【发布时间】:2020-12-27 16:20:24
【问题描述】:
我需要获取现有表单的起始 <form> 标记,原样,带有属性,没有内容和结束 </form> 标记,以将其用于新的动态创建的表单.所以,我只需要字符串<form method="post" class="form" data-id="19" data-title="Schema" data-slug="schema" data-message-success="Success!" data-message-invalid-email="Not valid!" data-message-required-field-missing="All fields are required!" data-message-error="Error!"> 在纯PHP中如何做到这一点?
我的表格:
<form method="post" class="form" data-id="19" data-title="Schema" data-slug="schema" data-message-success="Success!" data-message-invalid-email="Not valid!" data-message-required-field-missing="All fields are required!" data-message-error="Error!">
--- Form content ---
</form>
现在我只找到了如何获取表单属性以将它们添加到新表单。我知道,我可以循环并创建新表单,但我不是专家,我认为可以存在更优雅的解决方案。
function parseTag($content,$tg) {
$dom = new DOMDocument('1.0', 'utf-8');
$dom->loadHTML($content);
$attr = array();
foreach ($dom->getElementsByTagName($tg) as $tag) {
foreach ($tag->attributes as $attribName => $attribNodeVal) {
$attr[$attribName]=utf8_decode($tag->getAttribute($attribName));
}
}
return $attr;
}
//$html variable contain the above form
$attrib_arr = parseTag($html,'form');
var_dump($attrib_arr);
输出:
array(9) {
["method"]=>
string(4) "post"
["class"]=>
string(19) "form"
["data-id"]=>
string(2) "19"
["data-title"]=>
string(23) "Schema"
["data-slug"]=>
string(27) "schema"
["data-message-success"]=>
string(50) "Success!"
["data-message-invalid-email"]=>
string(52) "Not valid!"
["data-message-required-field-missing"]=>
string(41) "All fields are required!"
["data-message-error"]=>
string(25) "Error!"
}
【问题讨论】:
-
您需要什么结果?字符串
<form method="post" class="form" data-id="19" data-title="Schema" data-slug="schema" data-message-success="Success!" data-message-invalid-email="Not valid!" data-message-required-field-missing="All fields are required!" data-message-error="Error!">?还是这种形式的DOMNode?span> -
@Anton,是的,我只需要那个字符串:
<form method="post" ... > -
那么现在问题出在哪里,你已经拥有了所有的属性和它们的值——所以你可以遍历它,并从中创建相应的 HTML ......?
-
@CBroe,是的,我知道并且我可以做到,但我不是专家,我想可以存在更优雅的解决方案。
标签: php parsing dom domdocument