32 KiB
| title | author | date | identifier | publisher | category | chapter | pages | |||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Michael Abrash's Graphics Programming Black Book, Special Edition | Michael Abrash | 1997-07-01 |
|
The Coriolis Group | Web and Software Development: Game Development,Web and Software Development: Graphics and Multimedia Development | 46 | 859-874 |
Chapter 46 -- Who Was that Masked Image?
Optimizing Dirty-Rectangle Animation
Programming is, by and large, a linear process. One statement or instruction follows another, in predictable sequences, with tiny building blocks strung together to make thinking, which is, of course, A Good Thing. Still, it's important to keep in mind that there's a large chunk of the human mind that doesn't work in a linear fashion.
I've written elsewhere about the virtues of nonlinear/right-brain/lateral/what-have-you thinking in solving tough programming problems, such as debugging or optimization, but it bears repeating. The mind can be an awesome pattern-matching and extrapolation tool, if you let it. For example, the other day was grinding my way through a particularly difficult bit of debugging. The code had been written by someone else, and, to my mind, there's nothing worse than debugging someone else's code; there's always the nasty feeling that you don't quite know what's going on. The overall operation of this code wouldn't come clear in my head, no matter how long stared at it, leaving me with a rising sense of frustration and a determination not to quit until got this bug.
In the midst of this, a coworker poked his head through the door and told me he had something had to listen to. Reluctantly, went to his office, whereupon he played a tape of what is surely one of the most bizarre 911 calls in history. No doubt some of you have heard this tape, which will briefly describe as involving a deer destroying the interior of a car and biting a man in the neck. Perhaps you found it funny, perhaps not—but as for me, it hit me exactly right. started laughing helplessly, tears rolling down my face. When went back to work—presto!—the pieces of the debugging puzzle had come together in my head, and the work went quickly and easily.
Obviously, my mind needed a break from linear, left-brain, push-it-out thinking, so it could do the sort of integrating work it does so well—but that it's rarely willing to do under conscious control. It was exactly this sort of thinking had in mind when titled my 1989 optimization book of Zen of Assembly Language. (Although must admit that few people seem to have gotten the connection, and I've had to field a lot of questions about whether I'm a Zen disciple. I'm not—actually, I'm more of a Dave Barry disciple. If you don't know who Dave Barry is, you should; he's good for your right brain.) Give your mind a break once in a while, and I'll bet you'll find you're more productive.
We're strange thinking machines, but we're the best ones yet invented, and it's worth learning how to tap our full potential. And with that, it's back to dirty-rectangle animation.
Dirty-Rectangle Animation, Continued
In the last chapter, Introduced the idea of dirty-rectangle animation. This technique is an alternative to page flipping that's capable of producing animation of very high visual quality, without any help at all from video hardware, and without the need for any extra, nondisplayed video memory. This makes dirty-rectangle animation more widely usable than page flipping, because many adapters don't support page flipping. Dirty-rectangle animation also tends to be simpler to implement than page flipping, because there's only one bitmap to keep track of. A final advantage of dirty-rectangle animation is that it's potentially somewhat faster than page flipping, because display-memory accesses can theoretically be reduced to exactly one access for each pixel that changes from one frame to the next.
The speed advantage of dirty-rectangle animation was entirely theoretical in the previous chapter, because the implementation was completely in C, and because no attempt was made to minimize display memory accesses. The visual quality of Chapter 45's animation was also less than ideal, for reasons we'll explore shortly. The code in Listings 46.1 and 46.2 addresses the shortcomings of Chapter 45's code.
Listing 46.2 implements the low-level drawing routines in assembly language, which boosts performance a good deal. For maximum performance, it would be worthwhile to convert more of Listing 46.1 into assembly, so a call isn't required for each animated image, and overall performance could be improved by streamlining the C code, but Listing 46.2 goes a long way toward boosting animation speed. This program now supports snappy animation of 15 images (as opposed to 10 for the software presented in the last chapter), and the images are now two pixels wider. That level of performance is all the more impressive considering that for this chapter I've converted the code from using rectangular images to using masked images.
