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aomenc.c 83.1 KB
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/*
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 * Copyright (c) 2016, Alliance for Open Media. All rights reserved
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 *
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 * This source code is subject to the terms of the BSD 2 Clause License and
 * the Alliance for Open Media Patent License 1.0. If the BSD 2 Clause License
 * was not distributed with this source code in the LICENSE file, you can
 * obtain it at www.aomedia.org/license/software. If the Alliance for Open
 * Media Patent License 1.0 was not distributed with this source code in the
 * PATENTS file, you can obtain it at www.aomedia.org/license/patent.
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 */

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#include "./aomenc.h"
#include "./aom_config.h"
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#include <assert.h>
#include <limits.h>
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#include <math.h>
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#include <stdarg.h>
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#include <stdio.h>
#include <stdlib.h>
#include <string.h>
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#if CONFIG_LIBYUV
#include "third_party/libyuv/include/libyuv/scale.h"
#endif

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#include "aom/aom_encoder.h"
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#if CONFIG_DECODERS
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#include "aom/aom_decoder.h"
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#endif
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#include "./args.h"
#include "./ivfenc.h"
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#include "./tools_common.h"
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#if CONFIG_AV1_ENCODER
#include "aom/aomcx.h"
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#endif
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#if CONFIG_AV1_DECODER
#include "aom/aomdx.h"
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#endif

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#include "./aomstats.h"
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#include "./rate_hist.h"
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#include "./warnings.h"
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#include "aom/aom_integer.h"
#include "aom_ports/aom_timer.h"
#include "aom_ports/mem_ops.h"
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#if CONFIG_WEBM_IO
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#include "./webmenc.h"
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#endif
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#include "./y4minput.h"
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/* Swallow warnings about unused results of fread/fwrite */
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static size_t wrap_fread(void *ptr, size_t size, size_t nmemb, FILE *stream) {
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  return fread(ptr, size, nmemb, stream);
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}
#define fread wrap_fread

static size_t wrap_fwrite(const void *ptr, size_t size, size_t nmemb,
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                          FILE *stream) {
  return fwrite(ptr, size, nmemb, stream);
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}
#define fwrite wrap_fwrite

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static const char *exec_name;

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static void warn_or_exit_on_errorv(aom_codec_ctx_t *ctx, int fatal,
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                                   const char *s, va_list ap) {
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  if (ctx->err) {
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    const char *detail = aom_codec_error_detail(ctx);
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    vfprintf(stderr, s, ap);
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    fprintf(stderr, ": %s\n", aom_codec_error(ctx));
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    if (detail) fprintf(stderr, "    %s\n", detail);
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    if (fatal) exit(EXIT_FAILURE);
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  }
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}

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static void ctx_exit_on_error(aom_codec_ctx_t *ctx, const char *s, ...) {
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  va_list ap;

  va_start(ap, s);
  warn_or_exit_on_errorv(ctx, 1, s, ap);
  va_end(ap);
}

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static void warn_or_exit_on_error(aom_codec_ctx_t *ctx, int fatal,
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                                  const char *s, ...) {
  va_list ap;

  va_start(ap, s);
  warn_or_exit_on_errorv(ctx, fatal, s, ap);
  va_end(ap);
}

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static int read_frame(struct AvxInputContext *input_ctx, aom_image_t *img) {
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  FILE *f = input_ctx->file;
  y4m_input *y4m = &input_ctx->y4m;
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  int shortread = 0;

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  if (input_ctx->file_type == FILE_TYPE_Y4M) {
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    if (y4m_input_fetch_frame(y4m, f, img) < 1) return 0;
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  } else {
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    shortread = read_yuv_frame(input_ctx, img);
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  }
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  return !shortread;
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}

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static int file_is_y4m(const char detect[4]) {
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  if (memcmp(detect, "YUV4", 4) == 0) {
    return 1;
  }
  return 0;
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}

