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revision 1043, Sat May 24 22:03:50 2003 UTC revision 1242, Fri Dec 5 14:44:35 2003 UTC
# Line 25  Line 25 
25   * along with this program; if not, write to the Free Software   * along with this program; if not, write to the Free Software
26   * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA   * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
27   *   *
28   * $Id: plugin_2pass2.c,v 1.1.2.12 2003-05-24 22:03:50 edgomez Exp $   * $Id: plugin_2pass2.c,v 1.1.2.28 2003-12-05 14:44:35 edgomez Exp $
29   *   *
30   *****************************************************************************/   *****************************************************************************/
31    
32    #undef COMPENSATE_FORMULA
33    
34  #include <stdio.h>  #include <stdio.h>
35  #include <math.h>  #include <math.h>
36  #include <limits.h>  #include <limits.h>
# Line 40  Line 42 
42   * Some constants   * Some constants
43   ****************************************************************************/   ****************************************************************************/
44    
 #define RAD2DEG 57.295779513082320876798154814105  
 #define DEG2RAD 0.017453292519943295769236907684886  
   
45  #define DEFAULT_KEYFRAME_BOOST 0  #define DEFAULT_KEYFRAME_BOOST 0
46  #define DEFAULT_PAYBACK_METHOD XVID_PAYBACK_PROP  #define DEFAULT_OVERFLOW_CONTROL_STRENGTH 10
 #define DEFAULT_BITRATE_PAYBACK_DELAY 250  
47  #define DEFAULT_CURVE_COMPRESSION_HIGH 0  #define DEFAULT_CURVE_COMPRESSION_HIGH 0
48  #define DEFAULT_CURVE_COMPRESSION_LOW 0  #define DEFAULT_CURVE_COMPRESSION_LOW 0
49  #define DEFAULT_MAX_OVERFLOW_IMPROVEMENT 60  #define DEFAULT_MAX_OVERFLOW_IMPROVEMENT 60
50  #define DEFAULT_MAX_OVERFLOW_DEGRADATION 60  #define DEFAULT_MAX_OVERFLOW_DEGRADATION 60
51    
 /* Alt curve settings */  
 #define DEFAULT_USE_ALT_CURVE 0  
 #define DEFAULT_ALT_CURVE_HIGH_DIST 500  
 #define DEFAULT_ALT_CURVE_LOW_DIST 90  
 #define DEFAULT_ALT_CURVE_USE_AUTO 1  
 #define DEFAULT_ALT_CURVE_AUTO_STR 30  
 #define DEFAULT_ALT_CURVE_TYPE XVID_CURVE_LINEAR  
 #define DEFAULT_ALT_CURVE_MIN_REL_QUAL 50  
 #define DEFAULT_ALT_CURVE_USE_AUTO_BONUS_BIAS 1  
 #define DEFAULT_ALT_CURVE_BONUS_BIAS 50  
   
52  /* Keyframe settings */  /* Keyframe settings */
 #define DEFAULT_KFTRESHOLD 10  
53  #define DEFAULT_KFREDUCTION 20  #define DEFAULT_KFREDUCTION 20
54  #define DEFAULT_MIN_KEY_INTERVAL 1  #define DEFAULT_KFTHRESHOLD 1
55    
56  /*****************************************************************************  /*****************************************************************************
57   * Structures   * Structures
# Line 75  Line 61 
61  typedef struct {  typedef struct {
62      int type;               /* first pass type */      int type;               /* first pass type */
63      int quant;              /* first pass quant */      int quant;              /* first pass quant */
64            int quant2;             /* Second pass quant */
65          int blks[3];                    /* k,m,y blks */          int blks[3];                    /* k,m,y blks */
66      int length;             /* first pass length */      int length;             /* first pass length */
67      int scaled_length;      /* scaled length */      int scaled_length;      /* scaled length */
68      int desired_length;     /* desired length; calcuated during encoding */          int desired_length;     /* desired length; calculated during encoding */
69            int error;
70    
71      int zone_mode;   /* XVID_ZONE_xxx */      int zone_mode;   /* XVID_ZONE_xxx */
72      double weight;      double weight;
73  } stat_t;  } twopass_stat_t;
74    
75  /* Context struct */  /* Context struct */
76  typedef struct  typedef struct
77  {  {
78      xvid_plugin_2pass2_t param;      xvid_plugin_2pass2_t param;
79    
80      /* constant statistical data */          /*----------------------------------
81             * constant statistical data
82             *--------------------------------*/
83    
84            /* Number of frames of the sequence */
85          int num_frames;          int num_frames;
86    
87            /* Number of Intra frames of the sequence */
88      int num_keyframes;      int num_keyframes;
     uint64_t target;    /* target filesize */  
89    
90      int count[3];   /* count of each frame types */          /* Target filesize to reach */
91      uint64_t tot_length[3];  /* total length of each frame types */          uint64_t target;
     double avg_length[3];   /* avg */  
     int min_length[3];  /* min frame length of each frame types */  
     uint64_t tot_scaled_length[3];  /* total scaled length of each frame type */  
     int max_length;     /* max frame size */  
   
     /* zone statistical data */  
     double avg_weight;  /* average weight */  
     int64_t tot_quant;   /* total length used by XVID_ZONE_QUANT zones */  
   
   
     double curve_comp_scale;  
     double movie_curve;  
   
         double alt_curve_low;  
         double alt_curve_high;  
         double alt_curve_low_diff;  
         double alt_curve_high_diff;  
     double alt_curve_curve_bias_bonus;  
         double alt_curve_mid_qual;  
         double alt_curve_qual_dev;  
92    
93      /* dynamic */          /* Count of each frame types */
94            int count[3];
95    
96            /* Total length of each frame types (1st pass) */
97            uint64_t tot_length[3];
98    
99            /* Average length of each frame types (used first for 1st pass data and
100             * then for scaled averages */
101            double avg_length[3];
102    
103            /* Minimum frame length allowed for each frame type */
104            int min_length[3];
105    
106            /* Total bytes per frame type once the curve has been scaled
107             * NB: advanced parameters do not change this value. This field
108             *     represents the total scaled w/o any advanced settings */
109            uint64_t tot_scaled_length[3];
110    
111            /* Maximum observed frame size observed during the first pass, the RC
112             * will try tp force all frame sizes in the second pass to be under that
113             * limit */
114            int max_length;
115    
116            /*----------------------------------
117             * Zones statistical data
118             *
119             * ToDo: Fix zones, current
120             *       implementation is buggy
121             *--------------------------------*/
122    
123            /* Average weight of the zones */
124            double avg_weight;
125    
126            /* Total length used by XVID_ZONE_QUANT zones */
127            int64_t tot_quant;
128    
129            /*----------------------------------
130             * Advanced settings helper ratios
131             *--------------------------------*/
132    
133            /* This the ratio that has to be applied to all p/b frames in order
134             * to reserve/retrieve bits for/from keyframe boosting and consecutive
135             * keyframe penalty */
136            double pb_iboost_tax_ratio;
137    
138            /* This the ratio to apply to all b/p frames in order to respect the
139             * assymetric curve compression while respecting a target filesize
140             * NB: The assymetric delta gain has to be computed before this ratio
141             *     is applied, and then the delta is added to the scaled size */
142            double assymetric_tax_ratio;
143    
144            /*----------------------------------
145             * Data from the stats file kept
146             * into RAM for easy access
147             *--------------------------------*/
148    
149            /* Array of keyframe locations
150             * eg: rc->keyframe_locations[100] returns the frame number of the 100th
151             *     keyframe */
152      int * keyframe_locations;      int * keyframe_locations;
     stat_t * stats;  
153    
154      double pquant_error[32];          /* Index of the last keyframe used in the keyframe_location */
155      double bquant_error[32];          int KF_idx;
156      int quant_count[32];  
157            /* Array of all 1st pass data file -- see the twopass_stat_t structure
158             * definition for more details */
159            twopass_stat_t * stats;
160    
161            /*----------------------------------
162             * Histerysis helpers
163             *--------------------------------*/
164    
165            /* This field holds the int2float conversion errors of each quant per
166             * frame type, this allow the RC to keep track of rouding error and thus
167             * increase or decrease the chosen quant according to this residue */
168            double quant_error[3][32];
169    
170            /* This fields stores the count of each quant usage per frame type
171             * No real role but for debugging */
172            int quant_count[3][32];
173    
174            /* Last valid quantizer used per frame type, it allows quantizer
175             * increament/decreament limitation in order to avoid big image quality
176             * "jumps" */
177      int last_quant[3];      int last_quant[3];
178    
179      double curve_comp_error;          /*----------------------------------
180      int overflow;           * Overflow control
181      int KFoverflow;           *--------------------------------*/
182      int KFoverflow_partial;  
183      int KF_idx;          /* Current overflow that has to be distributed to p/b frames */
184            double overflow;
185    
186            /* Total overflow for keyframes -- not distributed directly */
187            double KFoverflow;
188    
189            /* Amount of keyframe overflow to introduce to the global p/b frame
190             * overflow counter at each encoded frame */
191            double KFoverflow_partial;
192    
193            /* Unknown ???
194             * ToDo: description */
195      double fq_error;      double fq_error;
196    
197            /*----------------------------------
198             * Debug
199             *--------------------------------*/
200            double desired_total;
201            double real_total;
202  } rc_2pass2_t;  } rc_2pass2_t;
203    
204    
# Line 155  Line 220 
220  {  {
221      switch(opt) {      switch(opt) {
222      case XVID_PLG_INFO :      case XVID_PLG_INFO :
223            case XVID_PLG_FRAME :
224          return 0;          return 0;
225    
226      case XVID_PLG_CREATE :      case XVID_PLG_CREATE :
# Line 178  Line 244 
244   ****************************************************************************/   ****************************************************************************/
245    
246  /* First a few local helping function prototypes */  /* First a few local helping function prototypes */
247  static  int det_stats_length(rc_2pass2_t * rc, char * filename);  static  int statsfile_count_frames(rc_2pass2_t * rc, char * filename);
248  static  int load_stats(rc_2pass2_t *rc, char * filename);  static  int statsfile_load(rc_2pass2_t *rc, char * filename);
249  static void zone_process(rc_2pass2_t *rc, const xvid_plg_create_t * create);  static void zone_process(rc_2pass2_t *rc, const xvid_plg_create_t * create);
250  static void internal_scale(rc_2pass2_t *rc);  static void first_pass_stats_prepare_data(rc_2pass2_t * rc);
251  static void pre_process0(rc_2pass2_t * rc);  static void first_pass_scale_curve_internal(rc_2pass2_t *rc);
252  static void pre_process1(rc_2pass2_t * rc);  static void scaled_curve_apply_advanced_parameters(rc_2pass2_t * rc);
253    #if 0
254    static void stats_print(rc_2pass2_t * rc);
255    #endif
256    
257  /*----------------------------------------------------------------------------  /*----------------------------------------------------------------------------
258   *--------------------------------------------------------------------------*/   *--------------------------------------------------------------------------*/
# Line 201  Line 270 
270    
271      rc->param = *param;      rc->param = *param;
272    
273            /* Initialize all defaults */
274  #define _INIT(a, b) if((a) <= 0) (a) = (b)  #define _INIT(a, b) if((a) <= 0) (a) = (b)
275      /* Let's set our defaults if needed */      /* Let's set our defaults if needed */
276          _INIT(rc->param.keyframe_boost, DEFAULT_KEYFRAME_BOOST);          _INIT(rc->param.keyframe_boost, DEFAULT_KEYFRAME_BOOST);
277          _INIT(rc->param.payback_method, DEFAULT_PAYBACK_METHOD);          _INIT(rc->param.overflow_control_strength, DEFAULT_OVERFLOW_CONTROL_STRENGTH);
         _INIT(rc->param.bitrate_payback_delay, DEFAULT_BITRATE_PAYBACK_DELAY);  
278      _INIT(rc->param.curve_compression_high, DEFAULT_CURVE_COMPRESSION_HIGH);      _INIT(rc->param.curve_compression_high, DEFAULT_CURVE_COMPRESSION_HIGH);
279      _INIT(rc->param.curve_compression_low, DEFAULT_CURVE_COMPRESSION_LOW);      _INIT(rc->param.curve_compression_low, DEFAULT_CURVE_COMPRESSION_LOW);
280      _INIT(rc->param.max_overflow_improvement, DEFAULT_MAX_OVERFLOW_IMPROVEMENT);      _INIT(rc->param.max_overflow_improvement, DEFAULT_MAX_OVERFLOW_IMPROVEMENT);
281      _INIT(rc->param.max_overflow_degradation,  DEFAULT_MAX_OVERFLOW_DEGRADATION);      _INIT(rc->param.max_overflow_degradation,  DEFAULT_MAX_OVERFLOW_DEGRADATION);
282    
     /* Alt curve settings */  
         _INIT(rc->param.use_alt_curve, DEFAULT_USE_ALT_CURVE);  
     _INIT(rc->param.alt_curve_high_dist, DEFAULT_ALT_CURVE_HIGH_DIST);  
     _INIT(rc->param.alt_curve_low_dist, DEFAULT_ALT_CURVE_LOW_DIST);  
     _INIT(rc->param.alt_curve_use_auto, DEFAULT_ALT_CURVE_USE_AUTO);  
     _INIT(rc->param.alt_curve_auto_str, DEFAULT_ALT_CURVE_AUTO_STR);  
     _INIT(rc->param.alt_curve_type, DEFAULT_ALT_CURVE_TYPE);  
     _INIT(rc->param.alt_curve_min_rel_qual, DEFAULT_ALT_CURVE_MIN_REL_QUAL);  
     _INIT(rc->param.alt_curve_use_auto_bonus_bias, DEFAULT_ALT_CURVE_USE_AUTO_BONUS_BIAS);  
     _INIT(rc->param.alt_curve_bonus_bias, DEFAULT_ALT_CURVE_BONUS_BIAS);  
   
