我有个问题 JSON 代码。我想附和一下:
[{"post_title":"hospital-name","term_taxonomy_id":"15,16,20"},
{"post_title":"hospital-name","term_taxonomy_id":"15,16,20"} ]我使用的代码是:
$stmt = $db->prepare("SELECT fd_posts.post_content , fd_posts.post_title , fd_posts.id, fd_term_relationships.term_taxonomy_id FROM fd_posts INNER JOIN fd_term_relationships
ON fd_posts.id=fd_term_relationships.object_id WHERE fd_posts.post_type='hospitals'");
$stmt->execute();
$myarr = array();
while ($data = $stmt->fetch()) {
$myarr[] = array('id' => $data['id'], 'post_title' => $data['post_title']);
}
echo json_encode($myarr, JSON_UNESCAPED_UNICODE);但它的输出是:
[
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"120","post_title":"hospital-name"},
{"id":"125","post_title":"hospital-name-2"},
{"id":"125","post_title":"hospital-name-2"},
{"id":"125","post_title":"hospital-name-2"},
{"id":"125","post_title":"hospital-name-2"},
{"id":"125","post_title":"hospital-name-2"},
{"id":"125","post_title":"hospital-name-2"},
{"id":"125","post_title":"hospital-name-2"}
]我怎样才能改变我的生活 PHP 代码以回显所需的 JSON ?
1条答案
按热度按时间b4lqfgs41#
尝试此代码