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static int fourcc_is_ivf(const char detect[4]) {
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  if (memcmp(detect, "DKIF", 4) == 0) {
    return 1;
  }
  return 0;
}
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static const arg_def_t debugmode =
    ARG_DEF("D", "debug", 0, "Debug mode (makes output deterministic)");
static const arg_def_t outputfile =
    ARG_DEF("o", "output", 1, "Output filename");
static const arg_def_t use_yv12 =
    ARG_DEF(NULL, "yv12", 0, "Input file is YV12 ");
static const arg_def_t use_i420 =
    ARG_DEF(NULL, "i420", 0, "Input file is I420 (default)");
static const arg_def_t use_i422 =
    ARG_DEF(NULL, "i422", 0, "Input file is I422");
static const arg_def_t use_i444 =
    ARG_DEF(NULL, "i444", 0, "Input file is I444");
static const arg_def_t use_i440 =
    ARG_DEF(NULL, "i440", 0, "Input file is I440");
static const arg_def_t codecarg = ARG_DEF(NULL, "codec", 1, "Codec to use");
static const arg_def_t passes =
    ARG_DEF("p", "passes", 1, "Number of passes (1/2)");
static const arg_def_t pass_arg =
    ARG_DEF(NULL, "pass", 1, "Pass to execute (1/2)");
static const arg_def_t fpf_name =
    ARG_DEF(NULL, "fpf", 1, "First pass statistics file name");
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#if CONFIG_FP_MB_STATS
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static const arg_def_t fpmbf_name =
    ARG_DEF(NULL, "fpmbf", 1, "First pass block statistics file name");
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#endif
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static const arg_def_t limit =
    ARG_DEF(NULL, "limit", 1, "Stop encoding after n input frames");
static const arg_def_t skip =
    ARG_DEF(NULL, "skip", 1, "Skip the first n input frames");
static const arg_def_t deadline =
    ARG_DEF("d", "deadline", 1, "Deadline per frame (usec)");
static const arg_def_t best_dl =
    ARG_DEF(NULL, "best", 0, "Use Best Quality Deadline");
static const arg_def_t good_dl =
    ARG_DEF(NULL, "good", 0, "Use Good Quality Deadline");
static const arg_def_t rt_dl =
    ARG_DEF(NULL, "rt", 0, "Use Realtime Quality Deadline");
static const arg_def_t quietarg =
    ARG_DEF("q", "quiet", 0, "Do not print encode progress");
static const arg_def_t verbosearg =
    ARG_DEF("v", "verbose", 0, "Show encoder parameters");
static const arg_def_t psnrarg =
    ARG_DEF(NULL, "psnr", 0, "Show PSNR in status line");
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static const struct arg_enum_list test_decode_enum[] = {
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  { "off", TEST_DECODE_OFF },
  { "fatal", TEST_DECODE_FATAL },
  { "warn", TEST_DECODE_WARN },
  { NULL, 0 }
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};
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static const arg_def_t recontest = ARG_DEF_ENUM(
    NULL, "test-decode", 1, "Test encode/decode mismatch", test_decode_enum);
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static const arg_def_t framerate =
    ARG_DEF(NULL, "fps", 1, "Stream frame rate (rate/scale)");
static const arg_def_t use_webm =
    ARG_DEF(NULL, "webm", 0, "Output WebM (default when WebM IO is enabled)");
static const arg_def_t use_ivf = ARG_DEF(NULL, "ivf", 0, "Output IVF");
static const arg_def_t out_part =
    ARG_DEF("P", "output-partitions", 0,
            "Makes encoder output partitions. Requires IVF output!");
static const arg_def_t q_hist_n =
    ARG_DEF(NULL, "q-hist", 1, "Show quantizer histogram (n-buckets)");
static const arg_def_t rate_hist_n =
    ARG_DEF(NULL, "rate-hist", 1, "Show rate histogram (n-buckets)");
static const arg_def_t disable_warnings =
    ARG_DEF(NULL, "disable-warnings", 0,
            "Disable warnings about potentially incorrect encode settings.");
static const arg_def_t disable_warning_prompt =
    ARG_DEF("y", "disable-warning-prompt", 0,
            "Display warnings, but do not prompt user to continue.");
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#if CONFIG_AOM_HIGHBITDEPTH
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static const arg_def_t test16bitinternalarg = ARG_DEF(
    NULL, "test-16bit-internal", 0, "Force use of 16 bit internal buffer");
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static const struct arg_enum_list bitdepth_enum[] = {
  { "8", AOM_BITS_8 }, { "10", AOM_BITS_10 }, { "12", AOM_BITS_12 }, { NULL, 0 }
};

static const arg_def_t bitdeptharg = ARG_DEF_ENUM(
    "b", "bit-depth", 1,
    "Bit depth for codec (8 for version <=1, 10 or 12 for version 2)",
    bitdepth_enum);
static const arg_def_t inbitdeptharg =
    ARG_DEF(NULL, "input-bit-depth", 1, "Bit depth of input");
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#endif
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static const arg_def_t *main_args[] = { &debugmode,
                                        &outputfile,
                                        &codecarg,
                                        &passes,
                                        &pass_arg,
                                        &fpf_name,
                                        &limit,
                                        &skip,
                                        &deadline,
                                        &best_dl,
                                        &good_dl,
                                        &rt_dl,
                                        &quietarg,
                                        &verbosearg,
                                        &psnrarg,
                                        &use_webm,
                                        &use_ivf,
                                        &out_part,
                                        &q_hist_n,
                                        &rate_hist_n,
                                        &disable_warnings,
                                        &disable_warning_prompt,
                                        &recontest,
                                        NULL };

static const arg_def_t usage =
    ARG_DEF("u", "usage", 1, "Usage profile number to use");
static const arg_def_t threads =
    ARG_DEF("t", "threads", 1, "Max number of threads to use");
static const arg_def_t profile =
    ARG_DEF(NULL, "profile", 1, "Bitstream profile number to use");
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static const arg_def_t width = ARG_DEF("w", "width", 1, "Frame width");
static const arg_def_t height = ARG_DEF("h", "height", 1, "Frame height");
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#if CONFIG_WEBM_IO
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static const struct arg_enum_list stereo_mode_enum[] = {
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  { "mono", STEREO_FORMAT_MONO },
  { "left-right", STEREO_FORMAT_LEFT_RIGHT },
  { "bottom-top", STEREO_FORMAT_BOTTOM_TOP },
  { "top-bottom", STEREO_FORMAT_TOP_BOTTOM },
  { "right-left", STEREO_FORMAT_RIGHT_LEFT },
  { NULL, 0 }
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};
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static const arg_def_t stereo_mode = ARG_DEF_ENUM(
    NULL, "stereo-mode", 1, "Stereo 3D video format", stereo_mode_enum);
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#endif
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static const arg_def_t timebase = ARG_DEF(
    NULL, "timebase", 1, "Output timestamp precision (fractional seconds)");
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static const arg_def_t error_resilient =
    ARG_DEF(NULL, "error-resilient", 1, "Enable error resiliency features");
static const arg_def_t lag_in_frames =
    ARG_DEF(NULL, "lag-in-frames", 1, "Max number of frames to lag");

static const arg_def_t *global_args[] = { &use_yv12,
                                          &use_i420,
                                          &use_i422,
                                          &use_i444,
                                          &use_i440,
                                          &usage,
                                          &threads,
                                          &profile,
                                          &width,
                                          &height,
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#if CONFIG_WEBM_IO
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                                          &stereo_mode,
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#endif
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                                          &timebase,
                                          &framerate,
                                          &error_resilient,
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#if CONFIG_AOM_HIGHBITDEPTH
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                                          &test16bitinternalarg,
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                                          &bitdeptharg,
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#endif
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                                          &lag_in_frames,
                                          NULL };