LISTING 46.1 L46-1.C
/* Sample simple dirty-rectangle animation program, partially optimized and
featuring internal animation, masked images (sprites), and nonoverlapping dirty
rectangle copying. Tested with Borland C++ in the small model. */
#include <stdlib.h>
#include <conio.h>
#include <alloc.h>
#include <memory.h>
#include <dos.h>
/* Comment out to disable overlap elimination in the dirty rectangle list. */
#define CHECK-OVERLAP 1
#define SCREEN-WIDTH 320
#define SCREEN-HEIGHT 200
#define SCREEN-SEGMENT 0xA000
/* Describes a dirty rectangle */
typedef struct {
void *Next; /* pointer to next node in linked dirty rect list */
int Top;
int Left;
int Right;
int Bottom;
} DirtyRectangle;
/* Describes an animated object */
typedef struct {
int X; /* upper left corner in virtual bitmap */
int Y;
int XDirection; /* direction and distance of movement */
int YDirection;
int InternalAnimateCount; /* tracking internal animation state */
int InternalAnimateMax; /* maximum internal animation state */
} Entity;
/* storage used for dirty rectangles */
#define MAX-DIRTY-RECTANGLES 100
int NumDirtyRectangles;
DirtyRectangle DirtyRectangles[MAX-DIRTY-RECTANGLES];
/* head/tail of dirty rectangle list */
DirtyRectangle DirtyHead;
/* If set to 1, ignore dirty rectangle list and copy the whole screen. */
int DrawWholeScreen = 0;
/* pixels and masks for the two internally animated versions of the image
we'll animate */
#define IMAGE-WIDTH 13
#define IMAGE-HEIGHT 11
char ImagePixels0[] = {
0, 0, 0, 9, 9, 9, 9, 9, 0, 0, 0, 0, 0,
0, 0, 9, 9, 9, 9, 9, 9, 9, 0, 0, 0, 0,
0, 9, 9, 0, 0,14,14,14, 9, 9, 0, 0, 0,
9, 9, 0, 0, 0, 0,14,14,14, 9, 9, 0, 0,
9, 9, 0, 0, 0, 0,14,14,14, 9, 9, 0, 0,
9, 9,14, 0, 0,14,14,14,14, 9, 9, 0, 0,
9, 9,14,14,14,14,14,14,14, 9, 9, 0, 0,
9, 9,14,14,14,14,14,14,14, 9, 9, 0, 0,
0, 9, 9,14,14,14,14,14, 9, 9, 0, 0, 0,
0, 0, 9, 9, 9, 9, 9, 9, 9, 0, 0, 0, 0,
0, 0, 0, 9, 9, 9, 9, 9, 0, 0, 0, 0, 0,
};
char ImageMask0[] = {
0, 0, 0, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0,
0, 0, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0,
0, 1, 1, 0, 0, 1, 1, 1, 1, 1, 0, 0, 0,
1, 1, 0, 0, 0, 0, 1, 1, 1, 1, 1, 0, 0,
1, 1, 0, 0, 0, 0, 1, 1, 1, 1, 1, 0, 0,
1, 1, 1, 0, 0, 1, 1, 1, 1, 1, 1, 0, 0,
1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0,
1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0,
0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0,
0, 0, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0,
0, 0, 0, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0,
};
char ImagePixels1[] = {
0, 0, 0, 9, 9, 9, 9, 9, 0, 0, 0, 0, 9,
0, 0, 9, 9, 9, 9, 9, 9, 9, 0, 9, 9, 9,
0, 9, 9, 0, 0,14,14,14, 9, 9, 9, 9, 0,
9, 9, 0, 0, 0, 0,14,14,14, 0, 0, 0, 0,
9, 9, 0, 0, 0, 0,14,14, 0, 0, 0, 0, 0,
9, 9,14, 0, 0,14,14,14, 0, 0, 0, 0, 0,
9, 9,14,14,14,14,14,14, 0, 0, 0, 0, 0,
9, 9,14,14,14,14,14,14,14, 0, 0, 0, 0,
0, 9, 9,14,14,14,14,14, 9, 9, 9, 9, 0,
0, 0, 9, 9, 9, 9, 9, 9, 9, 0, 9, 9, 9,
0, 0, 0, 9, 9, 9, 9, 9, 0, 0, 0, 9, 9,
};
char ImageMask1[] = {
