Getting the File Path of file attached to Document(CV03N)

Similar Messages

• I can't get the file attachment in a web form to work

  I have a web form made in Business Catalyst that I'm having some problems with. I have added a file attachment option, but I can't get this to work properly.
  When a user chooses a file and sends the form, the message that is being sent includes the name of the file that was attached, but not the file itself! What am I doing wrong?
  This is the web form (in Norwegian, but you get the idea of where the file upload is) In this form, the file "produktark_plusstjenester.pdf" has been attached.
  The e-mail that is being sent now looks like this (I have removed the private information). But as you can see, it mentions the file produktark_plusstjenester.pdf (94,45 kb), but it is not attached in the e-mail itself.
  Hope someone can clarify this for me

  File on web forms is attached to the case. Go to the case in the admin and you can retrieve the file.

• How to get the file path in adf application

  hii all,
  i have a txt file that i am using in my adf application,
  i am passing this txt file through a File Reader, for which i have to mention the file path.
  The file is in web-content and when i am hard coding the complete file path i.e C:/JDeveloper/myApp/ViewController/public_html/log.txt
  the application is working fine when run on integrated weblogic server.
  My requirement is to access this file without giving the static file path, as in case i have to use this application on any other machine..
  for that how to mention the file path-
  i tried using FacesContext to get the context path :-
  FacesContext.getCurrentInstance().getExternalContext().getRequestContextPath();
  which gives me
  \myApp-ViewController-context-root
  after appending public_html\log.txt
  I am using the following path to access the file :-
  \myApp-ViewController-context-root\public_html\log.txt
  again i am getting the java.io.FileNotFoundException
  Does anyone know how to use file from inside the web-content without giving the complete path..???
  Thanks

  Hi,
  If you put your file under public_html folder, you can use this code to access the file:
  For example file is : log.txt
  FacesContext.getCurrentInstance().getExternalContext().getRealPath('/log.txt').toString().trim();
  Thanks.
  - LSR

• How to get the complete path of the file that is selected using FormFile

  i m working on struts..
  i hv used FormFile like
  <html:file property="xsdpath" value="Browse" />
  need to get the whole path that i will select using browse button
  for example d:\foldername\filename.java
  but FormFile Api has a method getFileName(); which returns the filename, for getting the absolute path wat has to be done.
  please reply bak soon
  thanks in advance

  here i use formfile <html:file> just to allow the
  user to select a xml file .
  so i need to get the whole path of the selectedfile
  to parse the xml file.No you dont.
  You would definitely benefit from further reading on
  file upload.
  <html:file> tag renders an HTML <input> element of
  type file.
  When a user uploads a file, this file is sent as a
  stream of data, which a program (jsp/servlet) on the
  server, reads and stores the data back in the form
  of a file on the server.
  Any server program that needs to parse the file,
  should do so on the file stored on the server.
  There's no point in knowing the absolute path of the
  file on the client machine. If a server program can
  parse a file on the client machine, why upload the
  file in first case ? Get the drift ?
  i also want to show my user the path he hadselected.
  If you have such a requirement, then yes.
  But it sounds weird to me. If you see my response
  above, you will realize that the server has a copy of
  the client's file uploaded and then parsed. What if
  the client has changed his file after upload ?
  cheers,
  ram.I also have a requirement to get the whole filepath of the file selected and place this information into a table. From FormFile I can only retreive the absolute filename
  Any suggestions would be helpful.
  Thanks, dam

• How to get the full path of a file

      If the user selects a file through a browse button, Is there a way, I can get the full path of the file. The file can be from his local hard drive as well.. Can someone advise    