static const arg_def_t dropframe_thresh =
    ARG_DEF(NULL, "drop-frame", 1, "Temporal resampling threshold (buf %)");
static const arg_def_t resize_allowed =
    ARG_DEF(NULL, "resize-allowed", 1, "Spatial resampling enabled (bool)");
static const arg_def_t resize_width =
    ARG_DEF(NULL, "resize-width", 1, "Width of encoded frame");
static const arg_def_t resize_height =
    ARG_DEF(NULL, "resize-height", 1, "Height of encoded frame");
static const arg_def_t resize_up_thresh =
    ARG_DEF(NULL, "resize-up", 1, "Upscale threshold (buf %)");
static const arg_def_t resize_down_thresh =
    ARG_DEF(NULL, "resize-down", 1, "Downscale threshold (buf %)");
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static const struct arg_enum_list end_usage_enum[] = { { "vbr", AOM_VBR },
                                                       { "cbr", AOM_CBR },
                                                       { "cq", AOM_CQ },
                                                       { "q", AOM_Q },
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                                                       { NULL, 0 } };
static const arg_def_t end_usage =
    ARG_DEF_ENUM(NULL, "end-usage", 1, "Rate control mode", end_usage_enum);
static const arg_def_t target_bitrate =
    ARG_DEF(NULL, "target-bitrate", 1, "Bitrate (kbps)");
static const arg_def_t min_quantizer =
    ARG_DEF(NULL, "min-q", 1, "Minimum (best) quantizer");
static const arg_def_t max_quantizer =
    ARG_DEF(NULL, "max-q", 1, "Maximum (worst) quantizer");
static const arg_def_t undershoot_pct =
    ARG_DEF(NULL, "undershoot-pct", 1, "Datarate undershoot (min) target (%)");
static const arg_def_t overshoot_pct =
    ARG_DEF(NULL, "overshoot-pct", 1, "Datarate overshoot (max) target (%)");
static const arg_def_t buf_sz =
    ARG_DEF(NULL, "buf-sz", 1, "Client buffer size (ms)");
static const arg_def_t buf_initial_sz =
    ARG_DEF(NULL, "buf-initial-sz", 1, "Client initial buffer size (ms)");
static const arg_def_t buf_optimal_sz =
    ARG_DEF(NULL, "buf-optimal-sz", 1, "Client optimal buffer size (ms)");
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static const arg_def_t *rc_args[] = {
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  &dropframe_thresh, &resize_allowed,     &resize_width,   &resize_height,
  &resize_up_thresh, &resize_down_thresh, &end_usage,      &target_bitrate,
  &min_quantizer,    &max_quantizer,      &undershoot_pct, &overshoot_pct,
  &buf_sz,           &buf_initial_sz,     &buf_optimal_sz, NULL
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};

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static const arg_def_t bias_pct =
    ARG_DEF(NULL, "bias-pct", 1, "CBR/VBR bias (0=CBR, 100=VBR)");
static const arg_def_t minsection_pct =
    ARG_DEF(NULL, "minsection-pct", 1, "GOP min bitrate (% of target)");
static const arg_def_t maxsection_pct =
    ARG_DEF(NULL, "maxsection-pct", 1, "GOP max bitrate (% of target)");
static const arg_def_t *rc_twopass_args[] = { &bias_pct, &minsection_pct,
                                              &maxsection_pct, NULL };

static const arg_def_t kf_min_dist =
    ARG_DEF(NULL, "kf-min-dist", 1, "Minimum keyframe interval (frames)");
static const arg_def_t kf_max_dist =
    ARG_DEF(NULL, "kf-max-dist", 1, "Maximum keyframe interval (frames)");
static const arg_def_t kf_disabled =
    ARG_DEF(NULL, "disable-kf", 0, "Disable keyframe placement");
static const arg_def_t *kf_args[] = { &kf_min_dist, &kf_max_dist, &kf_disabled,
                                      NULL };