0, 0, 0, 1, 1, 1, 1, 1, 0, 0, 0, 0, 1,
0, 0, 1, 1, 1, 1, 1, 1, 1, 0, 1, 1, 1,
0, 1, 1, 0, 0, 1, 1, 1, 1, 1, 1, 1, 0,
1, 1, 0, 0, 0, 0, 1, 1, 1, 0, 0, 0, 0,
1, 1, 0, 0, 0, 0, 1, 1, 0, 0, 0, 0, 0,
1, 1, 1, 0, 0, 1, 1, 1, 0, 0, 0, 0, 0,
1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0, 0,
1, 1, 1, 1, 1, 1, 1, 1, 1, 0, 0, 0, 0,
0, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 0,
0, 0, 1, 1, 1, 1, 1, 1, 1, 0, 1, 1, 1,
0, 0, 0, 1, 1, 1, 1, 1, 0, 0, 0, 1, 1,
};
/* Pointers to pixel and mask data for various internally animated
versions of our animated image. */
char * ImagePixelArray[] = {ImagePixels0, ImagePixels1};
char * ImageMaskArray[] = {ImageMask0, ImageMask1};
/* Animated entities */
#define NUM-ENTITIES 15
Entity Entities[NUM-ENTITIES];
/* pointer to system buffer into which we'll draw */
char far *SystemBufferPtr;
/* pointer to screen */
char far *ScreenPtr;
void EraseEntities(void);
void CopyDirtyRectanglesToScreen(void);
void DrawEntities(void);
void AddDirtyRect(Entity *, int, int);
void DrawMasked(char far *, char *, char *, int, int, int);
void FillRect(char far *, int, int, int, int);
void CopyRect(char far *, char far *, int, int, int, int);
void main()
{
int i, XTemp, YTemp;
unsigned int TempCount;
char far *TempPtr;
union REGS regs;
/* Allocate memory for the system buffer into which we'll draw */
if (!(SystemBufferPtr = farmalloc((unsigned int)SCREEN-WIDTH*
SCREEN-HEIGHT))) {
printf("Couldn't get memory\n");
exit(1);
}
/* Clear the system buffer */
TempPtr = SystemBufferPtr;
for (TempCount = ((unsigned)SCREEN-WIDTH*SCREEN-HEIGHT); TempCount--; ) {
*TempPtr++ = 0;
}
/* Point to the screen */
ScreenPtr = MK-FP(SCREEN-SEGMENT, 0);
/* Set up the entities we'll animate, at random locations */
randomize();
for (= 0; < NUM-ENTITIES; i++) {
Entities[i].X = random(SCREEN-WIDTH - IMAGE-WIDTH);
Entities[i].Y = random(SCREEN-HEIGHT - IMAGE-HEIGHT);
Entities[i].XDirection = 1;
Entities[i].YDirection = -1;
Entities[i].InternalAnimateCount = & 1;
Entities[i].InternalAnimateMax = 2;
}
/* Set the dirty rectangle list to empty, and set up the head/tail node
as a sentinel */
NumDirtyRectangles = 0;
DirtyHead.Next = &DirtyHead;
DirtyHead.Top = 0x7FFF;
DirtyHead.Left= 0x7FFF;
DirtyHead.Bottom = 0x7FFF;
DirtyHead.Right = 0x7FFF;
/* Set 320x200 256-color graphics mode */
regs.x.ax = 0x0013;
int86(0x10, ®s, ®s);
/* Loop and draw until a key is pressed */
do {
/* Draw the entities to the system buffer at their current locations,
updating the dirty rectangle list */
DrawEntities();
/* Draw the dirty rectangles, or the whole system buffer if
appropriate */
CopyDirtyRectanglesToScreen();
/* Reset the dirty rectangle list to empty */
NumDirtyRectangles = 0;
DirtyHead.Next = &DirtyHead;
/* Erase the entities in the system buffer at their old locations,
updating the dirty rectangle list */
EraseEntities();
/* Move the entities, bouncing off the edges of the screen */
for (= 0; < NUM-ENTITIES; i++) {
XTemp = Entities[i].X + Entities[i].XDirection;
