/* Copyright (C) 1996-1997 Id Software, Inc. This program is free software; you can redistribute it and/or modify it under the terms of the GNU General Public License as published by the Free Software Foundation; either version 2 of the License, or (at your option) any later version. This program is distributed in the hope that it will be useful, but WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details. You should have received a copy of the GNU General Public License along with this program; if not, write to the Free Software Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */ // r_surf.c: surface-related refresh code #include "quakedef.h" #include "neh.h" int skytexturenum; #ifndef GL_RGBA4 #define GL_RGBA4 0 #endif #define BLOCKL_SIZE (18 * 18 * 64) // To hopefully cover very large missing sky textures int lightmap_bytes; // 1, 2, or 4 int lightmap_textures; unsigned blocklights[BLOCKL_SIZE]; unsigned blocklightcolours[3][BLOCKL_SIZE]; #define BLOCK_WIDTH 128 #define BLOCK_HEIGHT 128 #define MAX_LIGHTMAPS 1024 //64 int active_lightmaps; typedef struct glRect_s { unsigned char l,t,w,h; } glRect_t; glpoly_t *lightmap_polys[MAX_LIGHTMAPS]; qboolean lightmap_modified[MAX_LIGHTMAPS]; glRect_t lightmap_rectchange[MAX_LIGHTMAPS]; int allocated[MAX_LIGHTMAPS][BLOCK_WIDTH]; static int lm_used; // To speed up AllocBlock // the lightmap texture data needs to be kept in // main memory so texsubimage can update properly static byte *lightmaps = NULL; static int lightmapsize = 0; // For gl_texsort 0 msurface_t *skychain = NULL; msurface_t *waterchain = NULL; void R_RenderDynamicLightmaps (msurface_t *fa); /* =============== R_AddDynamicLights =============== */ void R_AddDynamicLights (msurface_t *surf) { int lnum; int sd, td; float dist, rad, minlight; vec3_t impact, local; int s, t; int i; int smax, tmax; mtexinfo_t *tex; // CDL - epca@powerup.com.au dlight_t *dl; // CDL smax = (surf->extents[0]>>4)+1; tmax = (surf->extents[1]>>4)+1; tex = surf->texinfo; for (lnum=0 ; lnumdlightbits & (1<plane->normal) - surf->plane->dist; rad -= fabs(dist); minlight = cl_dlights[lnum].minlight; if (rad < minlight) continue; minlight = rad - minlight; for (i=0 ; i<3 ; i++) { impact[i] = cl_dlights[lnum].origin[i] - surf->plane->normal[i]*dist; } local[0] = DotProduct (impact, tex->vecs[0]) + tex->vecs[0][3]; local[1] = DotProduct (impact, tex->vecs[1]) + tex->vecs[1][3]; local[0] -= surf->texturemins[0]; local[1] -= surf->texturemins[1]; for (t = 0 ; t td) dist = sd + (td>>1); else dist = td + (sd>>1); if (dist < minlight) { blocklights[t*smax + s] += (rad - dist)*256; // CDL - epca@powerup.com.au dl = &cl_dlights[lnum]; blocklightcolours[0][t*smax + s] += (rad - dist)*(dl->color[0] * 256); blocklightcolours[1][t*smax + s] += (rad - dist)*(dl->color[1] * 256); blocklightcolours[2][t*smax + s] += (rad - dist)*(dl->color[2] * 256); // CDL } } } } } /* =============== R_BuildLightMap Combine and scale multiple lightmaps into the 8.8 format in blocklights =============== */ void R_BuildLightMap (msurface_t *surf, byte *dest, int stride) { int smax, tmax; int t, r, s, q; int i, j, size; byte *lightmap; unsigned scale; int maps; int lightadj[4]; unsigned *bl; // CDL - epca@powerup.com.au unsigned *blcr, *blcg, *blcb; // CDL surf->cached_dlight = (surf->dlightframe == r_framecount); smax = (surf->extents[0]>>4)+1; tmax = (surf->extents[1]>>4)+1; size = smax*tmax; lightmap = surf->samples; if (size > BLOCKL_SIZE) Sys_Error ("R_BuildLightMap: too large blocklight size (%d, max = %d)", size, BLOCKL_SIZE); // set to full bright if no light data if (r_fullbright.value || !cl.worldmodel->lightdata) { for (i=0 ; istyles[maps] != 255 ; maps++) { scale = d_lightstylevalue[surf->styles[maps]]; surf->cached_light[maps] = scale; // 