我错过了正确提取图片的内容,但我却无法确定缺少什么。
echo "
<div class=\"large-4\">
<img src=\"images\"{$row['movies_fimg']}\" alt=\"{$row['movies_title']}\">
<h2>{$row['movies_title']}</h2>
<p>{$row['movies_year']}</p>
<a href=\"details.php?movie={$row['movies_id']}\">more...</a>
</div>
";
答案 0 :(得分:1)
你在img
的src attr里面不需要双引号
<img src=\"images\"{$row['movies_fimg']}\"
^^^
答案 1 :(得分:1)
我认为这应该适合你:
(在src attr中添加了/,所以如果你不需要它删除它)
echo "
<div class='large-4'>
<img src='images/" . $row['movies_fimg'] . "' alt='" . $row['movies_title'] . "'>
<h2>" . $row['movies_title'] . "</h2>
<p>" . $row['movies_year'] . "</p>
<a href='details.php?movie=" . $row['movies_id'] . "'>more...</a>
</div>
";
答案 2 :(得分:0)
这里有一个额外的引用:<img src=\"images\"{$row['movies_fimg']}\"正斜杠应该是。
应该是:
echo "
<div class=\"large-4\">
<img src=\"images/{$row['movies_fimg']}\" alt=\"{$row['movies_title']}\">
<h2>{$row['movies_title']}</h2>
<p>{$row['movies_year']}</p>
<a href=\"details.php?movie={$row['movies_id']}\">more...</a>
</div>
";