YTemp = Entities[i].Y + Entities[i].YDirection;
if ((XTemp < 0) || ((XTemp + IMAGE-WIDTH) > SCREEN-WIDTH)) {
Entities[i].XDirection = -Entities[i].XDirection;
XTemp = Entities[i].X + Entities[i].XDirection;
}
if ((YTemp < 0) || ((YTemp + IMAGE-HEIGHT) > SCREEN-HEIGHT)) {
Entities[i].YDirection = -Entities[i].YDirection;
YTemp = Entities[i].Y + Entities[i].YDirection;
}
Entities[i].X = XTemp;
Entities[i].Y = YTemp;
}
} while (!kbhit());
getch(); /* clear the keypress */
/* Return back to text mode */
regs.x.ax = 0x0003;
int86(0x10, ®s, ®s);
}
/* Draw entities at their current locations, updating dirty rectangle list. */
void DrawEntities()
{
int i;
char far *RowPtrBuffer;
char *TempPtrImage;
char *TempPtrMask;
Entity *EntityPtr;
for (= 0, EntityPtr = Entities; < NUM-ENTITIES; i++, EntityPtr++) {
/* Remember the dirty rectangle info for this entity */
AddDirtyRect(EntityPtr, IMAGE-HEIGHT, IMAGE-WIDTH);
/* Point to the destination in the system buffer */
RowPtrBuffer = SystemBufferPtr + (EntityPtr->Y * SCREEN-WIDTH) +
EntityPtr->X;
/* Advance the image animation pointer */
if (++EntityPtr->InternalAnimateCount >=
EntityPtr->InternalAnimateMax) {
EntityPtr->InternalAnimateCount = 0;
}
/* Point to the image and mask to draw */
TempPtrImage = ImagePixelArray[EntityPtr->InternalAnimateCount];
TempPtrMask = ImageMaskArray[EntityPtr->InternalAnimateCount];
DrawMasked(RowPtrBuffer, TempPtrImage, TempPtrMask, IMAGE-HEIGHT,
IMAGE-WIDTH, SCREEN-WIDTH);
}
}
/* Copy the dirty rectangles, or the whole system buffer if appropriate,
to the screen. */
void CopyDirtyRectanglesToScreen()
{
int i, RectWidth, RectHeight;
unsigned int Offset;
DirtyRectangle * DirtyPtr;
if (DrawWholeScreen) {
/* Just copy the whole buffer to the screen */
DrawWholeScreen = 0;
CopyRect(ScreenPtr, SystemBufferPtr, SCREEN-HEIGHT, SCREEN-WIDTH,
SCREEN-WIDTH, SCREEN-WIDTH);
} else {
/* Copy only the dirty rectangles, in the YX-sorted order in which
they're linked */
DirtyPtr = DirtyHead.Next;
for (= 0; < NumDirtyRectangles; i++) {
/* Offset in both system buffer and screen of image */
Offset = (unsigned int) (DirtyPtr->Top * SCREEN-WIDTH) +
DirtyPtr->Left;
/* Dimensions of dirty rectangle */
RectWidth = DirtyPtr->Right - DirtyPtr->Left;
RectHeight = DirtyPtr->Bottom - DirtyPtr->Top;
/* Copy a dirty rectangle */
CopyRect(ScreenPtr + Offset, SystemBufferPtr + Offset,
RectHeight, RectWidth, SCREEN-WIDTH, SCREEN-WIDTH);
/* Point to the next dirty rectangle */
DirtyPtr = DirtyPtr->Next;
}
}
}
/* Erase the entities in the system buffer at their current locations,
updating the dirty rectangle list. */
void EraseEntities()
{
int i;
char far *RowPtr;
for (= 0; < NUM-ENTITIES; i++) {
/* Remember the dirty rectangle info for this entity */
AddDirtyRect(&Entities[i], IMAGE-HEIGHT, IMAGE-WIDTH);
/* Point to the destination in the system buffer */
RowPtr = SystemBufferPtr + (Entities[i].Y * SCREEN-WIDTH) +
Entities[i].X;
/* Clear the rectangle */
FillRect(RowPtr, IMAGE-HEIGHT, IMAGE-WIDTH, SCREEN-WIDTH, 0);
