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@ -87,6 +87,7 @@ static const AVOption v360_options[] = { |
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{ "ball", "ball", 0, AV_OPT_TYPE_CONST, {.i64=BALL}, 0, 0, FLAGS, "out" }, |
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{ "hammer", "hammer", 0, AV_OPT_TYPE_CONST, {.i64=HAMMER}, 0, 0, FLAGS, "out" }, |
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{"sinusoidal", "sinusoidal", 0, AV_OPT_TYPE_CONST, {.i64=SINUSOIDAL}, 0, 0, FLAGS, "out" }, |
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{ "fisheye", "fisheye", 0, AV_OPT_TYPE_CONST, {.i64=FISHEYE}, 0, 0, FLAGS, "out" }, |
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{ "interp", "set interpolation method", OFFSET(interp), AV_OPT_TYPE_INT, {.i64=BILINEAR}, 0, NB_INTERP_METHODS-1, FLAGS, "interp" }, |
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{ "near", "nearest neighbour", 0, AV_OPT_TYPE_CONST, {.i64=NEAREST}, 0, 0, FLAGS, "interp" }, |
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{ "nearest", "nearest neighbour", 0, AV_OPT_TYPE_CONST, {.i64=NEAREST}, 0, 0, FLAGS, "interp" }, |
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@ -2105,6 +2106,50 @@ static void flat_to_xyz(const V360Context *s, |
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normalize_vector(vec); |
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} |
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/**
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* Prepare data for processing fisheye output format. |
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* |
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* @param ctx filter context |
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* |
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* @return error code |
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*/ |
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static int prepare_fisheye_out(AVFilterContext *ctx) |
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{ |
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V360Context *s = ctx->priv; |
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s->flat_range[0] = FFMIN(s->h_fov, 359.f) / 180.f; |
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s->flat_range[1] = FFMIN(s->v_fov, 359.f) / 180.f; |
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return 0; |
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} |
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/**
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* Calculate 3D coordinates on sphere for corresponding frame position in fisheye format. |
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* |
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* @param s filter private context |
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* @param i horizontal position on frame [0, width) |
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* @param j vertical position on frame [0, height) |
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* @param width frame width |
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* @param height frame height |
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* @param vec coordinates on sphere |
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*/ |
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static void fisheye_to_xyz(const V360Context *s, |
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int i, int j, int width, int height, |
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float *vec) |
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{ |
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const float uf = s->flat_range[0] * ((2.f * i) / width - 1.f); |
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const float vf = s->flat_range[1] * ((2.f * j) / height - 1.f); |
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const float phi = -atan2f(vf, uf); |
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const float theta = -M_PI_2 * (1.f - hypotf(uf, vf)); |
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vec[0] = cosf(theta) * cosf(phi); |
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vec[1] = cosf(theta) * sinf(phi); |
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vec[2] = sinf(theta); |
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normalize_vector(vec); |
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} |
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/**
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* Calculate 3D coordinates on sphere for corresponding frame position in dual fisheye format. |
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* |
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@ -2641,8 +2686,9 @@ static int config_output(AVFilterLink *outlink) |
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wf = w; |
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hf = h / 9.f * 8.f; |
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break; |
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case FISHEYE: |
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case FLAT: |
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av_log(ctx, AV_LOG_ERROR, "Flat format is not accepted as input.\n"); |
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av_log(ctx, AV_LOG_ERROR, "Supplied format is not accepted as input.\n"); |
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return AVERROR(EINVAL); |
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case DUAL_FISHEYE: |
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s->in_transform = xyz_to_dfisheye; |
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@ -2774,6 +2820,12 @@ static int config_output(AVFilterLink *outlink) |
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w = roundf(wf); |
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h = roundf(hf); |
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break; |
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case FISHEYE: |
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s->out_transform = fisheye_to_xyz; |
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prepare_out = prepare_fisheye_out; |
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w = roundf(wf * 0.5f); |
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h = roundf(hf); |
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break; |
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default: |
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av_log(ctx, AV_LOG_ERROR, "Specified output format is not handled.\n"); |
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return AVERROR_BUG; |
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