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Say I have the data 1,2,3,4,5,6

I want to sort this data so that it outputs 6 1 5 2 4 3

This way, numbers are matched so that low numbers pair with high numbers

Would i use a merge sort to sort it in numerical order, then split the list and match them according to this conditions?

I'm trying to sort real number data in a string grid which is read from a data file; I have a working program that sorts these data in numerical order but I'm not sure how to code it so that it sorts in terms of high,low,high,low

This is the code for my grid sorting

procedure TForm1.SortGrid(Grid: TStringGrid; const SortCol: Integer;
//sorting the string grid
  const datatype: Integer; const ascending: boolean);
var
  i: Integer;
  tempgrid: TStringGrid;
  list: array of Integer;
begin
  tempgrid := TStringGrid.create(self);
  with tempgrid do
  begin
    rowcount := Grid.rowcount;
    ColCount := Grid.ColCount;
    fixedrows := Grid.fixedrows;
  end;
  with Grid do
  begin
    setlength(list, rowcount - fixedrows);
    for i := fixedrows to rowcount - 1 do
    begin
      list[i - fixedrows] := i;
      tempgrid.rows[i].assign(Grid.rows[i]);
end;
   Mergesort(Grid, list, SortCol + 1, datatype, ascending);


      for i := 0 to rowcount - fixedrows - 1 do
      begin
    rows[i + fixedrows].assign(tempgrid.rows[list[i]])
      end;
      row := fixedrows;
    end;
    tempgrid.free;
    setlength(list, 0);
  end;
share|improve this question
1  
If you want to sort numbers in high-low-high-low order shouldn't you get 6 1 5 2 4 3 from initial data? –  Marko Paunovic May 12 '13 at 14:15
    
i only wrote that really quickly with no thought but yeah in that order –  Nathan May 12 '13 at 14:17
    
I rolled your question back. The original question was fine and has been answered. –  David Heffernan May 12 '13 at 18:30

4 Answers 4

First, sort the numbers in descending order by using any algorithm you want (I used bubble sort in example)

Then, if you have n elements in array:

  • set a counter going from 1 to (n div 2)
  • take last element and store it in temporary variable (tmp)
  • shift all elements by one place to the right, starting from (counter - 1) * 2 + 1. This would overwrite last element, but you have it stored in tmp var
  • set array[(counter - 1) * 2 + 1] element to tmp
  • end counter

This way you would effectively take last element from array and insert it at 1, 3, 5... position, until you insert last half of array elements.

Sample code:

procedure Sort(var AArray: array of Double);
var
  C1, C2: Integer;
  tmp   : Double;
  pivot : Integer;
begin
  for C1 := Low(AArray) to High(AArray) - 1 do
    for C2 := C1 + 1 to High(AArray) do
      if AArray[C1] < AArray[C2] then
      begin
        tmp := AArray[C1];
        AArray[C1] := AArray[C2];
        AArray[C2] := tmp;
      end;

  pivot := Length(AArray) div 2;
  for C1 := 1 to pivot do
  begin
    tmp := AArray[High(AArray)];
    for C2 := High(AArray) downto (C1 - 1) * 2 + 1 do
      AArray[C2] := AArray[C2 - 1];
    AArray[(C1 - 1) * 2 + 1] := tmp;
  end;
end;
share|improve this answer
    
How would i do this for records in a string grid –  Nathan May 12 '13 at 17:08
    
You should populate dynamic array with grid data and pass it to Sort() function, then clear grid and repopulate it with data that Sort() returned. –  Marko Paunovic May 12 '13 at 17:11
    
sorry for the trouble, i have no clue how to do that –  Nathan May 12 '13 at 17:13
    
Are you storing the data in a string grid? That's usually a bad idea. –  David Heffernan May 12 '13 at 17:16
    
I think he has bigger problems at the moment than the way he stores the data :) –  Marko Paunovic May 12 '13 at 17:17

Sort the data in ascending order. Then pick out the values using the following indices: 0, n-1, 1, n-2, ....

In pseudo code the algorithm looks like this:

Sort;
lo := 0;
hi := n-1;
while lo<=hi do
begin
  yield lo;
  inc(lo);
  if lo>hi then break;
  yield hi;
  dec(hi);
end;
share|improve this answer
    
i forgot to mention my knowledge in programming is very minimal so i have no clue in how to do that –  Nathan May 12 '13 at 14:20
1  
@Nathan: Then you need someone to write the complete program for you. –  Andreas Rejbrand May 12 '13 at 14:22

From sample data you provided above, I am assuming that the input array is presorted.

[Note that I don't have a compiler at hand, so you'll have to run it and see that it works --minor fiddling might be needed.]

procedure SerratedSort(var AArray: array of Double);
var
  Length1: Integer;
  Index1: Integer;
  Temp1: Double;
begin
  Length1 := Length(AArray);
  Index1 := 0;
  while Index1 < Length1 do begin
    Temp1 := AArray[Length1 - 1];
    System.Move(AArray[Index1], AArray[Index1 + 1], (Length1 - Index1 + 1) * SizeOf(Double));
    AArray[Index1] := Temp1;
    Index1 := Index1 + 2;
  end;
end;

Here is how it (should) work(s) step-by-step

Input AArray: 123456

  • Index1: 0

Temp1 := 6

System.Move: 112345

AArray: 612345

  • Index1: 2

Temp1 := 5

System.Move: 612234

AArray: 615234

  • Index1: 4

Temp1 := 4

System.Move: 615233

AArray: 615243

Output AArray: 615243


For a record structure, such as, TPerson, it would be like this:

procedure SerratedSort(var A: array of TPerson);
var
  s: Integer;
  i: Integer;
  t: TPerson;
begin
  s := Length(A);
  i := 0;
  while i < s do begin
    t := A[s - 1];
    System.Move(A[i], A[i + 1], (s - i + 1) * SizeOf(TPerson));
    A[i] := t;
    i := i + 2;
  end;
end;
share|improve this answer
    
First, IMO it is sloppy programming to use the Grid itself to sort the data. You should use an intermediate array. Secondly, please do not keep changing the question. –  Adem May 12 '13 at 17:59
    
Im not going for efficiency, this is the only method i know how to do as i am not experienced with programming –  Nathan May 12 '13 at 18:02
    
Nobody is talking about efficiency here. –  David Heffernan May 12 '13 at 18:29
    
Inexperience in programming isn't an excuse for the lack of aptitude when it comes to defining the problem. Your first attempt was correct as it asked for a snippet to algorithmically solve a generalizable problem. Now you've turned it into a "write my program for me". Please refrain from doing that. You are given the solution. Adapt it to your TPerson record structure --or use the indices in that TPerson Array. –  Adem May 12 '13 at 18:36

Example program demonstrating the already above given solutions:

program Project1;

{$APPTYPE CONSOLE}

const
  Count = 12;
type
  TValues = array[0..Count - 1] of Double;
const
  Input: TValues = (1,2,4,9,13,14,15,23,60,100,101,102);
var
  I: Integer;
  Output: TValues;

procedure ShowValues(Caption: String; Values: TValues);
var
  I: Integer;
begin
  Write(Caption);
  for I := 0 to Count - 2 do
    Write(Round(Values[I]), ', ');
  WriteLn(Round(Values[Count - 1]));
end;

begin
  if Odd(Count) then
    WriteLn('Cannot compute an odd number of input values')
  else
  begin
    WriteLn('Program assumes sorted input!');
    ShowValues('Input:  ', Input);
    for I := 0 to (Count div 2) - 1 do
    begin
      Output[2 * I] := Input[I];
      Output[2 * I + 1] := Input[Count - 1 - I];
    end;
    ShowValues('Output: ', Output);
  end;
  ReadLn;
end.
share|improve this answer
2  
It is simple to cater for arrays with odd length –  David Heffernan May 12 '13 at 15:52

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