283      /* Keyframe settings */      /* Keyframe settings */
         _INIT(rc->param.kftreshold, DEFAULT_KFTRESHOLD);  
284      _INIT(rc->param.kfreduction, DEFAULT_KFREDUCTION);      _INIT(rc->param.kfreduction, DEFAULT_KFREDUCTION);
285      _INIT(rc->param.min_key_interval, DEFAULT_MIN_KEY_INTERVAL);          _INIT(rc->param.kfthreshold, DEFAULT_KFTHRESHOLD);
286  #undef _INIT  #undef _INIT
287    
288          /* Count frames in the stats file */          /* Initialize some stuff to zero */
289      if (!det_stats_length(rc, param->filename)){          for(i=0; i<3; i++) {
290          DPRINTF(XVID_DEBUG_RC,"fopen %s failed\n", param->filename);                  int j;
291                    for (j=0; j<32; j++) {
292                            rc->quant_error[i][j] = 0;
293                            rc->quant_count[i][j] = 0;
294                    }
295            }
296    
297            for (i=0; i<3; i++) rc->last_quant[i] = 0;
298    
299            rc->fq_error = 0;
300    
301            /* Count frames (and intra frames) in the stats file, store the result into
302             * the rc structure */
303            if (statsfile_count_frames(rc, param->filename) == -1) {
304                    DPRINTF(XVID_DEBUG_RC,"[xvid rc] -- ERROR: fopen %s failed\n", param->filename);
305          free(rc);          free(rc);
306          return XVID_ERR_FAIL;                  return(XVID_ERR_FAIL);
307      }      }
308    
309      /* Allocate the stats' memory */      /* Allocate the stats' memory */
310          if ((rc->stats = malloc(rc->num_frames * sizeof(stat_t))) == NULL) {          if ((rc->stats = malloc(rc->num_frames * sizeof(twopass_stat_t))) == NULL) {
311          free(rc);          free(rc);
312          return XVID_ERR_MEMORY;                  return(XVID_ERR_MEMORY);
313      }      }
314    
315      /*          /* Allocate keyframes location's memory
316           * Allocate keyframes location's memory           * PS: see comment in pre_process0 for the +1 location requirement */
317           * PS: see comment in pre_process0 for the +1 location requirement          rc->keyframe_locations = malloc((rc->num_keyframes + 1) * sizeof(int));
318           */          if (rc->keyframe_locations == NULL) {
     if ((rc->keyframe_locations = malloc((rc->num_keyframes + 1) * sizeof(int))) == NULL) {  
319          free(rc->stats);          free(rc->stats);
320          free(rc);          free(rc);
321          return XVID_ERR_MEMORY;                  return(XVID_ERR_MEMORY);
322      }      }
323    
324      if (!load_stats(rc, param->filename)) {          /* Load the first pass stats */
325          DPRINTF(XVID_DEBUG_RC,"fopen %s failed\n", param->filename);          if (statsfile_load(rc, param->filename) == -1) {
326                    DPRINTF(XVID_DEBUG_RC,"[xvid rc] -- ERROR: fopen %s failed\n", param->filename);
327          free(rc->keyframe_locations);          free(rc->keyframe_locations);
328          free(rc->stats);          free(rc->stats);
329          free(rc);          free(rc);
330          return XVID_ERR_FAIL;          return XVID_ERR_FAIL;
331      }      }
332    
333      /* pre-process our stats */          /* Compute the target filesize */
334            if (rc->param.bitrate<0) {
335          if (rc->num_frames  < create->fbase/create->fincr) {                  /* if negative, bitrate equals the target (in kbytes) */
336                  rc->target = rc->param.bitrate / 8;     /* one second */                  rc->target = (-rc->param.bitrate) * 1024;
337            } else if (rc->num_frames  < create->fbase/create->fincr) {
338                    /* Source sequence is less than 1s long, we do as if it was 1s long */
339                    rc->target = rc->param.bitrate / 8;
340          } else {          } else {
341                    /* Target filesize = bitrate/8 * numframes / framerate */
342                  rc->target =                  rc->target =
343                          ((uint64_t)rc->param.bitrate * (uint64_t)rc->num_frames * (uint64_t)create->fincr) / \                          ((uint64_t)rc->param.bitrate * (uint64_t)rc->num_frames * \
344                             (uint64_t)create->fincr) / \
345                          ((uint64_t)create->fbase * 8);                          ((uint64_t)create->fbase * 8);
346          }          }
347    
348      DPRINTF(XVID_DEBUG_RC, "Number of frames: %d\n", rc->num_frames);          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Frame rate: %d/%d (%ffps)\n",
349          DPRINTF(XVID_DEBUG_RC, "Frame rate: %d/%d\n", create->fbase, create->fincr);                          create->fbase, create->fincr,
350          DPRINTF(XVID_DEBUG_RC, "Target bitrate: %ld\n", rc->param.bitrate);                          (double)create->fbase/(double)create->fincr);
351          DPRINTF(XVID_DEBUG_RC, "Target filesize: %lld\n", rc->target);          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Number of frames: %d\n", rc->num_frames);
352            if(rc->param.bitrate>=0)
353                    DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Target bitrate: %ld\n", rc->param.bitrate);
354            DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Target filesize: %lld\n", rc->target);
355    
356          /* Compensate the mean frame overhead caused by the container */          /* Compensate the average frame overhead caused by the container */
357          rc->target -= rc->num_frames*rc->param.container_frame_overhead;          rc->target -= rc->num_frames*rc->param.container_frame_overhead;
358          DPRINTF(XVID_DEBUG_RC, "Container Frame overhead: %d\n", rc->param.container_frame_overhead);          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Container Frame overhead: %d\n", rc->param.container_frame_overhead);
359          DPRINTF(XVID_DEBUG_RC, "Target filesize (after container compensation): %lld\n", rc->target);          if(rc->param.container_frame_overhead)
360                    DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- New target filesize after container compensation: %lld\n", rc->target);
361          pre_process0(rc);  
362            /* Gathers some information about first pass stats:
363             *  - finds the minimum frame length for each frame type during 1st pass.
364             *     rc->min_size[]
365             *  - determines the maximum frame length observed (no frame type distinction).
366             *     rc->max_size
367             *  - count how many times each frame type has been used.
368             *     rc->count[]
369             *  - total bytes used per frame type
370             *     rc->total[]
371             *  - store keyframe location
372             *     rc->keyframe_locations[]
373             */
374            first_pass_stats_prepare_data(rc);
375    
376            /* When bitrate is not given it means it has been scaled by an external
377             * application */
378          if (rc->param.bitrate) {          if (rc->param.bitrate) {
379                    /* Apply zone settings */
380          zone_process(rc, create);          zone_process(rc, create);
381                  internal_scale(rc);                  /* Perform internal curve scaling */
382                    first_pass_scale_curve_internal(rc);
383      }else{      }else{
384          /* external scaler: ignore zone */                  /* External scaling -- zones are ignored */
385          for (i=0;i<rc->num_frames;i++) {          for (i=0;i<rc->num_frames;i++) {
386              rc->stats[i].zone_mode = XVID_ZONE_WEIGHT;              rc->stats[i].zone_mode = XVID_ZONE_WEIGHT;
387              rc->stats[i].weight = 1.0;              rc->stats[i].weight = 1.0;
# Line 293  Line 389 
389          rc->avg_weight = 1.0;          rc->avg_weight = 1.0;
390          rc->tot_quant = 0;          rc->tot_quant = 0;
391      }      }
         pre_process1(rc);  
392    
393      for (i=0; i<32;i++) {          /* Apply advanced curve options, and compute some parameters in order to
394          rc->pquant_error[i] = 0;           * shape the curve in the BEFORE/AFTER pair of functions */
395          rc->bquant_error[i] = 0;          scaled_curve_apply_advanced_parameters(rc);
         rc->quant_count[i] = 0;  
     }  
   
     rc->fq_error = 0;  
396    
397      *handle = rc;      *handle = rc;
398          return(0);          return(0);
# Line 313  Line 404 
404  static int  static int
405  rc_2pass2_destroy(rc_2pass2_t * rc, xvid_plg_destroy_t * destroy)  rc_2pass2_destroy(rc_2pass2_t * rc, xvid_plg_destroy_t * destroy)
406  {  {
407            DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- target_total:%lld desired_total:%.2f (%.2f%%) actual_total:%.2f (%.2f%%)\n",
408                            rc->target,
409                            rc->desired_total,
410                            100*rc->desired_total/(double)rc->target,
411                            rc->real_total,
412                            100*rc->real_total/(double)rc->target);
413    
414      free(rc->keyframe_locations);      free(rc->keyframe_locations);
415      free(rc->stats);      free(rc->stats);
416          free(rc);          free(rc);
# Line 325  Line 423 
423  static int  static int
424  rc_2pass2_before(rc_2pass2_t * rc, xvid_plg_data_t * data)  rc_2pass2_before(rc_2pass2_t * rc, xvid_plg_data_t * data)
425  {  {
426      stat_t * s = &rc->stats[data->frame_num];          twopass_stat_t * s = &rc->stats[data->frame_num];
     int overflow;  
     int desired;  
427      double dbytes;      double dbytes;
428      double curve_temp;          double scaled_quant;
429            double overflow;
430      int capped_to_max_framesize = 0;      int capped_to_max_framesize = 0;
431    
432          /*          /* This function is quite long but easy to understand. In order to simplify
433           * This function is quite long but easy to understand. In order to simplify           * the code path (a bit), we treat 3 cases that can return immediatly. */
          * the code path (a bit), we treat 3 cases that can return immediatly.  
          */  
434    
435          /* First case: Another plugin has already set a quantizer */          /* First case: Another plugin has already set a quantizer */
436      if (data->quant > 0)      if (data->quant > 0)
# Line 343  Line 438 
438    
439          /* Second case: We are in a Quant zone */          /* Second case: We are in a Quant zone */
440          if (s->zone_mode == XVID_ZONE_QUANT) {          if (s->zone_mode == XVID_ZONE_QUANT) {
   
