Using JSON in PHP language and restoring json to array, json array

Using JSON in PHP language and restoring json to array, json array_PHP tutorial

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Release： 2016-07-13 10:09:49

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Use JSON in PHP language and restore json to array, json array

I have written a simple example of returning json data in php before. I just went online and suddenly found an article , also introduces json, which is quite detailed and worth reference. The content is as follows

Starting from version 5.2, PHP natively provides json_encode() and json_decode() functions, the former is used for encoding, and the latter is used for decoding.

1. json_encode()

1 2 3 4 <?php $arr = array ('a'=>1,'b'=>2,'c'=>3,'d'=>4,'e'=>5); echo json_encode($arr); ?>

Output

1	`{"a":1,"b":2,"c":3,"d":4,"e":5}`

Look at another example of object conversion:

1 2 3 4 5 6 $obj->body = 'another post'; $obj->id = 21; $obj->approved = true; $obj->favorite_count = 1; $obj->status = NULL; echo json_encode($obj);

Output

1 2 3 4 5 6 7 8 9 10 11 { 　　　"body":"another post", 　　　　"id":21, 　　　　"approved":true, 　　　　"favorite_count":1, 　　　　"status":null 　}

Since json only accepts utf-8 encoded characters, the parameters of json_encode() must be utf-8 encoded, otherwise you will get empty characters or null. When Chinese uses GB2312 encoding, or foreign languages use ISO-8859-1 encoding, special attention should be paid to this point.

2. Index array and associative array

PHP supports two types of arrays, one is an indexed array that only stores "value" (value), and the other is an associative array that stores "name/value" (name/value) .

Since javascript does not support associative arrays, json_encode() only converts the indexed array to array format, and converts the associative array to object format.

For example, now there is an index array

1 2 3 $arr = Array('one', 'two', 'three'); echo json_encode($arr);

Output

1	`["one","two","three"]`

If you change it to an associative array:

1 2 3 $arr = Array('1'=>'one', '2'=>'two', '3'=>'three'); 　 echo json_encode($arr);

The output becomes

1	`{"1":"one","2":"two","3":"three"}`

Note that the data format has changed from "[]" (array) to "{}" (object).

If you need to force "index array" into "object", you can write like this

1	`json_encode( (object)$arr` `);`

1	`json_encode (` `$arr, JSON_FORCE_OBJECT );`

3. Class conversion

The following is a PHP class:

1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 class Foo { 　　const ERROR_CODE = '404'; 　　public $public_ex = 'this is public'; 　　private $private_ex = 'this is private!'; 　　protected $protected_ex = 'this should be protected'; 　　　public function getErrorCode() { 　　　　return self::ERROR_CODE; 　　} }

Now, perform json conversion on the instance of this class:

1 2 3 4 5 $foo = new Foo; $foo_json = json_encode($foo); echo $foo_json;

The output result is

1	`{"public_ex":"this is public"}`

You can see that except for public variables (public), other things (constants, private variables, methods, etc.) are missing.

4. json_decode()

This function is used to convert json text into the corresponding PHP data structure. Here is an example:

1 2 3 4 5 $json = '{"foo": 12345}'; 　 $obj = json_decode($json); print $obj->{'foo'}; // 12345

Normally, json_decode() always returns a PHP object, not an array. For example:

1 2 3 $json = '{"a":1,"b":2,"c":3,"d":4,"e":5}'; 　 var_dump(json_decode($json));

The result is to generate a PHP object:

1 2 3 4 5 6 7 8 9 10 object(stdClass)#1 (5) { 　　["a"] => int(1) 　　["b"] => int(2) 　　["c"] => int(3) 　　["d"] => int(4) 　　["e"] => int(5) }

If you want to force the generation of PHP associative array, json_decode() needs to add a parameter true:

1 2 3 $json = '{"a":1,"b":2,"c":3,"d":4,"e":5}'; 　　　var_dump(json_decode($json,true));

The result is an associative array:

1 2 3 4 5 6 7 8 9 10 array(5) { 　　["a"] => int(1) 　　["b"] => int(2) 　　["c"] => int(3) 　　["d"] => int(4) 　　["e"] => int(5) }

5. Common errors of json_decode()

The following three ways of writing json are all wrong. Can you see where the error is?

1 2 3 4 5 $bad_json = "{ 'bar': 'baz' }"; $bad_json = '{ bar: "baz" }'; $bad_json = '{ "bar": "baz", }';

Executing json_decode() on these three strings will return null and report an error.

The first error is that the json delimiter only allows the use of double quotes, not single quotes. The second mistake is that the "name" of the json name-value pair (the part to the left of the colon) must be used in double quotes under any circumstances. The third error is that you cannot add a trailing comma after the last value.

In addition, json can only be used to represent objects and arrays. If json_decode() is used on a string or value, null will be returned.