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What is the proper way to write the following code?

echo '<img src="'images/.$row['picture']. '"/>';

I want to display an image from the database.

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5 Answers 5

If I understand the question correctly,

<?php
echo '<img src="/images/' . $row['picture'] . '"/>';
?>

or

<?php
echo "<img src='/images/" . $row['picture'] . "'/>";
?>
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I would like to comment that concatenate html with data from sources which may be not controlled by you is not a good practice. In this case it's good to escape the data with htmlspecialchars function to prevent XSS atacks. owasp.org/index.php/… it's a good resource about XSS –  hdvianna Jun 13 at 12:14

You can use vprintf function: http://www.php.net/manual/ru/function.vprintf.php

vprintf('<img src="images/%s"/>', $row['picture']);

Or this:

echo "<img src=\"{$row['picture']}\" />";

Don't forget to escape html characters: http://php.net/manual/en/function.htmlspecialchars.php

$row['picture'] = htmlspecialchars($row['picture'], ENT_QUOTES);
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+1 for security concerns –  hdvianna Jun 13 at 12:02
    echo '<img src=images/'.$row['picture'].'>';
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Wouldn't this output: <img src=images/[variable]> img tags need to be <img src="/images/[variable]"/> –  d-_-b Apr 11 '12 at 4:56
    
@DankPiff I tried this code and found working. –  heyanshukla Apr 11 '12 at 5:03
echo  '<img src="images/'.$row['picture'].'" />';
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Try

<?php
echo "<img src=images/".$row['picture']."/>";
?>
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1  
Wouldn't this output: <img src=images/[variable]> img tags need to be <img src="/images/[variable]"/> –  d-_-b Apr 11 '12 at 4:56

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