}
}
/* Add a dirty rectangle to the list. The list is maintained in top-to-bottom,
left-to-right (YX sorted) order, with no pixel ever included twice, to minimize
the number of display memory accesses and to avoid screen artifacts resulting
from a large time interval between erasure and redraw for a given object or for
adjacent objects. The technique used is to check for overlap between the
rectangle and all rectangles already in the list. If no overlap is found, the
rectangle is added to the list. If overlap is found, the rectangle is broken
into nonoverlapping pieces, and the pieces are added to the list by recursive
calls to this function. */
void AddDirtyRect(Entity * pEntity, int ImageHeight, int ImageWidth)
{
DirtyRectangle * DirtyPtr;
DirtyRectangle * TempPtr;
Entity TempEntity;
int i;
if (NumDirtyRectangles >= MAX-DIRTY-RECTANGLES) {
/* Too many dirty rectangles; just redraw the whole screen */
DrawWholeScreen = 1;
return;
}
/* Remember this dirty rectangle. Break up if necessary to avoid
overlap with rectangles already in the list, then add whatever
rectangles are left, in YX sorted order */
#ifdef CHECK-OVERLAP
/* Check for overlap with existing rectangles */
TempPtr = DirtyHead.Next;
for (= 0; < NumDirtyRectangles; i++, TempPtr = TempPtr->Next) {
if ((TempPtr->Left < (pEntity->X + ImageWidth)) &&
(TempPtr->Right > pEntity->X) &&
(TempPtr->Top < (pEntity->Y + ImageHeight)) &&
(TempPtr->Bottom > pEntity->Y)) {
/* We've found an overlapping rectangle. Calculate the
rectangles, if any, remaining after subtracting out the
overlapped areas, and add them to the dirty list */
/* Check for a nonoverlapped left portion */
if (TempPtr->Left > pEntity->X) {
/* There's definitely a nonoverlapped portion at the left; add
it, but only to at most the top and bottom of the overlapping
rect; top and bottom strips are taken care of below */
TempEntity.X = pEntity->X;
TempEntity.Y = max(pEntity->Y, TempPtr->Top);
AddDirtyRect(&TempEntity,
min(pEntity->Y + ImageHeight, TempPtr->Bottom) -
TempEntity.Y,
TempPtr->Left - pEntity->X);
}
/* Check for a nonoverlapped right portion */
if (TempPtr->Right < (pEntity->X + ImageWidth)) {
/* There's definitely a nonoverlapped portion at the right; add
it, but only to at most the top and bottom of the overlapping
rect; top and bottom strips are taken care of below */
TempEntity.X = TempPtr->Right;
TempEntity.Y = max(pEntity->Y, TempPtr->Top);
AddDirtyRect(&TempEntity,
min(pEntity->Y + ImageHeight, TempPtr->Bottom) -
TempEntity.Y,
(pEntity->X + ImageWidth) - TempPtr->Right);
}
/* Check for a nonoverlapped top portion */
if (TempPtr->Top > pEntity->Y) {
/* There's a top portion that's not overlapped */
TempEntity.X = pEntity->X;
TempEntity.Y = pEntity->Y;
AddDirtyRect(&TempEntity, TempPtr->Top - pEntity->Y, ImageWidth);
}
/* Check for a nonoverlapped bottom portion */
if (TempPtr->Bottom < (pEntity->Y + ImageHeight)) {
/* There's a bottom portion that's not overlapped */
TempEntity.X = pEntity->X;
