I am trying to pass pointer to data into function. But I am getting error Incompatible types: 'Array' and 'TBytes'. I cannot find out how to fix it.

type TBytes = array of byte;
type PTBytes = ^TBytes;

procedure Dictionary.WriteData(Data: PTBytes);
begin
  try
    DataStream.Write(Data[0], sec[sid].grp[grp].META.dataLength);
  finally
  end;
end;

Previously I tried

pData: ^TBytes;
PData := Data^;

Finally I call

writeData( data);

But it generates error Pointer type required

Edit

I have replaced the procedure appendData to writeData. It is easer now.

  • 2
    It would be more idiomatic to name the pointer type PBytes. (More generally, given a type TMyThing, we often define PMyThing = ^TMyThing.) – Andreas Rejbrand Aug 18 at 13:51
  • 2
    But you don't use pData at all. It would better to describe real problem. – MBo Aug 18 at 14:04
  • A variable of TBytes is a pointer in itself. – LU RD Aug 18 at 15:49
  • 2
    I think you should at least edit your code (and the answer you have accepted) so that they are less nonsensical (making no use of the input data and uselessly operating on a local variable). Meanwhile -1 and VTC. – MartynA Aug 18 at 16:05
  • @MartynA: The question updated. Hopefully it makes more sense now. – user1141649 Aug 24 at 19:50
up vote 0 down vote accepted

Because IVO GELOV did not updated his code and/or did not removed his answer, I am adding my current code, which I am using.

type TBytes = array of byte;

procedure Dictionary.WriteData(var Data: TBytes);

begin
  try
    DataStream.Write(Data[0], sec[sid].grp[grp].META.dataLength);
  finally
  end;
end;

Your procedure expects pointer but you are calling it with an array:

type 
  TBytes = array of byte;
  PTBytes = ^TBytes;

procedure appendData(pData: PTBytes); // or use "var pData:TBytes"
var 
  data: TBytes;
begin
  setLength(data, 1);
  move(list[0][1], data[n*i], 1 );
  appendData(@data); // <-- you need a pointer here
end;
  • 6
    Hard to get behind an answer that includes a non-terminating recursive function call. Especially one that does not even attempt to achieve anything, ignoring as it does the input parameter. – David Heffernan Aug 18 at 14:44
  • IVO's answer is sufficient for me. Thank you – user1141649 Aug 18 at 14:47
  • 1
    @user1141649 And what problem has been solved? You have got knowledge about @ operator ? – MBo Aug 18 at 14:51
  • 5
    @user1141649 This answer is pointless. I don't think you properly understand what your code is doing. The best advice here is that you stop for a moment and try to understand what you are doing. The longer you program with guesswork and hope the deeper it will get you into trouble as you progress. – J... Aug 18 at 17:56
  • @IVO GELOV: Can you please remove your answer, I would like to delete the question. I do not see sense to improving it so deleting is the only one thing I can do right now. – user1141649 Aug 23 at 18:19

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