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I am trying to echo an image in PHP however I am only achieving the URL. This is using the Instagram API.

echo $pics['data'][0]['images']['standard_resolution']['url'];

Whats confusing me is where to use the <img src= /> without the code breaking.

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3 Answers 3

up vote 6 down vote accepted
echo "<img src=\"".$pics['data'][0]['images']['standard_resolution']['url']."\">";
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It's funny how this line of code is an answer to some question. – deadlock Mar 4 '13 at 18:48

You will want to use the complex syntax for outputting values from complex variable types into double quoted and parsed strings.


echo "<img src='{$pics['data'][0]['images']['standard_resolution']['url']}'>";


<img src=''>

php codepad of example

From the PHP documentation on Strings, and more specifically Double Quoted strings.

Any scalar variable, array element or object property with a string representation can be included via this syntax. Simply write the expression the same way as it would appear outside the string, and then wrap it in { and }.

I believe this method of including strings adds to readability when there would otherwise be no advantage to assigning the value to a simple variable prior to it's use in a string.

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Assuming that $pics['data'][0]['images']['standard_resolution']['url']; refers to an image url, you'll want to do something like...

<? $url = $pics['data'][0]['images']['standard_resolution']['url'];
echo "<img src=\"".$url."\">";

This does the SAME thing that Duniyadnd suggested, but makes the output "part" a bit more readable.

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Thanks, I'm sure both answers are correct - It may be something on my part why they aren't showing up. I will continue to plug, play and fix. Its appreciated – bruh Mar 5 '13 at 13:04

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