【发布时间】:2015-08-07 06:20:10
【问题描述】:
我在使用 PHP 和 SQL 方面遇到了一些问题,PHP 对我来说是新手,我缺乏 SQL。
我想在我的数据库表中添加值:值要么取自一个表单,要么取自另一个表(作为 FK)。
这是数据库:
create database AAA;
use AAA;
create table assure(
id_assure varchar(13) not null,
nom varchar(20),
adresse varchar(50), mdp varchar(60),
primary key(id_assure));
create table vehicule(
id_vehicule varchar(13) not null,
immatriculation varchar(7),
masse int(4),
volume int(4),
id_assure varchar(13) not null,
primary key(id_vehicule),
foreign key(id_assure) references assure(id_assure));
create table reparation(
id_reparation varchar(13) not null,
libelle varchar(100),
couts int(5),
primary key(id_reparation),
id_vehicule varchar(13) not null,
foreign key(id_vehicule) references vehicule(id_vehicule));
create table sinistre(
id_sinistre varchar(13) not null,
libelle varchar(100),
date_sinistre date,
heure_sinistre time,
primary key(id_sinistre),
id_vehicule varchar(13) not null,
foreign key(id_vehicule) references vehicule(id_vehicule));
create table dossier(
id_dossier varchar(13) not null,
primary key(id_dossier),
id_sinistre varchar(13) not null,
foreign key(id_sinistre) references sinistre(id_sinistre));
create table contrat_assurance(
id_assurance varchar(13) not null,
primary key(id_assurance),
id_assure varchar(13) not null,
id_vehicule varchar(13) not null,
foreign key(id_assure) references assure(id_assure),
foreign key(id_vehicule) references vehicule(id_vehicule));
create table type_garantie(
code_garantie varchar(13) not null,
libelle varchar(100),
franchise int(3) ,
primary key(code_garantie),
id_assurance varchar(13) not null,
id_reparation varchar(13) not null,
foreign key(id_reparation) references reparation(id_reparation),
foreign key(id_assurance) references contrat_assurance(id_assurance));
DELIMITER //
CREATE TRIGGER trigfranchise
BEFORE INSERT ON type_garantie
for EACH ROW
BEGIN
IF NEW.franchise not between 150 and 600
THEN
SET NEW.franchise = NULL ;
END IF;
END ;//
DELIMITER ;
DELIMITER //
CREATE TRIGGER trigfranchise1
BEFORE UPDATE ON type_garantie
for EACH ROW
BEGIN
IF NEW.franchise not between 150 and 600
THEN
SET NEW.franchise = OLD.franchise ;
END IF;
END ;//
DELIMITER ;
我的第一个表单发送值以确保表,它工作正常。 我的第二个旨在将值发送到车辆和 contrat_assurance 表;检查表单后,浏览器显示:
错误:SQLSTATE[23000]:违反完整性约束:1452 不能 添加或更新子行:外键约束失败 (
aaa.vehicule,约束vehicule_ibfk_1外键 (id_assure) 参考资料assure(id_assure))
我的 PHP 代码如下:
try
{
$nom=mysql_real_escape_string($_POST["nom"]);
$mdp=mysql_real_escape_string($_POST["mdp"]);
$imma=mysql_real_escape_string($_POST["immatriculation"]);
$pdo_options[PDO::ATTR_ERRMODE] = PDO::ERRMODE_EXCEPTION;
$bdd = new PDO('mysql:host=localhost;dbname=AAA', 'root', '', $pdo_options);
$req = $bdd->prepare('INSERT INTO vehicule (id_vehicule, immatriculation) VALUES(:id_vehicule, :immatriculation)');
$req->execute(array(
'id_vehicule' => uniqid(),
'immatriculation' => $imma
));
$req2 = $bdd->prepare("INSERT INTO vehicule (id_assure) SELECT id_assure FROM assure WHERE nom =\"$nom\" AND mdp =\"$mdp\"" );
$req3 = $bdd->prepare('INSERT INTO contrat_assurance (id_assurance) VALUES(:id_assurance)');
$req4 = $bdd->prepare("INSERT INTO contrat_assurance (id_assure, id_vehicule) SELECT id_assure, id_vehicule FROM vehicule WHERE immatriculation =\"$imma\"");
$req3->execute(array(
'id_assurance' => uniqid()
));
}
实际上,我已经找到了关于这个错误的其他主题,由于我的技能很差,我无法将答案与我的问题相匹配。
抱歉英文和法文表格名称不佳。
感谢您的阅读!
更新:我尝试通过终端添加值(没有 PHP),它有效,因此我的 PHP 代码是错误的。
UPDATE2:这是将 id_assure 插入到保证表(车辆表中的 FK)的 PHP 代码:
try
{
$pdo_options[PDO::ATTR_ERRMODE] = PDO::ERRMODE_EXCEPTION;
$bdd = new PDO('mysql:host=localhost;dbname=AAA', 'root', '', $pdo_options);
$req = $bdd->prepare('INSERT INTO assure(id_assure, nom, adresse, mdp) VALUES(:id_assure, :nom, :adresse, :mdp)');
$req->execute(array(
'id_assure' => uniqid(),
'nom' => $_POST['nom'],
'adresse' => $_POST['adresse'],
'mdp' => $_POST['mdp']
));
}
catch(Exception $e)
{
die('Erreur : '.$e->getMessage());
}
【问题讨论】: