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I wrote this code where you can add or remove numbers from a list, and then display the list. The problem is: it displays the numbers in reverse order, except for the first added number.

program obecny_seznam;

{$APPTYPE CONSOLE}

uses
  SysUtils;

type
  ppolozka = ^tpolozka;
  tpolozka = record
               H: integer;
               prev,next: ppolozka;
            end;
var
  poc, pom, pom2, novy, akt: ppolozka;

//--------------------------------------------------------
procedure pridej; //add
begin
  if (poc = nil) and (akt = nil) then
    begin
      new(novy);
      readln(novy^.H);
      novy^.next := nil;
      novy^.prev := nil;
      poc := novy;
      akt := novy;
    end
  else if akt^.next = nil then
    begin
      new(novy);
      readln(novy^.H);
      novy^.prev := nil;
      novy^.next := nil;
      akt^.next := novy;
      novy^.prev := akt;
    end
  else
    begin
      pom := akt^.next;
      new(novy);
      readln(novy^.H);
      novy^.prev := nil;
      novy^.next := nil;
      pom^.prev :=  novy;
      novy^.next := pom;
      novy^.prev := akt;
      akt^.next := novy;
    end;
end;
//--------------------------------------------------------

//--------------------------------------------------------
procedure uber; //remove
begin
  if poc = nil then writeln('Seznam je prazdny.')
  else if akt^.next = nil then
    begin
      dispose(poc);
      akt := nil;
      poc := nil;
    end
  else if (akt^.prev = nil) then
    begin
      pom := akt;
      akt := akt^.next;
      akt^.prev := nil;
      dispose(pom);
      poc := akt;
    end
  else
    begin
      pom := akt^.prev;
      pom2 := akt^.next;
      pom^.next := pom2;
      pom2^.prev := pom;
      dispose(akt);
      akt := pom2;
    end;

end;
//--------------------------------------------------------

//--------------------------------------------------------
procedure zobraz; //display
begin
  pom := poc;
  if pom <> nil then
    begin
      while pom <> nil do
        begin
          if pom = akt then writeln('*', pom^.H)
                       else writeln(pom^.H);
          pom := pom^.next;
        end;
    end
                else writeln('Zasobnik je prazdny.'); 
end;
//--------------------------------------------------------

begin
  poc := nil;
  akt := nil;
  pridej;
  pridej;
  pridej;
  pridej;
  readln;
  zobraz;
  uber;
  readln;
  zobraz;
  readln;
end.

I don't know what else to change. If I add akt := novy at the end of procedure pridej (add) then procedure uber (remove) doesn't work anymore.

8
  • Remove akt from your logic and do everything without it. Linked lists is a basic concept of programming and you should have named (and tagged) it as such.
    – AmigoJack
    Commented May 26 at 11:30
  • 2
    It would be easier to diagnose if you use local variables where possible. For example, novy is only used within pridej, so make it local to that procedure. pom is used in all three procedures, but independently in each, so should be local to each procedure. pom2 is unique to uber. Commented May 26 at 11:46
  • akt has to be there, it's a part of the assignement (which is voluntary and not marked fyi)
    – Adriana
    Commented May 26 at 12:10
  • @AmigoJack Great corrections to the text, but it seems to be a doubly linked list and not singly linked, as you tagged it. Commented May 26 at 13:36
  • It would be better to use only english identifier names when you post here. Also, include comments about what you think your code is doing at various points. What is the purpose of pom and pom2? Commented May 26 at 13:49

1 Answer 1

2

Let's look at the most problematic pieces:

procedure pridej; //add
...
  else
    begin
      pom := akt^.next;

Whenever you read this portion keep in mind that akt still sticks with the 1st item in your list. This logic doesn't even work then adding a 3rd item anymore, because (akt=1st).next is always the 2nd item. Always.


...
      pom^.prev :=  novy;
      novy^.next := pom;

Now this doesn't make sense: some item's previous (left) member should be the new item? No wonder that you sort everything in front of the existing items. Likewise the new item's next (right) member shouldn't need to be assigned if it is supposed to be the last item.


      novy^.prev := akt;
      akt^.next := novy;
    end;
end;

This is wrong, as it voids the sense of having akt at all: either you leave it untouched, or you move it along with any item addition. That's why I wrote "try it first without any akt at all".


Where's the fundamental flaw? You nowhere store the last item of your list, only its first item. If you would also store the last one, you could easily add a new item after that and assign that new item as the last one. Such a variable is missing at all.

You can work without such a variable, but then you have to go from your first list item over .next in a loop until .next = nil to find the last item of your list. Have a read on the Wikipedia article on doubly linked lists which also mentions this concept.

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