  To upload multiple files (example is for 3), try something like this.
  == Form section ==
  There would be three(3) file form fields for the selection of a file/document to upload, which
  each being uniquely named.
  <div style="clear: both;">
  <cfinput type="file" name="upload_01" dir="ltr" lang="en" size="70" xml:lang="en">
  </div>
  <div style="clear: both;">
  <cfinput type="file" name="upload_02" dir="ltr" lang="en" size="70" xml:lang="en">
  </div>
  <div style="clear: both;">
  <cfinput type="file" name="upload_03" dir="ltr" lang="en" size="70" xml:lang="en">
  </div>
  == Processing section ==
  Checks to see if any files / documents were selected for upload. If none were, then
  displays an alert indicating as such. If at least one file/document was selected, then
  the process would process the upload.
  <cfif isdefined('form.upload_01') and trim(form.upload_01) eq "" and
  isdefined('form.upload_02') and trim(form.upload_02) eq "" and
  isdefined('form.upload_03') and trim(form.upload_03) eq ""
  >
      <p>Did not select any files to upload</p>
  <cfelse>
      <cfif isdefined('form.upload_01') and trim(form.upload_01) neq "">
          <cffile
              action="upload"
              destination="C:\path\to\upload\files\to"
              filefield="upload_01"
              nameconflict="overwrite"
              accept="
                application/msword
              , application/vnd.openxmlformats-officedocument.wordprocessingml.document
              , application/vnd.ms-excel
              , application/vnd.openxmlformats-officedocument.spreadsheetml.sheet
              , application/pdf">
              <cfcookie name="upload_01_doc" value="#cffile.serverfile#">
              <cfcookie name="upload_01_doc_ext" value="#cffile.serverfileext#">
      </cfif>
      <cfif isdefined('form.upload_02') and trim(form.upload_02) neq "">
          <cffile
              action="upload"
              destination="C:\path\to\upload\files\to"
              filefield="upload_02"
              nameconflict="overwrite"
              accept="
                application/msword
              , application/vnd.openxmlformats-officedocument.wordprocessingml.document
              , application/vnd.ms-excel
              , application/vnd.openxmlformats-officedocument.spreadsheetml.sheet
              , application/pdf">
              <cfcookie name="upload_02_doc" value="#cffile.serverfile#">
              <cfcookie name="upload_02_doc_ext" value="#cffile.serverfileext#">
      </cfif>
      <cfif isdefined('form.upload_03') and trim(form.upload_03) neq "">
      <cffile
          action="upload"
          destination="C:\path\to\upload\files\to"
          filefield="upload_03"
          nameconflict="overwrite"
          accept="
                application/msword
              , application/vnd.openxmlformats-officedocument.wordprocessingml.document
              , application/vnd.ms-excel
              , application/vnd.openxmlformats-officedocument.spreadsheetml.sheet
              , application/pdf">
          <cfcookie name="upload_03_doc" value="#cffile.serverfile#">
          <cfcookie name="upload_03_doc_ext" value="#cffile.serverfileext#">
      </cfif>
      <cflocation url="completed.cfm" addtoken="no">
  </cfif>
  == Completed section ==
  Can confirm to the person what files were actually uploaded, by displaying file name and file extension.
  You can you use the file extension information to display a respective icon for the file type.
  <cfoutput>
  <cfif isdefined('cookie.upload_01_doc')>
  01. #cookie.upload_01_doc# - #cookie.upload_01_doc_ext#<br /></cfif>
  <cfif isdefined('cookie.upload_02_doc')>
  02. #cookie.upload_02_doc# - #cookie.upload_02_doc_ext#<br /></cfif>
  <cfif isdefined('cookie.upload_03_doc')>
  03. #cookie.upload_03_doc# - #cookie.upload_03_doc_ext#<br /></cfif>
  </cfoutput>
  Leonard B

• How to get the Real Path of a file which is accessed  by URL?

  iam using tomcat6.0.
  I have a file xyz.xml at the top of the webapplication HFUSE which i can able to access by URL
  http://localhost:8080/HFUSE/xyz.xml
  My problem is how to get the realpath of the file "xyz.xml" for reading and writing purposes.
  I tried various things but i could not able to successfully solved the problem?
  1) File f = new File("/xyz.xml");
  print(f.getAbsolutePath()) ============== it is not fetching the file @ http://localhost:8080/HFUSE/xyz.xml rather it is creating a file
  at the root of the drive where eclipse is running.
  2) File f = new File("xyz.xml");============> this is also not working , it is creating the file xyz.xml in the eclipse directory ..................
  Can anyone please guide on this problem?

  RevertInIslam wrote:
  If you want your context root(i.e HFUSE)
  use this:
  request.getContextPath() //where request is HttpServletRequest object to get the needful path.
  e.g:
  File f = new File(request.getContextPath()+"/xyz.xml");//it will create the file inside HFUSE.
  Hope this helps.
  Regards
  BWrong. The File constructor expects an absolute filesystem path. The HttpServletRequest#getContextPath() doesn't return the absolute filesystem path, it only returns the relative path from the current context root. Use ServletContext#getRealPath() instead, it returns the absolute filesystem path for the given relative path from the current context root.
  File file = new File(servletContext.getRealPath("/"), "xyz.xml");

• How to get the file path from HTML input form in Firefox3

  In IE7 (and probably all famous browsers, including old Firefox 2), if we submit a file like 'C:\folder1\folder2\folder3\filename' it works properly and gives the full path to the file and the filename.
  In Firefox 3, it returns only 'filename', because of their new 'security feature' to truncate the path, as explained in Firefox bug tracking system (https://bugzilla.mozilla.org/show_bug.cgi?id=143220)
  I have no clue how to overcome this 'new feature'.
  Can anyone help to find a single solution to get the file path both on Firefox 3 and IE7?
  Thanks in advance....

