mirror of
https://github.com/game-stop/veejay.git
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216 lines
5.4 KiB
C
216 lines
5.4 KiB
C
/*
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* Linux VeeJay
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*
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* EffecTV - Realtime Digital Video Effector
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* Copyright (C) 2001-2006 FUKUCHI Kentaro
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*
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* BaltanTV - like StreakTV, but following for a long time
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* Copyright (C) 2001-2002 FUKUCHI Kentaro
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* Ported to veejay by Niels Elburg
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*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version 2
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* of the License , or (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software
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* Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307 , USA.
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*/
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#include "common.h"
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#include <veejaycore/vjmem.h>
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#include "baltantv.h"
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#define PLANES 50
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vj_effect *baltantv_init(int w, int h)
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{
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vj_effect *ve = (vj_effect *) vj_calloc(sizeof(vj_effect));
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ve->num_params = 2;
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ve->defaults = (int *) vj_calloc(sizeof(int) * ve->num_params); /* default values */
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ve->limits[0] = (int *) vj_calloc(sizeof(int) * ve->num_params); /* min */
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ve->limits[1] = (int *) vj_calloc(sizeof(int) * ve->num_params); /* max */
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ve->limits[0][0] = 2;
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ve->limits[1][0] = PLANES;
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ve->limits[0][1] = 0;
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ve->limits[1][1] = 1;
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ve->defaults[0] = 8;
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ve->defaults[1] = 0;
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ve->description = "BaltanTV (EffecTV)";
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ve->sub_format = -1;
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ve->extra_frame = 0;
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ve->has_user = 0;
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ve->param_description = vje_build_param_list( ve->num_params, "Stride", "Mode" );
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ve->hints = vje_init_value_hint_list( ve->num_params );
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vje_build_value_hint_list( ve->hints, ve->limits[1][1], 1, "Decaying", "Normal" );
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return ve;
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}
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typedef struct {
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unsigned int plane_ ;
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uint8_t *planetableY_;
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int8_t *planetableU_;
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int8_t *planetableV_;
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} baltantv_t;
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void *baltantv_malloc(int w, int h)
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{
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baltantv_t *b = (baltantv_t*) vj_calloc(sizeof(baltantv_t));
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if(!b) {
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return NULL;
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}
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b->planetableY_ = (uint8_t*) vj_calloc( sizeof(uint8_t*) * PLANES * RUP8(w * h));
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if(!b->planetableY_) {
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free(b);
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return NULL;
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}
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b->planetableU_ = (int8_t*) vj_malloc( sizeof(int8_t*) * PLANES * RUP8(w * h));
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if(!b->planetableU_) {
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free(b->planetableY_);
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free(b);
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return NULL;
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}
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b->planetableV_ = (int8_t*) vj_malloc( sizeof(int8_t*) * PLANES * RUP8(w * h));
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if(!b->planetableV_) {
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free(b->planetableY_);
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free(b->planetableU_);
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return NULL;
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}
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veejay_memset( b->planetableU_, 0, PLANES * RUP8(w*h));
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veejay_memset( b->planetableV_, 0, PLANES * RUP8(w*h));
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return (void*) b;
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}
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void baltantv_free(void *ptr)
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{
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baltantv_t *b = (baltantv_t*) ptr;
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free(b->planetableY_);
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free(b->planetableU_);
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free(b->planetableV_);
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free(b);
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}
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void baltantv_apply( void *ptr, VJFrame *frame, int *args) {
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int stride = args[0];
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int mode = args[1];
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unsigned int i,cf;
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const int len = frame->len;
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const int uv_len = frame->uv_len;
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uint8_t *Y = frame->data[0];
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uint8_t *U = frame->data[1];
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uint8_t *V = frame->data[2];
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baltantv_t *b = (baltantv_t*) ptr;
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uint8_t *pDstY = b->planetableY_ + (b->plane_ * len);
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int8_t *pDstU = b->planetableU_ + (b->plane_ * uv_len);
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int8_t *pDstV = b->planetableV_ + (b->plane_ * uv_len);
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uint32_t y;
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int32_t u,v;
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for( i = 0; i < len ; i ++ ) {
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pDstY[i] = (Y[i] >> 2 );
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}
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for( i = 0; i < uv_len; i ++ ) {
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pDstU[i] = ((U[i]-128)) >> 2;
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pDstV[i] = ((V[i]-128)) >> 2;
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}
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cf = b->plane_ & (stride-1);
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uint8_t *pSrcY[4] = {
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b->planetableY_ + (cf * len),
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b->planetableY_ + ((cf+stride) * len),
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b->planetableY_ + ((cf+stride*2) * len),
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b->planetableY_ + ((cf+stride*3) * len)
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};
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int8_t *pSrcU[4] = {
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b->planetableU_ + (cf * uv_len),
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b->planetableU_ + ((cf+stride) * uv_len),
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b->planetableU_ + ((cf+stride*2) * uv_len),
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b->planetableU_ + ((cf+stride*3) * uv_len)
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};
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int8_t *pSrcV[4] = {
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b->planetableV_ + (cf * uv_len),
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b->planetableV_ + ((cf+stride) * uv_len),
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b->planetableV_ + ((cf+stride*2) * uv_len),
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b->planetableV_ + ((cf+stride*3) * uv_len)
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};
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if( mode == 0 )
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{
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for( i = 0; i < len; i ++ )
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{
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y = pSrcY[0][i] +
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pSrcY[1][i] +
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pSrcY[2][i] +
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pSrcY[3][i];
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Y[i] = (y>>2);
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pDstY[i] = (y >> 2 );
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}
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for( i = 0; i < uv_len; i ++ )
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{
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u = pSrcU[0][i] +
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pSrcU[1][i] +
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pSrcU[2][i] +
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pSrcU[3][i];
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U[i] = 128 + (u>>2);
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pDstU[i] = (u >> 2 );
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}
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for( i = 0; i < uv_len; i ++ )
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{
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v = pSrcV[0][i] +
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pSrcV[1][i] +
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pSrcV[2][i] +
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pSrcV[3][i];
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V[i] =128 + (v>>2);
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pDstV[i] = (v >> 2 );
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}
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}
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else
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{
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for( i = 0; i < len ; i++ )
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{
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Y[i] = (pSrcY[0][i] +
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pSrcY[1][i] +
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pSrcY[2][i] +
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pSrcY[3][i]) >> 2;
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}
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for( i = 0; i < uv_len ; i++ )
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{
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U[i] = 128 +( (pSrcU[0][i] +
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pSrcU[1][i] +
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pSrcU[2][i] +
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pSrcU[3][i]) >> 2);
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}
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for( i = 0; i < uv_len ; i++ )
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{
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V[i] = 128 + ((pSrcV[0][i] +
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pSrcV[1][i] +
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pSrcV[2][i] +
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pSrcV[3][i]) >> 2);
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}
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}
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b->plane_ ++;
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b->plane_ = b->plane_ & (PLANES-1);
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}
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