441                  rc->fq_error += s->weight;                  rc->fq_error += s->weight;
442                  data->quant = (int)rc->fq_error;                  data->quant = (int)rc->fq_error;
443                  rc->fq_error -= data->quant;                  rc->fq_error -= data->quant;
# Line 351  Line 445 
445                  s->desired_length = s->length;                  s->desired_length = s->length;
446    
447                  return(0);                  return(0);
   
448          }          }
449    
450          /* Third case: insufficent stats data */          /* Third case: insufficent stats data */
451          if (data->frame_num >= rc->num_frames)          if (data->frame_num >= rc->num_frames)
452                  return 0;                  return(0);
   
         /*  
          * The last case is the one every normal minded developer should fear to  
          * maintain in a project :-)  
          */  
453    
454          /* XXX: why by 8 */          /*************************************************************************/
455          overflow = rc->overflow / 8;          /*************************************************************************/
456            /*************************************************************************/
457    
458          /*          /*-------------------------------------------------------------------------
459           * The rc->overflow field represents the overflow in current scene (between two           * Frame bit allocation first part
460           * IFrames) so we must not forget to reset it if we are entering a new scene           *
461           */           * First steps apply user settings, just like it is done in the theoritical
462          if (s->type == XVID_TYPE_IVOP) {           * scaled_curve_apply_advanced_parameters
463                  overflow = 0;           *-----------------------------------------------------------------------*/
         }  
464    
465          desired = s->scaled_length;          /* Set desired to what we are wanting to obtain for this frame */
466            dbytes = (double)s->scaled_length;
467    
468          dbytes = desired;          /* IFrame user settings*/
469          if (s->type == XVID_TYPE_IVOP) {          if (s->type == XVID_TYPE_IVOP) {
470                  dbytes += desired * rc->param.keyframe_boost / 100;                  /* Keyframe boosting -- All keyframes benefit from it */
471          }                  dbytes += dbytes*rc->param.keyframe_boost / 100;
         dbytes /= rc->movie_curve;  
   
         /*  
          * We are now entering in the hard part of the algo, it was first designed  
          * to work with i/pframes only streams, so the way it computes things is  
          * adapted to pframes only. However we can use it if we just take care to  
          * scale the bframes sizes to pframes sizes using the ratio avg_p/avg_p and  
          * then before really using values depending on frame sizes, scaling the  
          * value again with the inverse ratio  
          */  
         if (s->type == XVID_TYPE_BVOP)  
                 dbytes *= rc->avg_length[XVID_TYPE_PVOP-1] / rc->avg_length[XVID_TYPE_BVOP-1];  
472    
473          /*  #if 0 /* ToDo: decide how to apply kfthresholding */
474           * Apply user's choosen Payback method. Payback helps bitrate to follow the  #endif
          * scaled curve "paying back" past errors in curve previsions.  
          */  
         if (rc->param.payback_method == XVID_PAYBACK_BIAS) {  
                 desired =(int)(rc->curve_comp_error / rc->param.bitrate_payback_delay);  
475          } else {          } else {
                 desired = (int)(rc->curve_comp_error * dbytes /  
                                                 rc->avg_length[XVID_TYPE_PVOP-1] / rc->param.bitrate_payback_delay);  
476    
477                  if (labs(desired) > fabs(rc->curve_comp_error)) {                  /* P/S/B frames must reserve some bits for iframe boosting */
478                          desired = (int)rc->curve_comp_error;                  dbytes *= rc->pb_iboost_tax_ratio;
479    
480                    /* Apply assymetric curve compression */
481                    if (rc->param.curve_compression_high || rc->param.curve_compression_low) {
482                            double assymetric_delta;
483    
484                            /* Compute the assymetric delta, this is computed before applying
485                             * the tax, as done in the pre_process function */
486                            if (dbytes > rc->avg_length[s->type-1])
487                                    assymetric_delta = (rc->avg_length[s->type-1] - dbytes) * rc->param.curve_compression_high / 100.0;
488                            else
489                                    assymetric_delta = (rc->avg_length[s->type-1] - dbytes) * rc->param.curve_compression_low  / 100.0;
490    
491                            /* Now we must apply the assymetric tax, else our curve compression
492                             * would not give a theoritical target size equal to what it is
493                             * expected */
494                            dbytes *= rc->assymetric_tax_ratio;
495    
496                            /* Now we can add the assymetric delta */
497                            dbytes += assymetric_delta;
498                  }                  }
499          }          }
500    
501          rc->curve_comp_error -= desired;          /* That is what we would like to have -- Don't put that chunk after
502             * overflow control, otherwise, overflow is counted twice and you obtain
503          /*           * half sized bitrate sequences */
504           * Alt curve treatment is not that hard to understand though the formulas          s->desired_length  = (int)dbytes;
505           * seem to be huge. Alt treatment is basically a way to soft/harden the          rc->desired_total += dbytes;
          * curve flux applying sine/linear/cosine ratios  
          */  
506    
507          /* XXX: warning */          /*------------------------------------------------------------------------
508          curve_temp = 0;           * Frame bit allocation: overflow control part.
509             *
510             * Unlike the theoritical scaled_curve_apply_advanced_parameters, here
511             * it's real encoding and we need to make sure we don't go so far from
512             * what is our ideal scaled curve.
513             *-----------------------------------------------------------------------*/
514    
515          if (rc->param.use_alt_curve) {          /* Compute the overflow we should compensate */
516                  if (s->type != XVID_TYPE_IVOP)  {                  if (s->type != XVID_TYPE_IVOP)  {
517                          if (dbytes > rc->avg_length[XVID_TYPE_PVOP-1]) {                  double frametype_factor;
518                                  if (dbytes >= rc->alt_curve_high) {                  double framesize_factor;
                                         curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev);  
                                 } else {  
                                         switch(rc->param.alt_curve_type) {  
                                         case XVID_CURVE_SINE :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * sin(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_high_diff)));  
                                                 break;  
                                         case XVID_CURVE_LINEAR :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) / rc->alt_curve_high_diff);  
                                                 break;  
                                         case XVID_CURVE_COSINE :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (1.0 - cos(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_high_diff))));  
                                         }  
                                 }  
                         } else {  
                                 if (dbytes <= rc->alt_curve_low){  
                                         curve_temp = dbytes;  
                                 } else {  
                                         switch(rc->param.alt_curve_type) {  
                                         case XVID_CURVE_SINE :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * sin(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_low_diff)));  
                                                 break;  
                                         case XVID_CURVE_LINEAR :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) / rc->alt_curve_low_diff);  
                                                 break;  
                                         case XVID_CURVE_COSINE :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual + rc->alt_curve_qual_dev * (1.0 - cos(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_low_diff))));  
                                         }  
                                 }  
                         }  
   
                         /*  
                          * End of code path for curve_temp, as told earlier, we are now  
                          * obliged to scale the value to a bframe one using the inverse  
                          * ratio applied earlier  
                          */  
                         if (s->type == XVID_TYPE_BVOP)  
                                 curve_temp *= rc->avg_length[XVID_TYPE_BVOP-1] / rc->avg_length[XVID_TYPE_PVOP-1];  
   
                         curve_temp = curve_temp * rc->curve_comp_scale + rc->alt_curve_curve_bias_bonus;  
519    
520                          desired += ((int)curve_temp);                  /* Take only the desired part of overflow */
521                          rc->curve_comp_error += curve_temp - (int)curve_temp;                  overflow = rc->overflow;
                 } else {  
                         /*  
                          * End of code path for dbytes, as told earlier, we are now  
                          * obliged to scale the value to a bframe one using the inverse  
                          * ratio applied earlier  
                          */  
                         if (s->type == XVID_TYPE_BVOP)  
                                 dbytes *= rc->avg_length[XVID_TYPE_BVOP-1] / rc->avg_length[XVID_TYPE_PVOP-1];  
522    
523                          desired += ((int)dbytes);                  /* Factor that will take care to decrease the overflow applied
524                          rc->curve_comp_error += dbytes - (int)dbytes;                   * according to the importance of this frame type in term of
525                  }                   * overall size */
526                    frametype_factor  = rc->count[XVID_TYPE_IVOP-1]*rc->avg_length[XVID_TYPE_IVOP-1];
527                    frametype_factor += rc->count[XVID_TYPE_PVOP-1]*rc->avg_length[XVID_TYPE_PVOP-1];
528                    frametype_factor += rc->count[XVID_TYPE_BVOP-1]*rc->avg_length[XVID_TYPE_BVOP-1];
529                    frametype_factor /= rc->count[s->type-1]*rc->avg_length[s->type-1];
530                    frametype_factor  = 1/frametype_factor;
531    
532                    /* Factor that will take care not to compensate too much for this frame
533                     * size */
534                    framesize_factor  = dbytes;
535                    framesize_factor /= rc->avg_length[s->type-1];
536    
537          } else if ((rc->param.curve_compression_high + rc->param.curve_compression_low) &&      s->type != XVID_TYPE_IVOP) {                  /* Treat only the overflow part concerned by this frame type and size */
538                    overflow *= frametype_factor;
539    #if 0
540                    /* Leave this one alone, as it impacts badly on quality */
541                    overflow *= framesize_factor;
542    #endif
543    
544                  curve_temp = rc->curve_comp_scale;                  /* Apply the overflow strength imposed by the user */
545                  if (dbytes > rc->avg_length[XVID_TYPE_PVOP-1]) {                  overflow *= (rc->param.overflow_control_strength/100.0f);
                         curve_temp *= ((double)dbytes + (rc->avg_length[XVID_TYPE_PVOP-1] - dbytes) * rc->param.curve_compression_high / 100.0);  
546                  } else {                  } else {
547                          curve_temp *= ((double)dbytes + (rc->avg_length[XVID_TYPE_PVOP-1] - dbytes) * rc->param.curve_compression_low / 100.0);                  /* no overflow applied in IFrames because:
548                     *  - their role is important as they're references for P/BFrames.
549                     *  - there aren't much in typical sequences, so if an IFrame overflows too
550                     *    much, this overflow may impact the next IFrame too much and generate
551                     *    a sequence of poor quality frames */
552                    overflow = 0;
553                  }                  }
554    
555                  /*          /* Make sure we are not trying to compensate more overflow than we even have */
556                   * End of code path for curve_temp, as told earlier, we are now          if (fabs(overflow) > fabs(rc->overflow))
557                   * obliged to scale the value to a bframe one using the inverse                  overflow = rc->overflow;
                  * ratio applied earlier  
                  */  
                 if (s->type == XVID_TYPE_BVOP)  
                         curve_temp *= rc->avg_length[XVID_TYPE_BVOP-1] / rc->avg_length[XVID_TYPE_PVOP-1];  
558    
559                  desired += (int)curve_temp;          /* Make sure the overflow doesn't make the frame size to get out of the range
560                  rc->curve_comp_error += curve_temp - (int)curve_temp;           * [-max_degradation..+max_improvment] */
561            if (overflow > dbytes*rc->param.max_overflow_improvement / 100) {
562                    if(overflow <= dbytes)
563                            dbytes += dbytes * rc->param.max_overflow_improvement / 100;
564                    else
565                            dbytes += overflow * rc->param.max_overflow_improvement / 100;
566            } else if (overflow < - dbytes * rc->param.max_overflow_degradation / 100) {
567                    dbytes -= dbytes * rc->param.max_overflow_degradation / 100;
568          } else {          } else {
569                  /*                  dbytes += overflow;
                  * End of code path for dbytes, as told earlier, we are now  
                  * obliged to scale the value to a bframe one using the inverse  
                  * ratio applied earlier  
                  */  
                 if (s->type == XVID_TYPE_BVOP)  
                         dbytes *= rc->avg_length[XVID_TYPE_BVOP-1] / rc->avg_length[XVID_TYPE_PVOP-1];  
   