  Doubleposted and ignored any previous answer: [http://forums.sun.com/thread.jspa?threadID=5342405]. Don't do that. It's rude.
  Regarding to your "problem": why do you need the file path?

• How to get the file path from HTML input form in Firefox 3...

  In IE7 (and probably all famous browsers, including old Firefox 2), if we submit a file like 'C:\folder1\folder2\folder3\filename' it works properly and gives the full path to the file and the filename.
  In Firefox 3, it returns only 'filename', because of their new 'security feature' to truncate the path, as explained in Firefox bug tracking system (https://bugzilla.mozilla.org/show_bug.cgi?id=143220)
  I have no clue how to overcome this 'new feature' because it causes all upload forms in my webapp to stop working on Firefox 3.
  Can anyone help to find a single solution to get the file path both on Firefox 3 and IE7?
  Thanks in advance....

  As you're posting this in the JSF forum and looking at your [previous topic|http://forums.sun.com/thread.jspa?threadID=5342365], I assume that you're using Tomahawk's t:inputFileUpload. In this case, just use UploadedFile#getInputStream(). You may find this article useful: [http://balusc.blogspot.com/2008/02/uploading-files-with-jsf.html].
  By the way, are you lazy or just dumb? You wasted one week to this! I've posted the aforementioned article one week ago. How did you stuck?

• Function module to get the file path in the system for TEMP folder

  Hi All,
  Is there any function module that I can use to get the file path in the system for TEMP folder.
  I mean, i am supposed to give only TEMP as the input for that function module and I need to get the path of that in the system as the output.
  I am unsing 4.0 version.
  Please advice.
  Regards
  Ramesh

  In Higher versions, we can use the below code:
  call method CL_GUI_FRONTEND_SERVICES=>ENVIRONMENT_GET_VARIABLE
      exporting
        VARIABLE   = 'TEMP'
      importing
        VALUE      = LV_TMP
      exceptions
        CNTL_ERROR = 1
        others     = 2.
    if SY-SUBRC <> 0.
      message id SY-MSGID type SY-MSGTY number SY-MSGNO
      with SY-MSGV1 SY-MSGV2 SY-MSGV3 SY-MSGV4.
    endif.
    call method CL_GUI_CFW=>FLUSH
      exceptions
        CNTL_SYSTEM_ERROR = 1
        CNTL_ERROR        = 2
        others            = 3.
    if SY-SUBRC <> 0.
  Error handling
    endif.
    concatenate lv_tmp '\' into folder_path.
  But need to know in the lower versions like 3.1h and 4.0,

• How to get the pull path name from a file upload window

  Hello everyone!
  I have encountered the following problem with the following JSP code:
  <form method="post" action="filename.jsp">
  Upload JAVA program:
  <input type=file size=20 name="fname" accept="java">
  <input type=submit value="go">
  </form>
  <%
  String s = "";
  if (request.getParameter("fname") != null)
  s = request.getParameter("fname")
  %>
  The value of s is alway the filename. However I want to get the full path in addition to the filename, so that I can read the file. Does anyone know how to get the pull name of the file?
  thanks a lot in advance,