TempEntity.Y = TempPtr->Bottom;
AddDirtyRect(&TempEntity,
(pEntity->Y + ImageHeight) - TempPtr->Bottom, ImageWidth);
}
/* We've added all non-overlapped portions to the dirty list */
return;
}
}
#endif /* CHECK-OVERLAP */
/* There's no overlap with any existing rectangle, so we can just
add this rectangle as-is */
/* Find the YX-sorted insertion point. Searches will always terminate,
because the head/tail rectangle is set to the maximum values */
TempPtr = &DirtyHead;
while (((DirtyRectangle *)TempPtr->Next)->Top < pEntity->Y) {
TempPtr = TempPtr->Next;
}
while ((((DirtyRectangle *)TempPtr->Next)->Top == pEntity->Y) &&
(((DirtyRectangle *)TempPtr->Next)->Left < pEntity->X)) {
TempPtr = TempPtr->Next;
}
/* Set the rectangle and actually add it to the dirty list */
DirtyPtr = &DirtyRectangles[NumDirtyRectangles++];
DirtyPtr->Left = pEntity->X;
DirtyPtr->Top = pEntity->Y;
DirtyPtr->Right = pEntity->X + ImageWidth;
DirtyPtr->Bottom = pEntity->Y + ImageHeight;
DirtyPtr->Next = TempPtr->Next;
TempPtr->Next = DirtyPtr;
}
LISTING 46.2 L46-2.ASM
; Assembly language helper routines for dirty rectangle animation. Tested with
; TASM.
; Fills a rectangle in the specified buffer.
; C-callable as:
; void FillRect(char far * BufferPtr, int RectHeight, int RectWidth,
; int BufferWidth, int Color);
;
.model small
.code
parms struc
dw ? ;pushed BP
dw ? ;pushed return address
BufferPtr dd ? ;far pointer to buffer in which to fill
RectHeight dw ? ;height of rectangle to fill
RectWidth dw ? ;width of rectangle to fill
BufferWidth dw ? ;width of buffer in which to fill
Color dw ? ;color with which to fill
parms ends
public -FillRect
-FillRectproc near
cld
push bp
mov bp,sp
push di
les di,[bp+BufferPtr]
mov dx,[bp+RectHeight]
mov bx,[bp+BufferWidth]
su bx,[bp+RectWidth] ;distance from end of one dest scan
; to start of next
mov al,byte ptr [bp+Color]
mov ah,al ;double the color for REP STOSW
RowLoop:
mov cx,[bp+RectWidth]
shr cx,1
rep stosw
adc cx,cx
rep stosb
add di,bx ;point to next scan to fill
dec dx ;count down rows to fill
jnz RowLoop
pop di
pop bp
ret
-FillRect endp
; Draws a masked image (a sprite) to the specified buffer. C-callable as:
; void DrawMasked(char far * BufferPtr, char * Pixels, char * Mask,
; int ImageHeight, int ImageWidth, int BufferWidth);
parms2 struc
dw ? ;pushed BP
dw ? ;pushed return address
BufferPtr2 dd ? ;far pointer to buffer in which to draw
Pixels dw ? ;pointer to image pixels
Mask dw ? ;pointer to image mask
ImageHeight dw ? ;height of image to draw
ImageWidth dw ? ;width of image to draw
BufferWidth2 dw ? ;width of buffer in which to draw
parms2 ends
public -DrawMasked
-DrawMasked proc near
cld
push bp
mov bp,sp
push si
push di
les di,[bp+BufferPtr2]
mov si,[bp+Mask]
mov bx,[bp+Pixels]
mov dx,[bp+ImageHeight]
mov ax,[bp+BufferWidth2]
su ax,[bp+ImageWidth] ;distance from end of one dest scan
mov [bp+BufferWidth2],ax ; to start of next
RowLoop2:
mov cx,[bp+ImageWidth]
ColumnLoop:
lods ;get the next mask byte
and al,al ;draw this pixel?
