27

I have one entity in room

@Entity(foreignKeys ={
        @ForeignKey(entity = Label.class, parentColumns = "_id", childColumns = "labelId", onDelete = CASCADE),
        @ForeignKey(entity = Task.class, parentColumns = "_id", childColumns = "taskId", onDelete = CASCADE)
})
public class LabelOfTask extends Data{
    @ColumnInfo(name = "labelId")
    private Integer labelId;
    @ColumnInfo(name = "taskId")
    private Integer taskId;
}

sql syntax of this entity is as below

CREATE TABLE `LabelOfTask` (
    `_id` INTEGER PRIMARY KEY AUTOINCREMENT,
     `labelId` INTEGER,
     `taskId` INTEGER,
     FOREIGN KEY(`labelId`) REFERENCES `Label`(`_id`) ON UPDATE NO ACTION ON DELETE CASCADE ,
     FOREIGN KEY(`taskId`) REFERENCES `Task`(`_id`) ON UPDATE NO ACTION ON DELETE CASCADE
 );

but what change or annotation I need to add in entity class if I want to append below constraint to the auto generated sql schema of the table

unique (labelId, taskId)

Ultimately I want to make combination of labelId and taskId unique in a table(or entity of room) using room library.

  • A plain UNIQUE constraint on a column, other than via an index, is not supported. – lib4 Feb 24 '18 at 12:13
  • index? you mean primary key? – Marian Paździoch Apr 23 at 5:11
51

A plain UNIQUE constraint on a column, other than via an index, is not supported.

You can enforce this uniqueness property by setting the unique property of an @Index annotation to true. The following code sample (Java) prevents a table from having two rows that contain the same set of values for the firstName and lastName columns:

@Entity(indices = {@Index(value = {"first_name", "last_name"},
        unique = true)})
class User {
    @PrimaryKey
    public int id;

    @ColumnInfo(name = "first_name")
    public String firstName;

    @ColumnInfo(name = "last_name")
    public String lastName;

    @Ignore
    Bitmap picture;
}

The Kotlin equivalent of the annotation is given below:

@Entity(indices = arrayOf(Index(value = ["first_name", "last_name"], unique = true)))

In your code you can do the following changes to have UNIQUE constraints

@Entity(foreignKeys ={
        @ForeignKey(entity = Label.class, parentColumns = "_id", childColumns = "labelId", onDelete = CASCADE),
        @ForeignKey(entity = Task.class, parentColumns = "_id", childColumns = "taskId", onDelete = CASCADE)},
        indices = {@Index(value = {"labelId", "taskId"},
                unique = true)}
)
public class LabelOfTask extends Data{
    @ColumnInfo(name = "labelId")
    private Integer labelId;
    @ColumnInfo(name = "taskId")
    private Integer taskId;
}
| improve this answer | |
  • 5
    What about setting a single property as UNIQUE ? – zulkarnain shah Jul 23 '18 at 9:35
  • 1
    I have tried to answer your question, but I think I paste in wrong place :) Please check it below :D – Ercan Mar 6 '19 at 12:48
  • Hi! What happens if you try to add a second identical value? – Valeriy Jun 26 '19 at 13:27
  • For Kotlin you can write it this way: foreignKeys = [ForeignKey( entity = Label::class, parentColumns = ["_id"], childColumns = ["labelId"], onDelete = ForeignKey.CASCADE)], indices = [Index(value = ["labelId", "taskId"], unique = true)] – JimmyFlash Mar 6 at 20:26
  • Is this the example of creating the composite unique key using two columns (first_name, last_name) ?? or Is it the example of creating two separate unique keys using two different columns ?? – K Pradeep Kumar Reddy Jun 1 at 5:50
16

If you wonder to make a single column to be unique, only need to write

@Entity(indices = [Index(value = ["name"], unique = true)])
| improve this answer | |
  • How to create composite unique key and composite primary key ?? – K Pradeep Kumar Reddy Jun 1 at 5:52
  • @KPradeepKumarReddy there's a primaryKeys field in the Entity annotation for that – AfzalivE Aug 4 at 22:40

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.