  Dear Sir,
  thanks a lot for your reply. Please let me explain what I intended to do: I want to upload a file from the local machine and then read the content of the file. Therefore I need to the fullpath of the filename like /var/local/file.java instead of file.java. The latter is what I got.
  The problem I have with your code is that the function like "request.getServerScheme()" is not recognized. Maybe is it because I didn't install servelet package? I only installed javax package btw. Also my application runns on Tomcat server if this could give you some information. The error message I had is as follows:
  org.apache.jasper.JasperException: Unable to compile class for JSP
  An error occurred at line: 36 in the jsp file: /addExercise.jsp
  Generated servlet error:
  [javac] Compiling 1 source file
  /usr/local/jakarta-tomcat-5.0.12/work/Catalina/localhost/tutor/org/apache/jsp/addExercise_jsp.java:133: cannot resolve symbol
  symbol : method getServerScheme ()
  location: interface javax.servlet.http.HttpServletRequest
  url = request.getServerScheme()
  ^
  An error occurred at line: 36 in the jsp file: /addExercise.jsp
  Generated servlet error:
  /usr/local/jakarta-tomcat-5.0.12/work/Catalina/localhost/tutor/org/apache/jsp/addExercise_jsp.java:136: cannot resolve symbol
  symbol : method getServerScheme ()
  location: interface javax.servlet.http.HttpServletRequest
  + ((("http".equals(request.getServerScheme()) && request.getServerPort() != 80)
  ^
  An error occurred at line: 36 in the jsp file: /addExercise.jsp
  Generated servlet error:
  /usr/local/jakarta-tomcat-5.0.12/work/Catalina/localhost/tutor/org/apache/jsp/addExercise_jsp.java:137: cannot resolve symbol
  symbol : method getServerScheme ()
  location: interface javax.servlet.http.HttpServletRequest
  ||("https".equals(request.getServerScheme()) && request.getServerPort() != 443))
  ^
  An error occurred at line: 36 in the jsp file: /addExercise.jsp
  Generated servlet error:
  /usr/local/jakarta-tomcat-5.0.12/work/Catalina/localhost/tutor/org/apache/jsp/addExercise_jsp.java:139: cannot resolve symbol
  symbol : method getServletConfig ()
  location: interface javax.servlet.http.HttpServletRequest
  + "/" + request.getServletConfig().getServletName()
  ^
  An error occurred at line: 36 in the jsp file: /addExercise.jsp
  Generated servlet error:
  /usr/local/jakarta-tomcat-5.0.12/work/Catalina/localhost/tutor/org/apache/jsp/addExercise_jsp.java:140: cannot resolve symbol
  symbol : variable path
  location: class org.apache.jsp.addExercise_jsp
  + "/" + path
  ^
  5 errors
       org.apache.jasper.compiler.DefaultErrorHandler.javacError(DefaultErrorHandler.java:128)
       org.apache.jasper.compiler.ErrorDispatcher.javacError(ErrorDispatcher.java:351)
       org.apache.jasper.compiler.Compiler.generateClass(Compiler.java:413)
       org.apache.jasper.compiler.Compiler.compile(Compiler.java:453)
       org.apache.jasper.compiler.Compiler.compile(Compiler.java:437)
       org.apache.jasper.JspCompilationContext.compile(JspCompilationContext.java:555)
       org.apache.jasper.servlet.JspServletWrapper.service(JspServletWrapper.java:291)
       org.apache.jasper.servlet.JspServlet.serviceJspFile(JspServlet.java:301)
       org.apache.jasper.servlet.JspServlet.service(JspServlet.java:248)
       javax.servlet.http.HttpServlet.service(HttpServlet.java:856)

• How to get the full path instead of just the file name, in �FileChooser� ?

  In the FileChooserDemo example :
  In the statement : log.append("Saving: " + file.getName() + "." + newline);
  �file.getName()� returns the �file name�.
  My question is : How to get the full path instead of just the file name,
  e.g. C:/xdirectory/ydirectory/abc.gif instead of just abc.gif
  import java.io.*;
  import java.awt.*;
  import java.awt.event.*;
  import javax.swing.*;
  import javax.swing.filechooser.*;
  public class FileChooserDemo extends JFrame {
  static private final String newline = "\n";
  public FileChooserDemo() {
  super("FileChooserDemo");
  //Create the log first, because the action listeners
  //need to refer to it.
  final JTextArea log = new JTextArea(5,20);
  log.setMargin(new Insets(5,5,5,5));
  log.setEditable(false);
  JScrollPane logScrollPane = new JScrollPane(log);
  //Create a file chooser
  final JFileChooser fc = new JFileChooser();
  //Create the open button
  ImageIcon openIcon = new ImageIcon("images/open.gif");
  JButton openButton = new JButton("Open a File...", openIcon);
  openButton.addActionListener(new ActionListener() {
  public void actionPerformed(ActionEvent e) {
  int returnVal = fc.showOpenDialog(FileChooserDemo.this);
  if (returnVal == JFileChooser.APPROVE_OPTION) {
  File file = fc.getSelectedFile();
  //this is where a real application would open the file.
  log.append("Opening: " + file.getName() + "." + newline);
  } else {
  log.append("Open command cancelled by user." + newline);
  //Create the save button
  ImageIcon saveIcon = new ImageIcon("images/save.gif");
  JButton saveButton = new JButton("Save a File...", saveIcon);
  saveButton.addActionListener(new ActionListener() {
  public void actionPerformed(ActionEvent e) {
  int returnVal = fc.showSaveDialog(FileChooserDemo.this);
  if (returnVal == JFileChooser.APPROVE_OPTION) {
  File file = fc.getSelectedFile();
  //this is where a real application would save the file.
  log.append("Saving: " + file.getName() + "." + newline);
  } else {
  log.append("Save command cancelled by user." + newline);
  //For layout purposes, put the buttons in a separate panel
  JPanel buttonPanel = new JPanel();
  buttonPanel.add(openButton);
  buttonPanel.add(saveButton);
  //Explicitly set the focus sequence.
  openButton.setNextFocusableComponent(saveButton);
  saveButton.setNextFocusableComponent(openButton);
  //Add the buttons and the log to the frame
  Container contentPane = getContentPane();
  contentPane.add(buttonPanel, BorderLayout.NORTH);
  contentPane.add(logScrollPane, BorderLayout.CENTER);
  public static void main(String[] args) {
  JFrame frame = new FileChooserDemo();
  frame.addWindowListener(new WindowAdapter() {
  public void windowClosing(WindowEvent e) {
  System.exit(0);
  frame.pack();
  frame.setVisible(true);

