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 have used the following way to determine if a column is auto-increment:

att = Rs1->Fields->GetItem((long)nIndex)->Attributes;
bAutoIncrement = att & adFldRowID;

But it doesn't work at all. Do anyone have good ideas about this? Thanks in advance.

share|improve this question

3 Answers 3

Dim ADOXCatalog As New ADOX.Catalog
Dim ADOConnection As New ADODB.Connection

Try
ADOConnection.Open("Provider=Microsoft.Jet.OLEDB.4.0;" & _
"Data Source=e:\My Documents\db1.mdb;" & _
"Jet OLEDB:Engine Type=4;")

ADOXCatalog.ActiveConnection = ADOConnection

Dim col As ADOX.Column
For Each col In ADOXCatalog.Tables("Table1").Columns
If col.Properties("AutoIncrement").Value = True Then
Console.WriteLine(col.Name)
End If
Next

Catch ex As Exception
MessageBox.Show(ex.Message)
Finally
ADOConnection.Close()
End Try
share|improve this answer

Use This:

try{
    ADOX::_CatalogPtr pCatalog= NULL;
    pCatalog.CreateInstance(__uuidof(ADOX::Catalog));
    pCatalog->PutActiveConnection( _variant_t( (IDispatch*)m_ipConnection ) );
    bool v = pCatalog->Tables->GetItem(bstrTableName)->Columns->GetItem(L"PlaceholderForAutoIncrementFieldName")->Properties->GetItem("AutoIncrement")->Value;
    return v;
}
catch(_com_error &e)
{
    _bstr_t bstrSource(e.Source());
    _bstr_t bstrDescription(e.Description());

    TRACE("\n\tSource :  %s \n\tdescription : %s \n ", (LPCSTR)bstrSource, (LPCSTR) bstrDescription);
}   
share|improve this answer

ADOX::PropertyPtr pAutoIncrProperty = m_pTable->Columns->Item[_variant_t(fieldInfo.m_strName)]->Properties->Item[_variant_t(_T("AutoIncrement"))];

share|improve this answer
    
Hi, How to get m_pTable object? I am operating an exist table and not create a new table. –  user198750 Nov 6 '09 at 3:57
    
see Treby's reply –  Sheng Jiang 蒋晟 Nov 6 '09 at 14:30

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.