pokeemerald/gflib/bg.c

1250 lines
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C
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#include <limits.h>
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#include "global.h"
#include "bg.h"
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#include "dma3.h"
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#include "gpu_regs.h"
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#define DISPCNT_ALL_BG_AND_MODE_BITS (DISPCNT_BG_ALL_ON | 0x7)
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struct BgControl
{
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struct BgConfig {
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u8 visible:1;
u8 unknown_1:1;
u8 screenSize:2;
u8 priority:2;
u8 mosaic:1;
u8 wraparound:1;
u8 charBaseIndex:2;
u8 mapBaseIndex:5;
u8 paletteMode:1;
u8 unknown_2; // Assigned to but never read
u8 unknown_3; // Assigned to but never read
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} configs[NUM_BACKGROUNDS];
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u16 bgVisibilityAndMode;
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};
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struct BgConfig2
{
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u32 baseTile:10;
u32 basePalette:4;
u32 unk_3:18;
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void* tilemap;
s32 bg_x;
s32 bg_y;
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};
static struct BgControl sGpuBgConfigs;
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static struct BgConfig2 sGpuBgConfigs2[NUM_BACKGROUNDS];
static u32 sDmaBusyBitfield[NUM_BACKGROUNDS];
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u32 gWindowTileAutoAllocEnabled;
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static const struct BgConfig sZeroedBgControlStruct = { 0 };
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static u32 GetBgType(u8 bg);
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void ResetBgs(void)
{
ResetBgControlStructs();
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sGpuBgConfigs.bgVisibilityAndMode = 0;
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SetTextModeAndHideBgs();
}
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static void SetBgModeInternal(u8 bgMode)
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{
sGpuBgConfigs.bgVisibilityAndMode &= ~0x7;
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sGpuBgConfigs.bgVisibilityAndMode |= bgMode;
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}
u8 GetBgMode(void)
{
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return sGpuBgConfigs.bgVisibilityAndMode & 0x7;
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}
void ResetBgControlStructs(void)
{
int i;
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for (i = 0; i < NUM_BACKGROUNDS; i++)
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{
sGpuBgConfigs.configs[i] = sZeroedBgControlStruct;
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}
}
void Unused_ResetBgControlStruct(u8 bg)
{
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if (!IsInvalidBg(bg))
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{
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sGpuBgConfigs.configs[bg] = sZeroedBgControlStruct;
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}
}
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enum
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{
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BG_CTRL_ATTR_VISIBLE = 1,
BG_CTRL_ATTR_CHARBASEINDEX = 2,
BG_CTRL_ATTR_MAPBASEINDEX = 3,
BG_CTRL_ATTR_SCREENSIZE = 4,
BG_CTRL_ATTR_PALETTEMODE = 5,
BG_CTRL_ATTR_PRIORITY = 6,
BG_CTRL_ATTR_MOSAIC = 7,
BG_CTRL_ATTR_WRAPAROUND = 8,
};
static void SetBgControlAttributes(u8 bg, u8 charBaseIndex, u8 mapBaseIndex, u8 screenSize, u8 paletteMode, u8 priority, u8 mosaic, u8 wraparound)
{
if (!IsInvalidBg(bg))
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{
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if (charBaseIndex != 0xFF)
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{
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sGpuBgConfigs.configs[bg].charBaseIndex = charBaseIndex;
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}
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if (mapBaseIndex != 0xFF)
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{
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sGpuBgConfigs.configs[bg].mapBaseIndex = mapBaseIndex;
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}
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if (screenSize != 0xFF)
{
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sGpuBgConfigs.configs[bg].screenSize = screenSize;
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}
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if (paletteMode != 0xFF)
{
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sGpuBgConfigs.configs[bg].paletteMode = paletteMode;
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}
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if (priority != 0xFF)
{
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sGpuBgConfigs.configs[bg].priority = priority;
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}
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if (mosaic != 0xFF)
{
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sGpuBgConfigs.configs[bg].mosaic = mosaic;
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}
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if (wraparound != 0xFF)
{
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sGpuBgConfigs.configs[bg].wraparound = wraparound;
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}
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sGpuBgConfigs.configs[bg].unknown_2 = 0;
sGpuBgConfigs.configs[bg].unknown_3 = 0;
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sGpuBgConfigs.configs[bg].visible = 1;
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}
}
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static u16 GetBgControlAttribute(u8 bg, u8 attributeId)
