Counting the number of elements on a page

Similar Messages

• Count the number of elements in an Arraylist

  My arraylist has these elements inside it.
  [house,tom:, agent,, person,, untidy,jack:, ordered,, tidy,, tiled,roof,tom:, agent,, person,,.....]. The list continues like this.
  How can I count the number of elements after each tom upto before each jack and same for all words after jack and upto before tom? [for example in the first case there are 3 words after tom and there are 4 words after jack.]
  Thanks

  don't collapse your lists together. They represent separate data entities and should be kept separate. Go check your [other thread|http://forums.sun.com/thread.jspa?threadID=5416414&tstart=0].
  Edited by: DeltaGeek on Nov 17, 2009 11:07 AM

• Count the number of elements in comma seperated list of values

  Hello Friends,
  I have a string with comma seperated list of values say
  String v = 34343,erere,ererere,sdfsdfsdfs,4454,5454,dsfsdfsfsd,fsdfsdfsdfs,dfdsfsdfsdfs,sdsfdsf,ererdsdsd45454,fsdfsdfs
  Want to count how many elements are existing in this string .
  Thanks/Kumar

  Hi, Kumar,
  REGEXP_COUNT, which Hoek used, is handy, but it only works in Oracle 11. Which version of Oracle are you using?
  In any version of Oracle, you can count the commas by seeing how much the string shrinks when you remove them.
  LENGTH (str) + 1 - LENGTH (REPLACE (str, ',')) Can str have multiple commas in a row? What if there's nothing between consecutive commas, or nothing by whitespace? Can str begin or end with a comma? Can str consist of nothing but commas? Depending on your answers, you may have to change things. You might want
  REGEXP_COUNT ( str
               , '[^,]+'
  I hope this answers your question.
  If not, post a little sample data (CREATE TABLE and INSERT statements, relevant columns only) for all tables involved, and also post the results you want from that data.
  Explain, using specific examples, how you get those results from that data.
  Always say which version of Oracle you're using.
  See the forum FAQ {message:id=9360002}

• How Do I Print the Number of Elements in An Array

  How do I print: "There are ____ number of elements in the array?"

  If you have a String holding a sentence, and if you split on non-empty sequences of whitespace (if the string has newlines in it, you'd probably need to pass the argument that makes \s match newlines, and for that you would probably need to use java.util.regex.Pattern -- see the docs and try some tests), when you'd get an array of Strings that were the non-whitespace parts of the original String. That makes for a reasonably good definition of the words in the sentence, although you could arguably get into some gray areas (does "isn't" count as one or two words? Does a sequence of numbers or punctuation qualify as a word?). In that case, counting the number of elements in the resulting array of String. using .length, would be a reasonable way to get the number of words in that sentence, yes.
  But rather than asking for confirmation on forums, why don't run some tests?
  import java.io.*;
  public class TestWordCount {
    public static void main(String[] argv) {
      try {
        BufferedReader in = new BufferedReader(new InputStreamReader(System.in));
        String line;
        while((line = in.readLine()) != null) {
          int count = // your code here, to count the words
          System.out.println("I see " + count + " words.");
      } catch (IOException e) {
        e.printStackTrace();
  }Put your word-counting code in there, then run it from the command line. Type in a sentence. See how many words it thinks it found. Does it match with your expectation, or the examples given (hopefully) with your homework assignment?

• Counting the number of characters entered into a page item

  Is there a way to count the number of characters that are entered into a page item. I've got a field that can contain up to 20 characters. If 20 are entered I can do a = on my search, if less than that, then I have to do a wildcard search. I currently do a substr on the field to see if position 21 is null and position 20 is not null, then I have a 20 character field. Is there a more efficient way to do this and also is there a way to actually show the character count as the page item is being populated

  Hello user8014695 (name please),
  Try coding the select for your search as
  select ...
  from some_table
  where some_field like case when length(trim(:YOUR_ITEM)) = 20 then :YOUR_ITEM else :YOUR_ITEM || '%' end
  Note - I included the trim() assuming blank characters before or after shouldn't count.
  To show the character count as the item is being keyed-in, Google "javascript character count" for lots of ways to do this. To work these solutions into ApEx, check the ApEx help/documentation for incorporating JavaScript into your application - specifically the references on accessing page items using JavaScript.
  Hope this helps,
  John

• How to get the number of elements in DB

  Could you tell me how to get the number of elements in DB??
  My code to get the number is below, but I think it is not efficient
  DB->cursor(DB, NULL, &cursorp, 0);
  while ((ret = cursorp->c_get(cursorp, &key, &data, DB_NEXT)) == 0)
  count++;
  --------------------------------------------------------------------------------------------------------------

