to point the first <script> to a jQuery installation :) – halfer Feb 9 '12 at 21:22
  • @kato I tried to use the code, the image code is working, but when I click the button change the image does not change or the url of the page. – user1200640 Feb 9 '12 at 21:23
  • Well I'd like to help, but jsfiddle is down today, so there can be no coding :) Alright, let me have a look; are you using the jQuery or the js version? – Kato Feb 9 '12 at 22:09
  • Looks like I mistakenly put in \D instead of \d; le sigh; updating now :) Also, ++num will work better than num++; I'll post a full working example in just a min – Kato Feb 9 '12 at 22:14
2

I hope this is not your only code??

  • You forget an echo (or print)
  • Strange single/dubbel quotes
  • strange dot

You are searching for something like:

<img src="<?php echo $imageNumber; ?>.jpg">

And to increase a number use ++

$i = 0;
echo ++$i; // echo's 1 (increase the number and print it)
echo $i++; // echo's 1 (print it and then increase the number)
echo $i; // echo's 2 (print the number)

And for a click on a button you can better use JS:

<img src="1.jpg" id="img-id">
<button id="increaseImg">Increase img</button>

<script>
  var img = document.getElementById('img-id'), // get the img tag
      btn = document.getElementById('increaseImg'), // get the button tag
      i = 1; // the number

  btn.onclick = function() {
    img.src = ++i + '.jpg'; // each click increase i and change the img src
  };
</script>
1

$variables don't magically work outside of a PHP code block.

The following approaches would do what you're trying to do:

<?php
$imageNumber = 1;
echo '<img src="' . $imageNumber . '.jpg">';
?>

Or

<?php
$imageNumber = 1;
?>
<img src="<?php echo $imageNumber; ?>.jpg">
13
  • 1
    Please don't jump in with a non-answer having no explanation or code samples to be the 1st answerer. It isn't helpful. – Michael Berkowski Feb 9 '12 at 21:12
  • @halfer Because it had no content other than the first sentence until it was edited following a bunch of downvotes. – Michael Berkowski Feb 9 '12 at 21:13
  • @halfer I didn't include the code samples until after I started getting downvotes. I think people thought "magically" was too snarky. Really just meant it as a reference to the way PHP parses variables inside double-quotes, but whatever... – Farray Feb 9 '12 at 21:13
  • @Michael That wasn't the intention. I didn't realize until after it started getting downvoted that a code sample would be needed. – Farray Feb 9 '12 at 21:14
  • @Michael - thanks. Strange, I don't see any note to show it's been edited, but ah well. – halfer Feb 9 '12 at 21:16
1
<?php
$imageNumber = 1;
?>
<img src="<?php echo $imageNumber; ?>.jpg" />

OR

<?php
$imageNumber = 1;
echo "<img src='$imageNumber.jpg' />";
?>

OR

<?php
$imageNumber = 1;
echo '<img src="' . $imageNumber . '.jpg" />';
?>

Don't use PHP for the click button thing. Use JavaScript.

1
<?php
$imageNumber = 1;
?>
<img src="<?php echo $imageNumber;?>.jpg">
1

Try this. PHP variables will only be parsed inside the php tags.

<?php
$imageNumber = 1;
echo "<img src=\"{$imageNumber}.jpg\">";
?>
1

You have set the variable $imageNumber properly, however you then need to output it with echo:

<?php
$imageNumber = 1;
?>
<img src="<?php echo $imageNumber; ?>.jpg">
1

PHP code only works inside the PHP opening and closing tags (<?php ?>).

The following block works:

<?php

$imageNumber = 1;

?>
<img src="<?php echo $imageNumber; ?>.jpg" />

Everything inside the PHP tags will be interpreted by PHP, the rest remains unaffected.
With the line <?php echo $imageNumber; ?>, PHP will echo ('send to the browser') the variable $imageNumber. Thus, the browser the receives this:

<img src="1.jpg" />
0
    <img src="<?PHP echo $imageNumber ?>.jpg">
0
0

First you need Array on images, than calculate this array, for each keyitem of array create template your ".jpg alt="echo url " />

`

$images= array("1", "2", "3", "4", "5", "6");

shuffle($images);
foreach ($images as $img) {
    echo "<img src='imagesDirectory/$img.jpg'> <br>";
}

`

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