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our prof. gave us this pseudocode a while ago...and i'm having a hard time with this part

Pseudocode

and the array index value is 14 with 14 string names

Shell_Sort(Arr,N)

{ If(N=1) then

{

Exit

}

Set Interval to N

while(Interval is not 1)

{

Set Interval to ((Interval/3)+1) If(Interval is not a whole number) then <--------- here is the part i'm having trouble with

{

Truncate Interval <------------ and here how can i truncate the interval into a whole number?

}

Set start to 1

while(start <= Interval)

{

Sort()

Increment start

}

}

}

sort()

{

set Unsrt_Indx to (start + interval)

while(unsrt_Indx <= N)

{

if (Arr[Unsrt_Indx - Interval] > arr[unsrt_Indx] then

{

set str_indx to unsrt_indx

set temp to arr[srt_indx]

while((str_indx >start && (arr[str_indx-Interval] > temp))

{

set arr[set_indx] to arr[str_index- interval]

set str_indx to (crt_index - interval)

}

set arr[str_indx] to temp

}

set unsrt_indx to (unsrt_indx + interval)

}

}

how can i use a if statement in determining if it is not whole number??

and how do i use truncate?? truncating it into ones twos or threes.

ex.
4.6666666666667
how can i truncate it into
4.67
4.6
4

something like that.

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Looks like this is what you need: stackoverflow.com/questions/153724/… –  Vincent van der Weele Mar 5 '13 at 10:54

5 Answers 5

Try DecimalFormat.

DecimalFormat df = new DecimalFormat("0.##");
String result = df.format(4.6666666666667);
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I think your Prof. means Math.floor(interval)

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didn't teach us that yet...what does Math.floor(interval) do?? –  Renz Razon Mar 5 '13 at 11:03
    
It rounds down docs.oracle.com/javase/6/docs/api/java/lang/… –  Zutty Mar 5 '13 at 11:18

Use

java.lang.Math.round(double);
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If you know you're dealing with a number you can do:

if(x == (int)x) {
    //x is an int (ie: a whole number)
}

otherwise, if your number is a String, you can use a try/catch statement in which you perform an Integer.parseInt() on the String. If the parseInt() is successful then you're dealing with an int. Otherwise you can catch a NumberFormatException. In that case, the conversion was not successful and you're not dealing with an int.

You'll want to look at Math.floor() to do the truncating.

share|improve this answer

check for a whole number

if(Math.floor(interval) == interval)
{
    //interval is a whole number
}

and to round up :

import java.math.RoundingMode;
import java.text.DecimalFormat;

public class Main
{
  final public static void main(String[] args)
  {
    double i = 4.6666666666667;
    DecimalFormat format = new DecimalFormat("#.#"); 
    format.setRoundingMode(RoundingMode.FLOOR); // *
    String s = format.format(i);
    i = Double.parseDouble(s);
    System.out.println(i); //should be 4.6
  }
}

* instead of RoundingMode.FLOOR use appropriate RoundingMode which suits your need.

in case if you want to make it to a whole number (integer)

import java.math.RoundingMode;
import java.text.DecimalFormat;

public class Main
{
  final public static void main(String[] args)
  {
    double i = 4.6666667;
    DecimalFormat format = new DecimalFormat("#"); 
    format.setRoundingMode(RoundingMode.FLOOR); // *
    String s = format.format(i);
    int j = Integer.parseInt(s);;
    System.out.println(j);// should be 4
  }
}
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I have edited my answer to include code to you above question. Check out! –  codeMan Mar 5 '13 at 11:27
    
ok.. then.. chat here but make sure u delete all the chats after we are done! –  codeMan Mar 5 '13 at 11:34
    
sir...have you check the pseudocode i edited a while ago?? in the top –  Renz Razon Mar 5 '13 at 11:35
    
please format it first. –  codeMan Mar 5 '13 at 11:36
    
please no sir, you need to add the following 2 import statements : import java.math.RoundingMode; import java.text.DecimalFormat; –  codeMan Mar 5 '13 at 11:49

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