jz SkipPixel ;no
mov al,[bx] ;yes, draw the pixel
mov es:[di],al
SkipPixel:
inc bx ;point to next source pixel
inc d ;point to next dest pixel
dec cx
jnz ColumnLoop
add di,[bp+BufferWidth2] ;point to next scan to fill
dec dx ;count down rows to fill
jnz RowLoop2
pop di
pop si
pop bp
ret
-DrawMasked endp
; Copies a rectangle from one buffer to another. C-callable as:
; void CopyRect(DestBufferPtr, SrcBufferPtr, CopyHeight, CopyWidth,
; DestBufferWidth, SrcBufferWidth);
parms3 struc
dw ? ;pushed BP
dw ? ;pushed return address
DestBufferPtr dd ? ;far pointer to buffer to which to copy
SrcBufferPtr dd ? ;far pointer to buffer from which to copy
CopyHeight dw ? ;height of rect to copy
CopyWidth dw ? ;width of rect to copy
DestBufferWidth dw ? ;width of buffer to which to copy
SrcBufferWidth dw ? ;width of buffer from which to copy
parms3 ends
public -CopyRect
-CopyRect proc near
cld
push bp
mov bp,sp
push si
push di
push ds
les di,[bp+DestBufferPtr]
lds si,[bp+SrcBufferPtr]
mov dx,[bp+CopyHeight]
mov bx,[bp+DestBufferWidth] ;distance from end of one dest scan
su bx,[bp+CopyWidth] ; of copy to the next
mov ax,[bp+SrcBufferWidth] ;distance from end of one source scan
su ax,[bp+CopyWidth] ; of copy to the next
RowLoop3:
mov cx,[bp+CopyWidth] ;# of bytes to copy
shr cx,1
rep movsw ;copy as many words as possible
adc cx,cx
rep movs ;copy odd byte, if any
add si,ax ;point to next source scan line
add di,bx ;point to next dest scan line
dec dx ;count down rows to fill
jnz RowLoop3
pop ds
pop di
pop si
pop bp
ret
-CopyRect endp
end
Masked Images
Masked images are rendered by drawing an object's pixels through a mask; pixels are actually drawn only where the mask specifies that drawing is allowed. This makes it possible to draw nonrectangular objects that don't improperly interfere with one another when they overlap. Masked images also make it possible to have transparent areas (windows) within objects. Masked images produce far more realistic animation than do rectangular images, and therefore are more desirable. Unfortunately, masked images are also considerably slower to draw—however, a good assembly language implementation can go a long way toward making masked images draw rapidly enough, as illustrated by this chapter's code. (Masked images are also known as sprites; some video hardware supports sprites directly, but on the PC it's necessary to handle sprites in software.)
Masked images make it possible to render scenes so that a given image convincingly appears to be in front of or behind other images; that is, so images are displayed in z-order (by distance). By consistently drawing images that are supposed to be farther away before drawing nearer images, the nearer images will appear in front of the other images, and because masked images draw only precisely the correct pixels (as opposed to blank pixels in the bounding rectangle), there's no interference between overlapping images to destroy the illusion.
In this chapter, I've used the approach of having separate, paired masks and images. Another, quite different approach to masking is to specify a transparent color for copying, and copy only those pixels that are not the transparent color. This has the advantage of not requiring separate mask data, so it's more compact, and the code to implement this is a little less complex than the full masking I've implemented. On the other hand, the transparent color approach is less flexible because it makes one color undrawable. Also, with a transparent color, it's not possible to keep the same base image but use different masks, because the mask information is embedded in the image data.