static const arg_def_t noise_sens =
    ARG_DEF(NULL, "noise-sensitivity", 1, "Noise sensitivity (frames to blur)");
static const arg_def_t sharpness =
    ARG_DEF(NULL, "sharpness", 1, "Loop filter sharpness (0..7)");
static const arg_def_t static_thresh =
    ARG_DEF(NULL, "static-thresh", 1, "Motion detection threshold");
static const arg_def_t auto_altref =
    ARG_DEF(NULL, "auto-alt-ref", 1, "Enable automatic alt reference frames");
static const arg_def_t arnr_maxframes =
    ARG_DEF(NULL, "arnr-maxframes", 1, "AltRef max frames (0..15)");
static const arg_def_t arnr_strength =
    ARG_DEF(NULL, "arnr-strength", 1, "AltRef filter strength (0..6)");
static const arg_def_t arnr_type = ARG_DEF(NULL, "arnr-type", 1, "AltRef type");
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static const struct arg_enum_list tuning_enum[] = {
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  { "psnr", AOM_TUNE_PSNR }, { "ssim", AOM_TUNE_SSIM }, { NULL, 0 }
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};
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static const arg_def_t tune_ssim =
    ARG_DEF_ENUM(NULL, "tune", 1, "Material to favor", tuning_enum);
static const arg_def_t cq_level =
    ARG_DEF(NULL, "cq-level", 1, "Constant/Constrained Quality level");
static const arg_def_t max_intra_rate_pct =
    ARG_DEF(NULL, "max-intra-rate", 1, "Max I-frame bitrate (pct)");
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#if CONFIG_AV1_ENCODER
static const arg_def_t cpu_used_av1 =
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    ARG_DEF(NULL, "cpu-used", 1, "CPU Used (-8..8)");
static const arg_def_t tile_cols =
    ARG_DEF(NULL, "tile-columns", 1, "Number of tile columns to use, log2");
static const arg_def_t tile_rows =
    ARG_DEF(NULL, "tile-rows", 1,
            "Number of tile rows to use, log2 (set to 0 while threads > 1)");
static const arg_def_t lossless =
    ARG_DEF(NULL, "lossless", 1, "Lossless mode (0: false (default), 1: true)");
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#if CONFIG_AOM_QM
static const arg_def_t enable_qm =
    ARG_DEF(NULL, "enable_qm", 1,
            "Enable quantisation matrices (0: false (default), 1: true)");
static const arg_def_t qm_min = ARG_DEF(
    NULL, "qm_min", 1, "Min quant matrix flatness (0..15), default is 8");
static const arg_def_t qm_max = ARG_DEF(
    NULL, "qm_max", 1, "Max quant matrix flatness (0..15), default is 16");
#endif
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static const arg_def_t frame_parallel_decoding =
    ARG_DEF(NULL, "frame-parallel", 1,
            "Enable frame parallel decodability features "
            "(0: false (default), 1: true)");
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#if CONFIG_DELTA_Q
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static const arg_def_t aq_mode = ARG_DEF(
    NULL, "aq-mode", 1,
    "Adaptive quantization mode (0: off (default), 1: variance 2: complexity, "
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    "3: cyclic refresh, 4: delta quant)");
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#else
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static const arg_def_t aq_mode = ARG_DEF(
    NULL, "aq-mode", 1,
    "Adaptive quantization mode (0: off (default), 1: variance 2: complexity, "
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    "3: cyclic refresh)");
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#endif
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static const arg_def_t frame_periodic_boost =
    ARG_DEF(NULL, "frame-boost", 1,
            "Enable frame periodic boost (0: off (default), 1: on)");
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static const arg_def_t gf_cbr_boost_pct = ARG_DEF(
    NULL, "gf-cbr-boost", 1, "Boost for Golden Frame in CBR mode (pct)");
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static const arg_def_t max_inter_rate_pct =
    ARG_DEF(NULL, "max-inter-rate", 1, "Max P-frame bitrate (pct)");
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static const arg_def_t min_gf_interval = ARG_DEF(
    NULL, "min-gf-interval", 1,
    "min gf/arf frame interval (default 0, indicating in-built behavior)");
static const arg_def_t max_gf_interval = ARG_DEF(
    NULL, "max-gf-interval", 1,
    "max gf/arf frame interval (default 0, indicating in-built behavior)");
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static const struct arg_enum_list color_space_enum[] = {
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  { "unknown", AOM_CS_UNKNOWN },
  { "bt601", AOM_CS_BT_601 },
  { "bt709", AOM_CS_BT_709 },
  { "smpte170", AOM_CS_SMPTE_170 },
  { "smpte240", AOM_CS_SMPTE_240 },
  { "bt2020", AOM_CS_BT_2020 },
  { "reserved", AOM_CS_RESERVED },
  { "sRGB", AOM_CS_SRGB },
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  { NULL, 0 }
};

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static const arg_def_t input_color_space =
    ARG_DEF_ENUM(NULL, "color-space", 1, "The color space of input content:",
                 color_space_enum);
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static const struct arg_enum_list tune_content_enum[] = {
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  { "default", AOM_CONTENT_DEFAULT },
  { "screen", AOM_CONTENT_SCREEN },
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  { NULL, 0 }
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};

static const arg_def_t tune_content = ARG_DEF_ENUM(
    NULL, "tune-content", 1, "Tune content type", tune_content_enum);
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#endif
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#if CONFIG_AV1_ENCODER
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#if CONFIG_EXT_PARTITION
static const struct arg_enum_list superblock_size_enum[] = {
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  { "dynamic", AOM_SUPERBLOCK_SIZE_DYNAMIC },
  { "64", AOM_SUPERBLOCK_SIZE_64X64 },
  { "128", AOM_SUPERBLOCK_SIZE_128X128 },
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  { NULL, 0 }
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};
static const arg_def_t superblock_size = ARG_DEF_ENUM(
    NULL, "sb-size", 1, "Superblock size to use", superblock_size_enum);
#endif  // CONFIG_EXT_PARTITION

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static const arg_def_t *av1_args[] = { &cpu_used_av1,
                                       &auto_altref,
                                       &sharpness,
                                       &static_thresh,
                                       &tile_cols,
                                       &tile_rows,
                                       &arnr_maxframes,
                                       &arnr_strength,
                                       &arnr_type,
                                       &tune_ssim,
                                       &cq_level,
                                       &max_intra_rate_pct,
                                       &max_inter_rate_pct,
                                       &gf_cbr_boost_pct,
                                       &lossless,
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#if CONFIG_AOM_QM
                                       &enable_qm,
                                       &qm_min,
                                       &qm_max,
#endif
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                                       &frame_parallel_decoding,
                                       &aq_mode,
                                       &frame_periodic_boost,
                                       &noise_sens,
                                       &tune_content,
                                       &input_color_space,
                                       &min_gf_interval,
                                       &max_gf_interval,
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#if CONFIG_EXT_PARTITION
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                                       &superblock_size,
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#endif  // CONFIG_EXT_PARTITION
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#if CONFIG_AOM_HIGHBITDEPTH
                                       &bitdeptharg,
                                       &inbitdeptharg,
#endif  // CONFIG_AOM_HIGHBITDEPTH
                                       NULL };
static const int av1_arg_ctrl_map[] = { AOME_SET_CPUUSED,
                                        AOME_SET_ENABLEAUTOALTREF,
                                        AOME_SET_SHARPNESS,
                                        AOME_SET_STATIC_THRESHOLD,
                                        AV1E_SET_TILE_COLUMNS,
                                        AV1E_SET_TILE_ROWS,
                                        AOME_SET_ARNR_MAXFRAMES,
                                        AOME_SET_ARNR_STRENGTH,
                                        AOME_SET_ARNR_TYPE,
                                        AOME_SET_TUNING,
                                        AOME_SET_CQ_LEVEL,
                                        AOME_SET_MAX_INTRA_BITRATE_PCT,
                                        AV1E_SET_MAX_INTER_BITRATE_PCT,
                                        AV1E_SET_GF_CBR_BOOST_PCT,
                                        AV1E_SET_LOSSLESS,
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#if CONFIG_AOM_QM
                                        AV1E_SET_ENABLE_QM,
                                        AV1E_SET_QM_MIN,
                                        AV1E_SET_QM_MAX,
#endif
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                                        AV1E_SET_FRAME_PARALLEL_DECODING,
                                        AV1E_SET_AQ_MODE,
                                        AV1E_SET_FRAME_PERIODIC_BOOST,
                                        AV1E_SET_NOISE_SENSITIVITY,
                                        AV1E_SET_TUNE_CONTENT,
                                        AV1E_SET_COLOR_SPACE,
                                        AV1E_SET_MIN_GF_INTERVAL,
                                        AV1E_SET_MAX_GF_INTERVAL,
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#if CONFIG_EXT_PARTITION
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                                        AV1E_SET_SUPERBLOCK_SIZE,
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#endif  // CONFIG_EXT_PARTITION
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                                        0 };
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#endif

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static const arg_def_t *no_args[] = { NULL };

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void usage_exit(void) {
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  int i;
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  const int num_encoder = get_aom_encoder_count();
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  fprintf(stderr, "Usage: %s <options> -o dst_filename src_filename \n",
          exec_name);

  fprintf(stderr, "\nOptions:\n");
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  arg_show_usage(stderr, main_args);
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  fprintf(stderr, "\nEncoder Global Options:\n");
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  arg_show_usage(stderr, global_args);
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  fprintf(stderr, "\nRate Control Options:\n");
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  arg_show_usage(stderr, rc_args);
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  fprintf(stderr, "\nTwopass Rate Control Options:\n");
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  arg_show_usage(stderr, rc_twopass_args);
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  fprintf(stderr, "\nKeyframe Placement Options:\n");
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  arg_show_usage(stderr, kf_args);
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#if CONFIG_AV1_ENCODER
  fprintf(stderr, "\nAV1 Specific Options:\n");
  arg_show_usage(stderr, av1_args);
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#endif
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  fprintf(stderr,
          "\nStream timebase (--timebase):\n"
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          "  The desired precision of timestamps in the output, expressed\n"
          "  in fractional seconds. Default is 1/1000.\n");
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  fprintf(stderr, "\nIncluded encoders:\n\n");
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  for (i = 0; i < num_encoder; ++i) {
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    const AvxInterface *const encoder = get_aom_encoder_by_index(i);
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    const char *defstr = (i == (num_encoder - 1)) ? "(default)" : "";
    fprintf(stderr, "    %-6s - %s %s\n", encoder->name,
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            aom_codec_iface_name(encoder->codec_interface()), defstr);
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  }
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  fprintf(stderr, "\n        ");
  fprintf(stderr, "Use --codec to switch to a non-default encoder.\n\n");
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  exit(EXIT_FAILURE);
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}

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#define mmin(a, b) ((a) < (b) ? (a) : (b))
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#if CONFIG_AOM_HIGHBITDEPTH
static void find_mismatch_high(const aom_image_t *const img1,
                               const aom_image_t *const img2, int yloc[4],
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                               int uloc[4], int vloc[4]) {
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  uint16_t *plane1, *plane2;
  uint32_t stride1, stride2;
  const uint32_t bsize = 64;
  const uint32_t bsizey = bsize >> img1->y_chroma_shift;
  const uint32_t bsizex = bsize >> img1->x_chroma_shift;
  const uint32_t c_w =
      (img1->d_w + img1->x_chroma_shift) >> img1->x_chroma_shift;
  const uint32_t c_h =
      (img1->d_h + img1->y_chroma_shift) >> img1->y_chroma_shift;
  int match = 1;
  uint32_t i, j;
  yloc[0] = yloc[1] = yloc[2] = yloc[3] = -1;
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  plane1 = (uint16_t *)img1->planes[AOM_PLANE_Y];
  plane2 = (uint16_t *)img2->planes[AOM_PLANE_Y];
  stride1 = img1->stride[AOM_PLANE_Y] / 2;
  stride2 = img2->stride[AOM_PLANE_Y] / 2;
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  for (i = 0, match = 1; match && i < img1->d_h; i += bsize) {
    for (j = 0; match && j < img1->d_w; j += bsize) {
      int k, l;
      const int si = mmin(i + bsize, img1->d_h) - i;
      const int sj = mmin(j + bsize, img1->d_w) - j;
      for (k = 0; match && k < si; ++k) {
        for (l = 0; match && l < sj; ++l) {
          if (*(plane1 + (i + k) * stride1 + j + l) !=
              *(plane2 + (i + k) * stride2 + j + l)) {
            yloc[0] = i + k;
            yloc[1] = j + l;
            yloc[2] = *(plane1 + (i + k) * stride1 + j + l);
            yloc[3] = *(plane2 + (i + k) * stride2 + j + l);
            match = 0;
            break;
          }
        }
      }
    }
  }

  uloc[0] = uloc[1] = uloc[2] = uloc[3] = -1;
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  plane1 = (uint16_t *)img1->planes[AOM_PLANE_U];
  plane2 = (uint16_t *)img2->planes[AOM_PLANE_U];
  stride1 = img1->stride[AOM_PLANE_U] / 2;
  stride2 = img2->stride[AOM_PLANE_U] / 2;
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  for (i = 0, match = 1; match && i < c_h; i += bsizey) {
    for (j = 0; match && j < c_w; j += bsizex) {
      int k, l;
      const int si = mmin(i + bsizey, c_h - i);
      const int sj = mmin(j + bsizex, c_w - j);
      for (k = 0; match && k < si; ++k) {
        for (l = 0; match && l < sj; ++l) {
          if (*(plane1 + (i + k) * stride1 + j + l) !=
              *(plane2 + (i + k) * stride2 + j + l)) {
            uloc[0] = i + k;
            uloc[1] = j + l;
            uloc[2] = *(plane1 + (i + k) * stride1 + j + l);
            uloc[3] = *(plane2 + (i + k) * stride2 + j + l);
            match = 0;
            break;
          }
        }
      }
    }
  }