                 desired += (int)dbytes;  
                 rc->curve_comp_error += dbytes - (int)dbytes;  
570          }          }
571    
572            /*-------------------------------------------------------------------------
573          /*           * Frame bit allocation last part:
574           * We can't do bigger frames than first pass, this would be stupid as first           *
575           * pass is quant=2 and that reaching quant=1 is not worth it. We would lose           * Cap frame length so we don't reach neither bigger frame sizes than first
576           * many bytes and we would not not gain much quality.           * pass nor smaller than the allowed minimum.
577           */           *-----------------------------------------------------------------------*/
578          if (desired > s->length) {  
579                  rc->curve_comp_error += desired - s->length;          if (dbytes > s->length) {
580                  desired = s->length;                  dbytes = s->length;
581          } else {          } else if (dbytes < rc->min_length[s->type-1]) {
582                  if (desired < rc->min_length[s->type-1]) {                  dbytes = rc->min_length[s->type-1];
583                          if (s->type == XVID_TYPE_IVOP){          } else if (dbytes > rc->max_length) {
584                                  rc->curve_comp_error -= rc->min_length[XVID_TYPE_IVOP-1] - desired;                  /* ToDo: this condition is always wrong as max_length == maximum frame
585                          }                   * length of first pass, so the first condition already caps the frame
586                          desired = rc->min_length[s->type-1];                   * size... */
587                  }                  capped_to_max_framesize = 1;
588                    dbytes = rc->max_length;
589                    DPRINTF(XVID_DEBUG_RC,"[xvid rc] -- frame:%d Capped to maximum frame size\n",
590                                    data->frame_num);
591          }          }
592    
593          s->desired_length = desired;          /*------------------------------------------------------------------------
594             * Desired frame length <-> quantizer mapping
595             *-----------------------------------------------------------------------*/
596    
597            /* For bframes we must retrieve the original quant used (sent to xvidcore)
598             * as core applies the bquant formula before writing the stat log entry */
599            if(s->type == XVID_TYPE_BVOP) {
600    
601          /* if this keyframe is too close to the next, reduce it's byte allotment                  twopass_stat_t *b_ref = s;
            XXX: why do we do this after setting the desired length  */  
   
         if (s->type == XVID_TYPE_IVOP) {  
                 int KFdistance = rc->keyframe_locations[rc->KF_idx] - rc->keyframe_locations[rc->KF_idx - 1];  
   
                 if (KFdistance < rc->param.kftreshold) {  
   
                         KFdistance -= rc->param.min_key_interval;  
   
                         if (KFdistance >= 0) {  
                                 int KF_min_size;  
   
                                 KF_min_size = desired * (100 - rc->param.kfreduction) / 100;  
                                 if (KF_min_size < 1)  
                                         KF_min_size = 1;  
602    
603                                  desired = KF_min_size + (desired - KF_min_size) * KFdistance /                  /* Find the reference frame */
604                                          (rc->param.kftreshold - rc->param.min_key_interval);                  while(b_ref != &rc->stats[0] && b_ref->type == XVID_TYPE_BVOP)
605                            b_ref--;
606    
607                                  if (desired < 1)                  /* Compute the original quant */
608                                          desired = 1;                  s->quant  = 2*(100*s->quant - data->bquant_offset);
609                          }                  s->quant += data->bquant_ratio - 1; /* to avoid rouding issues */
610                  }                  s->quant  = s->quant/data->bquant_ratio - b_ref->quant;
611          }          }
612    
613          overflow = (int)((double)overflow * desired / rc->avg_length[XVID_TYPE_PVOP-1]);          /* Don't laugh at this very 'simple' quant<->filesize relationship, it
614             * proves to be acurate enough for our algorithm */
615            scaled_quant = (double)s->quant*(double)s->length/(double)dbytes;
616    
617          /* Reign in overflow with huge frames */  #ifdef COMPENSATE_FORMULA
618          if (labs(overflow) > labs(rc->overflow)) {          /* We know xvidcore will apply the bframe formula again, so we compensate
619                  overflow = rc->overflow;           * it right now to make sure we would not apply it twice */
620          }          if(s->type == XVID_TYPE_BVOP) {
621    
622          /* Make sure overflow doesn't run away */                  twopass_stat_t *b_ref = s;
         if (overflow > desired * rc->param.max_overflow_improvement / 100) {  
                 desired += (overflow <= desired) ? desired * rc->param.max_overflow_improvement / 100 :  
                         overflow * rc->param.max_overflow_improvement / 100;  
         } else if (overflow < desired * rc->param.max_overflow_degradation / -100){  
                 desired += desired * rc->param.max_overflow_degradation / -100;  
         } else {  
                 desired += overflow;  
         }  
623    
624          /* Make sure we are not higher than desired frame size */                  /* Find the reference frame */
625          if (desired > rc->max_length) {                  while(b_ref != &rc->stats[0] && b_ref->type == XVID_TYPE_BVOP)
626                  capped_to_max_framesize = 1;                          b_ref--;
627                  desired = rc->max_length;  
628                  DPRINTF(XVID_DEBUG_RC,"[%i] Capped to maximum frame size\n",                  /* Compute the quant it would be if the core did not apply the bframe
629                                  data->frame_num);                   * formula */
630          }                  scaled_quant  = 100*scaled_quant - data->bquant_offset;
631                    scaled_quant += data->bquant_ratio - 1; /* to avoid rouding issues */
632          /* Make sure to not scale below the minimum framesize */                  scaled_quant /= data->bquant_ratio;
         if (desired < rc->min_length[s->type-1]) {  
                 desired = rc->min_length[s->type-1];  
                 DPRINTF(XVID_DEBUG_RC,"[%i] Capped to minimum frame size\n",  
                                 data->frame_num);  
633          }          }
634    #endif
635    
636          /*          /* Quantizer has been scaled using floating point operations/results, we
637           * Don't laugh at this very 'simple' quant<->filesize relationship, it           * must cast it to integer */
638           * proves to be acurate enough for our algorithm          data->quant = (int)scaled_quant;
          */  
         data->quant = s->quant*s->length/desired;  
639    
640          /* Let's clip the computed quantizer, if needed */          /* Let's clip the computed quantizer, if needed */
641          if (data->quant < 1) {          if (data->quant < 1) {
642                  data->quant = 1;                  data->quant = 1;
643          } else if (data->quant > 31) {          } else if (data->quant > 31) {
644                  data->quant = 31;                  data->quant = 31;
         } else if (s->type != XVID_TYPE_IVOP) {  
   
                 /*  
                  * The frame quantizer has not been clipped, this appear to be a good  
                  * computed quantizer, however past frames give us some info about how  
                  * this quantizer performs against the algo prevision. Let's use this  
                  * prevision to increase the quantizer when we observe a too big  
                  * accumulated error  
                  */  
                 if (s->type == XVID_TYPE_BVOP) {  
                         rc->bquant_error[data->quant] += ((double)(s->quant * s->length) / desired) - data->quant;  
   
