phpphp获取页面链接信息 代码示例: $url = 'https://www.libaocai.com'; $html = file_get_contents($url); $dom = new DOMDocument(); @$dom->loadHTML($html); $xpath = ... 苏 demo 8年前 (2016-10-23) 2099℃ 0评论 0喜欢