And*_* K. 4 php variables types casting return-type
我在PHP中有以下问题:
print_r()说它是相同的,gettype()相同的类型,但最后的输出不适用于两种情况,虽然它们应该是相同的!
这看起来很奇怪.
代码和输出:
$docdatau = get_object_vars(json_decode($docdata));
$docdatau2 = (array)json_decode($docdata);
echo "1\n";
echo gettype($docdatau);
echo "\n";
echo "--------------------------------------\n";
print_r($docdatau);
echo "--------------------------------------\n";
echo "2\n";
echo gettype($docdatau2);
echo "\n";
echo "--------------------------------------\n";
print_r($docdatau2);
echo "out1\n";
echo "--------------------------------------\n";
print_r($docdatau[0]);
echo "out2\n";
echo "--------------------------------------\n";
print_r($docdatau2[0]);
输出:
1
array
--------------------------------------
Array
(
[0] => stdClass Object
(
[produkt] => Produkt 2
[laufzeit] => 24
[addtext] => sdsd
[provision] => 39
)
[1] => stdClass Object
(
[produkt] => Produkt 1
[laufzeit] =>
[addtext] =>
[provision] => 0
)
)
--------------------------------------
2
array
--------------------------------------
Array
(
[0] => stdClass Object
(
[produkt] => Produkt 2
[laufzeit] => 24
[addtext] => sdsd
[provision] => 39
)
[1] => stdClass Object
(
[produkt] => Produkt 1
[laufzeit] =>
[addtext] =>
[provision] => 0
)
)
out1
--------------------------------------
stdClass Object
(
[produkt] => Produkt 2
[laufzeit] => 24
[addtext] => sdsd
[provision] => 39
)
out2
--------------------------------------
--------------------------------------
out1并且out2应该产生相同的结果但不能.
也许有人对我有暗示吗?
关于它有几个PHP错误:
这里发生了同样的事情:
$obj->{0} = "hello";
$arr = (array)$obj;
echo $arr[0];
这是因为"0"用作字符串数组键,而$ arr [0]搜索整数数组键.它只是通过声明:PHP文档中记录:整数属性是不可访问的(链接).
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