                         if (rc->bquant_error[data->quant] >= 1.0) {  
                                 rc->bquant_error[data->quant] -= 1.0;  
                                 data->quant++;  
                         }  
645                  } else {                  } else {
                         rc->pquant_error[data->quant] += ((double)(s->quant * s->length) / desired) - data->quant;  
646    
647                          if (rc->pquant_error[data->quant] >= 1.0) {                  /* The frame quantizer has not been clipped, this appears to be a good
648                                  rc->pquant_error[data->quant] -= 1.0;                   * computed quantizer, do not loose quantizer decimal part that we
649                     * accumulate for later reuse when its sum represents a complete
650                     * unit. */
651                    rc->quant_error[s->type-1][data->quant] += scaled_quant - (double)data->quant;
652    
653                    if (rc->quant_error[s->type-1][data->quant] >= 1.0) {
654                            rc->quant_error[s->type-1][data->quant] -= 1.0;
655                                  data->quant++;                                  data->quant++;
656                          }                  } else if (rc->quant_error[s->type-1][data->quant] <= -1.0) {
657                            rc->quant_error[s->type-1][data->quant] += 1.0;
658                            data->quant--;
659                  }                  }
660          }          }
661    
662          /*          /* Now we have a computed quant that is in the right quante range, with a
          * Now we have a computed quant that is in the right quante range, with a  
663           * possible +1 correction due to cumulated error. We can now safely clip           * possible +1 correction due to cumulated error. We can now safely clip
664           * the quantizer again with user's quant ranges. "Safely" means the Rate           * the quantizer again with user's quant ranges. "Safely" means the Rate
665           * Control could learn more about this quantizer, this knowledge is useful           * Control could learn more about this quantizer, this knowledge is useful
666           * for future frames even if it this quantizer won't be really used atm,           * for future frames even if it this quantizer won't be really used atm,
667           * that's why we don't perform this clipping earlier.           * that's why we don't perform this clipping earlier. */
          */  
668          if (data->quant < data->min_quant[s->type-1]) {          if (data->quant < data->min_quant[s->type-1]) {
669                  data->quant = data->min_quant[s->type-1];                  data->quant = data->min_quant[s->type-1];
670          } else if (data->quant > data->max_quant[s->type-1]) {          } else if (data->quant > data->max_quant[s->type-1]) {
671                  data->quant = data->max_quant[s->type-1];                  data->quant = data->max_quant[s->type-1];
672          }          }
673    
674          /*          /* To avoid big quality jumps from frame to frame, we apply a "security"
          * To avoid big quality jumps from frame to frame, we apply a "security"  
675           * rule that makes |last_quant - new_quant| <= 2. This rule only applies           * rule that makes |last_quant - new_quant| <= 2. This rule only applies
676           * to predicted frames (P and B)           * to predicted frames (P and B) */
          */  
677          if (s->type != XVID_TYPE_IVOP && rc->last_quant[s->type-1] && capped_to_max_framesize == 0) {          if (s->type != XVID_TYPE_IVOP && rc->last_quant[s->type-1] && capped_to_max_framesize == 0) {
678    
679                  if (data->quant > rc->last_quant[s->type-1] + 2) {                  if (data->quant > rc->last_quant[s->type-1] + 2) {
680                          data->quant = rc->last_quant[s->type-1] + 2;                          data->quant = rc->last_quant[s->type-1] + 2;
681                          DPRINTF(XVID_DEBUG_RC,                          DPRINTF(XVID_DEBUG_RC,
682                                          "[%i] p/b-frame quantizer prevented from rising too steeply\n",                                          "[xvid rc] -- frame %d p/b-frame quantizer prevented from rising too steeply\n",
683                                          data->frame_num);                                          data->frame_num);
684                  }                  }
685                  if (data->quant < rc->last_quant[s->type-1] - 2) {                  if (data->quant < rc->last_quant[s->type-1] - 2) {
686                          data->quant = rc->last_quant[s->type-1] - 2;                          data->quant = rc->last_quant[s->type-1] - 2;
687                          DPRINTF(XVID_DEBUG_RC,                          DPRINTF(XVID_DEBUG_RC,
688                                          "[%i] p/b-frame quantizer prevented from falling too steeply\n",                                          "[xvid rc] -- frame:%d p/b-frame quantizer prevented from falling too steeply\n",
689                                          data->frame_num);                                          data->frame_num);
690                  }                  }
691          }          }
692    
693          /*          /* We don't want to pollute the RC histerisis when our computed quant has
694           * We don't want to pollute the RC history results when our computed quant           * been computed from a capped frame size */
695           * has been computed from a capped frame size          if (capped_to_max_framesize == 0)
          */  
         if (capped_to_max_framesize == 0) {  
696                  rc->last_quant[s->type-1] = data->quant;                  rc->last_quant[s->type-1] = data->quant;
697          }  
698            /* Don't forget to force 1st pass frame type ;-) */
699            data->type = s->type;
700    
701            /* Store the quantizer into the statistics -- Used to compensate the double
702             * formula symptom */
703            s->quant2 = data->quant;
704    
705          return 0;          return 0;
706  }  }
# Line 679  Line 712 
712  rc_2pass2_after(rc_2pass2_t * rc, xvid_plg_data_t * data)  rc_2pass2_after(rc_2pass2_t * rc, xvid_plg_data_t * data)
713  {  {
714          const char frame_type[4] = { 'i', 'p', 'b', 's'};          const char frame_type[4] = { 'i', 'p', 'b', 's'};
715          stat_t * s = &rc->stats[data->frame_num];          twopass_stat_t * s = &rc->stats[data->frame_num];
716    
717          /* Insufficent stats data */          /* Insufficent stats data */
718      if (data->frame_num >= rc->num_frames)      if (data->frame_num >= rc->num_frames)
719          return 0;          return 0;
720    
721      rc->quant_count[data->quant]++;          /* Update the quantizer counter */
722            rc->quant_count[s->type-1][data->quant]++;
723    
724            /* Update the frame type overflow */
725      if (data->type == XVID_TYPE_IVOP) {      if (data->type == XVID_TYPE_IVOP) {
726          int kfdiff = (rc->keyframe_locations[rc->KF_idx] -      rc->keyframe_locations[rc->KF_idx - 1]);                  int kfdiff = 0;
727    
728                    if(rc->KF_idx != rc->num_frames -1) {
729                            kfdiff  = rc->keyframe_locations[rc->KF_idx+1];
730                            kfdiff -= rc->keyframe_locations[rc->KF_idx];
731                    }
732    
733                    /* Flush Keyframe overflow accumulator */
734          rc->overflow += rc->KFoverflow;          rc->overflow += rc->KFoverflow;
735    
736                    /* Store the frame overflow to the keyframe accumulator */
737          rc->KFoverflow = s->desired_length - data->length;          rc->KFoverflow = s->desired_length - data->length;
738    
739          if (kfdiff > 1) {  // non-consecutive keyframes                  if (kfdiff > 1) {
740                            /* Non-consecutive keyframes case:
741                             * We can then divide this total keyframe overflow into equal parts
742                             * that we will distribute into regular overflow at each frame
743                             * between the sequence bounded by two IFrames */
744              rc->KFoverflow_partial = rc->KFoverflow / (kfdiff - 1);              rc->KFoverflow_partial = rc->KFoverflow / (kfdiff - 1);
745          }else{ // consecutive keyframes                  } else {
746                            /* Consecutive keyframes case:
747                             * Flush immediatly the keyframe overflow and reset keyframe
748                             * overflow */
749                          rc->overflow += rc->KFoverflow;                          rc->overflow += rc->KFoverflow;
750                          rc->KFoverflow = 0;                          rc->KFoverflow = 0;
751                          rc->KFoverflow_partial = 0;                          rc->KFoverflow_partial = 0;
752          }          }
753          rc->KF_idx++;          rc->KF_idx++;
754      } else {      } else {
755          // distribute part of the keyframe overflow                  /* Accumulate the frame overflow */
756          rc->overflow += s->desired_length - data->length + rc->KFoverflow_partial;                  rc->overflow += s->desired_length - data->length;
757    
758                    /* Distribute part of the keyframe overflow */
759                    rc->overflow += rc->KFoverflow_partial;
760    
761                    /* Don't forget to substract that same amount from the total keyframe
762                     * overflow */
763          rc->KFoverflow -= rc->KFoverflow_partial;          rc->KFoverflow -= rc->KFoverflow_partial;
764      }      }
765    
766          DPRINTF(XVID_DEBUG_RC, "[%i] type:%c quant:%i stats1:%i scaled:%i actual:%i overflow:%i\n",          rc->overflow += s->error = s->desired_length - data->length;
767            rc->real_total += data->length;
768    
769            DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- frame:%d type:%c quant:%d stats:%d scaled:%d desired:%d actual:%d error:%d overflow:%.2f\n",
770                          data->frame_num,                          data->frame_num,
771                          frame_type[data->type-1],                          frame_type[data->type-1],
772                          data->quant,                          data->quant,
773                          s->length,                          s->length,
774                          s->scaled_length,                          s->scaled_length,
775                          data->length,                          s->desired_length,
776                            s->desired_length - s->error,
777                            -s->error,
778                          rc->overflow);                          rc->overflow);
779    
780      return(0);      return(0);
# Line 723  Line 784 
784   * Helper functions definition   * Helper functions definition
785   ****************************************************************************/   ****************************************************************************/
786    
787    /* Default buffer size for reading lines */
788  #define BUF_SZ   1024  #define BUF_SZ   1024
 #define MAX_COLS 5  
789    
790  /* open stats file, and count num frames */  /* Helper functions for reading/parsing the stats file */
791    static char *skipspaces(char *string);
792    static int iscomment(char *string);
793    static char *readline(FILE *f);
794    
795    /* This function counts the number of frame entries in the stats file
796     * It also counts the number of I Frames */
797  static int  static int
798  det_stats_length(rc_2pass2_t * rc, char * filename)  statsfile_count_frames(rc_2pass2_t * rc, char * filename)
799  {  {
800      FILE * f;      FILE * f;
801      int n, ignore;          char *line;
802      char type;          int lines;
803    
804      rc->num_frames = 0;      rc->num_frames = 0;
805      rc->num_keyframes = 0;      rc->num_keyframes = 0;
806    
807      if ((f = fopen(filename, "rt")) == NULL)          if ((f = fopen(filename, "rb")) == NULL)
808          return 0;                  return(-1);
809    
810      while((n = fscanf(f, "%c %d %d %d %d %d %d\n",          lines = 0;
811          &type, &ignore, &ignore, &ignore, &ignore, &ignore, &ignore)) != EOF) {          while ((line = readline(f)) != NULL) {
812          if (type == 'i') {  
813              rc->num_frames++;                  char *ptr;
814                    char type;
815                    int fields;
816    
817                    lines++;
818    
819                    /* We skip spaces */
820                    ptr = skipspaces(line);
821    
822                    /* Skip coment lines or empty lines */
823                    if(iscomment(ptr) || *ptr == '\0') {
824                            free(line);
825                            continue;
826                    }
827    
828                    /* Read the stat line from buffer */
829                    fields = sscanf(ptr, "%c", &type);
830    
831                    /* Valid stats files have at least 6 fields */
832                    if (fields == 1) {
833                            switch(type) {
834                            case 'i':
835                            case 'I':
836              rc->num_keyframes++;              rc->num_keyframes++;
837          }else if (type == 'p' || type == 'b' || type == 's') {                          case 'p':
838                            case 'P':
839                            case 'b':
840                            case 'B':
841                            case 's':
842                            case 'S':
843              rc->num_frames++;              rc->num_frames++;
844                                    break;
845                            default:
846                                    DPRINTF(XVID_DEBUG_RC,
847                                                    "[xvid rc] -- WARNING: L%d unknown frame type used (%c).\n",
848                                                    lines, type);
849          }          }
850                    } else {
851                                    DPRINTF(XVID_DEBUG_RC,
852                                                    "[xvid rc] -- WARNING: L%d misses some stat fields (%d).\n",
853                                                    lines, 6-fields);
854                    }
855    
856                    /* Free the line buffer */
857                    free(line);
858      }      }
859    
860            /* We are done with the file */
861      fclose(f);      fclose(f);
862    
863      return 1;          return(0);
864  }  }
865    
866  /* open stats file(s) and read into rc->stats array */  /* open stats file(s) and read into rc->stats array */
   
867  static int  static int
868  load_stats(rc_2pass2_t *rc, char * filename)  statsfile_load(rc_2pass2_t *rc, char * filename)
869  {  {
870      FILE * f;      FILE * f;
871      int i, not_scaled;          int processed_entries;
   
872    
873      if ((f = fopen(filename, "rt"))==NULL)          /* Opens the file */
874          return 0;          if ((f = fopen(filename, "rb"))==NULL)
875                    return(-1);
876    
877      i = 0;          processed_entries = 0;
878          not_scaled = 0;          while(processed_entries < rc->num_frames) {
     while(i < rc->num_frames) {  
         stat_t * s = &rc->stats[i];  
         int n;  
879          char type;          char type;
880                    int fields;
881                    twopass_stat_t * s = &rc->stats[processed_entries];
882                    char *line, *ptr;
883    
884                  s->scaled_length = 0;                  /* Read the line from the file */
885          n = fscanf(f, "%c %d %d %d %d %d %d\n", &type, &s->quant, &s->blks[0], &s->blks[1], &s->blks[2], &s->length, &s->scaled_length);                  if((line = readline(f)) == NULL)
886          if (n == EOF) break;                          break;
887                  if (n < 7) {  
888                          not_scaled = 1;                  /* We skip spaces */
889                    ptr = skipspaces(line);
890    
891                    /* Skip comment lines or empty lines */
892                    if(iscomment(ptr) || *ptr == '\0') {
893                            free(line);
894                            continue;
895                  }                  }
896    
897          if (type == 'i') {                  /* Reset this field that is optional */
898                    s->scaled_length = 0;
899    
900                    /* Convert the fields */
901                    fields = sscanf(ptr,
902                                                    "%c %d %d %d %d %d %d\n",
903                                                    &type,
904                                                    &s->quant,
905                                                    &s->blks[0], &s->blks[1], &s->blks[2],
906                                                    &s->length,
907                                                    &s->scaled_length);
908    
909                    /* Free line buffer, we don't need it anymore */
910                    free(line);
911    
912                    /* Fail silently, this has probably been warned in
913                     * statsfile_count_frames */
914                    if(fields != 6 && fields != 7)
915                            continue;
916    
917                    /* Convert frame type */
918                    switch(type) {
919                    case 'i':
920                    case 'I':
921              s->type = XVID_TYPE_IVOP;              s->type = XVID_TYPE_IVOP;
922          }else if (type == 'p' || type == 's') {                          break;
923                    case 'p':
924                    case 'P':
925                    case 's':
926                    case 'S':
927              s->type = XVID_TYPE_PVOP;              s->type = XVID_TYPE_PVOP;
928          }else if (type == 'b') {                          break;
929                    case 'b':
930                    case 'B':
931              s->type = XVID_TYPE_BVOP;              s->type = XVID_TYPE_BVOP;
932          }else{  /* unknown type */                          break;
933              DPRINTF(XVID_DEBUG_RC, "unknown stats frame type; assuming pvop\n");                  default:
934              s->type = XVID_TYPE_PVOP;                          /* Same as before, fail silently */
935                            continue;
936          }          }
937    
938          i++;                  /* Ok it seems it's been processed correctly */
939                    processed_entries++;
940      }      }
941    
942      rc->num_frames = i;          /* Close the file */
   
943          fclose(f);          fclose(f);
944    
945      return 1;          return(0);
 }  
   