8.8 fraction for (i=0; idlightframe == r_framecount) R_AddDynamicLights (surf); // bound, invert, and shift store: switch (gl_lightmap_format) { case GL_RGBA: stride -= (smax<<2); bl = blocklights; // CDL - epca@powerup.com.au blcr = blocklightcolours[0]; blcg = blocklightcolours[1]; blcb = blocklightcolours[2]; // CDL for (i=0 ; i>= 7; if (q > 255) q = 255; r = *blcg++; r >>= 7; if (r > 255) r = 255; s = *blcb++; s >>= 7; if (s > 255) s = 255; dest[0] = 255-q; dest[1] = 255-r; dest[2] = 255-s; // CDL t = *bl++; t >>= 7; if (t > 255) t = 255; // epca@powerup.com.au // Fix bug in quake where this mode is just fullbright //dest[0] = dest[1] = dest[2] = 255-t; // End of fix dest[3] = 255-t; dest += 4; } } break; case GL_ALPHA: case GL_LUMINANCE: case GL_INTENSITY: bl = blocklights; for (i=0 ; i>= 7; if (t > 255) t = 255; dest[j] = 255-t; } } break; default: Sys_Error ("Bad lightmap format"); } } /* =============== R_TextureAnimation Returns the proper texture for a given time and base texture =============== */ texture_t *R_TextureAnimation (texture_t *base) { int reletive; int count; if (currententity->frame) { if (base->alternate_anims) base = base->alternate_anims; } if (!base->anim_total) return base; reletive = (int)(cl.time*10) % base->anim_total; count = 0; while (base->anim_min > reletive || base->anim_max <= reletive) { base = base->anim_next; if (!base) Sys_Error ("R_TextureAnimation: broken cycle"); if (++count > 100) Sys_Error ("R_TextureAnimation: infinite cycle"); } return base; } /* ============================================================= BRUSH MODELS ============================================================= */ extern int solidskytexture; extern int alphaskytexture; extern float speedscale; // for top sky and bottom sky void DrawGLWaterPoly (glpoly_t *p); void DrawGLWaterPolyLightmap (glpoly_t *p); lpMTexFUNC qglMTexCoord2fSGIS = NULL; lpSelTexFUNC qglSelectTextureSGIS = NULL; qboolean mtexenabled = false; void GL_SelectTexture (GLenum target); void GL_DisableMultitexture(void) { if (mtexenabled) { glDisable(GL_TEXTURE_2D); GL_SelectTexture(TEXTURE0_SGIS); mtexenabled = false; } } void GL_EnableMultitexture(void) { if (gl_mtexable) { GL_SelectTexture(TEXTURE1_SGIS); glEnable(GL_TEXTURE_2D); mtexenabled = true; } } /* =============== R_UploadLightmap -- uploads the modified lightmap to opengl if necessary assumes lightmap texture is already bound =============== */ void R_UploadLightmap (int lmap) { glRect_t *theRect; if (!lightmap_modified[lmap]) return; lightmap_modified[lmap] = false; theRect = &lightmap_rectchange[lmap]; glTexSubImage2D (GL_TEXTURE_2D, 0, 0, theRect->t, BLOCK_WIDTH, theRect->h, gl_lightmap_format, GL_UNSIGNED_BYTE, lightmaps+(lmap* BLOCK_HEIGHT + theRect->t) *BLOCK_WIDTH*lightmap_bytes); theRect->l = BLOCK_WIDTH; theRect->t = BLOCK_HEIGHT; theRect->h = 0; theRect->w = 0; } /* ================ R_DrawSequentialPoly Systems that have fast state and texture changes can just do everything as it passes with no need to sort ================ */ void R_DrawSequentialPoly (msurface_t *s) { glpoly_t *p; float *v; int i; texture_t *t; vec3_t nv, dir; float ss, ss2, length; float s1, t1; // // normal lightmaped poly // if (! (s->flags & (SURF_DRAWSKY|SURF_DRAWTURB))) { R_RenderDynamicLightmaps (s); if (gl_mtexable) { p = s->polys; t = R_TextureAnimation (s->texinfo->texture); // Binds world to texture env 0 GL_SelectTexture(TEXTURE0_SGIS); GL_Bind (t->gl_texturenum); glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_REPLACE); // Binds lightmap to texenv 1 GL_EnableMultitexture(); // Same as SelectTexture (TEXTURE1) GL_Bind (lightmap_textures + s->lightmaptexturenum); R_UploadLightmap (s->lightmaptexturenum); glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_BLEND); glBegin(GL_POLYGON); v = p->verts[0]; for (i=0 ; inumverts ; i++, v+= VERTEXSIZE) { qglMTexCoord2fSGIS (TEXTURE0_SGIS, v[3], v[4]); qglMTexCoord2fSGIS (TEXTURE1_SGIS, v[5], v[6]); glVertex3fv (v); } glEnd (); GL_DisableMultitexture(); // Ender: Disable Multitexture // GL_SelectTexture(TEXTURE0_SGIS); // Ender: Disable Multitexture return; } else { p = s->polys; t = R_TextureAnimation (s->texinfo->texture); GL_Bind (t->gl_texturenum); glBegin (GL_POLYGON); v = p->verts[0]; for (i=0 ; inumverts ; i++, v+= VERTEXSIZE) { glTexCoord2f (v[3], v[4]); glVertex3fv (v); } glEnd (); GL_Bind (lightmap_textures + s->lightmaptexturenum); glEnable (GL_BLEND); glBegin (GL_POLYGON); v = p->verts[0]; for (i=0 ; inumverts ; i++, v+= VERTEXSIZE) { glTexCoord2f (v[5], v[6]); glVertex3fv (v); } glEnd (); glDisable (GL_BLEND); } return; } // // subdivided water surface warp // if (s->flags & SURF_DRAWTURB) { GL_DisableMultitexture(); GL_Bind (s->texinfo->texture->gl_texturenum); EmitWaterPolys (s); return; } // // subdivided sky warp // if (s->flags & SURF_DRAWSKY) { GL_DisableMultitexture(); GL_Bind (solidskytexture); speedscale = realtime*8; speedscale -= (int)speedscale & ~127; EmitSkyPolys (s); glEnable (GL_BLEND); GL_Bind (alphaskytexture); speedscale = realtime*16; speedscale -= (int)speedscale & ~127; EmitSkyPolys (s); glDisable (GL_BLEND); return; } // // underwater warped with lightmap // R_RenderDynamicLightmaps (s); if (gl_mtexable) { p = s->polys; t = R_TextureAnimation (s->texinfo->texture); GL_SelectTexture(TEXTURE0_SGIS); GL_Bind (t->gl_texturenum); glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_REPLACE); GL_EnableMultitexture(); GL_Bind (lightmap_textures + s->lightmaptexturenum); R_UploadLightmap (s->lightmaptexturenum); glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_BLEND); glBegin (GL_TRIANGLE_FAN); v = p->verts[0]; for (i=0 ; inumverts ; i++, v+= VERTEXSIZE) { qglMTexCoord2fSGIS (TEXTURE0_SGIS, v[3], v[4]); qglMTexCoord2fSGIS (TEXTURE1_SGIS, v[5], v[6]); glVertex3fv (nv); } glEnd (); GL_DisableMultitexture(); // Ender: Disable Multitexture // GL_SelectTexture(TEXTURE0_SGIS); // Ender: Disable Multitexture } else { p = s->polys; t = R_TextureAnimation (s->texinfo->texture); GL_Bind (t->gl_texturenum); DrawGLWaterPoly (p); GL_Bind (lightmap_textures + s->lightmaptexturenum); glEnable (GL_BLEND); DrawGLWaterPolyLightmap (p); glDisable (GL_BLEND); } } /* ================ DrawGLWaterPoly Warp the vertex coordinates ================ */ void DrawGLWaterPoly (glpoly_t *p) { int i; float *v; float s, t, os, ot; vec3_t nv; GL_DisableMultitexture(); glBegin (GL_TRIANGLE_FAN); v = p->verts[0]; for (i=0 ; inumverts ; i++, v+= VERTEXSIZE) { glTexCoord2f (v[3], v[4]); glVertex3fv (nv); } glEnd (); } void DrawGLWaterPolyLightmap (glpoly_t *p) { int i; float *v; float s, t, os, ot; vec3_t nv; GL_DisableMultitexture(); glBegin (GL_TRIANGLE_FAN); v = p->verts[0]; for (i=0 ; inumverts ; i++, v+= VERTEXSIZE) { glTexCoord2f (v[5], v[6]); nv[0] = v[0] + 8*sin(v[1]*0.05+realtime)*sin(v[2]*0.05+realtime); nv[1] = v[1] + 8*sin(v[0]*0.05+realtime)*sin(v[2]*0.05+realtime); nv[2] = v[2]; glVertex3fv (nv); } glEnd (); } /* ================ DrawGLPoly ================ */ void DrawGLPoly (glpoly_t *p) { int i; float *v; glBegin (GL_POLYGON); v = p->verts[0]; for (i=0 ; inumverts ; i++, v+= VERTEXSIZE) { glTexCoord2f (v[3], v[4]); glVertex3fv (v); } glEnd (); } /* ================ R_BlendLightmaps ================ */ void R_BlendLightmaps (void) { int i, j; glpoly_t *p; float *v; if (r_fullbright.value) return; if (!gl_texsort.value) return; glDepthMask (0); // don't bother writing Z if (gl_lightmap_format == GL_LUMINANCE) glBlendFunc (GL_ZERO, GL_ONE_MINUS_SRC_COLOR); else if (gl_lightmap_format == GL_INTENSITY) { glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_MODULATE); glColor4f (0,0,0,1); glBlendFunc (GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA); } else { glBlendFunc (GL_ZERO, GL_ONE_MINUS_SRC_COLOR); } if (!r_lightmap.value) { glEnable (GL_BLEND); } for (i=0 ; ichain) { if (p->flags & SURF_UNDERWATER) DrawGLWaterPolyLightmap (p); else { glBegin (GL_POLYGON); v = p->verts[0]; for (j=0 ; jnumverts ; j++, v+= VERTEXSIZE) { glTexCoord2f (v[5], v[6]); glVertex3fv (v); } glEnd (); } } } glDisable (GL_BLEND); if (gl_lightmap_format == GL_LUMINANCE) glBlendFunc (GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA); else if (gl_lightmap_format == GL_INTENSITY) { glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_REPLACE); glColor4f (1,1,1,1); } else { glBlendFunc (GL_SRC_ALPHA, GL_ONE_MINUS_SRC_ALPHA); } glDepthMask (1); // back to normal Z buffering } /* ================ R_RenderBrushPoly ================ */ void R_RenderBrushPoly (msurface_t *fa) { texture_t *t; byte *base; int maps; glRect_t *theRect; int smax, tmax; c_brush_polys++; if (fa->flags & SURF_DRAWSKY) { // warp texture, no lightmaps EmitBothSkyLayers (fa); return; } t = R_TextureAnimation (fa->texinfo->texture); GL_Bind (t->gl_texturenum); if (fa->flags & SURF_DRAWTURB) { // warp texture, no lightmaps EmitWaterPolys (fa); return; } if (fa->flags & SURF_UNDERWATER) DrawGLWaterPoly (fa->polys); else DrawGLPoly (fa->polys); if (DoFullbright) return; // Ender: Fullbright this one. // add the poly to the proper lightmap chain fa->polys->chain = lightmap_polys[fa->lightmaptexturenum]; lightmap_polys[fa->lightmaptexturenum] = fa->polys; // check for lightmap modification for (maps = 0 ; maps < MAXLIGHTMAPS && fa->styles[maps] != 255 ; maps++) if (d_lightstylevalue[fa->styles[maps]] != fa->cached_light[maps]) goto dynamic; if (fa->dlightframe == r_framecount // dynamic this frame || fa->cached_dlight) // dynamic previously { dynamic: if (r_dynamic.value && !r_fullbright.value) { lightmap_modified[fa->lightmaptexturenum] = true; theRect = &lightmap_rectchange[fa->lightmaptexturenum]; if (fa->light_t < theRect->t) { if (theRect->h) theRect->h += theRect->t - fa->light_t; theRect->t = fa->light_t; } if (fa->light_s < theRect->l) { if (theRect->w) theRect->w += theRect->l - fa->light_s; theRect->l = fa->light_s; } smax = (fa->extents[0]>>4)+1; tmax = (fa->extents[1]>>4)+1; if ((theRect->w + theRect->l) < (fa->light_s + smax)) theRect->w = (fa->light_s-theRect->l)+smax; if ((theRect->h + theRect->t) < (fa->light_t + tmax)) theRect->h = (fa->light_t-theRect->t)+tmax; base = lightmaps + fa->lightmaptexturenum*lightmap_bytes*BLOCK_WIDTH*BLOCK_HEIGHT; base += fa->light_t * BLOCK_WIDTH * lightmap_bytes + fa->light_s * lightmap_bytes; R_BuildLightMap (fa, base, BLOCK_WIDTH*lightmap_bytes); } } } /* ================ R_RenderDynamicLightmaps Multitexture ================ */ void R_RenderDynamicLightmaps (msurface_t *fa) { texture_t *t; byte *base; int maps; glRect_t *theRect; int smax, tmax; c_brush_polys++; if (fa->flags & ( SURF_DRAWSKY | SURF_DRAWTURB) ) return; fa->polys->chain = lightmap_polys[fa->lightmaptexturenum]; lightmap_polys[fa->lightmaptexturenum] = fa->polys; // check for lightmap modification for (maps = 0 ; maps < MAXLIGHTMAPS && fa->styles[maps] != 255 ; maps++) if (d_lightstylevalue[fa->styles[maps]] != fa->cached_light[maps]) goto dynamic; if (fa->dlightframe == r_framecount // dynamic this frame || fa->cached_dlight) // dynamic previously { dynamic: if (r_dynamic.value && !r_fullbright.value) { lightmap_modified[fa->lightmaptexturenum] = true; theRect = &lightmap_rectchange[fa->lightmaptexturenum]; if (fa->light_t < theRect->t) { if (theRect->h) theRect->h += theRect->t - fa->light_t; theRect->t = fa->light_t; } if (fa->light_s < theRect->l) { if (theRect->w) theRect->w += theRect->l - fa->light_s; theRect->l = fa->light_s; } smax = (fa->extents[0]>>4)+1; tmax = (fa->extents[1]>>4)+1; if ((theRect->w + theRect->l) < (fa->light_s + smax)) theRect->w = (fa->light_s-theRect->l)+smax; if ((theRect->h + theRect->t) < (fa->light_t + tmax)) theRect->h = (fa->light_t-theRect->t)+tmax; base = lightmaps + fa->lightmaptexturenum*lightmap_bytes*BLOCK_WIDTH*BLOCK_HEIGHT; base += fa->light_t * BLOCK_WIDTH * lightmap_bytes + fa->light_s * lightmap_bytes; R_BuildLightMap (fa, base, BLOCK_WIDTH*lightmap_bytes); } } } /* ================ R_MirrorChain ================ */ void R_MirrorChain (msurface_t *s) { if (mirror) return; mirror = true; mirror_plane = s->plane; } /* ================ R_DrawWaterSurfaces ================ */ void R_DrawWaterSurfaces (void) { int i; msurface_t *s; texture_t *t; if (r_wateralpha.value == 1.0 && gl_texsort.value) return; // // go back to the world matrix // glLoadMatrixf (r_world_matrix); if (r_wateralpha.value < 1.0) { glEnable (GL_BLEND); glColor4f (1,1,1,r_wateralpha.value); glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_MODULATE); } if (!gl_texsort.value) { if (!waterchain) return; for ( s = waterchain ; s ; s=s->texturechain) { GL_Bind (s->texinfo->texture->gl_texturenum); EmitWaterPolys (s); } waterchain = NULL; } else { for (i=0 ; inumtextures ; i++) { t = cl.worldmodel->textures[i]; if (!t) continue; s = t->texturechain; if (!s) continue; if ( !(s->flags & SURF_DRAWTURB ) ) continue; // set modulate mode explicitly GL_Bind (t->gl_texturenum); for ( ; s ; s=s->texturechain) EmitWaterPolys (s); t->texturechain = NULL; } } if (r_wateralpha.value < 1.0) { glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_REPLACE); glColor4f (1,1,1,1); glDisable (GL_BLEND); } } /* ================ DrawTextureChains ================ */ void DrawTextureChains (void) { int i; msurface_t *s; texture_t *t; if (!gl_texsort.value) { if (r_oldsky.value || !gl_do_skyfix) { GL_DisableMultitexture(); if (skychain) { R_DrawSkyChain(skychain); skychain = NULL; } } return; } for (i=0 ; inumtextures ; i++) { t = cl.worldmodel->textures[i]; if (!t) continue; s = t->texturechain; if (!s) continue; if (t->name[0] == 's' && t->name[1] == 'k' && t->name[2] == 'y') // Fix for multiple sky textures R_DrawSkyChain (s); else if (i == mirrortexturenum && r_mirroralpha.value != 1.0) { R_MirrorChain (s); continue; } else { if ((s->flags & SURF_DRAWTURB) && r_wateralpha.value != 1.0) continue; // draw translucent water later for ( ; s ; s=s->texturechain) R_RenderBrushPoly (s); } t->texturechain = NULL; } } /* ================= R_DrawBrushModel ================= */ /* ================= R_DrawBrushModel ================= */ // Nehahra - Model_Alpha extern float model_alpha; extern cvar_t gl_notrans; // Nehahra - End void R_DrawBrushModel (entity_t *e) { int j, k; vec3_t mins, maxs; int i, numsurfaces; msurface_t *psurf; float dot; mplane_t *pplane; model_t *clmodel; qboolean rotated; float oldtexsort; vec3_t org; oldtexsort = gl_texsort.value; currententity = e; currenttexture = -1; clmodel = currententity->model; // Nehahra - Model_Alpha if (!gl_notrans.value) { model_alpha = currententity->transparency; if (model_alpha == 0) model_alpha = 1; } else model_alpha = 1; // Nehahra - End clmodel = e->model; if (e->angles[0] || e->angles[1] || e->angles[2]) { rotated = true; for (i=0 ; i<3 ; i++) { mins[i] = e->origin[i] - clmodel->radius; maxs[i] = e->origin[i] + clmodel->radius; } } else { rotated = false; VectorAdd (e->origin, clmodel->mins, mins); VectorAdd (e->origin, clmodel->maxs, maxs); } if (R_CullBox (mins, maxs)) return; if (model_alpha != 1) // Nehahra - Model_Alpha { glEnable(GL_BLEND); glTexEnvf(GL_TEXTURE_ENV, GL_TEXTURE_ENV_MODE, GL_MODULATE); // TNT Fix glColor4f (1,1,1, model_alpha); gl_texsort.value = true; } else glColor3f (1, 1, 1); // Nehahra - End memset (lightmap_polys, 0, sizeof(lightmap_polys)); VectorSubtract (r_refdef.vieworg, e->origin, modelorg); if (rotated) { vec3_t temp; vec3_t forward, right, up; VectorCopy (modelorg, temp); AngleVectors (e->angles, forward, right, up); modelorg[0] = DotProduct (temp, forward); modelorg[1] = -DotProduct (temp, right); modelorg[2] = DotProduct (temp, up); } psurf = &clmodel->surfaces[clmodel->firstmodelsurface]; // calculate dynamic lighting for bmodel if it's not an // instanced model if (clmodel->firstmodelsurface != 0 && !gl_flashblend.value) { for (k=0 ; korigin, org); R_MarkLights (&cl_dlights[k], 1<nodes + clmodel->hulls[0].firstclipnode); } } glPushMatrix (); e->angles[0] = -e->angles[0]; // stupid quake bug R_RotateForEntity (e); e->angles[0] = -e->angles[0]; // stupid quake bug // If model load in CL_ParseServerInfo failed, polys might be NULL here, kludge if (psurf->polys) { // // draw texture // for (i=0 ; inummodelsurfaces ; i++, psurf++) { // find which side of the node we are on pplane = psurf->plane; dot = DotProduct (modelorg, pplane->normal) - pplane->dist; // draw the polygon if (((psurf->flags & SURF_PLANEBACK) && (dot < -BACKFACE_EPSILON)) || (!(psurf->flags & SURF_PLANEBACK) && (dot > BACKFACE_EPSILON))) { if (e->fullbright == 1) DoFullbright = 1; if (gl_texsort.value) R_RenderBrushPoly (psurf); else R_DrawSequentialPoly (psurf); DoFullbright = 0; } } } R_BlendLightmaps (); glPopMatrix (); if (model_alpha != 1) { gl_texsort.value = oldtexsort; glDisable(GL_BLEND); } } /* ============================================================= WORLD MODEL ============================================================= */ static int RecursCount; /* ================ R_RecursiveWorldNode ================ */ void R_RecursiveWorldNode (mnode_t *node) { int i, c, side, *pindex; vec3_t acceptpt, rejectpt; mplane_t *plane; msurface_t *surf, **mark; mleaf_t *pleaf; double d, dot; vec3_t mins, maxs; if (node->contents == CONTENTS_SOLID) return; // solid if (node->visframe != r_visframecount) return; if (R_CullBox (node->minmaxs, node->minmaxs+3)) return; // if a leaf node, draw stuff if (node->contents < 0) { pleaf = (mleaf_t *)node; mark = pleaf->firstmarksurface; c = pleaf->nummarksurfaces; if (c) { do { (*mark)->visframe = r_framecount; mark++; } while (--c); } // deal with model fragments in this leaf if (pleaf->efrags) R_StoreEfrags (&pleaf->efrags); return; } // node is just a decision point, so go down the apropriate sides // find which side of the node we are on plane = node->plane; switch (plane->type) { case PLANE_X: dot = modelorg[0] - plane->dist; break; case PLANE_Y: dot = modelorg[1] - plane->dist; break; case PLANE_Z: dot = modelorg[2] - plane->dist; break; default: dot = DotProduct (modelorg, plane->normal) - plane->dist; break; } if (dot >= 0) side = 0; else side = 1; if (++RecursCount % 2000 == 0) S_ExtraUpdateTime (); // don't let sound get messed up if going slow // recurse down the children, front side first R_RecursiveWorldNode (node->children[side]); // draw stuff c = node->numsurfaces; if (c) { surf = cl.worldmodel->surfaces + node->firstsurface; if (dot < 0 -BACKFACE_EPSILON) side = SURF_PLANEBACK; else if (dot > BACKFACE_EPSILON) side = 0; { for ( ; c ; c--, surf++) { if (surf->visframe != r_framecount) continue; // don't backface underwater surfaces, because they warp if ( !(surf->flags & SURF_UNDERWATER) && ( (dot < 0) ^ !!