3

below is the code i am using for MySqlTransaction and it is running perfectly.... but problem is as i am using single instance of mysqlcommand i have to use unique PARAMETER in it. which is ruining my query. is there any other way around to do....

i tried to dispose cmd after each query but of no use.. :(


          con.Open()
            Dim sqlTran As MySqlTransaction = con.BeginTransaction()
            Dim cmd As MySqlCommand = con.CreateCommand()
            cmd.Transaction = sqlTran
            Dim str As String = Nothing
            Try
                cmd.CommandText = "SELECT myid FROM memaster where    Adate=@adate and ANo=@ano and ASource=@asrc"
                cmd.Parameters.AddWithValue("@adate", txt_bpass_adate.Text)
                cmd.Parameters.AddWithValue("@ano", txt_bpass_af.Text)
                cmd.Parameters.AddWithValue("@asrc", txt_bpass_asource.Text)
                str = cmd.ExecuteScalar()
                'cmd.Dispose()'
                If str Is Nothing Then

                    cmd.CommandText = "Insert into memaster (ADate,ANo,ASource) values (@aDate,@aNo,@aSRC)"
                    cmd.Parameters.AddWithValue("@aDate", txt_bpass_adate.Text)
                    cmd.Parameters.AddWithValue("@aNo", txt_bpass_af.Text)
                    cmd.Parameters.AddWithValue("@aSRC", txt_bpass_asource.Text)

     cmd.ExecuteNonQuery()
    End If
     sqlTran.Commit()

            Catch ex As Exception
                Try
                    sqlTran.Rollback()
                Catch ex1 As Exception

                End Try
            End Try

i actually want to fire more then 4 queries in single transaction so that if anything go wrong i can rollback it...

if any onebody have any other method of it kindly share the concept wid me...


     For index As Integer = 1 To 5
                    cmd.CommandText = "Insert into detail (ID,BNos,SNo) values (@FID1,@BNo,@SeqN1)"
                    cmd.Parameters.AddWithValue("@FID1", str)
                    cmd.Parameters.AddWithValue("@BNo", str1)
                    cmd.Parameters.AddWithValue("@SeqN1", txt_bpass_sqn1.Text)
                    cmd.ExecuteNonQuery()


                Next
9
  • when you dispose of an instance you cannot use it any more - connection is closed and it is prepared for garbage collection. Why you have to use single command instance? I just don't understand your problem try to explain better. – Rafal Jan 10 '13 at 7:16
  • this.Cmd.Dispose(); would hold good.whats happening when you give dispose()? – MahaSwetha Jan 10 '13 at 7:19
  • You specify the problem yourself: you're using one MySqlCommand when you should be using two. – C.Evenhuis Jan 10 '13 at 7:33
  • @MahaSwetha : actually nothing is happening after disposing it is not even giving an error and i can use the same instance without any problem. – neerajMAX Jan 10 '13 at 10:26
  • @C.Evenhuis yes but i have to use only one.... is there any way actually i have to fire more then 3 queries and have to maintain all in sigle transaction so that if any thing go wrong i can rollback – neerajMAX Jan 10 '13 at 10:26
5

To execute multiple commands within the same transaction, ensure that you assign the transaction object to each command individually:

Dim selectCmd As MySqlCommand = con.CreateCommand()
Dim insertCmd As MySqlCommand = con.CreateCommand()

selectCmd.CommandText = "SELECT ..."
insertCmd.CommandText = "INSERT ..."

Dim sqlTran As MySqlTransaction = con.BeginTransaction()
Try
  selectCmd.Transaction = sqlTran
  insertCmd.Transaction = sqlTran

  ...selectCmd.ExecuteScalar()...
  ...insertCmd.ExecuteNonQuery()...

  sqlTran.Commit()
Catch
  sqlTran.Rollback()
End Try

As others have mentioned, it is generally a good idea to Dispose() objects (that are IDisposable) as soon as you're done working with them. After disposing objects, they can no longer be used.

1
  • @C Evenhuis : okh got it... but have a look on the for loop in my ques what should we have to do for that??? any suggestion??? – neerajMAX Jan 10 '13 at 11:34
1

You can use Using keyword for auto dispose objects. i don't know VB but I know C#. Please convert the code into VB.

using(MySqlConnection con= new MySqlConnection("connectionString"))
{
    con.Open();
    using(MysqlTransaction trans=con.BeginTransaction())
    {
        try
        {
            //command to executive query
            using(MysqlCommand cmd= new MySqlCommand("query", con, trans))
            {
                cmd.Parameters.AddWithValue("@parameter1", parametervalue1);
                cmd.Parameters.AddWithValue("@parameter2", parametervalue2);
                cmd.ExecutenonQuery();
                cmd.Parameters.Clear();
            }
            //command to execute query
            using(MysqlCommand cmd= new MySqlCommand("query", con, trans))
            {
                cmd.Parameters.AddWithValue("@parameter1", parametervalue1);
                cmd.Parameters.AddWithValue("@parameter2", parametervalue2);
                cmd.ExecutenonQuery();
                cmd.Parameters.Clear();
            }
            //command to execute query
            using(MysqlCommand cmd= new MySqlCommand("query", con, trans))
            {
                cmd.Parameters.AddWithValue("@parameter1", parametervalue1);
                cmd.Parameters.AddWithValue("@parameter2", parametervalue2);
                cmd.ExecutenonQuery();
                cmd.Parameters.Clear();
            }
            trans.Commit();
        }
        catch(Exception ex)
        {
            trans.Rollback();
        }
    }
}
4
  • If the failure in insertion is closed for connection purposes, the rollback will not work , will generate exception , have any other way to give Rollback ? – Andrew Alex Feb 10 '16 at 18:44
  • This is a poor solution - a 'using' statement in c# does a try catch for you, and if anything bad happens MySqlTransaction.cs.Dispose() is called, which rolls back the transaction – Mario Nov 3 '16 at 21:34
  • Mario. does MySqlTransaction.cs.Dispose() really roll back the transaction? If that so no need for trans.Rollback() after catch exception, and will the best solution. right? – user2241289 Jan 28 '17 at 6:19
  • this answered me: stackoverflow.com/questions/641660/… – user2241289 Jan 28 '17 at 6:30

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.