 #if 0  
 static void print_stats(rc_2pass2_t * rc)  
 {  
     int i;  
     DPRINTF(XVID_DEBUG_RC, "type quant length scaled_length\n");  
         for (i = 0; i < rc->num_frames; i++) {  
         stat_t * s = &rc->stats[i];  
         DPRINTF(XVID_DEBUG_RC, "%d %d %d %d\n", s->type, s->quant, s->length, s->scaled_length);  
     }  
946  }  }
 #endif  
947    
948  /* pre-process the statistics data  /* pre-process the statistics data
949      - for each type, count, tot_length, min_length, max_length   * - for each type, count, tot_length, min_length, max_length
950      - set keyframes_locations   * - set keyframes_locations */
 */  
   
951  static void  static void
952  pre_process0(rc_2pass2_t * rc)  first_pass_stats_prepare_data(rc_2pass2_t * rc)
953  {  {
954      int i,j;      int i,j;
955    
956            /* *rc fields initialization
957             * NB: INT_MAX and INT_MIN are used in order to be immediately replaced
958             *     with real values of the 1pass */
959      for (i=0; i<3; i++) {      for (i=0; i<3; i++) {
960          rc->count[i]=0;          rc->count[i]=0;
961          rc->tot_length[i] = 0;          rc->tot_length[i] = 0;
         rc->last_quant[i] = 0;  
962                  rc->min_length[i] = INT_MAX;                  rc->min_length[i] = INT_MAX;
963      }      }
964    
965          rc->max_length = INT_MIN;          rc->max_length = INT_MIN;
966    
967            /* Loop through all frames and find/compute all the stuff this function
968             * is supposed to do */
969      for (i=j=0; i<rc->num_frames; i++) {      for (i=j=0; i<rc->num_frames; i++) {
970          stat_t * s = &rc->stats[i];                  twopass_stat_t * s = &rc->stats[i];
971    
972          rc->count[s->type-1]++;          rc->count[s->type-1]++;
973          rc->tot_length[s->type-1] += s->length;          rc->tot_length[s->type-1] += s->length;
# Line 853  Line 986 
986          }          }
987      }      }
988    
989          /*          /* NB:
          * Nota Bene:  
990           * The "per sequence" overflow system considers a natural sequence to be           * The "per sequence" overflow system considers a natural sequence to be
991           * formed by all frames between two iframes, so if we want to make sure           * formed by all frames between two iframes, so if we want to make sure
992           * the system does not go nuts during last sequence, we force the last           * the system does not go nuts during last sequence, we force the last
993           * frame to appear in the keyframe locations array.           * frame to appear in the keyframe locations array. */
          */  
994      rc->keyframe_locations[j] = i;      rc->keyframe_locations[j] = i;
995    
996          DPRINTF(XVID_DEBUG_RC, "Min 1st pass IFrame length: %d\n", rc->min_length[0]);          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Min 1st pass IFrame length: %d\n", rc->min_length[0]);
997          DPRINTF(XVID_DEBUG_RC, "Min 1st pass PFrame length: %d\n", rc->min_length[1]);          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Min 1st pass PFrame length: %d\n", rc->min_length[1]);
998          DPRINTF(XVID_DEBUG_RC, "Min 1st pass BFrame length: %d\n", rc->min_length[2]);          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Min 1st pass BFrame length: %d\n", rc->min_length[2]);
999  }  }
1000    
1001  /* calculate zone weight "center" */  /* calculate zone weight "center" */
   
1002  static void  static void
1003  zone_process(rc_2pass2_t *rc, const xvid_plg_create_t * create)  zone_process(rc_2pass2_t *rc, const xvid_plg_create_t * create)
1004  {  {
# Line 910  Line 1040 
1040              next -= create->zones[i].frame;              next -= create->zones[i].frame;
1041              rc->avg_weight += (double)(next * create->zones[i].increment) / (double)create->zones[i].base;              rc->avg_weight += (double)(next * create->zones[i].increment) / (double)create->zones[i].base;
1042              n += next;              n += next;
1043          }else{  // XVID_ZONE_QUANT                  }else{  /* XVID_ZONE_QUANT */
1044              for (j = create->zones[i].frame; j < next && j < rc->num_frames; j++ ) {              for (j = create->zones[i].frame; j < next && j < rc->num_frames; j++ ) {
1045                  rc->stats[j].zone_mode = XVID_ZONE_QUANT;                  rc->stats[j].zone_mode = XVID_ZONE_QUANT;
1046                  rc->stats[j].weight = (double)create->zones[i].increment / (double)create->zones[i].base;                  rc->stats[j].weight = (double)create->zones[i].increment / (double)create->zones[i].base;
# Line 920  Line 1050 
1050      }      }
1051      rc->avg_weight = n>0 ? rc->avg_weight/n : 1.0;      rc->avg_weight = n>0 ? rc->avg_weight/n : 1.0;
1052    
1053      DPRINTF(XVID_DEBUG_RC, "center_weight: %f (for %i frames);   fixed_bytes: %i\n", rc->avg_weight, n, rc->tot_quant);          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- center_weight:%f (for %d frames)  fixed_bytes:%d\n", rc->avg_weight, n, rc->tot_quant);
1054  }  }
1055    
1056    
1057  /* scale the curve */  /* scale the curve */
   
1058  static void  static void
1059  internal_scale(rc_2pass2_t *rc)  first_pass_scale_curve_internal(rc_2pass2_t *rc)
1060  {  {
1061          int64_t target  = rc->target - rc->tot_quant;          int64_t target;
1062          int64_t pass1_length = rc->tot_length[0] + rc->tot_length[1] + rc->tot_length[2] - rc->tot_quant;          int64_t pass1_length;
1063          double scaler;          double scaler;
1064          int i;          int i, num_MBs;
1065    
1066            /* We remove the bytes used by the fixed quantizer zones
1067             * ToDo: this approach is flawed, the same amount of bytes is removed from
1068             *       target and first pass data, this has no sense, zone_process should
1069             *       give us two results one for unscaled data (1pass) and the other
1070             *       one for scaled data and we should then write:
1071             *       target = rc->target - rc->tot_quant_scaled;
1072             *       pass1_length = rc->i+p+b - rc->tot_quant_firstpass */
1073            target = rc->target - rc->tot_quant;
1074    
1075            /* Do the same for the first pass data */
1076            pass1_length  = rc->tot_length[XVID_TYPE_IVOP-1];
1077            pass1_length += rc->tot_length[XVID_TYPE_PVOP-1];
1078            pass1_length += rc->tot_length[XVID_TYPE_BVOP-1];
1079            pass1_length -= rc->tot_quant;
1080    
1081          /* Let's compute a linear scaler in order to perform curve scaling */          /* Let's compute a linear scaler in order to perform curve scaling */
1082          scaler = (double)target / (double)pass1_length;          scaler = (double)target / (double)pass1_length;
1083    
1084          if (target <= 0 || pass1_length <= 0 || target >= pass1_length) {          if (target <= 0 || pass1_length <= 0 || target >= pass1_length) {
1085                  DPRINTF(XVID_DEBUG_RC, "WARNING: Undersize detected\n");                  DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- WARNING: Undersize detected before correction\n");
1086          scaler = 1.0;          scaler = 1.0;
1087          }          }
1088    
1089      DPRINTF(XVID_DEBUG_RC,          /* Compute min frame lengths (for each frame type) according to the number
1090                          "Before correction: target=%i, tot_length=%i, scaler=%f\n",           * of MBs. We sum all block type counters of frame 0, this gives us the
1091                          (int)target, (int)pass1_length, scaler);           * number of MBs.
1092             *
1093             * We compare these hardcoded values with observed values in first pass
1094             * (determined in pre_process0).Then we keep the real minimum. */
1095    
1096            /* Number of MBs */
1097            num_MBs  = rc->stats[0].blks[0];
1098            num_MBs += rc->stats[0].blks[1];
1099            num_MBs += rc->stats[0].blks[2];
1100    
1101            /* Minimum for I frames */
1102            if(rc->min_length[XVID_TYPE_IVOP-1] > ((num_MBs*22) + 240) / 8)
1103                    rc->min_length[XVID_TYPE_IVOP-1] = ((num_MBs*22) + 240) / 8;
1104    
1105            /* Minimum for P/S frames */
1106            if(rc->min_length[XVID_TYPE_PVOP-1] > ((num_MBs) + 88)  / 8)
1107                    rc->min_length[XVID_TYPE_PVOP-1] = ((num_MBs) + 88)  / 8;
1108    
1109            /* Minimum for B frames */
1110            if(rc->min_length[XVID_TYPE_BVOP-1] > 8)
1111                    rc->min_length[XVID_TYPE_BVOP-1] = 8;
1112    
1113          /*          /* Perform an initial scale pass.
1114           * Perform an initial scale pass.           *
1115           * If a frame size is scaled underneath our hardcoded minimums, then we           * If a frame size is scaled underneath our hardcoded minimums, then we
1116           * force the frame size to the minimum, and deduct the original & scaled           * force the frame size to the minimum, and deduct the original & scaled
1117           * frame length from the original and target total lengths           * frame length from the original and target total lengths */
          */  
   
1118          for (i=0; i<rc->num_frames; i++) {          for (i=0; i<rc->num_frames; i++) {
1119                  stat_t * s = &rc->stats[i];                  twopass_stat_t * s = &rc->stats[i];
                 int min_size[3];  
1120                  int len;                  int len;
1121    
1122                  /* Compute min frame lengths (oe for each frame type) */                  /* No need to scale frame length for which a specific quantizer is
1123                  min_size[0] = ((s->blks[0]*22) + 240) / 8;                   * specified thanks to zones */
                 min_size[1] = (s->blks[0] + 88) / 8;  
                 min_size[2] = 8;  
   
1124          if (s->zone_mode == XVID_ZONE_QUANT) {          if (s->zone_mode == XVID_ZONE_QUANT) {
1125              s->scaled_length = s->length;              s->scaled_length = s->length;
1126                          continue;                          continue;
1127                  }                  }
1128    
1129                  /* Compute teh scaled length */                  /* Compute the scaled length */
1130                  len = (int)((double)s->length * scaler * s->weight / rc->avg_weight);                  len = (int)((double)s->length * scaler * s->weight / rc->avg_weight);
1131    
1132                  /* Compare with the computed minimum */                  /* Compare with the computed minimum */
1133                  if (len < min_size[s->type-1]) {                  if (len < rc->min_length[s->type-1]) {
1134                          /* force frame size to our computed minimum */                          /* This is a 'forced size' frame, set its frame size to the
1135                          s->scaled_length = min_size[s->type-1];                           * computed minimum */
1136                            s->scaled_length = rc->min_length[s->type-1];
1137    
1138                            /* Remove both scaled and original size from their respective
1139                             * total counters, as we prepare a second pass for 'regular'
1140                             * frames */
1141                          target -= s->scaled_length;                          target -= s->scaled_length;
1142                          pass1_length -= s->length;                          pass1_length -= s->length;
1143                  } else {                  } else {
1144                          /* Do nothing for now, we'll scale this later */                          /* Do nothing for now, we'll scale this later */
1145                          s->scaled_length = 0;                          s->scaled_length = 0;
1146                  }                  }
   
1147          }          }
1148    
1149          /* Correct the scaler for all non forced frames */          /* The first pass on data substracted all 'forced size' frames from the
1150             * total counters. Now, it's possible to scale the 'regular' frames. */
1151    
1152            /* Scaling factor for 'regular' frames */
1153          scaler = (double)target / (double)pass1_length;          scaler = (double)target / (double)pass1_length;
1154    
1155          /* Detect undersizing */          /* Detect undersizing */
1156      if (target <= 0 || pass1_length <= 0 || target >= pass1_length) {      if (target <= 0 || pass1_length <= 0 || target >= pass1_length) {
1157                  DPRINTF(XVID_DEBUG_RC, "WARNING: Undersize detected\n");                  DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- WARNING: Undersize detected after correction\n");
1158                  scaler = 1.0;                  scaler = 1.0;
1159          }          }
1160    
         DPRINTF(XVID_DEBUG_RC,  
                         "After correction: target=%i, tot_length=%i, scaler=%f\n",  
                         (int)target, (int)pass1_length, scaler);  
   
