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I have some images in a SQL Server database and I want to retrieve those images in ASP.NET. But it gives me an error

The file 'C:\Program Files\Common Files\Microsoft Shared\DevServer\10.0\130065367816821657' already exists.

Please solve my problem.

protected void DropDownList1_TextChanged(object sender, EventArgs e)
{
        cn.Open();
        SqlCommand cm = new SqlCommand("select * from imageCollection where img_id='" + DropDownList1.SelectedItem.ToString() + "'", cn);
        SqlDataAdapter da = new SqlDataAdapter(cm);
        SqlDataReader dr = cm.ExecuteReader();

        try
        {
            if (dr.Read())
            {

                string image1 = Convert.ToString(DateTime.Now.ToFileTime());
                string image2 = Convert.ToString(DateTime.Now.ToFileTime());
                FileStream fs1 = new FileStream(image1, FileMode.CreateNew, FileAccess.Write);
                FileStream fs2 = new FileStream(image2, FileMode.CreateNew, FileAccess.Write);
                byte[] bimage1 = (byte[])dr["passport_photo"];
                byte[] bimage2 = (byte[])dr["sign_photo"];
                fs1.Write(bimage1, 0, bimage1.Length - 1);
                fs2.Write(bimage2, 0, bimage2.Length - 1);
                fs1.Flush();
                fs2.Flush();
                Image1.ImageUrl = "~/images"+bimage1.ToString();
                Image2.ImageUrl = "~/images"+bimage2.ToString();
            }
            dr.Close();
            cn.Close();
        }
        catch (Exception ex)
        {
            throw ex;
        }

I have uploaded images from "C:\Program Files\Common Files\microsoft shared\DevServer\10.0" and the front end code is as of following:

 protected void Button1_Click(object sender, EventArgs e)
{
    string image1 = FileUpload1.FileName;
    string image2 = FileUpload2.FileName;
    FileStream fs1 = new FileStream(image1, FileMode.Open, FileAccess.Read);
    FileStream fs2 = new FileStream(image2, FileMode.Open, FileAccess.Read);
    byte[] bimage1 = new byte[fs1.Length];
    byte[] bimage2 = new byte[fs2.Length];
    fs1.Read(bimage1, 0, Convert.ToInt32(fs1.Length));
    fs2.Read(bimage2, 0, Convert.ToInt32(fs2.Length));
    fs1.Close();
    fs2.Close();
    cn.Open();
    SqlParameter sp = new SqlParameter();
    sp.SqlDbType = SqlDbType.Image;
    sp.ParameterName = "@passport_photo";
    sp.ParameterName = "@sign_photo";
    sp.Value = bimage1;
    sp.Value = bimage2;
    SqlCommand cm = new SqlCommand("INSERT INTO imageCollection values(@img_id," + "@passport_photo,"+"@sign_photo)", cn);
    cm.Parameters.AddWithValue("@img_id",TextBox1.Text);
    cm.Parameters.AddWithValue("@passport_photo",sp.Value=bimage1);
    cm.Parameters.AddWithValue("@sign_photo",sp.Value=bimage2);
    cm.ExecuteNonQuery();
    cm.Dispose();
    cn.Dispose();
    cn.Close();
}

}

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closed as not constructive by marc_s, Claus Jørgensen, Christoph, Hanlet Escaño, Peter Majeed Feb 28 '13 at 17:35

As it currently stands, this question is not a good fit for our Q&A format. We expect answers to be supported by facts, references, or expertise, but this question will likely solicit debate, arguments, polling, or extended discussion. If you feel that this question can be improved and possibly reopened, visit the help center for guidance.If this question can be reworded to fit the rules in the help center, please edit the question.

    
DateTime now = DateTime.Now; before the first string and now = DateTime.Now; before the second might do too. Agustin's way is better though –  t3hn00b Feb 28 '13 at 15:27
1  
You might also consider using using statements. –  Arran Feb 28 '13 at 15:27

2 Answers 2

Your problem is that image1 and image2 are equal.

string image1 = Convert.ToString(DateTime.Now.ToFileTime());
string image2 = Convert.ToString(DateTime.Now.ToFileTime());

Consider using something to differentiate both filenames:

string image1 = Convert.ToString(DateTime.Now.ToFileTime()) + "1";
string image2 = Convert.ToString(DateTime.Now.ToFileTime()) + "2";

As you can imagine, the code involved in create your filename Convert.ToString(DateTime.Now.ToFileTime()) executes really fast, so there is not time enough to let DateTime.Now increases its value.

EDIT

You may also change the directory where the images are written:

 FileStream fs1 = new FileStream(Server.MapPath("~/images/" + image1), FileMode.CreateNew, FileAccess.Write);
 FileStream fs2 = new FileStream(Server.MapPath("~/images/" + image2), FileMode.CreateNew, FileAccess.Write);

Otherwise, the files are written in the application folder (bin)

And then

Image1.ImageUrl = "~/images/" + image1;
Image2.ImageUrl = "~/images/" + image2;

Now have sense

Ensure that the ASP.NET user has write permissions in the "images" folder.

share|improve this answer
    
Hello,Now it's not showing error.But it doesn't displaying images in asp.net image control. Please find a solution. Thanks.... –  Chiklu.Soumya Feb 28 '13 at 15:31
    
I tried your above written code. Now it's giving an error "Could not find a part of the path 'E:\Visual Studio 2010\WebSites\WebSite7\images\1300654290703737531'." –  Chiklu.Soumya Feb 28 '13 at 16:35
    
Seems like the image folder isn't there. Have you verified that the folder exists? –  Agustin Meriles Feb 28 '13 at 17:03
    
yes.I have verified. it exists. –  Chiklu.Soumya Feb 28 '13 at 17:11
    
So, verify what part in the E:\Visual Studio 2010\WebSites\WebSite7\images\1300654290703737531 path string is wrong –  Agustin Meriles Feb 28 '13 at 17:18

Also, your code is set to throw an error if a file with a duplicate filename is found:

FileStream fs1 = new FileStream(image1, FileMode.CreateNew, FileAccess.Write);
FileStream fs2 = new FileStream(image2, FileMode.CreateNew, FileAccess.Write);

The following code will allow a file to be overwritten, by changing FileMode.CreateNew to FileMode.Create:

FileStream fs1 = new FileStream(image1, FileMode.Create, FileAccess.Write);
FileStream fs2 = new FileStream(image2, FileMode.Create, FileAccess.Write);
share|improve this answer
    
Hello dear... I have tried your above written code and it's showing an error "Could not find file 'C:\Program Files\Common Files\Microsoft Shared\DevServer\10.0\130064619000881758'." –  Chiklu.Soumya Feb 28 '13 at 15:52
    
This is to do with where the image is saved. It really is a different question. –  rhughes Feb 28 '13 at 15:57
    
I have saved my images in Sqlserver database in image format. I have uploaded images from front end. –  Chiklu.Soumya Feb 28 '13 at 16:06
    
If you open a new question about downloading an image, we can give you a fuller answer. –  rhughes Mar 1 '13 at 12:44

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