我正在为我的网站和我的生活写一个“喜欢”功能,我就是无法让这个功能正常工作!
假设这是我的数据库结构的简化版本:
id --- post_id --- user_id
1 --- 1 ----------- 1
2 --- 2 ----------- 1
这是我写的代码:
public function userHasLikedPost($post_id,$user_id){
$this->post_id_clean = sanitize($post_id);
$this->user_id_clean = sanitize($user_id);
global $mysqli,$db_table_prefix;
$stmt = $mysqli->prepare("SELECT like_type FROM ".$db_table_prefix."post_likes WHERE user_id = ? AND post_id = ?");
$stmt->bind_param("ii", $this->post_id_clean, $this->user_id_clean);
$stmt->execute();
$stmt->store_result();
$stmt->bind_result($like_type);
$stmt->fetch();
$result;
if( $stmt->num_rows >0 ){
$result = array("liked" => 1, "like_type" => $like_type);
}else{
$result = array("liked" => 0);
}
return print_r($stmt);
$stmt->close();
}
当我调用 userHasLikedPost(1,1) 我的代码将返回正确的行数
mysqli_stmt 对象 ( [affected_rows] => 1 [insert_id] => 0 [num_rows] => 1 [param_count] => 2 [field_count] => 1 [errno] => 0 [error] => [error_list] => 数组( ) [sqlstate] => 00000 [id] => 5) 1
但是,如果我调用 userHasLikedPost(2,1) 我会得到不正确的行数。
mysqli_stmt 对象 ( [affected_rows] => 0 [insert_id] => 0 [num_rows] => 0 [param_count] => 2 [field_count] => 1 [errno] => 0 [error] => [error_list] => 数组( ) [sqlstate] => 00000 [id] => 5) 1
为什么会这样?我正确使用 mysqli 吗?数据存在于数据库中,如果我在 PHPMyAdmin 中手动运行查询,我将得到正确的输出。我花了大约 2 个小时试图让这个功能正常工作......在此先感谢您的回复:)