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{
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if (!IsInvalidBg(bg) && sGpuBgConfigs.configs[bg].visible)
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{
switch (attributeId)
{
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case BG_CTRL_ATTR_VISIBLE:
return sGpuBgConfigs.configs[bg].visible;
case BG_CTRL_ATTR_CHARBASEINDEX:
return sGpuBgConfigs.configs[bg].charBaseIndex;
case BG_CTRL_ATTR_MAPBASEINDEX:
return sGpuBgConfigs.configs[bg].mapBaseIndex;
case BG_CTRL_ATTR_SCREENSIZE:
return sGpuBgConfigs.configs[bg].screenSize;
case BG_CTRL_ATTR_PALETTEMODE:
return sGpuBgConfigs.configs[bg].paletteMode;
case BG_CTRL_ATTR_PRIORITY:
return sGpuBgConfigs.configs[bg].priority;
case BG_CTRL_ATTR_MOSAIC:
return sGpuBgConfigs.configs[bg].mosaic;
case BG_CTRL_ATTR_WRAPAROUND:
return sGpuBgConfigs.configs[bg].wraparound;
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}
}
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return 0xFF;
}
u8 LoadBgVram(u8 bg, const void *src, u16 size, u16 destOffset, u8 mode)
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{
u16 offset;
s8 cursor;
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if (IsInvalidBg(bg) || !sGpuBgConfigs.configs[bg].visible)
return -1;
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switch (mode)
{
case 0x1:
offset = sGpuBgConfigs.configs[bg].charBaseIndex * BG_CHAR_SIZE;
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offset = destOffset + offset;
cursor = RequestDma3Copy(src, (void*)(offset + BG_VRAM), size, 0);
if (cursor == -1)
return -1;
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break;
case 0x2:
offset = sGpuBgConfigs.configs[bg].mapBaseIndex * BG_SCREEN_SIZE;
offset = destOffset + offset;
cursor = RequestDma3Copy(src, (void*)(offset + BG_VRAM), size, 0);
if (cursor == -1)
return -1;
break;
default:
cursor = -1;
break;
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}
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return cursor;
}
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static void ShowBgInternal(u8 bg)
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{
u16 value;
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if (!IsInvalidBg(bg) && sGpuBgConfigs.configs[bg].visible)
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{
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value = sGpuBgConfigs.configs[bg].priority |
(sGpuBgConfigs.configs[bg].charBaseIndex << 2) |
(sGpuBgConfigs.configs[bg].mosaic << 6) |
(sGpuBgConfigs.configs[bg].paletteMode << 7) |
(sGpuBgConfigs.configs[bg].mapBaseIndex << 8) |
(sGpuBgConfigs.configs[bg].wraparound << 13) |
(sGpuBgConfigs.configs[bg].screenSize << 14);
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SetGpuReg((bg << 1) + REG_OFFSET_BG0CNT, value);
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sGpuBgConfigs.bgVisibilityAndMode |= 1 << (bg + 8);
sGpuBgConfigs.bgVisibilityAndMode &= DISPCNT_ALL_BG_AND_MODE_BITS;
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}
}
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static void HideBgInternal(u8 bg)
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{
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if (!IsInvalidBg(bg))
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{
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sGpuBgConfigs.bgVisibilityAndMode &= ~(1 << (bg + 8));
sGpuBgConfigs.bgVisibilityAndMode &= DISPCNT_ALL_BG_AND_MODE_BITS;
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}
}
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static void SyncBgVisibilityAndMode(void)
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{
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SetGpuReg(REG_OFFSET_DISPCNT, (GetGpuReg(REG_OFFSET_DISPCNT) & ~DISPCNT_ALL_BG_AND_MODE_BITS) | sGpuBgConfigs.bgVisibilityAndMode);
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}
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void SetTextModeAndHideBgs(void)
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{
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SetGpuReg(REG_OFFSET_DISPCNT, GetGpuReg(REG_OFFSET_DISPCNT) & ~DISPCNT_ALL_BG_AND_MODE_BITS);
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}
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static void SetBgAffineInternal(u8 bg, s32 srcCenterX, s32 srcCenterY, s16 dispCenterX, s16 dispCenterY, s16 scaleX, s16 scaleY, u16 rotationAngle)
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{
struct BgAffineSrcData src;
struct BgAffineDstData dest;
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switch (sGpuBgConfigs.bgVisibilityAndMode & 0x7)
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{
default:
case 0:
return;
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case 1:
if (bg != 2)
return;
break;
case 2:
if (bg != 2 && bg != 3)
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return;
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break;
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}
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src.texX = srcCenterX;
src.texY = srcCenterY;
src.scrX = dispCenterX;
src.scrY = dispCenterY;
src.sx = scaleX;
src.sy = scaleY;
src.alpha = rotationAngle;
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BgAffineSet(&src, &dest, 1);
SetGpuReg(REG_OFFSET_BG2PA, dest.pa);
SetGpuReg(REG_OFFSET_BG2PB, dest.pb);
SetGpuReg(REG_OFFSET_BG2PC, dest.pc);
SetGpuReg(REG_OFFSET_BG2PD, dest.pd);
SetGpuReg(REG_OFFSET_BG2PA, dest.pa);
SetGpuReg(REG_OFFSET_BG2X_L, (s16)(dest.dx));
SetGpuReg(REG_OFFSET_BG2X_H, (s16)(dest.dx >> 16));
SetGpuReg(REG_OFFSET_BG2Y_L, (s16)(dest.dy));
SetGpuReg(REG_OFFSET_BG2Y_H, (s16)(dest.dy >> 16));
}
bool8 IsInvalidBg(u8 bg)
{
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if (bg >= NUM_BACKGROUNDS)
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return TRUE;
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else
return FALSE;
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}
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// From FRLG. Dummied out.
