How to get the SQL file name in SQL*plus

Similar Messages

• How to get the Output File Name as One of the Field Value From Payload

  Hi All,
  I want to get the Output file name as one of the Field value from payload.
  Example:
  Source XML
  <?xml version="1.0" encoding="UTF-8" ?>
  - <ns0:MT_TEST xmlns:ns0="http://sample.com">
  - <Header>
    <NAME>Bopanna</NAME>
    </Header>
    </ns0:MT_TEST>
  I want to get the Output file name as " Bopanna.xml"
  Please suggest me on this.
  Regards
  Bopanna

  Hi,
  There are couple of links already available for this. Just for info see the below details,
  The Output file name could be used from the field value of payload. For this you need to use the UDF DynamicFile name with below code,
  //       Description: Function to create dynamic Filename
  DynamicConfiguration conf = (DynamicConfiguration) container.getTransformationParameters().get(StreamTransformationConstants.DYNAMIC_CONFIGURATION);
  DynamicConfigurationKey key = DynamicConfigurationKey.create("http://sap.com/xi/XI/System/File" , "FileName");
  conf.put(key,a);
  return "";
  DynamicConfiguration conf = (DynamicConfiguration) container.getTransformationParameters().get(StreamTransformationConstants.DYNAMIC_CONFIGURATION);
  DynamicConfigurationKey key = DynamicConfigurationKey.create("http://sap.com/xi/XI/System/File" , "FileName");
  conf.put(key,a);
  return "";
  With this udf map it with the MessageType as
  (File Name field from Payload) > DynamicFileConfiguration>MTReceiver
  Thanks
  Swarup

• How to get the right file name in an attachment

  I have design a program to get the attach file from an attachment. But when I click the link to save the file, the default name of the file is 'attach' whenever I get different files. Who know what is the problem, please tell me the truth.
  Here are some codes of the program.
  download.jsp
  <%="test.doc"%>
  web.xml
  <servlet-mapping>
  <servlet-name>AttachmentServlet</servlet-name>
  <url-pattern>attachment</url-pattern>
  </servlet-mapping>
  AttachmentServlet.java
  public void doGet
  Message msg = folder.getMessage(msgNum);
  // the message I get is right and the name of the file in
  // the attach in this message is right too.(I have printed)
  Multipart multipart = (Multipart)msg.getContent();
  Part part = multipart.getBodyPart(partNum);
  ContentType ct = new ContentType(sct);
  response.setContentType(ct.getBaseType());
  InputStream is = part.getInputStream();
  int i;
  while ((i = is.read()) != -1) {
  out.write(i);
  out.flush();
  out.close();

  The trick that I used is to append the URL with the name of the file. So if your url is "http://domain.com/attach", use "http://domain.com/attach/filename.doc". IE and Netscape parse the URL to determine what the filename is, so by placing this text at the end, you essentially let the browsers know what the filename is. :)
  I have design a program to get the attach file from an
  attachment. But when I click the link to save the
  file, the default name of the file is 'attach'
  whenever I get different files. Who know what is the
  problem, please tell me the truth.
  Here are some codes of the program.<< snip >>

• How to get the long file name from an 8.3 name in Windows.

  Because of a legacy string limitation, I have a list of files in 8.3 format. The actual files are saved with long names. How can I get the long name from the short name?
  In JavaScript, I would get a file system object and get the file object from there with the short name. Then it's no problem to get the full name. But I don't see anything in Java that matches that. ???
  Ideas?
  Frank Perry, MSEE

  Here is what I did.
  String displayName = "somefi~1.txt";
  File fO = new File("c:\\"); // I have a more involved path but that's not important here.
  String stPath = fO.getPath() + displayName;
  File fD = new File(stPath); // get the file using the short name.
  File fDc = new File(fD.getCanonicalPath()); // get another file using the cononical name
  String FulldisplayName = fDc.getName(); // get the long name from there.
  It's roundabout but it works. Since getName() on the file read with the short name only returns the name used to get the file, I open it twice. The alternative is to parse the cononical name for the file name but that's clumbsy too.
  Frank

• How to get the incoming file name using JMS adapter and SOAP adapter

  Hi Everybody,
     In one of my interface i need to get the file name of incoming flat file using JMS adapter at sender side. and then i am using xslt to convert it to IDOC and then posting to  SAP IDOC.
  my incoming filname are in this form price<DateTimestamp>.txt. when i do the tranformation this incoming file name should be part of one element in the IDOC which i am posting.
  EX:
  <IDOC
  <REF>price<DateTimestamp>.txt</REF>
  </IDOC>
  Hope it is clear to everybody. I need your suggestion how i can capture this incoming file name and send it as part of IDOC.
  Thanks
  raj

