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Basically what I am trying to do is run a small WPF program, where the user will select a SQL Server Compact database and my program will show them specific information from a specific table.

Where I am having trouble is the connection string, I want the user to be able to browse to the location where their database is saved, and not make them have it in the one location (if that makes sense)

I can get my program to work if I have the database in one location with a specific name, but the databases the user will want to check the information for will all have different names but all will have the same file extension

e.g. the code I have at the moment is this:

string Myfile = @"C:\Users\documents\visual studio 2010\debug\FILE.sdf";
SqlCeConnection localDatabaseConn = new SqlCeConnection("data base = " + Myfile +";

I can get the result I want when I have the file saved to a specific location with a specific name, but I want the user to be able to browse to their own file, which will have a different name and could be anywhere on their machine.

Any help would be appreciated

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2  
Are you asking how to browse to the file? –  Brian Warshaw Jun 12 '12 at 11:05

3 Answers 3

up vote 3 down vote accepted

So, basically it seems you want an OpenFileDialog.

Example:

Microsoft.Win32.OpenFileDialog dlg = new Microsoft.Win32.OpenFileDialog();
dlg.DefaultExt = ".sdf";
dlg.Filter = "Database file (.sdf)|*.sdf";

Nullable<bool> result = dlg.ShowDialog();

if (result == true)
{
    string Myfile = dlg.FileName;
}
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so simple, thanks so much. –  CM99 Jun 12 '12 at 11:14
    
@CM99 If you found my answer helpful, please accept it. See here: meta.stackexchange.com/questions/5234/… –  sloth Jun 12 '12 at 11:36

You have to use OpenFileDialog. and your connection string must be "Data Source="+YouPath and No the "Data Base"+YourPath

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WPF has some built-in file dialogs. The one you're looking for probably is Microsoft.Win32.OpenFileDialog

Usage:

var dlg = new Microsoft.Win32.OpenFileDialog();

if (dlg.ShowDialog();)
{
    string filename = dlg.FileName;
}
share|improve this answer
    
so simple, thanks so much. changed my string to string Myfile = dlg.FileName; thanks to both of you. –  CM99 Jun 12 '12 at 11:20
    
Happy to help. Please consider to accept the answer if it was helpful. And welcome to Stackoverflow! –  Dennis Traub Jun 12 '12 at 11:45

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