int BgTileAllocOp(int bg, int offset, int count, int mode)
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{
return 0;
}
void ResetBgsAndClearDma3BusyFlags(u32 leftoverFireRedLeafGreenVariable)
{
int i;
ResetBgs();
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for (i = 0; i < NUM_BACKGROUNDS; i++)
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{
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sDmaBusyBitfield[i] = 0;
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}
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gWindowTileAutoAllocEnabled = leftoverFireRedLeafGreenVariable;
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}
void InitBgsFromTemplates(u8 bgMode, const struct BgTemplate *templates, u8 numTemplates)
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{
int i;
u8 bg;
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SetBgModeInternal(bgMode);
ResetBgControlStructs();
for (i = 0; i < numTemplates; i++)
{
bg = templates[i].bg;
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if (bg < NUM_BACKGROUNDS)
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{
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SetBgControlAttributes(bg,
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templates[i].charBaseIndex,
templates[i].mapBaseIndex,
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templates[i].screenSize,
templates[i].paletteMode,
templates[i].priority,
0,
0);
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sGpuBgConfigs2[bg].baseTile = templates[i].baseTile;
sGpuBgConfigs2[bg].basePalette = 0;
sGpuBgConfigs2[bg].unk_3 = 0;
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sGpuBgConfigs2[bg].tilemap = NULL;
sGpuBgConfigs2[bg].bg_x = 0;
sGpuBgConfigs2[bg].bg_y = 0;
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}
}
}
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void InitBgFromTemplate(const struct BgTemplate *template)
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{
u8 bg = template->bg;
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if (bg < NUM_BACKGROUNDS)
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{
SetBgControlAttributes(bg,
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template->charBaseIndex,
template->mapBaseIndex,
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template->screenSize,
template->paletteMode,
template->priority,
0,
0);
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sGpuBgConfigs2[bg].baseTile = template->baseTile;
sGpuBgConfigs2[bg].basePalette = 0;
sGpuBgConfigs2[bg].unk_3 = 0;
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sGpuBgConfigs2[bg].tilemap = NULL;
sGpuBgConfigs2[bg].bg_x = 0;
sGpuBgConfigs2[bg].bg_y = 0;
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}
}
void SetBgMode(u8 bgMode)
{
SetBgModeInternal(bgMode);
}
u16 LoadBgTiles(u8 bg, const void* src, u16 size, u16 destOffset)
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{
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u16 tileOffset;
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u8 cursor;
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if (GetBgControlAttribute(bg, BG_CTRL_ATTR_PALETTEMODE) == 0)
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{
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tileOffset = (sGpuBgConfigs2[bg].baseTile + destOffset) * 0x20;
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}
else
{
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tileOffset = (sGpuBgConfigs2[bg].baseTile + destOffset) * 0x40;
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}
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cursor = LoadBgVram(bg, src, size, tileOffset, DISPCNT_MODE_1);
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if (cursor == 0xFF)
{
return -1;
}
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sDmaBusyBitfield[cursor / 0x20] |= (1 << (cursor % 0x20));
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if (gWindowTileAutoAllocEnabled == TRUE)
BgTileAllocOp(bg, tileOffset / 0x20, size / 0x20, 1);
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return cursor;
}
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u16 LoadBgTilemap(u8 bg, const void *src, u16 size, u16 destOffset)
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{
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u8 cursor = LoadBgVram(bg, src, size, destOffset * 2, DISPCNT_MODE_2);
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if (cursor == 0xFF)
{
return -1;
}
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sDmaBusyBitfield[cursor / 0x20] |= (1 << (cursor % 0x20));
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return cursor;
}
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u16 Unused_LoadBgPalette(u8 bg, const void *src, u16 size, u16 destOffset)
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{
s8 cursor;
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if (!IsInvalidBg32(bg))
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{
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u16 paletteOffset = (sGpuBgConfigs2[bg].basePalette * 0x20) + (destOffset * 2);
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cursor = RequestDma3Copy(src, (void*)(paletteOffset + BG_PLTT), size, 0);
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if (cursor == -1)
{
return -1;
}
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}
else
{
return -1;
}
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sDmaBusyBitfield[cursor / 0x20] |= (1 << (cursor % 0x20));
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return (u8)cursor;
}
