当我尝试从Mysql表中选择最后一个插入的id时,我遇到了这个问题,我得到的是值=bool(true)而不是这些值。
我要做的是:
if (isset($_POST['submit'])){
if (isset($_POST['paName']) && isset($_POST['paEmail']) && isset($_POST['paTel']) && isset($_POST['aName']) && isset($_POST['Artnum'])){
if (!empty($_POST['paName']) && !empty($_POST['paEmail']) && !empty($_POST['paTel']) && !empty($_POST['aName']) && !empty($_POST['Artnum'])){
$paName = $_POST['paName'];
$paEmail = $_POST['paEmail'];
$paTel = $_POST['paTel'];
$aName = $_POST['aName'];
$Artnum = $_POST['Artnum'];
$query = "INSERT INTO crud (paName,paEmail,paTel,aName,Artnum) VALUES ('$paName','$paEmail','$paTel','$aName','$Artnum')";
if ($sql = $this->conn->exec($query)){
$id = $this->conn->lastInsertId();
$query = "SELECT * FROM crud WHERE id = '".$id."'";
$stmt=$this->conn->prepare($query);
$stmt->execute();
var_dump($stmt->execute());die();
}
但如果我没有条件地做同样的操作,我会从表中得到所有的值,这意味着我的条件是错误的。
你能告诉我我做错了什么吗?
您似乎在第一个查询中缺少$this->conn->prepare()。您可以尝试以下示例:
LastInsertiD()仅在INSERT查询之后工作。
正确:
$stmt = $this->conn->prepare("INSERT INTO crud (paName,paEmail,paTel,aName,Artnum)
VALUES(?,?,?,?,?);");
$sonuc = $stmt->execute([$paName,$paEmail,$paTel,$aName,$Artnum]);
$LAST_ID = $this->conn->lastInsertId();
不正确:
$stmt = "INSERT INTO crud (paName,paEmail,paTel,aName,Artnum) VALUES ('$paName','$paEmail','$paTel','$aName','$Artnum')";
$sonuc = $this->conn->execute($stmt);
$LAST_ID = $this->conn->lastInsertId(); //always return string(1)=0