  Hi,
  The most efficient way to get a count from the database is using the DB->stat API (http://docs.oracle.com/cd/E17076_02/html/api_reference/C/dbstat.html)
  The code will be something like:
          DB *dbp;
          DB_BTREE_STAT *statp;
          int ret;
          /* Print out the number of records in the database. */
          if ((ret = dbp->stat(dbp, NULL, &statp, 0)) != 0) {
                  dbp->err(dbp, ret, "DB->stat");
                  goto err1;
          printf("%s: database contains %lu records\n",
              progname, (u_long)statp->bt_ndata);
          free(statp);The code comes from the example included in the distribution at examples/c/ex_btrec.c
  If the database isn't a btree, you should update to the appropriate statistics structure and field.
  It's worth noting that retrieving the count is never a "cheap" operation. The count is not stored in the database - since doing so introduced a single point of contention that creates a bottle neck.
  Regards,
  Alex Gorrod
  Oracle Berkeley DB

• Programatically count the number of files in a folder

  Hi Folks
  I need to programatically count the number of files in a given folder and return the value to a Program Unit to be included in further processing.
  Can anyone point me in the right direction. I have looked at UTL_FILE but this does not offer what I want.
  Does anyone know of an obscure package in Oracle that I could use?
  I'm using 9i in a W2K environment.
  Many thanks
  Simon Gadd

  Hi,
  following a java based solution i found somewhere on Tom Kyte's AskTom forum.
  GRANT JAVAUSERPRIV to TESTUSER;
  dbms_java.grant_permission( 'TESTUSER', 'SYS:java.io.FilePermission', 'c:\', 'read' );
  create global temporary table DIR_LIST
  ( filename varchar2(255) )
  on commit delete rows
  create or replace and compile java source named "DirList"
  as
    import java.io.*;
    import java.sql.*;
    public class DirList
      public static void getList(String directory)
                         throws SQLException
        File path = new File( directory );
        String[] list = path.list();
        String element;
        for(int i = 0; i < list.length; i++)
            element = list;
  #sql { INSERT INTO DIR_LIST (FILENAME)
  VALUES (:element) };
  create or replace procedure get_dir_list( p_directory in varchar2 )
  as language java
  name 'DirList.getList( java.lang.String )';
  exec get_dir_list( 'c:\temp' );
  select count(*) from dir_list;

• Write two functions to find the the number of elements in a linked list?

  I am trying to Write two functions to find the the number of elements in a linked list. One method using recursion and One method using a loop...
  //The linked List class is Represented here.
  public class lp {
  public int first;
  public lp rest;
  public lp(int first1, lp rest1)
  first = first1;
  rest = rest1;
  The program i wrote so far is
  import java.util.*;
  import linklist.lp;
  public class listCount{
  //loop function
  public static void show_list(lp list)
  int counter = 0;
  while(list != null)
  list = list.rest;
  counter++;
  System.out.println ("length computed with a loop:" + counter);
  //recursive function
  public static int recursive_count(lp list)
  if (list.first == null)
  return 0;
  else
  return recursive_count(list.rest) + 1;
  //main method
  public static void main (String args[])
  lp list1 = new lp(1, new lp(2, new lp(3, null)));
  show_list(list1);
  System.out.println("length computed with a recursion:" +
  recursive_count(list1));
  at the if (list.first == null) line i get the error " incomparable types:
  int and <nulltype>" I know this is a beginners error but please
  help...What should I do?

  byte, char, short, int, long, float, double, and boolean are primitives, not objects. They have no members, you cannot call methods on them, and they cannot be set to or compared with null.

• Need to count the number of groups in a Crystal Reports 2008 report

  I have created a report with three levels of grouping. There are several items in each level.  I want to count the number of groups.  I have tried countdistinct but it counts the number of items in the lowest level of grouping and I want the number of items in the higher  levels.  This is a distribution data base.  I have the data grouped by date, by truck on each date, and by "run" or load on each truck on each date.  I want to count the total number of groups of truck and run, which is the second level of the grouping.  Any ideas? I am fairly new to Crystal.

  Hi Debbie,
       To count the number of groups please try the folling steps:
  1) Create a formula @reset and place this formula in the page header
      whileprintingrecords;
      numbervar i:=0;
  2) Create another formula @evalgroup place this in the group header where you want to count the values.
      whileprintingrecords;
      numbervar i:= i+1;
  3) Create another formula @display and place this in report footer.
      whileprintingrecords;
      numbervar i;
  In order to display the count of details which are printing in the detail section place the eval formula in the detail section and the @display formula in the group footer.
  Hope this helps!!!
  Regards,
  Vinay

• Need to count the number of times the Basic Finish data chages

  HI Expertes,
  I have a requirement I need to count number of times the Basic finish date chaged for PM work order. I went throug our forums I got some info like using a standard function module
  CHANGEDOCUMENT_READ_HDRS_ONLY
  CHANGEDOCUMENT_READ_HEADERS
  CHANGEDOCUMENT_READ_POSITIONS
  But all the above function module will not be suitable for my requirement since  CHANGEDOCUMENT_READ_HDRS_ONLY it gives whole changes but my requirement is just need number of changes occurred in Basic Finish date but CHANGEDOCUMENT_READ_POSITIONS can give the filed number which has been changed but still I need change id.
  So kindly suggest me wether there is any other Standard FM to get number of changes occurred in Basic Finish date?
  Thanks,
  Rajesh