  If they are passing it in message id or correlation id,
  you can access it using
  <xsl:variable name="dynamic-conf" 
          select="map:get($inputparam, 'DynamicConfiguration')" />
      <xsl:variable name="dynamic-key"  
          select="key:create('http://sap.com/xi/XI/System/JMS', 'DCJMSMessageID/ DCJMSCorrelationID')" />
      <xsl:variable name="dynamic-value"
          select="dyn:get($dynamic-conf, $dynamic-key)" />
  Check this:
  http://help.sap.com/saphelp_nw70/helpdata/en/f4/2d6189f0e27a4894ad517961762db7/content.htm
  Thanks,
  Beena.

• How to get the original file name in chinese with upload component?

  It is inconvenience for user to upload file with name only in english. When upload a file with chinese file name, the file name gotten from "fileUpload1.getUploadedFile().getOriginalName()" is just like "&#32515;&#25120;&#31926;&#37733;&#65533;.jpg". Do somebody have a good idea?

  I spoke to the component engineers regarding this issue
  First please check if the s page encoding is set correctly, as browsers tend to default to use the encoding that was used for the page when submitting the request.
  (Because of how the JSF response writer is written, multibyte characters can be written correctly even if the encoding is not set correctly so the fact that form correctly rendered chinese characters is not proof that the encoding was set correctly).
  If you established that the page encoding is correct, then there is a
  bug in the FileUpload. The method that gets the name is a straight
  shot through to an Apache FileUpload library method. Technically this
  ought to be resolved by that method checking the request body
  character set before parsing the parameters.
  - Winston
  http://blogs.sun.com/roller/page/winston?catname=Creator

• How to get the target file name from an URL?

  Hi there,
  I am trying to download data from an URL and save the content in a file that have the same name as the file on the server. In some way, what I want to do is pretty similar to what you can do when you do a right click on a link in Internet Explorer (or any other web browser) and choose "save target as".
  If the URL is a direct link to the file (for example: http://java.sun.com/images/e8_java_logo_red.jpg ), I do not have any problem:
  URL url = new URL("http://java.sun.com/images/e8_java_logo_red.jpg");
  System.out.println("Opening connection to " + url + "...");
  // Copy resource to local file                   
  InputStream is = url.openStream();
  FileOutputStream fos=null;
  String fileName = null;
  StringTokenizer st=new StringTokenizer(url.getFile(), "/");
  while (st.hasMoreTokens())
                  fileName=st.nextToken();
  System.out.println("The file name will be: " + fileName);
  File localFile= new File(System.getProperty("user.dir"), fileName);
  fos = new FileOutputStream(localFile);
  try {
      byte[] buf = new byte[1024];
      int i = 0;
      while ((i = is.read(buf)) != -1) {
          fos.write(buf, 0, i);
  } catch (Throwable e) {
      e.printStackTrace();
  } finally {
      if (is != null)
          is.close();
      if (fos != null)
          fos.close();
  }Everything is fine, the file name I get is "e8_java_logo_red.jpg", which is what I expect to get.
  However, if the URL is an indirect link to the file (for example: http://javadl.sun.com/webapps/download/AutoDL?BundleId=37719 , which link to a file named JavaSetup6u18-rv.exe ), the similar code return AutoDL?BundleId=37719 as file name, when I would like to have JavaSetup6u18-rv.exe .
  URL url = new URL("http://javadl.sun.com/webapps/download/AutoDL?BundleId=37719");
  System.out.println("Opening connection to " + url + "...");
  // Copy resource to local file                   
  InputStream is = url.openStream();
  FileOutputStream fos=null;
  String fileName = null;
  StringTokenizer st=new StringTokenizer(url.getFile(), "/");
  while (st.hasMoreTokens())
                  fileName=st.nextToken();
  System.out.println("The file name will be: " + fileName);
  File localFile= new File(System.getProperty("user.dir"), fileName);
  fos = new FileOutputStream(localFile);
  try {
      byte[] buf = new byte[1024];
      int i = 0;
      while ((i = is.read(buf)) != -1) {
          fos.write(buf, 0, i);
  } catch (Throwable e) {
      e.printStackTrace();
  } finally {
      if (is != null)
          is.close();
      if (fos != null)
          fos.close();
  }Do you know how I can do that.
  Thanks for your help
  // JB
  Edited by: jb-from-sydney on Feb 9, 2010 10:37 PM

