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Having a bit of trouble I am trying to have the very most recent txt file open. i am using a button and i need the txt file to open in a catch thing is there is over a few hundred text files, and i need the last file by date and time

//..............Updated.............//

Here is a better example of what my file looks like there is a few extra logs and they update contently

commandlog2012081410   (2012-08-14 /  01:01)
commandlog2012081411   (2012-08-14 /  10:30)
commandlog2012081412   (2012-08-14 /  12:36)
Sample2012082207   (2012-08-22   /  02:12)
Sample2012082208   (2012-08-22   /  06:28)
Sample2012082209   (2012-08-22   /  09:14)
faillog2012075671   (2012-07-17  /  01:20)
faillog2012075672   (2012-07-17  /  08:00)
faillog2012075673   (2012-07-17  /  09:00)
chargedlog203416771   (2012-07-05 /  20:36)
chargedlog203416772   (2012-07-05 /  21:20)
chargedlog203416773   (2012-07-05 /  22:42)
vanishlog2012324795   (2012-07-21 / 17:00)
vanishlog2012324796   (2012-07-21 / 19:31)
vanishlog2012324797   (2012-07-21 / 20:28)
debuglog123131231    (2012-08-22 / 05:10)
debuglog123131232    (2012-08-22 / 06:12)
debuglog123131233    (2012-08-22 / 09:14)
droplogg12313131    (2012-08-06 / 10:10)
droplogg12313132    (2012-08-06 / 16:41)
exitlog123131313     (2012-08-22  /   01:01)
exitlog123131314     (2012-08-22  /   01:12)
exitlog123131315     (2012-08-22  /   09:14)
log201123131     (2012-08-22  / 09:12)
log201123132     (2012-08-22  / 09:14)

i need to open //Sample2012082209 (2012-08-22 / 09:14)// as you can see a few other txt files end at the same time at the same date is it even possible to pick out that one file and open it

        catch (Exception ex)
        {
            MessageBox.Show("Error" + ex.Message.ToString());
         (Open newest Sample txt file here)
        }
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2 Answers 2

You could use Linq and File.GetLastAccessTime Method to get the last openend file:

var openedFiles = from fName in Directory.EnumerateFiles(dir, "*.txt")
                 orderby File.GetLastAccessTime(fName) descending
                 select new FileInfo(fName);
if (openedFiles.Any())
{
    var lastOpenedFile = openedFiles.First();
}

Directory.EnumerateFiles(dir, "*.txt") returns only txt-files in a given directory.

Edit: I'm afraid the question is still not clear, even if you've edited it and you've written several comments. But if you only want files that starts with a given name (f.e. "Sample"), you on ly have to adjust the searchpattern of EnumerateFiles:

var name = "Sample";
var openedFiles = from fName in Directory.EnumerateFiles(dir, name + "*.txt")
                  orderby File.GetLastAccessTime(fName) descending
                  select new FileInfo(fName);
share|improve this answer
    
wouldn't that get the last .txt files in the folder. The files i need is near the center of the folder its like an error log the error log .txt file's numbers will always change but the name will always be the same (Sample000123,Sample000124) i would like to get the last .txt file of Sample –  Mike Smith Aug 22 '12 at 16:50
    
@MikeSmith: the query orders all txt-files in a folder by access time descending. That means the first file is the file that was last accessed. Is that what you need? " I am trying to have the very most recent txt file open" –  Tim Schmelter Aug 22 '12 at 16:56
    
i updated my original post if it helps there are alot of logs sometimes they write at the same time only the name stays the same is there a way to open (sample(00000000) at the last date and time –  Mike Smith Aug 22 '12 at 17:21
    
I'm afraid it's still not clear. You want to open the last log that staarts with a given name(f.e. Sample...)? Or do you want to get the file which was accessed last(as my answer)? –  Tim Schmelter Aug 22 '12 at 17:27
    
yes i want to open the last log that starts with the given name (Sample) the numbers after the text will change every time it updates –  Mike Smith Aug 22 '12 at 17:33

You can use the class DirectoryInfo to get information about a given directory. From there you can get the files and with the class FileInfo get information about things like creation date. Here's an example:

    DirectoryInfo dirInfo = new DirectoryInfo(@"C:\");
    foreach (FileInfo file in dirInfo.GetFiles())
    {
        DateTime creationdate = file.CreationTime;
    }

Just comment if you need more info

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