Internal Animation
I've added another feature essential to producing convincing animation:
internal animation, which is the process of changing the appearance of
a given object over time, as distinguished from changing only the
location of a given object. Internal animation makes images look
active and alive. I've implemented the simplest possible form of
internal animation in Listing 46.1—alternation between two images—but
even this level of internal animation greatly improves the feel of the
overall animation. You could easily increase the number of images cycled
through, simply by increasing the value of InternalAnimateMax for a
given entity. You could also implement more complex image-selection
logic to produce more interesting and less predictable
internal-animation effects, such as jumping, ducking, running, and the
like.
Dirty-Rectangle Management
As mentioned above, dirty-rectangle animation makes it possible to access display memory a minimum number of times. The previous chapter's code didn't do any of that; instead, it copied all portions of every dirty rectangle to the screen, regardless of overlap between rectangles. The code I've presented in this chapter goes to the other extreme, taking great pains never to draw overlapped portions of rectangles more than once. This is accomplished by checking for overlap whenever a rectangle is to be added to the dirty list. When overlap with an existing rectangle is detected, the new rectangle is reduced to between zero and four nonoverlapping rectangles. Those rectangles are then again considered for addition to the dirty list, and may again be reduced, if additional overlap is detected.
A good deal of code is required to generate a fully nonoverlapped dirty list. Is it worth it? It certainly can be, but in the case of Listing 46.1, probably not. For one thing, you'd need larger, heavily overlapped objects for this approach to pay off big. Besides, this program is mostly in C, and spends a lot of time doing things other than actually accessing display memory. It also takes a fair amount of time just to generate the nonoverlapped list; the overhead of all the looping, intersecting, and calling required to generate the list eats up a lot of the benefits of accessing display memory less often. Nonetheless, fully nonoverlapped drawing can be useful under the right circumstances, and I've implemented it in Listing 46.1 so you'll have something to refer to should you decide to go this route.
There are a couple of additional techniques you might try if you want to wring maximum performance out of dirty-rectangle animation. You could try coalescing rectangles as you generate the dirty-rectangle list. That is, you could detect pairs of rectangles that can be joined together into larger rectangles, so that fewer, larger rectangles would have to be copied. This would boost the efficiency of the low-level copying code, albeit at the cost of some cycles in the dirty-list management code.
You might also try taking advantage of the natural coherence of animated graphics screens. In particular, because the rectangle used to erase an image at its old location often overlaps the rectangle within which the image resides at its new location, you could just directly generate the two or three nonoverlapped rectangles required to copy both the erase rectangle and the new-image rectangle for any single moving image. The calculation of these rectangles could be very efficient, given that you know in advance the direction of motion of your images. Handling this particular overlap case would eliminate most overlapped drawing, at a minimal cost. You might then decide to ignore overlapped drawing between different images, which tends to be both less common and more expensive to identify and handle.
Drawing Order and Visual Quality
A final note on dirty-rectangle animation concerns the quality of the displayed screen image. In the last chapter, we simply stuffed dirty rectangles into a list in the order they became dirty, and then copied all of the rectangles in that same order. Unfortunately, this caused all of the erase rectangles to be copied first, followed by all of the rectangles of the images at their new locations. Consequently, there was a significant delay between the appearance of the erase rectangle for a given image and the appearance of the new rectangle. A byproduct was the fact that a partially complete—part old, part new—image was visible long enough to be noticed. In short, although the pixels ended up correct, they were in an intermediate, incorrect state for a sufficient period of time to make the animation look wrong.
This violated a fundamental rule of animation: No pixel should ever be displayed in a perceptibly incorrect state. To correct the problem, I've sorted the dirty rectangles first by Y coordinate, and secondly by X coordinate. This means the screen updates from to draw a given image should be drawn nearly simultaneously. Run the code from the last chapter and then this chapter; you'll see quite a difference in appearance.
Avoid the trap of thinking animation is merely a matter of drawing the right pixels, one after another. Animation is the art of drawing the right pixels at the right times so that the eye and brain see what you want them to see. Animation is a lot more challenging than merely cranking out pixels, and it sure as heck isn't a purely linear process.