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displaying image
Re: displaying image [message #181282 is a reply to message #181279] |
Wed, 01 May 2013 19:19 |
Scott Johnson
Messages: 196 Registered: January 2012
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Senior Member |
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On 5/1/2013 9:31 AM, richard wrote:
> http://mroldies.net/showtable.php?year=1960
> Click on first link only.
>
> I am using a 2d array and want to display an image based upon the number
> key of that array.
>
> <?php echo "<img src='$list[1]['cover']'>"; ?>
>
> This line gives a place holder in firefox and in IE.
> It should at least show this image.
> http://mroldies.net/covers/1960-001.jpg
>
I think the problem you are having is you are using a 'complex' var in a
simple parse method (double quotes).
Once the engine hit the first closing array index bracket ']', the var
is done being parsed.
Try concatenate with '.'
<?php echo "<img src='" . $list[1]['cover'] . "'>"; ?>
or my favorite, use the complex type parsing with curlies.
<?php echo "<img src='{$list[1]['cover']}'>"; ?>
Scotty
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