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        public void CreateFileOutput(object parameter)
        {
            string workSheetName, targetFile;
            workSheetName = "data"; targetFile = "data.csv";
            string strConn = @"Provider=Microsoft.Jet.OLEDB.4.0;Data Source=" + SourceAppFilePath + ";Extended Properties='Excel 8.0;HDR=YES;IMEX=1;';";
            OleDbConnection conn = null;
            StreamWriter wrtr = null;
            OleDbCommand cmd = null;
            OleDbDataAdapter da = null;
            try
            {
                conn = new OleDbConnection(strConn);
                conn.Open();
                cmd = new OleDbCommand("SELECT * FROM [" + workSheetName + "$]", conn);
                cmd.CommandType = CommandType.Text;
                wrtr = new StreamWriter(targetFile);
                da = new OleDbDataAdapter(cmd);
                DataTable dt = new DataTable();
                da.Fill(dt);
                for (int x = 0; x < dt.Rows.Count; x++)
                {
                    string rowString = "";
                    for (int y = 0; y < dt.Columns.Count; y++)
                    {
                        rowString += "\"" + dt.Rows[x][y].ToString() + "\",";
                    }
                    wrtr.WriteLine(rowString);
                }
                Console.WriteLine();
                Console.WriteLine("Done! Your " + SourceAppFilePath + " has been converted into " + targetFile + ".");
                Console.WriteLine();
            }
            catch (Exception exc)
            {
                Console.WriteLine(exc.ToString());
                Console.ReadLine();
            }
            finally
            {
                if (conn.State == ConnectionState.Open)
                    conn.Close();
                conn.Dispose();
                cmd.Dispose();
                da.Dispose();
                wrtr.Close();
                wrtr.Dispose();
            }
        }

XLS file is being converted to csv.I am able to see that in the for loop wrtr.WriteLine(rowString); But I want to see the final output file "Data.csv" in the desktop location as I am taking the source .xls file from the desktop. Provide me a solution. Thanks.

share|improve this question
    
What about Console.WriteLine(rowString) or read data.csv using File.ReadAllText(file) –  AVD Oct 4 '12 at 5:54
    
Actually I am following the sample given in this link. c-sharpcorner.com/UploadFile/yuanwang200409/… –  user1537319 Oct 4 '12 at 5:56
    
I don't know where it is saving or code is written for saving as a file. Thanks. –  user1537319 Oct 4 '12 at 5:58
    
It's not being saved anywhere but memory right now as you're using a StreamWriter and no associated file. If it was being saved, it'd be saved in the same directory your application is executing from. –  Tim Oct 4 '12 at 6:02
    
@Tim, I tried your answer. Working Fine. Thanks –  user1537319 Oct 4 '12 at 6:04

1 Answer 1

up vote 1 down vote accepted

You need to use the full path to save the file to the desktop. You can get the path using the Environment.GetFolderPath(Environment.SpecialFolder.DesktopDirectory, like this:

string targetFolder =  Environment.GetFolderPath(Environment.SpecialFolder.DesktopDirectory);
string targetPath = Path.Combine(targetFolder, "Data.csv");

Then use FileStream with the full path:

fs = new FileStream(targetPath, FileMode.Create);

Edited Per Comments Below

The key to this is specifying the path to where you want to save the file. Just giving a file name will put it in the directory the application is excuting from. An easy way to do this would be to use the GetDirectoryName method of the Path class. Assuming the file was passed in, read from a config file, hard coded, etc:

string path = Path.GetDirectoryName(sourceFile); string target = path + @"\" + "Data.csv";

If the sourceFile was C:\Data\Input.xml, then path would equal "C:\Data", and target would be C:\Data\Data.csv.

The advantage here is that you can pass a filename with the path, and it will always place the targetfile in the same location. This lends itself nicely to parameterization of the method, or maybe even having the user select the file through an OpenFileDialog box or similar mechanism.

Additional Edit Per John's Comment

Based on the code you posted, the Data.xsl file is in the executing application's folder. In that case, you'd simply need to do the following:

fs = new FileStream("data.csv", FileMode.Create);

No need to mess with paths, as the filestream will also go to the executing application's directory.

In the end, it's all about using the information available from the sourcefile (i.e., it's location/path data) and applying it to the target file's full path and name.

share|improve this answer
    
Working fine as expected. Great. Thanks. –  user1537319 Oct 4 '12 at 6:05
    
@John - Cool :) Happy coding! –  Tim Oct 4 '12 at 6:05
    
@Tim: I see that you have already initiated in answering John's question. However this is not what he wants. Please see the comments in the question :) Would you like to answer his question or would you like me to post an answer? :) –  Siddharth Rout Oct 4 '12 at 6:11
1  
@Tim: Ok in that case I will not post an answer :) I'll wait for you to edit the answer and before I upvote as well ;) –  Siddharth Rout Oct 4 '12 at 6:16
1  
@Tim: The best part is now whether the file is in desktop or any other location, the output will always be in the location where the source file is. This also prevents you from hardcoding the path to the desktop... –  Siddharth Rout Oct 4 '12 at 6:28

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