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bool8 IsDma3ManagerBusyWithBgCopy(void)
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{
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int i;
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for (i = 0; i < 0x80; i++)
{
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u8 div = i / 0x20;
u8 mod = i % 0x20;
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if ((sDmaBusyBitfield[div] & (1 << mod)))
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{
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s8 reqSpace = CheckForSpaceForDma3Request(i);
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if (reqSpace == -1)
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{
return TRUE;
}
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sDmaBusyBitfield[div] &= ~(1 << mod);
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}
}
return FALSE;
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}
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void ShowBg(u8 bg)
{
ShowBgInternal(bg);
SyncBgVisibilityAndMode();
}
void HideBg(u8 bg)
{
HideBgInternal(bg);
SyncBgVisibilityAndMode();
}
void SetBgAttribute(u8 bg, u8 attributeId, u8 value)
{
switch (attributeId)
{
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case BG_ATTR_CHARBASEINDEX:
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SetBgControlAttributes(bg, value, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF);
break;
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case BG_ATTR_MAPBASEINDEX:
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SetBgControlAttributes(bg, 0xFF, value, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF);
break;
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case BG_ATTR_SCREENSIZE:
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SetBgControlAttributes(bg, 0xFF, 0xFF, value, 0xFF, 0xFF, 0xFF, 0xFF);
break;
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case BG_ATTR_PALETTEMODE:
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SetBgControlAttributes(bg, 0xFF, 0xFF, 0xFF, value, 0xFF, 0xFF, 0xFF);
break;
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case BG_ATTR_PRIORITY:
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SetBgControlAttributes(bg, 0xFF, 0xFF, 0xFF, 0xFF, value, 0xFF, 0xFF);
break;
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case BG_ATTR_MOSAIC:
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SetBgControlAttributes(bg, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, value, 0xFF);
break;
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case BG_ATTR_WRAPAROUND:
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SetBgControlAttributes(bg, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, 0xFF, value);
break;
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}
}
u16 GetBgAttribute(u8 bg, u8 attributeId)
{
switch (attributeId)
{
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case BG_ATTR_CHARBASEINDEX:
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return GetBgControlAttribute(bg, BG_CTRL_ATTR_CHARBASEINDEX);
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case BG_ATTR_MAPBASEINDEX:
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return GetBgControlAttribute(bg, BG_CTRL_ATTR_MAPBASEINDEX);
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case BG_ATTR_SCREENSIZE:
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return GetBgControlAttribute(bg, BG_CTRL_ATTR_SCREENSIZE);
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case BG_ATTR_PALETTEMODE:
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return GetBgControlAttribute(bg, BG_CTRL_ATTR_PALETTEMODE);
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case BG_ATTR_PRIORITY:
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return GetBgControlAttribute(bg, BG_CTRL_ATTR_PRIORITY);
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case BG_ATTR_MOSAIC:
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return GetBgControlAttribute(bg, BG_CTRL_ATTR_MOSAIC);
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case BG_ATTR_WRAPAROUND:
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return GetBgControlAttribute(bg, BG_CTRL_ATTR_WRAPAROUND);
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case BG_ATTR_METRIC:
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switch (GetBgType(bg))
{
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case BG_TYPE_NORMAL:
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return GetBgMetricTextMode(bg, 0) * 0x800;
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case BG_TYPE_AFFINE:
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return GetBgMetricAffineMode(bg, 0) * 0x100;
default:
return 0;
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}
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case BG_ATTR_TYPE:
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return GetBgType(bg);
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case BG_ATTR_BASETILE:
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return sGpuBgConfigs2[bg].baseTile;
default:
return -1;
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}
}
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s32 ChangeBgX(u8 bg, s32 value, u8 op)
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{
u8 mode;
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u16 temp1;
u16 temp2;
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if (IsInvalidBg32(bg) || !GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
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{
return -1;
}
