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array_splice函数结果赋值解决思路

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Release: 2016-06-13 12:21:18
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array_splice函数结果赋值
$arr1 = array(1,2,3);
$arr2 = array(3,4,5);
$arr1 = array_splice($arr2,1,1);
print_r($arr1);


结果是Array ( [0] => 4 )
按理说,赋值运算符在最后完成array_splice函数后才进行,
那么 array_splice($arr2,1,1)得到的数组$arr2内的值应该是(3,4),
然后运算“=”,则得到$arr1数组的内容应该是(3,4),但是实际上运行整个
$arr1 = array_splice($arr2,1,1),却得到$arr1数组的内容为(4),求解。
------解决思路----------------------
手册中数的很明白了:返回一个包含被移除单元的数组
仅从返回结果上看, array_splice($arr2,1,1) 等同于 array_slice($arr2,1,1)
但前者已经改变了 $arr2 的原始状态

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