  vloc[0] = vloc[1] = vloc[2] = vloc[3] = -1;
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  plane1 = (uint16_t *)img1->planes[AOM_PLANE_V];
  plane2 = (uint16_t *)img2->planes[AOM_PLANE_V];
  stride1 = img1->stride[AOM_PLANE_V] / 2;
  stride2 = img2->stride[AOM_PLANE_V] / 2;
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  for (i = 0, match = 1; match && i < c_h; i += bsizey) {
    for (j = 0; match && j < c_w; j += bsizex) {
      int k, l;
      const int si = mmin(i + bsizey, c_h - i);
      const int sj = mmin(j + bsizex, c_w - j);
      for (k = 0; match && k < si; ++k) {
        for (l = 0; match && l < sj; ++l) {
          if (*(plane1 + (i + k) * stride1 + j + l) !=
              *(plane2 + (i + k) * stride2 + j + l)) {
            vloc[0] = i + k;
            vloc[1] = j + l;
            vloc[2] = *(plane1 + (i + k) * stride1 + j + l);
            vloc[3] = *(plane2 + (i + k) * stride2 + j + l);
            match = 0;
            break;
          }
        }
      }
    }
  }
}
#endif

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static void find_mismatch(const aom_image_t *const img1,
                          const aom_image_t *const img2, int yloc[4],
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                          int uloc[4], int vloc[4]) {
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  const uint32_t bsize = 64;
  const uint32_t bsizey = bsize >> img1->y_chroma_shift;
  const uint32_t bsizex = bsize >> img1->x_chroma_shift;
  const uint32_t c_w =
      (img1->d_w + img1->x_chroma_shift) >> img1->x_chroma_shift;
  const uint32_t c_h =
      (img1->d_h + img1->y_chroma_shift) >> img1->y_chroma_shift;
  int match = 1;
  uint32_t i, j;
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  yloc[0] = yloc[1] = yloc[2] = yloc[3] = -1;
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  for (i = 0, match = 1; match && i < img1->d_h; i += bsize) {
    for (j = 0; match && j < img1->d_w; j += bsize) {
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      int k, l;
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      const int si = mmin(i + bsize, img1->d_h) - i;
      const int sj = mmin(j + bsize, img1->d_w) - j;
      for (k = 0; match && k < si; ++k) {
        for (l = 0; match && l < sj; ++l) {
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          if (*(img1->planes[AOM_PLANE_Y] +
                (i + k) * img1->stride[AOM_PLANE_Y] + j + l) !=
              *(img2->planes[AOM_PLANE_Y] +
                (i + k) * img2->stride[AOM_PLANE_Y] + j + l)) {
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            yloc[0] = i + k;
            yloc[1] = j + l;
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            yloc[2] = *(img1->planes[AOM_PLANE_Y] +
                        (i + k) * img1->stride[AOM_PLANE_Y] + j + l);
            yloc[3] = *(img2->planes[AOM_PLANE_Y] +
                        (i + k) * img2->stride[AOM_PLANE_Y] + j + l);
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            match = 0;
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            break;
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          }
        }
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      }
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    }
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  }
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  uloc[0] = uloc[1] = uloc[2] = uloc[3] = -1;
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  for (i = 0, match = 1; match && i < c_h; i += bsizey) {
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    for (j = 0; match && j < c_w; j += bsizex) {
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      int k, l;
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      const int si = mmin(i + bsizey, c_h - i);
      const int sj = mmin(j + bsizex, c_w - j);
      for (k = 0; match && k < si; ++k) {
        for (l = 0; match && l < sj; ++l) {
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          if (*(img1->planes[AOM_PLANE_U] +
                (i + k) * img1->stride[AOM_PLANE_U] + j + l) !=
              *(img2->planes[AOM_PLANE_U] +
                (i + k) * img2->stride[AOM_PLANE_U] + j + l)) {
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            uloc[0] = i + k;
            uloc[1] = j + l;
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            uloc[2] = *(img1->planes[AOM_PLANE_U] +
                        (i + k) * img1->stride[AOM_PLANE_U] + j + l);
            uloc[3] = *(img2->planes[AOM_PLANE_U] +
                        (i + k) * img2->stride[AOM_PLANE_U] + j + l);
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            match = 0;
            break;
          }
        }
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      }
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    }
  }
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  vloc[0] = vloc[1] = vloc[2] = vloc[3] = -1;
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  for (i = 0, match = 1; match && i < c_h; i += bsizey) {
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    for (j = 0; match && j < c_w; j += bsizex) {
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      int k, l;
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      const int si = mmin(i + bsizey, c_h - i);
      const int sj = mmin(j + bsizex, c_w - j);
      for (k = 0; match && k < si; ++k) {
        for (l = 0; match && l < sj; ++l) {
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          if (*(img1->planes[AOM_PLANE_V] +
                (i + k) * img1->stride[AOM_PLANE_V] + j + l) !=
              *(img2->planes[AOM_PLANE_V] +
                (i + k) * img2->stride[AOM_PLANE_V] + j + l)) {
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            vloc[0] = i + k;
            vloc[1] = j + l;
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            vloc[2] = *(img1->planes[AOM_PLANE_V] +
                        (i + k) * img1->stride[AOM_PLANE_V] + j + l);
            vloc[3] = *(img2->planes[AOM_PLANE_V] +
                        (i + k) * img2->stride[AOM_PLANE_V] + j + l);
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            match = 0;
            break;
          }
        }
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      }
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    }
  }
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}