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switch (op)
{
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case 0:
default:
sGpuBgConfigs2[bg].bg_x = value;
break;
case 1:
sGpuBgConfigs2[bg].bg_x += value;
break;
case 2:
sGpuBgConfigs2[bg].bg_x -= value;
break;
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}
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mode = GetBgMode();
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switch (bg)
{
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case 0:
temp1 = sGpuBgConfigs2[0].bg_x >> 0x8;
SetGpuReg(REG_OFFSET_BG0HOFS, temp1);
break;
case 1:
temp1 = sGpuBgConfigs2[1].bg_x >> 0x8;
SetGpuReg(REG_OFFSET_BG1HOFS, temp1);
break;
case 2:
if (mode == 0)
{
temp1 = sGpuBgConfigs2[2].bg_x >> 0x8;
SetGpuReg(REG_OFFSET_BG2HOFS, temp1);
}
else
{
temp1 = sGpuBgConfigs2[2].bg_x >> 0x10;
temp2 = sGpuBgConfigs2[2].bg_x & 0xFFFF;
SetGpuReg(REG_OFFSET_BG2X_H, temp1);
SetGpuReg(REG_OFFSET_BG2X_L, temp2);
}
break;
case 3:
if (mode == 0)
{
temp1 = sGpuBgConfigs2[3].bg_x >> 0x8;
SetGpuReg(REG_OFFSET_BG3HOFS, temp1);
}
else if (mode == 2)
{
temp1 = sGpuBgConfigs2[3].bg_x >> 0x10;
temp2 = sGpuBgConfigs2[3].bg_x & 0xFFFF;
SetGpuReg(REG_OFFSET_BG3X_H, temp1);
SetGpuReg(REG_OFFSET_BG3X_L, temp2);
}
break;
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}
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return sGpuBgConfigs2[bg].bg_x;
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}
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s32 GetBgX(u8 bg)
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{
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if (IsInvalidBg32(bg))
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return -1;
else if (!GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
return -1;
else
return sGpuBgConfigs2[bg].bg_x;
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}
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s32 ChangeBgY(u8 bg, s32 value, u8 op)
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{
u8 mode;
u16 temp1;
u16 temp2;
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if (IsInvalidBg32(bg) || !GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
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{
return -1;
}
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switch (op)
{
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case 0:
default:
sGpuBgConfigs2[bg].bg_y = value;
break;
case 1:
sGpuBgConfigs2[bg].bg_y += value;
break;
case 2:
sGpuBgConfigs2[bg].bg_y -= value;
break;
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}
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mode = GetBgMode();
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switch (bg)
{
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case 0:
temp1 = sGpuBgConfigs2[0].bg_y >> 0x8;
SetGpuReg(REG_OFFSET_BG0VOFS, temp1);
break;
case 1:
temp1 = sGpuBgConfigs2[1].bg_y >> 0x8;
SetGpuReg(REG_OFFSET_BG1VOFS, temp1);
break;
case 2:
if (mode == 0)
{
temp1 = sGpuBgConfigs2[2].bg_y >> 0x8;
SetGpuReg(REG_OFFSET_BG2VOFS, temp1);
}
else
{
temp1 = sGpuBgConfigs2[2].bg_y >> 0x10;
temp2 = sGpuBgConfigs2[2].bg_y & 0xFFFF;
SetGpuReg(REG_OFFSET_BG2Y_H, temp1);
SetGpuReg(REG_OFFSET_BG2Y_L, temp2);
}
break;
case 3:
if (mode == 0)
{
temp1 = sGpuBgConfigs2[3].bg_y >> 0x8;
SetGpuReg(REG_OFFSET_BG3VOFS, temp1);
}
else if (mode == 2)
{
temp1 = sGpuBgConfigs2[3].bg_y >> 0x10;
temp2 = sGpuBgConfigs2[3].bg_y & 0xFFFF;
SetGpuReg(REG_OFFSET_BG3Y_H, temp1);
SetGpuReg(REG_OFFSET_BG3Y_L, temp2);
}
break;
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}
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return sGpuBgConfigs2[bg].bg_y;
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}
s32 ChangeBgY_ScreenOff(u8 bg, s32 value, u8 op)
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{
u8 mode;
u16 temp1;
u16 temp2;
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if (IsInvalidBg32(bg) || !GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
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{
return -1;
}
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switch (op)
{
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case 0:
default:
sGpuBgConfigs2[bg].bg_y = value;
break;
case 1:
sGpuBgConfigs2[bg].bg_y += value;
break;
case 2:
sGpuBgConfigs2[bg].bg_y -= value;
break;
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}
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mode = GetBgMode();
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switch (bg)
{
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case 0:
temp1 = sGpuBgConfigs2[0].bg_y >> 0x8;
SetGpuReg_ForcedBlank(REG_OFFSET_BG0VOFS, temp1);
break;
case 1:
temp1 = sGpuBgConfigs2[1].bg_y >> 0x8;
SetGpuReg_ForcedBlank(REG_OFFSET_BG1VOFS, temp1);
break;
case 2:
if (mode == 0)
{
temp1 = sGpuBgConfigs2[2].bg_y >> 0x8;
SetGpuReg_ForcedBlank(REG_OFFSET_BG2VOFS, temp1);
}
else
{
temp1 = sGpuBgConfigs2[2].bg_y >> 0x10;
temp2 = sGpuBgConfigs2[2].bg_y & 0xFFFF;
SetGpuReg_ForcedBlank(REG_OFFSET_BG2Y_H, temp1);
SetGpuReg_ForcedBlank(REG_OFFSET_BG2Y_L, temp2);
}
break;
case 3:
if (mode == 0)
{
temp1 = sGpuBgConfigs2[3].bg_y >> 0x8;
SetGpuReg_ForcedBlank(REG_OFFSET_BG3VOFS, temp1);
}
else if (mode == 2)
{
temp1 = sGpuBgConfigs2[3].bg_y >> 0x10;
temp2 = sGpuBgConfigs2[3].bg_y & 0xFFFF;
SetGpuReg_ForcedBlank(REG_OFFSET_BG3Y_H, temp1);
SetGpuReg_ForcedBlank(REG_OFFSET_BG3Y_L, temp2);
}
break;
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}
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return sGpuBgConfigs2[bg].bg_y;
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}
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s32 GetBgY(u8 bg)