(surf->flags & SURF_PLANEBACK)) ) continue; // wrong side // if sorting by texture, just store it out if (gl_texsort.value) { if (!mirror || surf->texinfo->texture != cl.worldmodel->textures[mirrortexturenum]) { surf->texturechain = surf->texinfo->texture->texturechain; surf->texinfo->texture->texturechain = surf; } } else if (surf->flags & SURF_DRAWSKY) { surf->texturechain = skychain; skychain = surf; } else if (surf->flags & SURF_DRAWTURB) { surf->texturechain = waterchain; waterchain = surf; } else R_DrawSequentialPoly (surf); } } } // recurse down the back side R_RecursiveWorldNode (node->children[!side]); } /* ============= R_DrawWorld ============= */ void R_DrawWorld (void) { entity_t ent; int i; static float old_sky = 0, old_fix = 1; memset (&ent, 0, sizeof(ent)); ent.model = cl.worldmodel; VectorCopy (r_refdef.vieworg, modelorg); currententity = &ent; currenttexture = -1; glColor3f (1,1,1); memset (lightmap_polys, 0, sizeof(lightmap_polys)); // Combine all conditions for performing skyfix gl_do_skyfix = gl_mtexable && gl_skyfix.value; if (!gl_do_skyfix) { if (old_fix != gl_skyfix.value) skychain = NULL; // Hack to prevent old skychains to cause crashes R_ClearSkyBox (); } else { // Non-transparent skybox only works in multitexture for now if (old_sky != r_oldsky.value) skychain = NULL; // Hack to prevent old skychains to cause crashes R_DrawSkyBox (); // Nehahra - Skybox } RecursCount = 0; R_RecursiveWorldNode (cl.worldmodel->nodes); DrawTextureChains (); R_BlendLightmaps (); if (!gl_do_skyfix) R_DrawSkyBox (); // Nehahra - Skybox old_sky = r_oldsky.value; old_fix = gl_skyfix.value; } /* =============== R_MarkLeaves =============== */ void R_MarkLeaves (void) { byte *vis; mnode_t *node; int i; byte solid[MAX_MAP_LEAFS / 2]; if (r_oldviewleaf == r_viewleaf && !r_novis.value) return; if (mirror) return; r_visframecount++; r_oldviewleaf = r_viewleaf; if (r_novis.value) { vis = solid; memset (solid, 0xff, (cl.worldmodel->numleafs+7)>>3); } else vis = Mod_LeafPVS (r_viewleaf, cl.worldmodel); for (i=0 ; inumleafs ; i++) { if (vis[i>>3] & (1<<(i&7))) { node = (mnode_t *)&cl.worldmodel->leafs[i+1]; do { if (node->visframe == r_visframecount) break; node->visframe = r_visframecount; node = node->parent; } while (node); } } } /* ============================================================================= LIGHTMAP ALLOCATION ============================================================================= */ // returns a texture number and the position inside it int AllocBlock (int w, int h, int *x, int *y) { int i, j; int best, best2; int bestx; int texnum; // Only scan over the last four textures. Only negligible effects on the // packing efficiency, but much faster for maps with a lot of lightmaps. for (texnum = lm_used < 4 ? 0 : lm_used - 4; texnum < MAX_LIGHTMAPS; texnum++) { if (texnum > lm_used) lm_used = texnum; best = BLOCK_HEIGHT; for (i=0 ; i= best) break; if (allocated[texnum][i+j] > best2) best2 = allocated[texnum][i+j]; } if (j == w) { // this is a valid spot *x = i; *y = best = best2; } } if (best + h > BLOCK_HEIGHT) continue; for (i=0 ; iedges; lnumverts = fa->numedges; vertpage = 0; // // draw texture // poly = Hunk_Alloc (sizeof(glpoly_t) + (lnumverts-4) * VERTEXSIZE*sizeof(float)); poly->next = fa->polys; poly->flags = fa->flags; fa->polys = poly; poly->numverts = lnumverts; for (i=0 ; isurfedges[fa->firstedge + i]; if (lindex > 0) { r_pedge = &pedges[lindex]; vec = r_pcurrentvertbase[r_pedge->v[0]].position; } else { r_pedge = &pedges[-lindex]; vec = r_pcurrentvertbase[r_pedge->v[1]].position; } s = DotProduct (vec, fa->texinfo->vecs[0]) + fa->texinfo->vecs[0][3]; s /= fa->texinfo->texture->width; t = DotProduct (vec, fa->texinfo->vecs[1]) + fa->texinfo->vecs[1][3]; t /= fa->texinfo->texture->height; VectorCopy (vec, poly->verts[i]); poly->verts[i][3] = s; poly->verts[i][4] = t; // // lightmap texture coordinates // s = DotProduct (vec, fa->texinfo->vecs[0]) + fa->texinfo->vecs[0][3]; s -= fa->texturemins[0]; s += fa->light_s*16; s += 8; s /= BLOCK_WIDTH*16; //fa->texinfo->texture->width; t = DotProduct (vec, fa->texinfo->vecs[1]) + fa->texinfo->vecs[1][3]; t -= fa->texturemins[1]; t += fa->light_t*16; t += 8; t /= BLOCK_HEIGHT*16; //fa->texinfo->texture->height; poly->verts[i][5] = s; poly->verts[i][6] = t; } // // remove co-linear points - Ed // if (!gl_keeptjunctions.value && !(fa->flags & SURF_UNDERWATER) ) { for (i = 0 ; i < lnumverts ; ++i) { vec3_t v1, v2; float *prev, *this, *next; float f; prev = poly->verts[(i + lnumverts - 1) % lnumverts]; this = poly->verts[i]; next = poly->verts[(i + 1) % lnumverts]; VectorSubtract( this, prev, v1 ); VectorNormalize( v1 ); VectorSubtract( next, prev, v2 ); VectorNormalize( v2 ); // skip co-linear points #define COLINEAR_EPSILON 0.001 if ((fabs( v1[0] - v2[0] ) <= COLINEAR_EPSILON) && (fabs( v1[1] - v2[1] ) <= COLINEAR_EPSILON) && (fabs( v1[2] - v2[2] ) <= COLINEAR_EPSILON)) { int j; for (j = i + 1; j < lnumverts; ++j) { int k; for (k = 0; k < VERTEXSIZE; ++k) poly->verts[j - 1][k] = poly->verts[j][k]; } --lnumverts; ++nColinElim; // retry next vertex next time, which is now current vertex --i; } } } poly->numverts = lnumverts; } /* ======================== GL_CreateSurfaceLightmap ======================== */ void GL_CreateSurfaceLightmap (msurface_t *surf, qboolean Alloc) { int smax, tmax, s, t, l, i; byte *base; if (surf->flags & (SURF_DRAWSKY|SURF_DRAWTURB)) return; if (Alloc) { smax = (surf->extents[0]>>4)+1; tmax = (surf->extents[1]>>4)+1; surf->lightmaptexturenum = AllocBlock (smax, tmax, &surf->light_s, &surf->light_t); return; // Only calculate # lightmaps } base = lightmaps + surf->lightmaptexturenum*lightmap_bytes*BLOCK_WIDTH*BLOCK_HEIGHT; base += (surf->light_t * BLOCK_WIDTH + surf->light_s) * lightmap_bytes; R_BuildLightMap (surf, base, BLOCK_WIDTH*lightmap_bytes); } /* ================== GL_UploadLightmaps ================== */ void GL_UploadLightmaps (void) { int i; if (!gl_texsort.value) GL_SelectTexture(TEXTURE1_SGIS); // // upload all lightmaps that were filled // for (i=0 ; iname[0] == '*') continue; for (i=0 ; inumsurfaces ; i++) { GL_CreateSurfaceLightmap (m->surfaces + i, true); if (m->surfaces[i].lightmaptexturenum + 1 > LightMaps) LightMaps = m->surfaces[i].lightmaptexturenum + 1; } } // Allocate lightmaps array lightmaps = (byte *)COM_AllocBuf ("GL_BuildLightmaps", lightmaps, &lightmapsize, 4 * LightMaps * BLOCK_WIDTH * BLOCK_HEIGHT, 0, NULL); // Build lightmaps but skip AllocBlock since already done for (j=1 ; jname[0] == '*') continue; r_pcurrentvertbase = m->vertexes; currentmodel = m; for (i=0 ; inumsurfaces ; i++) { GL_CreateSurfaceLightmap (m->surfaces + i, false); if ( m->surfaces[i].flags & SURF_DRAWTURB ) continue; if ( m->surfaces[i].flags & SURF_DRAWSKY ) continue; BuildSurfaceDisplayList (m->surfaces + i); } } if (!gl_texsort.value) GL_SelectTexture(TEXTURE1_SGIS); if (LightMaps > 64) { Con_Printf ("\x02GL_BuildLightmaps: "); Con_Printf ("excessive lightmaps (%d, normal max = %d)\n", LightMaps, 64); } GL_UploadLightmaps (); } /* ================ GL_LightMaps_f ================ */ void GL_LightMaps_f (void) { Con_Printf ("%d lightmaps\n", LightMaps); } /* ================== GL_RefreshLightmaps ================== */ void GL_RefreshLightMaps (void) { model_t *m; int i, j; for (j = 1; j < MAX_MODELS; j++) { m = cl.model_precache[j]; if (!m) break; if (m->name[0] == '*') continue; for (i = 0; i < m->numsurfaces; i++) GL_CreateSurfaceLightmap (m->surfaces + i, false); } GL_UploadLightmaps (); }