  simply use file.getPath()
  That should do it!Thank you !
  It takes care of the problem !!

• How to get the absolute path of a file from the local disk given the file n

  how to get the absolute path of a file from the local disk given the file name

  // will look for the file at the current working directory
  // this is wherever you start the Java application (cound be C: and your
  // application is located in C:/myapp, but the working dir is C:/
  File file = new File("README.txt"); 
  if (file != null && file.exists())
      String absolutePath = file.getAbsolutePath();

• How to get the real path of the xml file

  I have a java application
  following is the package structure
  com>>gts>>xml
  having file---------> MyXML.xml
  com>>gts>>java
  having java program to read the file
  Problem is if I use File file = new File("..\\xml\\MyXML.xml");
  java.io.FileNotFoundException: E:\LEARNING_WORK_SPACE\JavaXml\..\xml\MyXml.xml (The system cannot find the path specified)
       at java.io.FileInputStream.open(Native Method)
       at java.io.FileInputStream.<init>(Unknown Source)
       at java.io.FileInputStream.<init>(Unknown Source)
       at sun.net.www.protocol.file.FileURLConnection.connect(Unknown Source)
  How do I get the real path of the xml file.
  Edited by: shashiwagh on Jan 29, 2010 11:46 AM

  Hi,
  if your XML file is inside a package you can easily get it from the classloader.
  Note that your application maybe packaged inside a jar so it is not safe to use java.io.File for this purpose.
  You have an xml file in :
  com/gts/xml/MyXML.xml
  in a class of the same module (that will packaged in the same jar) for example com.gts.java.XmlLoader :
  // To get the stream :
  InputStream is = this.getClass().getResourceAsStream("/com/gts/xml/MyXML.xml");
  // Or the URL :
  URL xml = this.getClass().getResource("/com/gts/xml/MyXML.xml");Hope it helps.

• To get the absolute path of a file in JSP

  Hi,
  I want to include a HTML page in a jsp.The path of the jsp should not be hot coded.So that i can get the path from the jsp file i am running and then concat the correspondinghtml file name to the absolute path of the jsp file i am running.What can i do to get the absolute path of the jsp file.

  I dont know if there is a way to get the path of the current jsp - but you sure can get the path to your web application using the ServletContext's getRealPath() method and then if you have stored the html (say x.html) in a folder (called, say 'static') immediately under your application root,
  String contextPath = application.getRealPath("/"); //path to your application ctxt
  String htmlFilePath = contextPath.append("/static/x.html");ram.

• Getting the absolute path of the current executing file

  I have a file which will be placed in window and linux environment. It is not good to change the source code in that way:
  String path = "D:\\java\file1.txt"; (Window)
  String path = "/java/file1.txt"; (Linux)
  So I would like to ask how to get the absolute path based on that executing file?
  I referred to the reference in jsp, but I don't know what class and the coding syntax in console environment.
  Thx for any help.

  If you are looking to "get" a file that is located in a directory with (or somewhere under) the class file than use
  myClass.getClass().getResource(<relativePathWithFileFromClass>);  //URL
  myClass.getClass().getResourceAsStream(<relativePathWithFileFromClass>);  //InputStreamAs far as determining which Operating System you are on, there are a number of environment variables that will tell you that, and you can then format your file path accordingly.
  You can use "/" in your path regardless of which OS you are using. You do not have to use "\\" on Windows (excpet maybe inside of a Runtime.exec command string).
  Here is a very small program you can compile and run if you wish to see the list of System Properties available:
  public class ShowProperties {
    public static void main(String[] args) {
      System.getProperties().list(System.out);
  }Just save that to a file (named ShowProperties.java of course) and compile and run it, and you will get a list of your available System Properties and their current values