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Hi I am trying to do one to many insert but I am having problems. I have two tables:

CREATE TABLE users_app (
  user_id int UNSIGNED NOT NULL AUTO_INCREMENT,
  user_number varchar(45) NOT NULL default '0',
  user_password varchar(45) NOT NULL default '0',
  os int(1) unsigned NOT NULL,
  token varchar(500) NOT NULL,
  PRIMARY KEY (`user_id`)
) ENGINE=InnoDB AUTO_INCREMENT=20 DEFAULT CHARSET=utf8;

CREATE TABLE user_app_devices(  
    id int AUTO_INCREMENT PRIMARY KEY,  
    user_id int UNSIGNED NOT NULL,
    device_name varchar(45) NOT NULL,
    FOREIGN KEY (user_id) REFERENCES users_app (user_id)  
)ENGINE=InnoDB CHARSET=utf8;

My classes:

@Entity
@Table(name="user_app_devices")
public class UserAppDevice implements Serializable {
private static final long serialVersionUID = 1L;

@Id
private int id;

@Column(name="device_name")
private String deviceName;

//bi-directional many-to-one association to UsersApp
@ManyToOne
@JoinColumn(name="user_id")
private UsersApp usersApp;

public UserAppDevice() {
}

public int getId() {
    return this.id;
}

public void setId(int id) {
    this.id = id;
}

public String getDeviceName() {
    return this.deviceName;
}

public void setDeviceName(String deviceName) {
    this.deviceName = deviceName;
}

public UsersApp getUsersApp() {
    return this.usersApp;
}

public void setUsersApp(UsersApp usersApp) {
    this.usersApp = usersApp;
}

}

@Entity
@Table(name="users_app")
public class UsersApp implements Serializable {
private static final long serialVersionUID = 1L;

@Id
@Column(name="user_id")
private int userId;

private int os;

private String token;

@Column(name="user_number")
private String userNumber;

@Column(name="user_password")
private String userPassword;

//bi-directional many-to-one association to UserAppDevice
@OneToMany(mappedBy="usersApp")
private List<UserAppDevice> userAppDevices;

public UsersApp() {
}

public int getUserId() {
    return this.userId;
}

public void setUserId(int userId) {
    this.userId = userId;
}

public int getOs() {
    return this.os;
}

public void setOs(int os) {
    this.os = os;
}

public String getToken() {
    return this.token;
}

public void setToken(String token) {
    this.token = token;
}

public String getUserNumber() {
    return this.userNumber;
}

public void setUserNumber(String userNumber) {
    this.userNumber = userNumber;
}

public String getUserPassword() {
    return this.userPassword;
}

public void setUserPassword(String userPassword) {
    this.userPassword = userPassword;
}

public List<UserAppDevice> getUserAppDevices() {
    return this.userAppDevices;
}

public void setUserAppDevices(List<UserAppDevice> userAppDevices) {
    this.userAppDevices = userAppDevices;
}

public UsersApp(int os, String token, String userNumber, String userPassword) {
    this.os = os;
    this.token = token;
    this.userNumber = userNumber;
    this.userPassword = userPassword;
}

I want to add new user with device

I try this code:

    Session session = (Session) em.getDelegate();
    session.beginTransaction();

    UsersApp user = new UsersApp(os, token, userNumber, userPassword);

    session.save(user);

    UserAppDevice ud = new UserAppDevice();

    ud.setUsersApp(user);
    ud.setDeviceName(device);

    session.save(ud);

    session.getTransaction().commit();

but I am facing exception:

