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PHP arrays

$grades = array( array( name => "tom", 
                  grade => 'A'

                ),
           array( name => "jeff", 
                  grade=> 'B'

                ),
           array( name => "lisa", 
                  grade => 'C'
                )
         );

$output=array
(  'status'=>'ok',
   'content'=>$grades
)

And the final JSON output I want to see would be {"status":'ok',"content":"{"tom":"A","jeff":"B","lisa":"B"}"}

The question is how should I manipulated the array so it can give me the final output like above JSON? would json_encode($output); echo $output do the trick? or
Do I have to do

json_encode($grades) then another json_encodes($output) but I am seeing extra \ thing like {"status":1,"content":"{\"tom\":\"A\",\"jeff\":\"B\",\"lisa\":\"B\"}"}

share|improve this question
2  
Why don't you try and see what happens? –  vascowhite Oct 9 '11 at 6:04
    
I try but couldn't get that final result I wanted to see. –  lilzz Oct 9 '11 at 6:31
2  
Do you really want to content to be a quoted object literal? Maybe you actually want it to be an object? –  Corbin Oct 9 '11 at 6:35

5 Answers 5

up vote 1 down vote accepted

I don't understand why you don't write just this:

<?php
$grades = array(
    array(
        'name' => 'tom',
        'grade' => 'A'
    ),

    array(
        'name' => 'jeff',
        'grade' => 'B'
    ),

    array(
        'name' => 'lisa',
        'grade' => 'C'
    ),
);

$output = array(
    'status'  => 'ok',
    'content' => $grades,
);

print_r(json_decode(json_encode($output)));

It prints:

stdClass Object
(
    [status] => ok
    [content] => Array
        (
            [0] => stdClass Object
                (
                    [name] => tom
                    [grade] => A
                )

            [1] => stdClass Object
                (
                    [name] => jeff
                    [grade] => B
                )

            [2] => stdClass Object
                (
                    [name] => lisa
                    [grade] => C
                )

        )

)

Isn't is the expected result?

share|improve this answer
    
print_r(json_encode($output) seems to work. –  lilzz Oct 9 '11 at 7:03

Don't call json_encode($grades) before json_encode($output), unless you have some unmentioned reason to want the grades as a string literal instead of json object. json_encode() will recursively encode all child arrays inside $output, there's no need to encode them separately.

share|improve this answer

As you may have figured out, an array's associative keys get represented as keys in the resulting JSON object, e.g. {key1: value1, ...}, as clearly demonstrated from the output you got.
Secondly, an array containing other arrays will be represented as a list in JSON, e.g. [...] I believe your earlier code should looked something like this:

$grades = array(
    array('name' => 'tom', 'grade' => 'A'),
    array('name' => 'jeff', 'grade' => 'B'),
    array('name' => 'lise', 'grade' => 'C'),
);

$output = array(
    'status' => 'ok',
    'content' => $grades
);

echo json_encode($output);

So applying the rules I have outlined above will result in the JSON below.

{"status":"ok","content":[{"name":"tom","grade":"A"},{"name":"jeff","grade":"B"},{"name":"lise","grade":"C"}]}  

I personally think you should use this since it is a better representation than the one you desire to have. However, the codes below should give you your results.

$grades = array(
    'tom' => 'A',
    'jeff' => 'B',
    'lisa' => 'B',
);

$output = array(
    'status' => 'ok',
    'content' => $grades
);

echo json_encode($output);

Output:

{"status":"ok","content":{"tom":"A","jeff":"B","lisa":"B"}}
share|improve this answer

The reason you are getting the 'extra' \ is that what you say you want as output is not valid JSON. PHP's default function has it right, yours will not parse in a JSON parser.

If you really want almost-json, you'll have to roll your own.

share|improve this answer
    
You mean there are no standard way to see {"status":'ok',"content":"{"tom":"A","jeff":"B","lisa":"B"}"} ? –  lilzz Oct 9 '11 at 6:32
2  
No. Quotes must be escaped inside of quotes in JavaScript. What you want is a syntax error. –  Corbin Oct 9 '11 at 6:34
    
@lilzz no, there is a standard way - the way that PHP encoded it. I saying that the way you want to have encoded it is ambiguous. –  tobyodavies Oct 9 '11 at 6:38

you have to change the format of $grade array to get the desired output . try below

$grade_format= array();
foreach($grades as $k=>$v)
{
 //array_push($output,$k);
 $grade_format[$v['name']]=$v['grade'];
}
//echo "<pre>";
//print_r($grade_format);

$output=array
(  'status'=>'ok',
   'content'=>$grade_format
);

echo "<pre>";
echo json_encode($output,JSON_FORCE_OBJECT);
//output would be 
{"status":"ok","content":{"tom":"A","jeff":"B","lisa":"C"}}

is that you want??

REFERENCE

share|improve this answer
    
print_r(json_encode($output) does the trick. –  lilzz Oct 9 '11 at 7:07
    
no! this is just a function to see the output. –  diEcho Oct 9 '11 at 7:14

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