  Thanks for your answer.
  By following your idea, I found out that one of the header ( content-disposition ) can contain the name to be used if the file is downloaded. Here is the full code that allow you to download locally a file on the Internet:
        * Download locally a file from a given URL.
        * @param url - the url.
        * @param destinationFolder - The destination folder.
        * @return the file
        * @throws IOException Signals that an I/O exception has occurred.
       public static final File downloadFile(URL url, File destinationFolder) throws IOException {
            URLConnection urlC = url.openConnection();
            InputStream is = urlC.getInputStream();
            FileOutputStream fos = null;
            String fileName = getFileName(urlC);
            destinationFolder.mkdirs();
            File localFile = new File(destinationFolder, fileName);
            fos = new FileOutputStream(localFile);
            try {
                 byte[] buf = new byte[1024];
                 int i = 0;
                 while ((i = is.read(buf)) != -1) {
                      fos.write(buf, 0, i);
            } finally {
                 if (is != null)
                      is.close();
                 if (fos != null)
                      fos.close();
            return localFile;
        * Returns the file name associated to an url connection.<br />
        * The result is not a path but just a file name.
        * @param urlC - the url connection
        * @return the file name
        * @throws IOException Signals that an I/O exception has occurred.
       private static final String getFileName(URLConnection urlC) throws IOException {
            String fileName = null;
            String contentDisposition = urlC.getHeaderField("content-disposition");
            if (contentDisposition != null) {
                 fileName = extractFileNameFromContentDisposition(contentDisposition);
            // if the file name cannot be extracted from the content-disposition
            // header, using the url.getFilename() method
            if (fileName == null) {
                 StringTokenizer st = new StringTokenizer(urlC.getURL().getFile(), "/");
                 while (st.hasMoreTokens())
                      fileName = st.nextToken();
            return fileName;
        * Extract the file name from the content disposition header.
        * <p>
        * See <a
        * href="http://www.w3.org/Protocols/rfc2616/rfc2616-sec19.html">http:
        * //www.w3.org/Protocols/rfc2616/rfc2616-sec19.html</a> for detailled
        * information regarding the headers in HTML.
        * @param contentDisposition - the content-disposition header. Cannot be
        *            <code>null>/code>.
        * @return the file name, or <code>null</code> if the content-disposition
        *         header does not contain the filename attribute.
       private static final String extractFileNameFromContentDisposition(
                 String contentDisposition) {
            String[] attributes = contentDisposition.split(";");
            for (String a : attributes) {
                 if (a.toLowerCase().contains("filename")) {
                      // The attribute is the file name. The filename is between
                      // quotes.
                      return a.substring(a.indexOf('\"') + 1, a.lastIndexOf('\"'));
            // not found
            return null;
       }

• How to get the trace file name for current running application?

  Hi, I want to know if it is possible to get the file name directly for current running application instance which is launched by javaws.
  There is a property "deployment.user.logdir" tells the log directory, it would be great if a file name property
  is available. something like "instance.trace.file".
  Our application wants it because we would like our client send use the application log by clicking a "send error"
  button, the codes finds the trace file and compress it and send it by using a smtp server.
  In 1.5, we can do it by using a shell program.

  I found other asked it before, but I tried to set both properties, but neither works. my sun JRE version :java version "1.6.0_04"
  <property
  name="deployment.javaws.traceFileName"
  value="abcfefsfdsf"/>
  <property
  name="deployment.javapi.trace.filename"
  value="235235235"/>
  But it always write to one trace file with name lik javaws63645.trace

• How to get the source file name and transform into database

  Hi,
  We need to load data from source file abc.csv into oracle table. during loading, we need to keep the file name abc.csv and write into the database table as one field. Is there anyone who did the similar task? and how to make it? Pls help!

  Hi,
  If you can write the filename to a text file, you may do the following:
  (1) create a text-file containing the name of your source-file.
  (2) create an external table using that text-file as input.
  Now, you can SELECT the filename from the external table.
  Of course, you need a way to : create the flat file, handle the flat file, etc.
  Grtz.

• How to get the complete file name?

  Good day!
  My task is to upload files to the database and also save its path. I am already through with the Blob files but I have a problem with its filename. My boss wants me to get the complete path/location of the file that I am uploading. I mean, she wants to get where it is saved first before I upload it.
  Ex.
  C:/My Documents/User Files/WebApps/myWebApps/test.txt
  currently I am using the following codes:
  CODE 1:
       File tempFileRef  = new File(fi.getName());
       System.out.println("Field = "+tempFileRef);It only outputs:
  Field = test.txt
  which is not complete
  CODE 2:
       File tempFileRef  = new File(fi.getName());
       System.out.println("Field = "+tempFileRef.getAbsolutePath());which also gives this wrong output:
  Field = C:\Tomcat 5.5.23\bin\test.txt
  Can someone please help me?
  Thanks so much.
  God bless.