1161          /* Do another pass with the new scaler */          /* Do another pass with the new scaler */
1162          for (i=0; i<rc->num_frames; i++) {          for (i=0; i<rc->num_frames; i++) {
1163                  stat_t * s = &rc->stats[i];                  twopass_stat_t * s = &rc->stats[i];
1164    
1165                  /* Ignore frame with forced frame sizes */                  /* Ignore frame with forced frame sizes */
1166                  if (s->scaled_length == 0)                  if (s->scaled_length == 0)
1167                          s->scaled_length = (int)((double)s->length * scaler * s->weight / rc->avg_weight);                          s->scaled_length = (int)((double)s->length * scaler * s->weight / rc->avg_weight);
1168          }          }
1169    
1170            /* Job done */
1171            return;
1172  }  }
1173    
1174    /* Apply all user settings to the scaled curve
1175     * This implies:
1176     *   keyframe boosting
1177     *   high/low compression */
1178  static void  static void
1179  pre_process1(rc_2pass2_t * rc)  scaled_curve_apply_advanced_parameters(rc_2pass2_t * rc)
1180  {  {
1181      int i;      int i;
1182      double total1, total2;          int64_t ivop_boost_total;
     uint64_t ivop_boost_total;  
1183    
1184      ivop_boost_total = 0;          /* Reset the rate controller (per frame type) total byte counters */
1185      rc->curve_comp_error = 0;          for (i=0; i<3; i++) rc->tot_scaled_length[i] = 0;
1186    
1187      for (i=0; i<3; i++) {          /* Compute total bytes for each frame type */
1188          rc->tot_scaled_length[i] = 0;          for (i=0; i<rc->num_frames;i++) {
1189                    twopass_stat_t *s = &rc->stats[i];
1190                    rc->tot_scaled_length[s->type-1] += s->scaled_length;
1191      }      }
1192    
1193            /* First we compute the total amount of bits needed, as being described by
1194             * the scaled distribution. During this pass over the complete stats data,
1195             * we see how much bits two user settings will get/give from/to p&b frames:
1196             *  - keyframe boosting
1197             *  - keyframe distance penalty */
1198            rc->KF_idx = 0;
1199            ivop_boost_total = 0;
1200      for (i=0; i<rc->num_frames; i++) {      for (i=0; i<rc->num_frames; i++) {
1201          stat_t * s = &rc->stats[i];                  twopass_stat_t * s = &rc->stats[i];
   
         rc->tot_scaled_length[s->type-1] += s->scaled_length;  
1202    
1203                    /* Some more work is needed for I frames */
1204          if (s->type == XVID_TYPE_IVOP) {          if (s->type == XVID_TYPE_IVOP) {
1205              ivop_boost_total += s->scaled_length * rc->param.keyframe_boost / 100;                          int ivop_boost;
         }  
     }  
1206    
1207      rc->movie_curve = ((double)(rc->tot_scaled_length[XVID_TYPE_PVOP-1] + rc->tot_scaled_length[XVID_TYPE_BVOP-1] + ivop_boost_total) /                          /* Accumulate bytes needed for keyframe boosting */
1208                                          (rc->tot_scaled_length[XVID_TYPE_PVOP-1] + rc->tot_scaled_length[XVID_TYPE_BVOP-1]));                          ivop_boost = s->scaled_length*rc->param.keyframe_boost/100;
1209    
1210      for(i=0; i<3; i++) {  #if 0 /* ToDo: decide how to apply kfthresholding */
1211          if (rc->count[i] == 0 || rc->movie_curve == 0) {  #endif
1212              rc->avg_length[i] = 1;                          /* If the frame size drops under the minimum length, then cap ivop_boost */
1213          }else{                          if (ivop_boost + s->scaled_length < rc->min_length[XVID_TYPE_IVOP-1])
1214              rc->avg_length[i] = rc->tot_scaled_length[i] / rc->count[i] / rc->movie_curve;                                  ivop_boost = rc->min_length[XVID_TYPE_IVOP-1] - s->scaled_length;
1215    
1216                            /* Accumulate the ivop boost */
1217                            ivop_boost_total += ivop_boost;
1218    
1219                            /* Don't forget to update the keyframe index */
1220                            rc->KF_idx++;
1221          }          }
1222      }      }
1223    
1224      /* alt curve stuff here */          /* Initialize the IBoost tax ratio for P/S/B frames
1225             *
1226             * This ratio has to be applied to p/b/s frames in order to reserve
1227             * additional bits for keyframes (keyframe boosting) or if too much
1228             * keyframe distance is applied, bits retrieved from the keyframes.
1229             *
1230             * ie pb_length *= rc->pb_iboost_tax_ratio;
1231             *
1232             *    gives the ideal length of a p/b frame */
1233    
1234      if (rc->param.use_alt_curve) {          /* Compute the total length of p/b/s frames (temporary storage into
1235          const double avg_pvop = rc->avg_length[XVID_TYPE_PVOP-1];           * movie_curve) */
1236          const uint64_t tot_pvop = rc->tot_length[XVID_TYPE_PVOP-1];          rc->pb_iboost_tax_ratio  = (double)rc->tot_scaled_length[XVID_TYPE_PVOP-1];
1237          const uint64_t tot_bvop = rc->tot_length[XVID_TYPE_BVOP-1];          rc->pb_iboost_tax_ratio += (double)rc->tot_scaled_length[XVID_TYPE_BVOP-1];
1238          const uint64_t tot_scaled_pvop = rc->tot_scaled_length[XVID_TYPE_PVOP-1];  
1239          const uint64_t tot_scaled_bvop = rc->tot_scaled_length[XVID_TYPE_BVOP-1];          /* Compute the ratio described above
1240             *     taxed_total = sum(0, n, tax*scaled_length)
1241             * <=> taxed_total = tax.sum(0, n, scaled_length)
1242             * <=> tax = taxed_total / original_total */
1243            rc->pb_iboost_tax_ratio =
1244                    (rc->pb_iboost_tax_ratio - ivop_boost_total) /
1245                    rc->pb_iboost_tax_ratio;
1246    
1247                  rc->alt_curve_low = avg_pvop - avg_pvop * (double)rc->param.alt_curve_low_dist / 100.0;          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- IFrame boost tax ratio:%.2f\n",
1248                  rc->alt_curve_low_diff = avg_pvop - rc->alt_curve_low;                          rc->pb_iboost_tax_ratio);
                 rc->alt_curve_high = avg_pvop + avg_pvop * (double)rc->param.alt_curve_high_dist / 100.0;  
                 rc->alt_curve_high_diff = rc->alt_curve_high - avg_pvop;  
1249    
1250          if (rc->param.alt_curve_use_auto) {          /* Compute the average size of frames per frame type */
1251              if (tot_bvop + tot_pvop > tot_scaled_bvop + tot_scaled_pvop) {          for(i=0; i<3; i++) {
1252                                  rc->param.alt_curve_min_rel_qual = (int)(100.0 - (100.0 - 100.0 /                  /* Special case for missing type or weird case */
1253                                          ((double)(tot_pvop + tot_bvop) / (double)(tot_scaled_pvop + tot_scaled_bvop))) * (double)rc->param.alt_curve_auto_str / 100.0);                  if (rc->count[i] == 0 || rc->pb_iboost_tax_ratio == 0) {
1254                            rc->avg_length[i] = 1;
1255                    } else {
1256                            rc->avg_length[i] = rc->tot_scaled_length[i];
1257    
1258                                  if (rc->param.alt_curve_min_rel_qual < 20)                          if (i == (XVID_TYPE_IVOP-1)) {
1259                                          rc->param.alt_curve_min_rel_qual = 20;                                  /* I Frames total has to be added the boost total */
1260                                    rc->avg_length[i] += ivop_boost_total;
1261              }else{              }else{
1262                                  rc->param.alt_curve_min_rel_qual = 100;                                  /* P/B frames has to taxed */
1263              }                                  rc->avg_length[i] *= rc->pb_iboost_tax_ratio;
1264          }          }
                 rc->alt_curve_mid_qual = (1.0 + (double)rc->param.alt_curve_min_rel_qual / 100.0) / 2.0;  
                 rc->alt_curve_qual_dev = 1.0 - rc->alt_curve_mid_qual;  
1265    
1266          if (rc->param.alt_curve_low_dist > 100) {                          /* Finally compute the average frame size */
1267                          switch(rc->param.alt_curve_type) {                          rc->avg_length[i] /= (double)rc->count[i];
             case XVID_CURVE_SINE: // Sine Curve (high aggressiveness)  
                                 rc->alt_curve_qual_dev *= 2.0 / (1.0 + sin(DEG2RAD * (avg_pvop * 90.0 / rc->alt_curve_low_diff)));  
                                 rc->alt_curve_mid_qual = 1.0 - rc->alt_curve_qual_dev * sin(DEG2RAD * (avg_pvop * 90.0 / rc->alt_curve_low_diff));  
                                 break;  
                         case XVID_CURVE_LINEAR: // Linear (medium aggressiveness)  
                                 rc->alt_curve_qual_dev *= 2.0 / (1.0 + avg_pvop / rc->alt_curve_low_diff);  
                                 rc->alt_curve_mid_qual = 1.0 - rc->alt_curve_qual_dev * avg_pvop / rc->alt_curve_low_diff;  
                                 break;  
                         case XVID_CURVE_COSINE: // Cosine Curve (low aggressiveness)  
                                 rc->alt_curve_qual_dev *= 2.0 / (1.0 + (1.0 - cos(DEG2RAD * (avg_pvop * 90.0 / rc->alt_curve_low_diff))));  
                                 rc->alt_curve_mid_qual = 1.0 - rc->alt_curve_qual_dev * (1.0 - cos(DEG2RAD * (avg_pvop * 90.0 / rc->alt_curve_low_diff)));  
1268                          }                          }
1269                  }                  }
     }  
   