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{
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if (IsInvalidBg32(bg))
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return -1;
else if (!GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
return -1;
else
return sGpuBgConfigs2[bg].bg_y;
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}
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void SetBgAffine(u8 bg, s32 srcCenterX, s32 srcCenterY, s16 dispCenterX, s16 dispCenterY, s16 scaleX, s16 scaleY, u16 rotationAngle)
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{
SetBgAffineInternal(bg, srcCenterX, srcCenterY, dispCenterX, dispCenterY, scaleX, scaleY, rotationAngle);
}
u8 Unused_AdjustBgMosaic(u8 a1, u8 a2)
{
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u16 result = GetGpuReg(REG_OFFSET_MOSAIC);
s16 test1 = result & 0xF;
s16 test2 = (result >> 4) & 0xF;
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result &= 0xFF00;
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switch (a2)
{
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case 0:
default:
test1 = a1 & 0xF;
test2 = a1 >> 0x4;
break;
case 1:
test1 = a1 & 0xF;
break;
case 2:
if ((test1 + a1) > 0xF)
{
test1 = 0xF;
}
else
{
test1 += a1;
}
break;
case 3:
if ((test1 - a1) < 0)
{
test1 = 0x0;
}
else
{
test1 -= a1;
}
break;
case 4:
test2 = a1 & 0xF;
break;
case 5:
if ((test2 + a1) > 0xF)
{
test2 = 0xF;
}
else
{
test2 += a1;
}
break;
case 6:
if ((test2 - a1) < 0)
{
test2 = 0x0;
}
else
{
test2 -= a1;
}
break;
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}
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result |= ((test2 << 0x4) & 0xF0);
result |= (test1 & 0xF);
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SetGpuReg(REG_OFFSET_MOSAIC, result);
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return result;
}
void SetBgTilemapBuffer(u8 bg, void *tilemap)
{
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if (!IsInvalidBg32(bg) && GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
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{
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sGpuBgConfigs2[bg].tilemap = tilemap;
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}
}
void UnsetBgTilemapBuffer(u8 bg)
{
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if (!IsInvalidBg32(bg) && GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
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{
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sGpuBgConfigs2[bg].tilemap = NULL;
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}
}
void* GetBgTilemapBuffer(u8 bg)
{
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if (IsInvalidBg32(bg))
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return NULL;
else if (!GetBgControlAttribute(bg, BG_CTRL_ATTR_VISIBLE))
return NULL;
else
return sGpuBgConfigs2[bg].tilemap;
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}
void CopyToBgTilemapBuffer(u8 bg, const void *src, u16 mode, u16 destOffset)
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{
if (!IsInvalidBg32(bg) && !IsTileMapOutsideWram(bg))
{
if (mode != 0)
CpuCopy16(src, (void *)(sGpuBgConfigs2[bg].tilemap + (destOffset * 2)), mode);
else
LZ77UnCompWram(src, (void *)(sGpuBgConfigs2[bg].tilemap + (destOffset * 2)));
}
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}
void CopyBgTilemapBufferToVram(u8 bg)
{
u16 sizeToLoad;
if (!IsInvalidBg32(bg) && !IsTileMapOutsideWram(bg))
2017-09-07 04:59:34 +02:00
{
switch (GetBgType(bg))
{
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case BG_TYPE_NORMAL:
sizeToLoad = GetBgMetricTextMode(bg, 0) * 0x800;
break;
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case BG_TYPE_AFFINE:
sizeToLoad = GetBgMetricAffineMode(bg, 0) * 0x100;
break;
default:
sizeToLoad = 0;
break;
}
LoadBgVram(bg, sGpuBgConfigs2[bg].tilemap, sizeToLoad, 0, 2);
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}
}
void CopyToBgTilemapBufferRect(u8 bg, const void* src, u8 destX, u8 destY, u8 width, u8 height)
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{
u16 destX16;
u16 destY16;
u16 mode;
if (!IsInvalidBg32(bg) && !IsTileMapOutsideWram(bg))
2020-08-24 21:32:57 +02:00
{
switch (GetBgType(bg))
{
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case BG_TYPE_NORMAL:
{
const u16 * srcCopy = src;
for (destY16 = destY; destY16 < (destY + height); destY16++)
2018-11-26 20:19:52 +01:00
{
for (destX16 = destX; destX16 < (destX + width); destX16++)
{
((u16*)sGpuBgConfigs2[bg].tilemap)[((destY16 * 0x20) + destX16)] = *srcCopy++;
}
2018-11-26 20:19:52 +01:00
}
break;
}
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case BG_TYPE_AFFINE:
{
const u8 * srcCopy = src;
mode = GetBgMetricAffineMode(bg, 0x1);
for (destY16 = destY; destY16 < (destY + height); destY16++)
2018-11-26 20:19:52 +01:00
{
for (destX16 = destX; destX16 < (destX + width); destX16++)
{
((u8*)sGpuBgConfigs2[bg].tilemap)[((destY16 * mode) + destX16)] = *srcCopy++;
}
2018-11-26 20:19:52 +01:00
}
break;
}
}
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}
}
2018-08-25 19:59:47 +02:00
void CopyToBgTilemapBufferRect_ChangePalette(u8 bg, const void *src, u8 destX, u8 destY, u8 rectWidth, u8 rectHeight, u8 palette)
{
CopyRectToBgTilemapBufferRect(bg, src, 0, 0, rectWidth, rectHeight, destX, destY, rectWidth, rectHeight, palette, 0, 0);
}
2018-11-25 20:16:41 +01:00
void CopyRectToBgTilemapBufferRect(u8 bg, const void *src, u8 srcX, u8 srcY, u8 srcWidth, u8 unused, u8 srcHeight, u8 destX, u8 destY, u8 rectWidth, u8 rectHeight, s16 palette1, s16 tileOffset)
{
u16 screenWidth, screenHeight, screenSize;