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static int compare_img(const aom_image_t *const img1,
                       const aom_image_t *const img2) {
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  uint32_t l_w = img1->d_w;
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  uint32_t c_w = (img1->d_w + img1->x_chroma_shift) >> img1->x_chroma_shift;
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  const uint32_t c_h =
      (img1->d_h + img1->y_chroma_shift) >> img1->y_chroma_shift;
  uint32_t i;
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  int match = 1;
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  match &= (img1->fmt == img2->fmt);
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  match &= (img1->d_w == img2->d_w);
  match &= (img1->d_h == img2->d_h);
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#if CONFIG_AOM_HIGHBITDEPTH
  if (img1->fmt & AOM_IMG_FMT_HIGHBITDEPTH) {
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    l_w *= 2;
    c_w *= 2;
  }
#endif
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  for (i = 0; i < img1->d_h; ++i)
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    match &= (memcmp(img1->planes[AOM_PLANE_Y] + i * img1->stride[AOM_PLANE_Y],
                     img2->planes[AOM_PLANE_Y] + i * img2->stride[AOM_PLANE_Y],
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                     l_w) == 0);
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  for (i = 0; i < c_h; ++i)
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    match &= (memcmp(img1->planes[AOM_PLANE_U] + i * img1->stride[AOM_PLANE_U],
                     img2->planes[AOM_PLANE_U] + i * img2->stride[AOM_PLANE_U],
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                     c_w) == 0);
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  for (i = 0; i < c_h; ++i)
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    match &= (memcmp(img1->planes[AOM_PLANE_V] + i * img1->stride[AOM_PLANE_V],
                     img2->planes[AOM_PLANE_V] + i * img2->stride[AOM_PLANE_V],
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                     c_w) == 0);
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  return match;
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}

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#define NELEMENTS(x) (sizeof(x) / sizeof(x[0]))
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#if CONFIG_AV1_ENCODER
#define ARG_CTRL_CNT_MAX NELEMENTS(av1_arg_ctrl_map)
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#endif
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#if !CONFIG_WEBM_IO
typedef int stereo_format_t;
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struct WebmOutputContext {
  int debug;
};
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#endif

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/* Per-stream configuration */
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struct stream_config {
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  struct aom_codec_enc_cfg cfg;
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  const char *out_fn;
  const char *stats_fn;
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#if CONFIG_FP_MB_STATS
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  const char *fpmb_stats_fn;
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#endif
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  stereo_format_t stereo_fmt;
  int arg_ctrls[ARG_CTRL_CNT_MAX][2];
  int arg_ctrl_cnt;
  int write_webm;
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#if CONFIG_AOM_HIGHBITDEPTH
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  // whether to use 16bit internal buffers
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  int use_16bit_internal;
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#endif
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};

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struct stream_state {
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  int index;
  struct stream_state *next;
  struct stream_config config;
  FILE *file;
  struct rate_hist *rate_hist;
  struct WebmOutputContext webm_ctx;
  uint64_t psnr_sse_total;
  uint64_t psnr_samples_total;
  double psnr_totals[4];
  int psnr_count;
  int counts[64];
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  aom_codec_ctx_t encoder;
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  unsigned int frames_out;
  uint64_t cx_time;
  size_t nbytes;
  stats_io_t stats;
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#if CONFIG_FP_MB_STATS
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  stats_io_t fpmb_stats;
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#endif
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  struct aom_image *img;
  aom_codec_ctx_t decoder;
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  int mismatch_seen;
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};

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static void validate_positive_rational(const char *msg,
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                                       struct aom_rational *rat) {
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  if (rat->den < 0) {
    rat->num *= -1;
    rat->den *= -1;
  }
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  if (rat->num < 0) die("Error: %s must be positive\n", msg);
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  if (!rat->den) die("Error: %s has zero denominator\n", msg);
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}

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static void parse_global_config(struct AvxEncoderConfig *global, char **argv) {
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  char **argi, **argj;
  struct arg arg;
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  const int num_encoder = get_aom_encoder_count();
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  if (num_encoder < 1) die("Error: no valid encoder available\n");
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  /* Initialize default parameters */
  memset(global, 0, sizeof(*global));
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  global->codec = get_aom_encoder_by_index(num_encoder - 1);
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  global->passes = 0;
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  global->color_type = I420;
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  /* Assign default deadline to good quality */
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  global->deadline = AOM_DL_GOOD_QUALITY;
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  for (argi = argj = argv; (*argj = *argi); argi += arg.argv_step) {
    arg.argv_step = 1;

    if (arg_match(&arg, &codecarg, argi)) {
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      global->codec = get_aom_encoder_by_name(arg.val);
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      if (!global->codec)
        die("Error: Unrecognized argument (%s) to --codec\n", arg.val);
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    } else if (arg_match(&arg, &passes, argi)) {
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      global->passes = arg_parse_uint(&arg);
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      if (global->passes < 1 || global->passes > 2)
        die("Error: Invalid number of passes (%d)\n", global->passes);
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    } else if (arg_match(&arg, &pass_arg, argi)) {
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      global->pass = arg_parse_uint(&arg);

