我正在嘗試使用 php 從 html 字串中獲取所有影像 url。來自 img-tags 和 inline css (background-image)
<?php
$html = '
<div style="background-image : url(https://exampel.com/media/logo.svg);"></div>
<img src="https://exampel.com/media/my-photo.jpg" />
<div style="background-image:url('https://exampel.com/media/icon.png');"></div>
';
preg_match('/<img. src=[\'"](?P<src>. ?)[\'"].*>|background-image[ ]?:[ ]?url\([ ]?[\']?["]?(.*?\.(?:png|jpg|jpeg|gif|svg))/i', $html, $image);
echo('<pre>'.print_r($image, true).'</pre>');
?>
輸出是:
Array
(
[0] => background-image : url(https://exampel.com/media/logo.svg
[src] =>
[1] =>
[2] => https://exampel.com/media/logo.svg
)
首選輸出是:
Array
(
[0] => https://exampel.com/media/logo.svg
[1] => https://exampel.com/media/my-photo.jpg
[2] => https://exampel.com/media/icon.png
)
我在這里遺漏了一些東西,但我不知道是什么
uj5u.com熱心網友回復:
使用 preg_match_all() 并重新排列您的結果:
<?php
$html = <<<EOT
<div style="background-image : url(https://exampel.com/media/logo.svg);"></div>
<img src="https://exampel.com/media/my-photo.jpg" />
<div style="background-image:url('https://exampel.com/media/icon.png');"></div>
EOT;
preg_match_all(
'/<img. src=[\'"](. ?)[\'"].*>|background-image ?: ?url\([\'" ]?(.*?\.(?:png|jpg|jpeg|gif|svg))/i',
$html,
$matches,
PREG_SET_ORDER
);
$image = [];
foreach ($matches as $set) {
unset($set[0]);
foreach ($set as $url) {
if ($url) {
$image[] = $url;
}
}
}
echo '<pre>' . print_r($image, true) . '</pre>' . PHP_EOL;
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