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I have the following in myfile.php

$json_data = '{"type":"email","msg":"some text"}';

Instead of typing "email" or "some text" I want to concat the php variables $thetype and $themsg to the line before.

How can I do that? No matter what I do I get a syntax error.

I'm trying:

$json_data = '{"type":"+$thetype+","msg":"+$themsg+"}';

But as I say errors galore.

Thanks a lot

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2 Answers 2

up vote 5 down vote accepted

Your question is a little vague...

Are you looking for this?

$json = array('type' => $thetype, 'msg' => $themsg);
$json_data = json_encode($json);

That will set $json_data to a string like what you described:


$thetype = 'something';
$themsg = 'something else';
$json = array('type' => $thetype, 'msg' => $themsg);
$json_data = json_encode($json);

Would print:

string(43) "{"type":"something","msg":"something else"}"

See the PHP manual for json_encode.

You could try and build the string by hand, like this:

$json_data = '{"type":"'. addcslashes($thetype,"\"'\n").'","msg":"'. addcslashes($themsg,"\"'\n").'"}';

But, you'll generally be better off using json_encode, as it's designed for this purpose and is much less likely to produce invalid JSON.

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Is it possible to do anything like: $json_data = '{"type":"+$thetype+","msg":"+$themsg+"}';? –  user523129 Aug 25 '11 at 12:39
@user523129 Possible, yes. But not advisable. Using Josh's solution, you can be sure to get a correctly formated json string. Otherwise you can easily break the result. E.g. using $thetype = 'break " me'; –  Yoshi Aug 25 '11 at 12:48
It is possible, though it's just wrong. In either case, you have to encode data for JSON. In example provided by @Josh, you do it once on the whole array. If you want to do it "your way", you have to do it twice - $jsonType = json_encode($theType); $jsonMsg = json_encode($theMsg); $jsonData = "{\"type\":{$jsonType},\"msg\":{$jsonMsg}}"; - this is wrong as you have to both call json_encode() multiple times and have to manually build a string that is hard to read and modify. –  binaryLV Aug 25 '11 at 12:49
You could... I edited my answer to show how. But this is what json_encode is designed for –  Josh Aug 25 '11 at 12:50
@binaryLV I had addcslashes wrong at first. It takes two parameters, I had forgotten the second one which is a list of characters to escape. My example list above is nowhere near complete for valid JSON!!! –  Josh Aug 25 '11 at 13:08

PHP has a function to encode json. HOWEVER you need to output it as an object to save the keys. This is a 3D array by the way.

$data[]=array('type' => $thetype0, 'msg' => $themsg0);
$data[]=array('type' => $thetype1, 'msg' => $themsg1);

EDIT: This method should be used for OLDER PHP versions. It is compatible with PHP 5.3. The json_encode() function has several changes to it that makes it so the object output isnt available in PHP 5.2.

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Don't forget the JSON_FORCE_OBJECT option. –  salathe Aug 25 '11 at 13:45
-1, This isn't what he's asking... Also, you don't need to convert it to a object –  Josh Aug 25 '11 at 16:02

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