  Thank you for your reply.
  I am using Apache Commons File Upload. Here is the code where I got the "fi".
       DiskFileUpload fu = new DiskFileUpload();
            fu.setSizeMax(1000000000);
            List fileItems = fu.parseRequest(request);
           Iterator itr = fileItems.iterator();
            FileItem fi = (FileItem)itr.next();
            if(!fi.isFormField())
              File tempFileRef  = new File(fi.getName());
       System.out.println("Field = "+tempFileRef.getAbsolutePath());
       }

• How to get the actual font name from a font file?

  Hi
  I have only the font Path I have to get the font name from that path. Any idea how to get the actual font name?
  Thanks,

  I would ask you these questions:
  Why do you need to do this?  What are you ultimately trying to accomplish?
  Are you really asking about the InDesign SDK?
  Do you really need to get the "name" of a font from an arbitrary file?  Or do you want information about a font installed on the system?  If so, what OS?
  Do you need to be able to handle any font format?
  Which font "name" do you mean?
  What language do you want the name in?
  (1) It's not clear what you're trying to accomplish.  A bit more information about your ultimate goal would be helpful.
  (2) This question is not at all specific to the InDesign SDK.  Are you really trying to do something in the context of an InDesign plug-in?  If so, you probably want to look at IID_IFONTFAMILY and the IFontFamily::GetFamilyName function.
  (3) If you are asking more generally, Windows and Mac both have system API calls to get this information, although those tend to deal with installed system fonts, not with arbitrary font files per se.
  Also, you can parse the name table from a True Type or Open Type font without using any system APIs; as True Type and Open Type are well-documented standards.  I would start by reading these:
  The Naming Table
  Font Names Table
  (4) Although there are other standards, such as Type 1 (PostScript) fonts, and True Type Collection files and other formats, especially on Mac.
  (5) Also, when you start down this road, you will quickly realize that your seemingly simple question is actually ambiguous, and that the answer is kind of complicated, because a font can have many names (a family name, a full font name, a style name, a PostScript name, etc.).
  (6) And not only does a font have multiple names, it can have each of those names in multiple languages and encodings.
  Any clarification would make this a better question.

