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So currently I'm working on a project that requires the use of PHP and JSON. The way I have currently set up my code is so that I read the JSON file in using file_get_contents and then use the built in json_decode() function. Everything is reading perfectly, it's the writing part that is giving me trouble.

The way I have my JSON tree set up is:

{
"test":[
        {
        "testName":"Winter 2011",
        "testDate":"12/04/2011",
        "testTime":"2:00pm",
        "testRoom":"room",
        "cap": 10,
        "spotsLeft": 0,
        "student":[
            {
                "fname":"Bob",
                "lname":"Roberts",
                "usrnm":"bobr",
                "email":"bob@gmail.com"
            }
        ]
    }
]
}

To get the right test (since there will be multiple tests) I'm using a foreach loop and then I make sure there isn't a duplicate. At this point I'm ready to add a new student to the JSON file so I call: `

$file = file_get_contents('testDates.json');
$json = json_decode($file, true);

//Go through each test in the file
foreach ($json[test] as $t){
   .....
   //Works if I only do $t[student] but that only adds it to the $t[] and not the
   //JSON file. Can't seem to get it to add to the whole JSON string.
   array_push($json[$t][student], $newStudent);
   echo json_encode($json);
   .....
   //Use a file_put_contents later to write the file out

Any thoughts would be extremely helpful. It's probably a pointer error to a certain point int he array but a second set of eyes never hurt. Thanks.

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As a point of style, use $array[] = $value instead of array_push($array, $value). It's clearer and more idiomatic. Also, quote your key names--this is a syntax error that happens to work as long as no constant with that name is defined. –  Francis Avila Dec 4 '11 at 19:21
    
Thanks Francis, I had disabled warnings on my server for some reason. Quoted all of my JSON references though. –  Will Dec 4 '11 at 19:33
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3 Answers

up vote 3 down vote accepted

$t is a copy, it is not referencing original object. This appens with every foreach cycle. Use instead:

foreach ($json[test] as $k => $t){
    array_push($json[test][$k][student], $newStudent);
    ...
}

Or you can try:

foreach ($json[test] as &$t){
    array_push($t[student], $newStudent);
    ...
}

See here to learn how foreach works: http://php.net/manual/en/control-structures.foreach.php

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1  
+1 But you need to be careful when using references in loops. When the loop finishes $t is still a reference to the last element. If you use $t again i.e. assign it a new value or use it in another loop you'll end up with hard to debug problems. The solution is to unset the reference after the loop. foreach( $collection as &$item ) { /*do stuff*/ }; unset( $item ); –  meouw Dec 4 '11 at 19:18
    
Great! I knew it was something with referencing the temporary value $t but using the reference worked like a charm. Thanks lorenzo-s! @meouw I am calling this PHP script once per submission. So will the values hold even though I am calling it on different occasions? aka I'm not modify the PHP file so it should remain the same and re-initialize the variables every time the button is pushed right? –  Will Dec 4 '11 at 19:28
    
@Will references only last for one script execution. If you don't use the reference again you don't have a problem. It's good practice to delete the reference tho, at some later date you or another developer may use the variable again cause problems. –  meouw Dec 4 '11 at 19:33
    
@meouw Alright, I'll make sure to unset at the end of my loop. Thanks for the advice! –  Will Dec 4 '11 at 19:35
    
In fact, I prefer the first solution I suggested, using key to access array element (instead of using a dangerous reference). Anyway, could you accept my answer, Will? :) –  lorenzo-s Dec 4 '11 at 22:51
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You're using wrong $json[$t] inside foreach instead of $json["test"][$t] and also you need to use key-value pairs

$testVal = $json["test"];
foreach ($testVal as $key => $val){
    . . .
    array_push($testVal[$key]["student"], $newStudent);
    . . .
}

P.S. use $json['test'] instead of $json[test], the first one causes syntax warning which PHP interprets as string "test" (in your case it's working:) )

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Try this:

$json = json_decode($jsonString);

if($json["color"] == "blue"){
 ...
}

$json["language"] = "php";

$newJsonString = json_encode($json);

Isn't that easy?

share|improve this answer
    
The issue is that it is a multi-level tree. First I needed to find the correct test to put the student under and then add them to that level. –  Will Dec 4 '11 at 19:29
    
@Will I think $json["language"]["interpreted"] = "Java"; will work too! –  aoeu Dec 4 '11 at 20:40
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