Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm currently trying to run a certain procedure (sql 2005) in VB6, passing some parameters:

Dim conn As Connection
Set conn = New Connection
conn.Open "Provider=whateverprovider;Data Source=whateversource;Database=whateverdatabase;User Id=whateverID;Password=whatever"
Dim CMD As ADODB.Command
Dim rs As ADODB.Recordset
Set CMD = New ADODB.Command
Set CMD.ActiveConnection = conn
CMD.CommandType = adCmdStoredProc
CMD.Parameters.Append CMD.CreateParameter("@EmpresaCNPJ", adVarChar, adParamInput, 14, "64687015000152")
CMD.Parameters.Append CMD.CreateParameter("@EntradaSaida", adChar, adParamInput, 1, "S")
CMD.Parameters.Append CMD.CreateParameter("@Participante", adVarChar, adParamInput, 60, "0000000020")
CMD.Parameters.Append CMD.CreateParameter("@nroNotaFiscal", adInteger, adParamInput)
CMD.Parameters("@nroNotaFiscal").Value = 2289
CMD.Parameters.Append CMD.CreateParameter("@serieNotaFiscal", adSmallInt, adParamInput)
CMD.Parameters("@serieNotaFiscal").Value = 1
Set rs = CMD.Execute

In the last line i get the following error message:

alt text

Which in English it reads: "syntax error or access violation"

This message is REALLY generic, and I don't have a clue about where could the problem be.

What did i do wrong ?

Here is the parameter receiving part of the sql code in the procedure:

   @EmpresaCNPJ varchar(14), 
   @EntradaSaida char(1)=null, 
   @Participante varchar(60)=null, 
   @nroNotaFiscal int=null, 
   @serieNotaFiscal smallint=null, 
   @EtapaInicial tinyint=null, 
   @LineComplement varchar(255)=null 

I was told that not every parameter should be passed, and that it should work with just five (out of seven).

share|improve this question

1 Answer 1

up vote 1 down vote accepted

Where are you setting the name of the stored procedure?
cmd.CommandName = ....

EDIT: Set the CommandName to the name of the stored procedure, before you begin to call Parameters.Append

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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