• How to set the default file name for upload

  Hi All,
  I have the following BSP app for a file upload of a csv file. I want the page when displayed show the default file name to be loaded as c:\db1\currentPM.csv
  What changes do I need to make to get the default file name in the BSP app.
  Thanks
  Karen
  <%@page language="abap" %>
  <%@extension name="htmlb" prefix="htmlb" %>
  <htmlb:content id               = "content"
                 design           = "classicdesign2002design2003"
                 controlRendering = "sap"
                 rtlAutoSwitch    = "true" >
    <htmlb:page title="File Upload " >
      <htmlb:form method       = "post"
                  encodingType = "multipart/form-data">
            <htmlb:textView text   = "File:"
                            design = "STANDARD" />
            <htmlb:fileUpload id          = "uploadID"
                              onUpload    = "UploadFile"
                              upload_text ="Upload"/>
      </htmlb:form>
    </htmlb:page>
  </htmlb:content>
  On Input Processing
  event handler for checking and processing user input and
  for defining navigation
  DATA: EVENT TYPE REF TO IF_HTMLB_DATA,
        DATA TYPE REF TO CL_HTMLB_FILEUPLOAD,
        LV_OUTPUT_LENGTH TYPE I,
        LV_TEXT_BUFFER TYPE STRING,
        FILE_NAME TYPE STRING,
        FILE_PATH TYPE STRING ,
        INTERN TYPE TABLE OF  ZALSMEX_TABLINE.
  DATA: LT_BINARY_TAB TYPE TABLE OF SDOKCNTBIN .
  TYPES: BEGIN OF TY_TAB,
         FIELD1(2) TYPE C,
         FIELD2(2) TYPE C,
         FIELD3(2) TYPE C,
         FIELD4(2) TYPE C,
         FIELD5(2) TYPE C,
         END OF TY_TAB.
  DATA:  WA_TAB TYPE TY_TAB,
         IT_TAB TYPE TABLE OF TY_TAB.
  TYPES: BEGIN OF TY_LINE,
            LINE(255) TYPE C,
         END OF TY_LINE.
  DATA:  WA_LINE TYPE TY_LINE,
         IT_LINE TYPE TABLE OF TY_LINE.
  EVENT = CL_HTMLB_MANAGER=>GET_EVENT_EX( REQUEST ).
  IF EVENT IS NOT INITIAL AND EVENT->EVENT_NAME = HTMLB_EVENTS=>FILEUPLOAD.
    DATA ?= CL_HTMLB_MANAGER=>GET_DATA( REQUEST = RUNTIME->SERVER->REQUEST NAME = 'fileUpload' ID = 'uploadID' ).
    FILE_NAME = DATA->FILE_NAME.
    FILE_PATH = FILE_NAME.
    IF DATA IS NOT INITIAL.
      CALL FUNCTION'SCMS_XSTRING_TO_BINARY'
       EXPORTING BUFFER = DATA->FILE_CONTENT
       IMPORTING OUTPUT_LENGTH = LV_OUTPUT_LENGTH
       TABLES BINARY_TAB = LT_BINARY_TAB .
      CALL FUNCTION'SCMS_BINARY_TO_STRING'
      EXPORTING INPUT_LENGTH = LV_OUTPUT_LENGTH
       IMPORTING TEXT_BUFFER = LV_TEXT_BUFFER
       TABLES
       BINARY_TAB = LT_BINARY_TAB.
      IF SY-SUBRC = 0.
  MESSAGE ID SY-MSGID TYPE SY-MSGTY NUMBER SY-MSGNO
  WITH SY-MSGV1 SY-MSGV2 SY-MSGV3 SY-MSGV4.
      ENDIF.
      SPLIT LV_TEXT_BUFFER AT CL_ABAP_CHAR_UTILITIES=>CR_LF INTO TABLE IT_LINE.
      IF SY-SUBRC = 0.
        LOOP AT IT_LINE INTO WA_LINE.
         SPLIT WA_LINE AT CL_ABAP_CHAR_UTILITIES=>HORIZONTAL_TAB
          split wa_line at ','
          INTO WA_TAB-FIELD1 WA_TAB-FIELD2 WA_TAB-FIELD3 WA_TAB-FIELD4 WA_TAB-FIELD5.
          append wa_tab to it_tab.
        ENDLOOP.
      ENDIF.
    ENDIF.
  ENDIF.

  Also, I missed another point.
  In the folder c:\dbdata I have a number of CSV files on the user frontend. I would like the BSP application to get the list of files in the folder and process them one after the other. How can I get the list of files on the folder in the user PC and how to process them one after the other.
  I want the form to display only the default folder and once I press on upload it must process all files and display the status of processing on the same page.
  Please kindly share ideas how I can implement this app.
  Thanks
  Karen

• InfoPath 2013: How to find the current file name?

  Hello,
  Is there any way to find the file name in the rule formulas when an existing xml file in a sharepoint form library is being edited in InfoPath? I am looking for a function that returns the current file name that is being edited.
  Thank you,

  Hi,
  According to your post, my understanding is that you want to get the current file name in the InfoPath form.
  Here is a similar thread for you to take a look at:
  http://social.technet.microsoft.com/Forums/en-US/a24f01d5-744c-4b75-b30d-3295311ab054/how-do-i-find-the-file-name-of-the-currently-open-infopath-form?forum=sharepointcustomizationlegacy
  Best Regards
  Dennis Guo
  TechNet Community Support

• How to get list of file names from a directory?

  How to get list of file names from a directory?
  Please help

  In addition, this:
  String filename = files;Should be this:
  String filename = files;
  That's just because he didn't use the "code" tags, so [ i ] made everything following it become italicized.                                                                                                                                                                                                                                                                                                                                                                                                                                                                           

• How to get the report server name in Forms 10g.

  How to get the report server name in Forms 10g.
  I'm using the Application Server 10g 10.1.2.

  Hello,
  I do not think that you can get this value from anywhere. A solution is to put the Reports server name in an environment variable stored in the /forms/server/default.env file, then to query it at Forms runtime with the TOOL_ENV.Getvar() built-in.
  Francois

• Ecxpert Problem in getting the original file name submitted by FTP

  hai,
  when i use the scheduled FTP Application receive mode to receive files from the remote machine, i am not able to get the original file name, Ecxpert itself maintaining it's own file name,
  Even i query the tracking table also i am not able to find the original filename.
  If anybody know how i can able to get the original file name?
  thanks....

  I don't think there is an easy to capture this information. We ended up writing our own FTP tool so we could gather better data. The other problem we had seemed to be sporadic downloads from sites where setting Passive was required.