u16 var;
const void *srcPtr;
u16 i, j;
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if (!IsInvalidBg32(bg) && !IsTileMapOutsideWram(bg))
{
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screenSize = GetBgControlAttribute(bg, BG_CTRL_ATTR_SCREENSIZE);
screenWidth = GetBgMetricTextMode(bg, 0x1) * 0x20;
screenHeight = GetBgMetricTextMode(bg, 0x2) * 0x20;
switch (GetBgType(bg))
{
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case BG_TYPE_NORMAL:
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srcPtr = src + ((srcY * srcWidth) + srcX) * 2;
for (i = destX; i < (destX + rectWidth); i++)
{
for (j = srcHeight; j < (srcHeight + destY); j++)
{
2018-11-25 20:16:41 +01:00
u16 index = GetTileMapIndexFromCoords(j, i, screenSize, screenWidth, screenHeight);
CopyTileMapEntry(srcPtr, sGpuBgConfigs2[bg].tilemap + (index * 2), rectHeight, palette1, tileOffset);
srcPtr += 2;
}
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srcPtr += (srcWidth - destY) * 2;
}
break;
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case BG_TYPE_AFFINE:
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srcPtr = src + ((srcY * srcWidth) + srcX);
var = GetBgMetricAffineMode(bg, 0x1);
for (i = destX; i < (destX + rectWidth); i++)
{
for (j = srcHeight; j < (srcHeight + destY); j++)
{
2018-11-25 20:16:41 +01:00
*(u8*)(sGpuBgConfigs2[bg].tilemap + ((var * i) + j)) = *(u8*)(srcPtr) + palette1;
srcPtr++;
}
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srcPtr += (srcWidth - destY);
}
break;
}
}
2017-09-10 02:46:19 +02:00
}
void FillBgTilemapBufferRect_Palette0(u8 bg, u16 tileNum, u8 x, u8 y, u8 width, u8 height)
{
u16 x16;
u16 y16;
u16 mode;
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if (!IsInvalidBg32(bg) && !IsTileMapOutsideWram(bg))
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{
switch (GetBgType(bg))
{
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case BG_TYPE_NORMAL:
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for (y16 = y; y16 < (y + height); y16++)
{
for (x16 = x; x16 < (x + width); x16++)
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{
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((u16*)sGpuBgConfigs2[bg].tilemap)[((y16 * 0x20) + x16)] = tileNum;
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}
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}
break;
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case BG_TYPE_AFFINE:
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mode = GetBgMetricAffineMode(bg, 0x1);
for (y16 = y; y16 < (y + height); y16++)
{
for (x16 = x; x16 < (x + width); x16++)
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{
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((u8*)sGpuBgConfigs2[bg].tilemap)[((y16 * mode) + x16)] = tileNum;
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}
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}
break;
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}
}
}
void FillBgTilemapBufferRect(u8 bg, u16 tileNum, u8 x, u8 y, u8 width, u8 height, u8 palette)
{
WriteSequenceToBgTilemapBuffer(bg, tileNum, x, y, width, height, palette, 0);
}
void WriteSequenceToBgTilemapBuffer(u8 bg, u16 firstTileNum, u8 x, u8 y, u8 width, u8 height, u8 paletteSlot, s16 tileNumDelta)
{
u16 mode;
u16 mode2;
u16 attribute;
u16 mode3;
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u16 x16, y16;
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if (!IsInvalidBg32(bg) && !IsTileMapOutsideWram(bg))
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{
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attribute = GetBgControlAttribute(bg, BG_CTRL_ATTR_SCREENSIZE);
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mode = GetBgMetricTextMode(bg, 0x1) * 0x20;
mode2 = GetBgMetricTextMode(bg, 0x2) * 0x20;
switch (GetBgType(bg))
{
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case BG_TYPE_NORMAL:
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for (y16 = y; y16 < (y + height); y16++)
{
for (x16 = x; x16 < (x + width); x16++)
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{
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CopyTileMapEntry(&firstTileNum, &((u16*)sGpuBgConfigs2[bg].tilemap)[(u16)GetTileMapIndexFromCoords(x16, y16, attribute, mode, mode2)], paletteSlot, 0, 0);
2019-02-27 04:56:22 +01:00
firstTileNum = (firstTileNum & (METATILE_COLLISION_MASK | METATILE_ELEVATION_MASK)) + ((firstTileNum + tileNumDelta) & METATILE_ID_MASK);
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}
2018-12-17 23:00:08 +01:00
}
break;
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case BG_TYPE_AFFINE:
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mode3 = GetBgMetricAffineMode(bg, 0x1);
for (y16 = y; y16 < (y + height); y16++)
{
for (x16 = x; x16 < (x + width); x16++)
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{
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((u8*)sGpuBgConfigs2[bg].tilemap)[(y16 * mode3) + x16] = firstTileNum;
2019-02-27 04:56:22 +01:00
firstTileNum = (firstTileNum & (METATILE_COLLISION_MASK | METATILE_ELEVATION_MASK)) + ((firstTileNum + tileNumDelta) & METATILE_ID_MASK);
2017-09-10 02:46:19 +02:00
}
2018-12-17 23:00:08 +01:00
}
break;
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}
}
}
u16 GetBgMetricTextMode(u8 bg, u8 whichMetric)
{
2018-12-26 13:05:02 +01:00
u8 screenSize = GetBgControlAttribute(bg, BG_CTRL_ATTR_SCREENSIZE);
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switch (whichMetric)
{
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case 0:
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switch (screenSize)