     /* --- */  
1270    
1271      total1=total2=0;          /* Assymetric curve compression */
1272            if (rc->param.curve_compression_high || rc->param.curve_compression_low) {
1273                    double symetric_total;
1274                    double assymetric_delta_total;
1275    
1276                    /* Like I frame boosting, assymetric curve compression modifies the total
1277                     * amount of needed bits, we must compute the ratio so we can prescale
1278                     lengths */
1279                    symetric_total = 0;
1280                    assymetric_delta_total = 0;
1281      for (i=0; i<rc->num_frames; i++) {      for (i=0; i<rc->num_frames; i++) {
1282          stat_t * s = &rc->stats[i];                          double assymetric_delta;
1283                            double dbytes;
1284          if (s->type != XVID_TYPE_IVOP) {                          twopass_stat_t * s = &rc->stats[i];
             double dbytes,dbytes2;  
1285    
1286              dbytes = s->scaled_length / rc->movie_curve;                          /* I Frames are not concerned by assymetric scaling */
1287              dbytes2 = 0; /* XXX: warning */                          if (s->type == XVID_TYPE_IVOP)
1288              total1 += dbytes;                                  continue;
             if (s->type == XVID_TYPE_BVOP)  
                 dbytes *= rc->avg_length[XVID_TYPE_PVOP-1] / rc->avg_length[XVID_TYPE_BVOP-1];  
1289    
1290              if (rc->param.use_alt_curve) {                          /* During the real run, we would have to apply the iboost tax */
1291                  if (dbytes > rc->avg_length[XVID_TYPE_PVOP-1]) {                          dbytes = s->scaled_length * rc->pb_iboost_tax_ratio;
1292    
1293                      if (dbytes >= rc->alt_curve_high) {                          /* Update the symmetric curve compression total */
1294                                                  dbytes2 = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev);                          symetric_total += dbytes;
                     }else{  
                                                 switch(rc->param.alt_curve_type) {  
                         case XVID_CURVE_SINE :  
                                                     dbytes2 = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * sin(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_high_diff)));  
                                                         break;  
                         case XVID_CURVE_LINEAR :  
                                                     dbytes2 = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) / rc->alt_curve_high_diff);  
                                                         break;  
                                                 case XVID_CURVE_COSINE :  
                                                     dbytes2 = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (1.0 - cos(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_high_diff))));  
                                                 }  
                                         }  
                 }else{  
                     if (dbytes <= rc->alt_curve_low) {  
                                                 dbytes2 = dbytes;  
                     }else{  
                                                 switch(rc->param.alt_curve_type) {  
                                                 case XVID_CURVE_SINE :  
                                                     dbytes2 = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * sin(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_low_diff)));  
                                                         break;  
                                                 case XVID_CURVE_LINEAR :  
                                                     dbytes2 = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) / rc->alt_curve_low_diff);  
                                                         break;  
                                                 case XVID_CURVE_COSINE :  
                                                     dbytes2 = dbytes * (rc->alt_curve_mid_qual + rc->alt_curve_qual_dev * (1.0 - cos(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_low_diff))));  
                                                 }  
                                         }  
1295    
1296                  }                          /* Apply assymetric curve compression */
1297                            if (dbytes > rc->avg_length[s->type-1])
1298                                    assymetric_delta = (rc->avg_length[s->type-1] - dbytes) * (double)rc->param.curve_compression_high / 100.0f;
1299                            else
1300                                    assymetric_delta = (rc->avg_length[s->type-1] - dbytes) * (double)rc->param.curve_compression_low  / 100.0f;
1301    
1302                            /* Cap to the minimum frame size if needed */
1303                            if (dbytes + assymetric_delta < rc->min_length[s->type-1])
1304                                    assymetric_delta = rc->min_length[s->type-1] - dbytes;
1305    
1306              }else{                          /* Accumulate after assymetric curve compression */
1307                  if (dbytes > rc->avg_length[XVID_TYPE_PVOP-1]) {                          assymetric_delta_total += assymetric_delta;
                     dbytes2=((double)dbytes + (rc->avg_length[XVID_TYPE_PVOP-1] - dbytes) * rc->param.curve_compression_high / 100.0);  
                 }else{  
                                 dbytes2 = ((double)dbytes + (rc->avg_length[XVID_TYPE_PVOP-1] - dbytes) * rc->param.curve_compression_low / 100.0);  
                 }  
1308              }              }
1309    
1310              if (s->type == XVID_TYPE_BVOP) {                  /* Compute the tax that all p/b frames have to pay in order to respect the
1311                              dbytes2 *= rc->avg_length[XVID_TYPE_BVOP-1] / rc->avg_length[XVID_TYPE_PVOP-1];                   * bit distribution changes that the assymetric compression curve imposes
1312                              if (dbytes2 < rc->min_length[XVID_TYPE_BVOP-1])                   * We want assymetric_total = sum(0, n-1, tax.scaled_length)
1313                                      dbytes2 = rc->min_length[XVID_TYPE_BVOP-1];                   *      ie assymetric_total = ratio.sum(0, n-1, scaled_length)
1314                     *         ratio = assymetric_total / symmetric_total */
1315                    rc->assymetric_tax_ratio = ((double)symetric_total - (double)assymetric_delta_total) / (double)symetric_total;
1316              }else{              }else{
1317                              if (dbytes2 < rc->min_length[XVID_TYPE_PVOP-1])                  rc->assymetric_tax_ratio = 1.0f;
                                     dbytes2 = rc->min_length[XVID_TYPE_PVOP-1];  
             }  
             total2 += dbytes2;  
         }  
1318      }      }
1319    
1320      rc->curve_comp_scale = total1 / total2;          DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- Assymetric tax ratio:%.2f\n", rc->assymetric_tax_ratio);
1321    
1322      if (!rc->param.use_alt_curve) {          /* Last bits that need to be reset */
1323          DPRINTF(XVID_DEBUG_RC, "middle frame size for asymmetric curve compression: %i\n",          rc->overflow = 0;
1324              (int)(rc->avg_length[XVID_TYPE_PVOP-1] * rc->curve_comp_scale));          rc->KFoverflow = 0;
1325            rc->KFoverflow_partial = 0;
1326            rc->KF_idx = 0;
1327            rc->desired_total = 0;
1328            rc->real_total = 0;
1329    
1330            /* Job done */
1331            return;
1332      }      }
1333    
1334      if (rc->param.use_alt_curve) {  /*****************************************************************************
1335          int bonus_bias = rc->param.alt_curve_bonus_bias;   * Still more low level stuff (nothing to do with stats treatment)
1336          int oldquant = 1;   ****************************************************************************/
1337    
1338              if (rc->param.alt_curve_use_auto_bonus_bias)  /* This function returns an allocated string containing a complete line read
1339                      bonus_bias = rc->param.alt_curve_min_rel_qual;   * from the file starting at the current position */
1340    static char *
1341    readline(FILE *f)
1342    {
1343            char *buffer = NULL;
1344            int buffer_size = 0;
1345            int pos = 0;
1346    
1347              rc->alt_curve_curve_bias_bonus = (total1 - total2) * (double)bonus_bias / 100.0 / (double)(rc->num_frames /* - credits_frames */ - rc->num_keyframes);          do {
1348              rc->curve_comp_scale = ((total1 - total2) * (1.0 - (double)bonus_bias / 100.0) + total2) / total2;                  int c;
1349    
1350                    /* Read a character from the stream */
1351                    c = fgetc(f);
1352    
1353          /* special info for alt curve:  bias bonus and quantizer thresholds */                  /* Is that EOF or new line ? */
1354                    if(c == EOF || c == '\n')
1355                            break;
1356    
1357                  DPRINTF(XVID_DEBUG_RC, "avg scaled framesize:%i\n", (int)rc->avg_length[XVID_TYPE_PVOP-1]);                  /* Do we have to update buffer ? */
1358                  DPRINTF(XVID_DEBUG_RC, "bias bonus:%i bytes\n", (int)rc->alt_curve_curve_bias_bonus);                  if(pos >= buffer_size - 1) {
1359                            buffer_size += BUF_SZ;
1360                            buffer = (char*)realloc(buffer, buffer_size);
1361                            if (buffer == NULL)
1362                                    return(NULL);
1363                    }
1364    
1365                  for (i=1; i <= (int)(rc->alt_curve_high*2)+1; i++) {                  buffer[pos] = c;
1366              double curve_temp, dbytes;                  pos++;
1367              int newquant;          } while(1);
1368    
1369              dbytes = i;          /* Read \n or EOF */
1370                          if (dbytes > rc->avg_length[XVID_TYPE_PVOP-1]) {          if (buffer == NULL) {
1371                  if (dbytes >= rc->alt_curve_high) {                  /* EOF, so we reached the end of the file, return NULL */
1372                                          curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev);                  if(feof(f))
1373                  }else{                          return(NULL);
1374                                          switch(rc->param.alt_curve_type)  
1375                                          {                  /* Just an empty line with just a newline, allocate a 1 byte buffer to
1376                                          case XVID_CURVE_SINE :                   * store a zero length string */
1377                                                  curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * sin(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_high_diff)));                  buffer = (char*)malloc(1);
1378                                                  break;                  if(buffer == NULL)
1379                                          case XVID_CURVE_LINEAR :                          return(NULL);
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) / rc->alt_curve_high_diff);  
                                                 break;  
                                         case XVID_CURVE_COSINE :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (1.0 - cos(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_high_diff))));  
1380                                          }                                          }
1381    
1382            /* Zero terminated string */
1383            buffer[pos] = '\0';
1384    
1385            return(buffer);
1386                                  }                                  }
1387                          }else{  
1388                  if (dbytes <= rc->alt_curve_low) {  /* This function returns a pointer to the first non space char in the given
1389                                          curve_temp = dbytes;   * string */
1390                  }else{  static char *
1391                                          switch(rc->param.alt_curve_type)  skipspaces(char *string)
1392                                          {                                          {
1393                                          case XVID_CURVE_SINE :          const char spaces[] =
1394                                                  curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * sin(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_low_diff)));                  {
1395                                                  break;                          ' ','\t','\0'
1396                                          case XVID_CURVE_LINEAR :                  };
1397                                                  curve_temp = dbytes * (rc->alt_curve_mid_qual - rc->alt_curve_qual_dev * (dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) / rc->alt_curve_low_diff);          const char *spacechar = spaces;
1398    
1399            if (string == NULL) return(NULL);
1400    
1401            while (*string != '\0') {
1402                    /* Test against space chars */
1403                    while (*spacechar != '\0') {
1404                            if (*string == *spacechar) {
1405                                    string++;
1406                                    spacechar = spaces;
1407                                                  break;                                                  break;
                                         case XVID_CURVE_COSINE :  
                                                 curve_temp = dbytes * (rc->alt_curve_mid_qual + rc->alt_curve_qual_dev * (1.0 - cos(DEG2RAD * ((dbytes - rc->avg_length[XVID_TYPE_PVOP-1]) * 90.0 / rc->alt_curve_low_diff))));  
                                         }  
1408                                  }                                  }
1409                            spacechar++;
1410                          }                          }
1411    
1412                          if (rc->movie_curve > 1.0)                  /* No space char */
1413                                  dbytes *= rc->movie_curve;                  if (*spacechar == '\0') return(string);
1414            }
1415    
1416                          newquant = (int)(dbytes * 2.0 / (curve_temp * rc->curve_comp_scale + rc->alt_curve_curve_bias_bonus));          return(string);
                         if (newquant > 1) {  
                                 if (newquant != oldquant) {  
                     int percent = (int)((i - rc->avg_length[XVID_TYPE_PVOP-1]) * 100.0 / rc->avg_length[XVID_TYPE_PVOP-1]);  
                                         oldquant = newquant;  
                                         DPRINTF(XVID_DEBUG_RC, "quant:%i threshold at %i : %i percent\n", newquant, i, percent);  
1417                                  }                                  }
1418    
1419    /* This function returns a boolean that tells if the string is only a
1420     * comment */
1421    static int
1422    iscomment(char *string)
1423    {
1424            const char comments[] =
1425                    {
1426                            '#',';', '%', '\0'
1427                    };
1428            const char *cmtchar = comments;
1429            int iscomment = 0;
1430    
1431            if (string == NULL) return(1);
1432    
1433            string = skipspaces(string);
1434    
1435            while(*cmtchar != '\0') {
1436                    if(*string == *cmtchar) {
1437                            iscomment = 1;
1438                            break;
1439                          }                          }
1440                    cmtchar++;
1441                  }                  }
1442    
1443            return(iscomment);
1444      }      }
1445    
1446      rc->overflow = 0;  #if 0
1447      rc->KFoverflow = 0;  static void
1448      rc->KFoverflow_partial = 0;  stats_print(rc_2pass2_t * rc)
1449      rc->KF_idx = 1;  {
1450            int i;
1451            const char frame_type[4] = { 'i', 'p', 'b', 's'};
1452    
1453            for (i=0; i<rc->num_frames; i++) {
1454                    twopass_stat_t *s = &rc->stats[i];
1455                    DPRINTF(XVID_DEBUG_RC, "[xvid rc] -- frame:%d type:%c quant:%d stats:%d scaled:%d desired:%d actual:%d overflow(%c):%.2f\n",
1456                                    i, frame_type[s->type-1], -1, s->length, s->scaled_length,
1457                                    s->desired_length, -1, frame_type[s->type-1], -1.0f);
1458  }  }
1459    }
1460    #endif

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