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For testing purposes, I wish to use Ajax to request some JSON from the server. From the Ajax client's perspective, the JSON should look like:

json=[
    {"source":"pa","jsonstring": '{"a":1,"b":2,"c":3}'},
    {"source":"pa","jsonstring": '{"a":1,"b":2,"c":3}'},
    {"source":"pa","jsonstring": '{"a":1,"b":2,"c":3}'}
];

Note that jsonstring is not JSON, but a string, and $.getJSON() should not parse it into an object.

My attempt is below, however, I get error Parse error: syntax error, unexpected ',' in /var/www/test/src/classes/Ajax.php on line 13.

How should this be performed?

$content=file_get_contents('../buffer.json',true); //Line 13
$buffer=$content?json_decode($content):[];

$json=json_encode(['a'=>1,'b'=>2,'c'=>3]);
$buffer[]=[
    'source'=>'pa',
    'jsonstring'=>'"'.$json.'"'
];

$buffer=json_encode($buffer);
file_put_contents('../buffer.json',$buffer);

header('Content-Type: application/json');
echo($buffer);

buffer.json output is shown below:

[{"source":"pa","jsonstring":"\"{\"a\":1,\"b\":2,\"c\":3}\""},{"source":"pa","jsonstring":"\"{\"a\":1,\"b\":2,\"c\":3}\""}]
  • @epascarello I don't want JSON as the content of json.jsonstring, but just a string (which happens to look like JSON, but shouldn't be interpreted as JSON by the browser). – user1032531 Mar 8 '17 at 13:52
  • Are you sure that line 13 is $content=file_get_contents('../buffer.json',true);? Can you confirm that? – Eduardo Escobar Mar 8 '17 at 13:54
  • @EduardoEscobar Confirmed. I added the earlier lines. – user1032531 Mar 8 '17 at 13:56
  • The only comma (',') i see in line 13 is within file_get_contents() function, and it doesn't seem to be unexpected to me. – Eduardo Escobar Mar 8 '17 at 13:58
  • You should not change your code to match an answer given below as then the answer will loose its meaning. If you have additional comments, just put them below the original question. – jeroen Mar 8 '17 at 13:59
5

Have you tried removing the extra quotes from 'jsonstring'=>'"'.$json.'"'? If you json_encode it (which it looks like you do), then it is already a string. I think it should be 'jsonstring' => $json.

  • But that will make jQuery interpret it as JSON which I don't wish to do. It needs to be interpreted as a string. – user1032531 Mar 8 '17 at 13:53
  • @user1032531 No, you are encoding the $buffer object later on so when that gets decoded, the inner encoded strings will still be strings. – jeroen Mar 8 '17 at 13:56
  • @user1032531 this works, try it – Vitaliy Ryaboy Mar 8 '17 at 13:56
  • It doesn't seem to be a JSON format error, but a syntax error, odd enough i might add. – Eduardo Escobar Mar 8 '17 at 13:59
  • Dah, I wasn't thinking. Thanks – user1032531 Mar 8 '17 at 14:01

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