  Hi Debbie,
       To count the number of groups please try the folling steps:
  1) Create a formula @reset and place this formula in the page header
      whileprintingrecords;
      numbervar i:=0;
  2) Create another formula @evalgroup place this in the group header where you want to count the values.
      whileprintingrecords;
      numbervar i:= i+1;
  3) Create another formula @display and place this in report footer.
      whileprintingrecords;
      numbervar i;
  In order to display the count of details which are printing in the detail section place the eval formula in the detail section and the @display formula in the group footer.
  Hope this helps!!!
  Regards,
  Vinay

• How do obtain the number words typed in a Pages document?

  How do obtain the number words typed in a Pages document?

  I found it!  To get the number of words in my Pages 5.1 document...I clicked on the paper-icon on the far left...(at the very left edge) it gave me a selection that ended with "count words."  TaDa!  Thanks

• Determining the number of elements defined in an enum

  Hello,
  I have an enum and I want to determine the number of elements (constants) defined in this enum by source code. I know I can use reflection but I just want to know if there's an easier way.
  Thank you very much.

  Hey JavaWisdom,
  You can use the ordinal method. I made a simple example to demonstrate.
  public class NumberOfEnums {
       public static enum Enumeration {
            item1, item2, item3, item4
       public void count() {
            Enumeration[] values = Enumeration.values();
            int numElems = 0;
            for (Enumeration type : values) {
                 if (type.ordinal() > numElems) {
                      numElems = type.ordinal();
            // Correct 0 indexed numbering
            numElems += 1;
            System.out.println("numElems : " + numElems);
       public static void main(String args[]) {
            NumberOfEnums noe = new NumberOfEnums();
            noe.count();
  }Cheers,
  Cypher

• Servlet to count the number of occurances of a particular node

  Hi
  I am looking for a servlet which will count the number of a particular node which I have supplied of an XML file.
  Can somebody please help me with this?
  Thankyou

  If you are using Xerces, after you have parsed your XML files using a DOMParser, get the document object from the parser like
  Document document = parser.getDocument();
  And then use the command getElementsByTagName("*"); // for all elements
  it will return the node list object (NodeList) which you can get the count (nodeList.getLength())

• Is there a way to count the number of times an array moves from positive to negative?

  I have an array of values, and I need to find the number of times that the array changes signs (from positive to negative, or vice versa). In other words from a graphical standpoint, how many times a certain line crosses the x-axis. Counting the number of times the array equals zero does not help however, because the array does not always equal exactly zero when it crosses the axis (ie, the points could move from .1 to -.1).
  Thanks for you help. Feel free to email me at [email protected] I only have lv 5.1.1 so if you attach any files, they cannot be version 6.0.

  Attached is a VI showing the # of Pos and Neg numbers in an array, with 0 considered as non-Pos. It is easily modifiable to other parameters - including using the X-axis value as your compare point versus only Zero.
  This is a modified VI from LV (Separate Array.vi)
  Compare this with your other responses to find the best fit.
  Doug
  Attachments:
  arraysizesposneg.vi ‏40 KB

• How do I count the number of records returned in the CMIS query

  How do I count the number of records returned in the query CMIS?
  SELECT COUNT(*) FROM ora:t:IDC:GlobalProfile WHERE ora:p:xRegionDefinition = \'RD_PROJETOS_EXCLUSIVOS\''}
  Euler Homero

  Hi Euler,
  interestingly enough, the reference guide for CMIS ( http://wiki.alfresco.com/wiki/CMIS_Query_Language ) that I found does not mention the COUNT function at all. On the other hand it states that: "The SELECT clause identifies which virtual columns to return in the result set. It can be either a comma-separated list of one or more queryNames of properties that are defined by queryable object types or * for all virtual columns."
  There are, however, some other posts like e.g. http://alfrescoshare.wordpress.com/2010/01/20/count-the-total-number-of-documents-in-alfresco-using-sql/ which state that they could make it working.
  Having asked in the WebCenter Portal forum, I assume that your content repository is WebCenter Content. The CMIS doc for the Content is available here: http://docs.oracle.com/cd/E23943_01/doc.1111/e15813.pdf (no COUNT there either). It does, however, mention explicitly that "CMIS queries return a Result Set where each Entry object will contain only the properties that were specified in the query.". This means your could rather investigate the Result Set. Note that there are also other means than CMIS how to get the requested result set (e.g. calling a search service directly via so-called RIDC).
  In the given context I am also interested what your use case is. OOTB CMIS in WebCenter Portal is used, for instance, in Content Presenter, where it is content rather than "parameters" what's displayed.