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It's stored inside MongoDB and passed to my view file with json_decode.

Using PHP, how can I grab the values from within?

"environment" : {
            "_id" : "QU",
            "name" : "QA Unstable",
            "streams" : "unstable",
            "hosts" : [
                    "deployclient1",
                    "deployclient2"
            ]
}
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4  
print_r(json_decode($str,true)); ? –  Dagon Dec 10 '12 at 21:16
    
Your JSON snippet isn't well formed. You need to enclose it in curly braces –  JavaKungFu Dec 10 '12 at 21:21
    
When making queries to MongoDB using MongoClient class (PECL extension for Mongo), the class automatically deserializes the data to a PHP Array. You may consider storing the data 'environment' as structured data itself inside Mongo so that you never have to deal with calling json_decode explicitly. –  Manu Aug 20 '13 at 9:13
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3 Answers

up vote 3 down vote accepted

Now to actually answer the question since you already know of json_decode:

Using PHP, how can I grab the values from within?

json_decode will evaluate the JSON string into a object in PHP (by default) which means you can use basic dynamic accession syntax to get to your values, i.e. to get _id:

$object->environment->_id;

Or a host:

$object->environment->hosts[0]

That will return: deployclient1

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THANK YOU! Someone answered my question. :-) –  luckytaxi Dec 10 '12 at 22:33
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Use $array = json_decode($json_string, TRUE);. Second variable makes it array if you supply TRUE or object if you omit it.

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Don't forget to wrap the string in curly braces...

$str = '{"environment" : {
            "_id" : "QU",
            "name" : "QA Unstable",
            "streams" : "unstable",
            "hosts" : [
                    "deployclient1",
                    "deployclient2"
            ]
}}';

print_r(json_decode($str, true));
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