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I want to copy a memory block with an offset, is it possible?

This is the code I have so far:

const
  SOURCE: array [0..5] of Byte = ($47, $49, $46, $38, $39, $61);
var
  Destination: Pointer;
begin
  // This is a full copy
  Move(SOURCE, Destination^, SizeOf(SOURCE));

  // If i want to copy from the third byte, is it possible?
  // I imagine the code should be, but it cannot be compiled.
  Move(Slice(SOURCE^, {Offset=}2)^, Destination^, SizeOf(SOURCE) - 2);
end;
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When doing something like this, be aware that using SizeOf(Source) is usually a good way to create buffer overflows - you should always ensure the amount of data move fits the destination buffer. –  Mad Hatter May 21 '12 at 8:13

2 Answers 2

up vote 8 down vote accepted

It is not entirely clear what you want to achieve, but it looks like

MoveMemory(pointer(NativeUInt(Destination) + 2), @SOURCE[0], SizeOf(SOURCE) - 2)

although I suspect you actually want

MoveMemory(pointer(NativeUInt(Destination) + 2), @SOURCE[2], SizeOf(SOURCE) - 2)
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Notice that Move takes arguments Source, Dest, Count, while MoveMemory takes Dest, Source, Count. Also, the former wants identifiers, while the latter wants pointers. –  Andreas Rejbrand May 20 '12 at 15:44
    
Yes. @SOURCE[2] is exactly what I want. Thanks –  stanleyxu2005 May 20 '12 at 15:52
    
Andreas, why do you offset the destination with 2? I interpret the question as copy from source with offset 2 to destination. This is made with MoveMemory( pt, @SOURCE[2],SizeOf(SOURCE)-2); or Move( SOURCE[2],pt^, SizeOf(SOURCE)-2);. –  LU RD May 20 '12 at 21:13
    
@LU RD: Simply because I didn't quite understand what the OP meant. –  Andreas Rejbrand May 20 '12 at 21:16
    
Ok, I can live with that :) Just wanted to comment in case someone thought some pointer magic was needed, but it is not. –  LU RD May 20 '12 at 21:28

To use Move() to copy a portion of the array, do it like this:

Move(SOURCE[Offset], Destination^, SizeOf(SOURCE)-Offset); 
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