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{
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case 0:
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return 1;
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case 1:
case 2:
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return 2;
case 3:
return 4;
}
break;
case 1:
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switch (screenSize)
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{
case 0:
return 1;
case 1:
return 2;
case 2:
return 1;
case 3:
return 2;
}
break;
case 2:
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switch (screenSize)
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{
case 0:
case 1:
return 1;
case 2:
case 3:
return 2;
}
break;
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}
return 0;
}
u32 GetBgMetricAffineMode(u8 bg, u8 whichMetric)
{
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u8 screenSize = GetBgControlAttribute(bg, BG_CTRL_ATTR_SCREENSIZE);
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switch (whichMetric)
{
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case 0:
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switch (screenSize)
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{
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case 0:
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return 0x1;
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case 1:
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return 0x4;
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case 2:
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return 0x10;
case 3:
return 0x40;
}
break;
case 1:
case 2:
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return 0x10 << screenSize;
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}
return 0;
}
u32 GetTileMapIndexFromCoords(s32 x, s32 y, s32 screenSize, u32 screenWidth, u32 screenHeight)
{
x = x & (screenWidth - 1);
y = y & (screenHeight - 1);
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switch (screenSize)
{
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case 0:
case 2:
break;
case 3:
if (y >= 0x20)
y += 0x20;
case 1:
if (x >= 0x20)
{
x -= 0x20;
y += 0x20;
}
break;
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}
return (y * 0x20) + x;
}
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void CopyTileMapEntry(const u16 *src, u16 *dest, s32 palette1, s32 tileOffset, s32 palette2)
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{
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u16 var;
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switch (palette1)
{
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case 0 ... 15:
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var = ((*src + tileOffset) & 0xFFF) + ((palette1 + palette2) << 12);
break;
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case 16:
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var = *dest;
var &= 0xFC00;
var += palette2 << 12;
var |= (*src + tileOffset) & 0x3FF;
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break;
default:
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case 17 ... INT_MAX:
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var = *src + tileOffset + (palette2 << 12);
break;
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}
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*dest = var;
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}
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static u32 GetBgType(u8 bg)
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{
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u8 mode = GetBgMode();
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switch (bg)
{
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case 0:
case 1:
switch (mode)
{
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case 0:
case 1:
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return BG_TYPE_NORMAL;
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}
break;
case 2:
switch (mode)
{
case 0:
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return BG_TYPE_NORMAL;
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case 1:
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case 2:
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return BG_TYPE_AFFINE;
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}
break;
case 3:
switch (mode)
{
case 0:
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return BG_TYPE_NORMAL;
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case 2:
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return BG_TYPE_AFFINE;
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}
break;
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}
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return BG_TYPE_NONE;
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}
bool32 IsInvalidBg32(u8 bg)
{
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if (bg >= NUM_BACKGROUNDS)
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return TRUE;
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else
return FALSE;
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}
bool32 IsTileMapOutsideWram(u8 bg)
{
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if (sGpuBgConfigs2[bg].tilemap > (void*)IWRAM_END)
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return TRUE;
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else if (sGpuBgConfigs2[bg].tilemap == NULL)
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return TRUE;
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else
return FALSE;
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}