13:16:48,516 WARN  [org.hibernate.engine.jdbc.spi.SqlExceptionHelper] (http--0.0.0.0-8080-3) SQL Error: 1452, SQLState: 23000
13:16:48,517 ERROR [org.hibernate.engine.jdbc.spi.SqlExceptionHelper] (http--0.0.0.0-8080-3) Cannot add or update a child row: a foreign key constraint fails (`application`.`user_a
pp_devices`, CONSTRAINT `user_app_devices_ibfk_1` FOREIGN KEY (`user_id`) REFERENCES `users_app` (`user_id`))
13:16:48,520 ERROR [org.jboss.as.ejb3.tx.CMTTxInterceptor] (http--0.0.0.0-8080-3) javax.ejb.EJBTransactionRolledbackException: Cannot add or update a child row: a foreign key const
raint fails (`application`.`user_app_devices`, CONSTRAINT `user_app_devices_ibfk_1` FOREIGN KEY (`user_id`) REFERENCES `users_app` (`user_id`))
13:16:48,524 ERROR [org.jboss.ejb3.invocation] (http--0.0.0.0-8080-3) JBAS014134: EJB Invocation failed on component DeviceRegisterDAOImpl for method public abstract void com.break
id.ejb.model.DeviceRegisterDAO.add(int,java.lang.String,java.lang.String,java.lang.String,java.lang.String): javax.ejb.EJBTransactionRolledbackException: Cannot add or update a chi
ld row: a foreign key constraint fails (`application`.`user_app_devices`, CONSTRAINT `user_app_devices_ibfk_1` FOREIGN KEY (`user_id`) REFERENCES `users_app` (`user_id`))
        at org.jboss.as.ejb3.tx.CMTTxInterceptor.handleInCallerTx(CMTTxInterceptor.java:139) [jboss-as-ejb3-7.1.1.Final.jar:7.1.1.Final]
        at org.jboss.as.ejb3.tx.CMTTxInterceptor.invokeInCallerTx(CMTTxInterceptor.java:204) [jboss-as-ejb3-7.1.1.Final.jar:7.1.1.Final]
        at org.jboss.as.ejb3.tx.CMTTxInterceptor.required(CMTTxInterceptor.java:306) [jboss-as-ejb3-7.1.1.Final.jar:7.1.1.Final]
        at org.jboss.as.ejb3.tx.CMTTxInterceptor.processInvocation(CMTTxInterceptor.java:190) [jboss-as-ejb3-7.1.1.Final.jar:7.1.1.Final]
        at org.jboss.invocation.InterceptorContext.proceed(InterceptorContext.java:288) [jboss-invocation-1.1.1.Final.jar:1.1.1.Final]
        at org.jboss.as.ejb3.remote.EJBRemoteTransactionPropagatingInterceptor.processInvocation(EJBRemoteTransactionPropagatingInterceptor.java:80) [jboss-as-ejb3-7.1.1.Final.jar:
7.1.1.Final]

What am I missing ?

share|improve this question
up vote 1 down vote accepted

You haven't told Hibernate that the ID of UserApp was generated automatically by the database:

@Id
@GeneratedValue(strategy = IDENTITY)
@Column(name="user_id")
private int userId;

(and do the same for the other entity)

share|improve this answer
    
it's worked.Thanks – Breakidi Jul 31 '12 at 11:36

Since your are using bidirectional, change your client code as below.

Session session = (Session) em.getDelegate();
session.beginTransaction();
UserAppDevice ud = new UserAppDevice();
ud.setDeviceName(device);
UsersApp user = new UsersApp(os, token, userNumber, userPassword);
user.setUserAppDevices(new ArrayList<UserAppDevice>())
user.getUserAppDevices().add(ud);
session.save(user);
session.getTransaction().commit();
share|improve this answer
    
This didn't worked, only the user added to the DB, the device didn't – Breakidi Jul 31 '12 at 11:45

As mentioned by JB Nizet, you're missing the autogenerated strategy.

An alternative would be to use UUID as your id column and create the values yourself with

@Id
private UUID id = UUID.randomUUID();

Also, don't forget to set equals/hashCode to use the id field as discussed to death in The JPA hashCode() / equals() dilemma

Incidentally, why are you using Session (hibernate specific) instead of sticking to JPA's API?

share|improve this answer
    
The OP has a mappedBy attribute, and it's mandatory in every bidirectional association, whether a join table is used or a join column is used. Regarding equals/hashCode: they're not mandatory at all, and Hibernate recommends NOT using the ID. – JB Nizet Jul 31 '12 at 10:51
    
you're too late :-P I actually spotted that and updated my comment 7 mins ago. I don't get scrollbars on code snippets and I didn't originally see the second class definition. I know Hibernate recommended a business key, but that argument is old hat - the modern convention is to use id AND generate the keys yourself on construction. I use UUID because it avoids having to use bizarre systems to ensure uniqueness in the DB. – fommil Jul 31 '12 at 10:56
    
That's only modern at your place. A UUID is less efficient than a number for PKs, and sequences or auto_increment are much easier to use than UUIDs. – JB Nizet Jul 31 '12 at 11:16
    
The use of UUID is my own twist on it - and you're right about performance, but it's never affected me - although I am pretty sure the Hibernate folk are now in agreement that primary keys can be used if the key is generated during construction. I'd rather just throw an exception in hashCode if id is not set than go through the hassle of getting an appropriate Long to use at construction. – fommil Jul 31 '12 at 11:18

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