给定一个数组:
$arrData = array(
0 => array (
'uid' => 1,
'name' => 'label',
'open' => 0,
'close' => 9
),
1 => array (
'uid' => 2,
'name' => 'label',
'open' => 1,
'close' => 2
),
2 => array (
'uid' => 3,
'name' => 'label',
'open' => 3,
'close' => 8
),
3 => array (
'uid' => 4,
'name' => 'label',
'open' => 4,
'close' => 5
),
4 => array (
'uid' => 5,
'name' => 'label',
'open' => 6,
'close' => 7
)
);
代表这种结构:
<label> [0,9]
<label /> [1,2]
<label> [3,8]
<label /> [4,5]
<label /> [6,7]
</label>
</label>
我正在尝试使用这种格式的数组:
$arrNesting = array(
0=>array(
'item' => array('uid'=>1, 'name'=>'label', 'open'=>0, 'close'=>9),
'children' => array(
0=>array(
'item' => array('uid'=>2, 'name'=>'label', 'open'=>1, 'close'=>2),
'children' => array()
),
1=>array(
'item' => array('uid'=>3, 'name'=>'label', 'open'=>3, 'close'=>8),
'children' => array(
0=>array(
'item' => array('uid'=>2, 'name'=>'label', 'open'=>4, 'close'=>5),
'children' => array()
),
1=>array(
'item' => array('uid'=>3, 'name'=>'label', 'open'=>6, 'close'=>7),
'children' => array()
)
)
)
)
)
);
通过这样的函数调用:
// $arrData: Source Data with keys for denoting the left and right node values
// 'open': the key for the left node's value
// 'close': the key for the right node's value
$arrNested = format::nestedSetToArray( $arrData, 'open', 'close' );
到目前为止,我已经尝试过这种格式,假设$ arrData值将始终处于左值升序。 uid值&#39;发生&#39;也是有序的,但不依赖于:
public static function nestedSetToArray( $arrData = array(), $openKey='open', $closeKey='close') {
// Hold the current Hierarchy
$arrSets = array();
// Last parent Index, starting from 0
$intIndex = 0;
// Last Opened and Closed Node Values, and maximum node value in this set
$intLastOpened = 0;
$intLastClosed = null;
$intMaxNodeNum = null;
// loop through $arrData
foreach( $arrData as $intKey=>$arrValues) {
if( !isset( $arrSets[ $intIndex ] )) {
// Create a parent if one is not set - should happen the first time through
$arrSets[ $intIndex ] = array ('item'=>$arrValues,'children'=>array());
$intLastOpened = $arrValues[ $openKey ];
$intLastClosed = null; // not sure how to set this for checking 2nd IF below
$intMaxNodeNum = $arrValues[ $closeKey ];
} else {
// The current item in $arrData must be a sibling or child of the last one or sibling of an ancestor
if( $arrValues[ $openKey ] == $intLastOpened + 1) {
// This is 1 greater then an opening node, so it's a child of it
} else if( /* condition for sibling */ ) {
// This is 1 greater than the intLastClosed value - so it's a sibling
} else if( /* condition for sibling of ancestor */ ) {
// This starts with a value greater than the parent's closing value...hmm
}
}
}
}
任何进一步采取这一点的指示将不胜感激。
答案 0 :(得分:9)
这应该有效
$stack = array();
$arraySet = array();
foreach( $arrData as $intKey=>$arrValues) {
$stackSize = count($stack); //how many opened tags?
while($stackSize > 0 && $stack[$stackSize-1]['close'] < $arrValues['open']) {
array_pop($stack); //close sibling and his childrens
$stackSize--;
}
$link =& $arraySet;
for($i=0;$i<$stackSize;$i++) {
$link =& $link[$stack[$i]['index']]["children"]; //navigate to the proper children array
}
$tmp = array_push($link, array ('item'=>$arrValues,'children'=>array()));
array_push($stack, array('index' => $tmp-1, 'close' => $arrValues['close']));
}
return $arraySet;
我跳过参数化的打开和关闭标签,但您可以简单地添加它。
修改
这里发生了什么:
首先$stack为空,所以我们跳过while()。
然后我们将$arraySet的引用分配给$link,因为$stack为空,我们将第一个元素推送到引用$link的{{1}}。 array_push()$arraySet $ arraySet return 1 because this is the new length of $ stack
Next we add an element to the('index'=&gt; 0,'close'=&gt; 10)`
下一个元素:
现在whit values有1个元素,但$stack大于$stack[0]['close']元素,所以我们跳过。
我们再次将$arrValues['open']引用设为$arraySet,但现在$link中有元素,因此我们将$stack引用分配给$ link,所以现在$link[$stack[0]['index']]["children"]指向$link。
现在我们将元素推送到这个子数组。 $arraySet[0]["children"]给出了这个子数组的大小,我们将适当的元素推送到堆栈。
下一个元素: 它看起来完全像第二个,但在开始时我们从堆栈中弹出一个元素。所以在堆栈上迭代之后是两个元素
$tmp下一个元素:
堆栈上有两个元素,但两个元素都有('index' => 0, 'close' => 10)
('index' => 0, 'close' => 8)
属性,然后close,所以我们跳过while循环。然后在导航部分:
$arrValues['open']指向$link $arraySet $arraySet[0]["children"] 我们将元素推送到此数组。 等等...