      if (global->pass < 1 || global->pass > 2)
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        die("Error: Invalid pass selected (%d)\n", global->pass);
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    } else if (arg_match(&arg, &usage, argi))
      global->usage = arg_parse_uint(&arg);
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    else if (arg_match(&arg, &deadline, argi))
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      global->deadline = arg_parse_uint(&arg);
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    else if (arg_match(&arg, &best_dl, argi))
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      global->deadline = AOM_DL_BEST_QUALITY;
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    else if (arg_match(&arg, &good_dl, argi))
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      global->deadline = AOM_DL_GOOD_QUALITY;
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    else if (arg_match(&arg, &rt_dl, argi))
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      global->deadline = AOM_DL_REALTIME;
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    else if (arg_match(&arg, &use_yv12, argi))
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      global->color_type = YV12;
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    else if (arg_match(&arg, &use_i420, argi))
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      global->color_type = I420;
    else if (arg_match(&arg, &use_i422, argi))
      global->color_type = I422;
    else if (arg_match(&arg, &use_i444, argi))
      global->color_type = I444;
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    else if (arg_match(&arg, &use_i440, argi))
      global->color_type = I440;
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    else if (arg_match(&arg, &quietarg, argi))
      global->quiet = 1;
    else if (arg_match(&arg, &verbosearg, argi))
      global->verbose = 1;
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    else if (arg_match(&arg, &limit, argi))
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      global->limit = arg_parse_uint(&arg);
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    else if (arg_match(&arg, &skip, argi))
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      global->skip_frames = arg_parse_uint(&arg);
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    else if (arg_match(&arg, &psnrarg, argi))
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      global->show_psnr = 1;
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    else if (arg_match(&arg, &recontest, argi))
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      global->test_decode = arg_parse_enum_or_int(&arg);
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    else if (arg_match(&arg, &framerate, argi)) {
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      global->framerate = arg_parse_rational(&arg);
      validate_positive_rational(arg.name, &global->framerate);
      global->have_framerate = 1;
    } else if (arg_match(&arg, &out_part, argi))
      global->out_part = 1;
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    else if (arg_match(&arg, &debugmode, argi))
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      global->debug = 1;
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    else if (arg_match(&arg, &q_hist_n, argi))
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      global->show_q_hist_buckets = arg_parse_uint(&arg);
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    else if (arg_match(&arg, &rate_hist_n, argi))
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      global->show_rate_hist_buckets = arg_parse_uint(&arg);
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    else if (arg_match(&arg, &disable_warnings, argi))
      global->disable_warnings = 1;
    else if (arg_match(&arg, &disable_warning_prompt, argi))
      global->disable_warning_prompt = 1;
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    else
      argj++;
  }
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  if (global->pass) {
    /* DWIM: Assume the user meant passes=2 if pass=2 is specified */
    if (global->pass > global->passes) {
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      warn("Assuming --pass=%d implies --passes=%d\n", global->pass,
           global->pass);
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      global->passes = global->pass;
    }
  }
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  /* Validate global config */
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  if (global->passes == 0) {
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#if CONFIG_AV1_ENCODER
    // Make default AV1 passes = 2 until there is a better quality 1-pass
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    // encoder
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    if (global->codec != NULL && global->codec->name != NULL)
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      global->passes = (strcmp(global->codec->name, "av1") == 0 &&
                        global->deadline != AOM_DL_REALTIME)
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                           ? 2
                           : 1;
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#else
    global->passes = 1;
#endif
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  }
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  if (global->deadline == AOM_DL_REALTIME && global->passes > 1) {
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    warn("Enforcing one-pass encoding in realtime mode\n");
    global->passes = 1;
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  }
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}

973
static void open_input_file(struct AvxInputContext *input) {
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  /* Parse certain options from the input file, if possible */
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  input->file = strcmp(input->filename, "-") ? fopen(input->filename, "rb")
                                             : set_binary_mode(stdin);
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  if (!input->file) fatal("Failed to open input file");
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  if (!fseeko(input->file, 0, SEEK_END)) {
    /* Input file is seekable. Figure out how long it is, so we can get
     * progress info.
     */
    input->length = ftello(input->file);
    rewind(input->file);
  }

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  /* Default to 1:1 pixel aspect ratio. */
  input->pixel_aspect_ratio.numerator = 1;
  input->pixel_aspect_ratio.denominator = 1;

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  /* For RAW input sources, these bytes will applied on the first frame
   *  in read_frame().
   */
  input->detect.buf_read = fread(input->detect.buf, 1, 4, input->file);
  input->detect.position = 0;

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  if (input->detect.buf_read == 4 && file_is_y4m(input->detect.buf)) {
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    if (y4m_input_open(&input->y4m, input->file, input->detect.buf, 4,
                       input->only_i420) >= 0) {
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      input->file_type = FILE_TYPE_Y4M;
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      input->width = input->y4m.pic_w;
      input->height = input->y4m.pic_h;
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      input->pixel_aspect_ratio.numerator = input->y4m.par_n;
      input->pixel_aspect_ratio.denominator = input->y4m.par_d;
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      input->framerate.numerator = input->y4m.fps_n;
      input->framerate.denominator = input->y4m.fps_d;
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      input->fmt = input->y4m.aom_fmt;
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      input->bit_depth = input->y4m.bit_depth;
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    } else
      fatal("Unsupported Y4M stream.");
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  } else if (input->detect.buf_read == 4 && fourcc_is_ivf(input->detect.buf)) {
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    fatal("IVF is not supported as input.");
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  } else {
    input->file_type = FILE_TYPE_RAW;
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  }
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}

1019
static void close_input_file(struct AvxInputContext *input) {
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  fclose(input->file);
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  if (input->file_type == FILE_TYPE_Y4M) y4m_input_close(&input->y4m);
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}

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static struct stream_state *new_stream(struct AvxEncoderConfig *global,
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                                       struct stream_state *prev) {
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  struct stream_state *stream;

  stream = calloc(1, sizeof(*stream));
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  if (stream == NULL) {
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    fatal("Failed to allocate new stream.");
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  }

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  if (prev) {
    memcpy(stream, prev, sizeof(*stream));
    stream->index++;
    prev->next = stream;
  } else {
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    aom_codec_err_t res;
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    /* Populate encoder configuration */
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    res = aom_codec_enc_config_default(global->codec->codec_interface(),
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                                       &stream->config.cfg, global->usage);
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    if (res) fatal("Failed to get config: %s\n", aom_codec_err_to_string(res));
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    /* Change the default timebase to a high enough value so that the
     * encoder will always create strictly increasing timestamps.
     */
    stream->config.cfg.g_timebase.den = 1000;
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    /* Never use the library's default resolution, require it be parsed
     * from the file or set on the command line.
     */
    stream->config.cfg.g_w = 0;
    stream->config.cfg.g_h = 0;
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    /* Initialize remaining stream parameters */
    stream->config.write_webm = 1;
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#if CONFIG_WEBM_IO
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    stream->config.stereo_fmt = STEREO_FORMAT_MONO;
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    stream->webm_ctx.last_pts_ns = -1;
    stream->webm_ctx.writer = NULL;
    stream->webm_ctx.segment = NULL;
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#endif
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    /* Allows removal of the application version from the EBML tags */
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    stream->webm_ctx.debug = global->debug;
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    /* Default lag_in_frames is 0 in realtime mode */
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    if (global->deadline == AOM_DL_REALTIME)
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      stream->config.cfg.g_lag_in_frames = 0;
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  }
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  /* Output files must be specified for each stream */
  stream->config