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resize

Bilinear

Bilinear(**kwargs: Any)

Bases: ZimgComplexKernel

Built-in bilinear resizer.

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def __init__(self, **kwargs: Any) -> None:
    self.kwargs = kwargs

descale_function class-attribute instance-attribute

descale_function = Debilinear

kwargs instance-attribute

kwargs: KwargsT = kwargs

Arguments passed to the internal scale function

resample_function class-attribute instance-attribute

resample_function = Bilinear

scale_function class-attribute instance-attribute

scale_function = Bilinear

descale

descale(
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    shift: ShiftT = (0, 0),
    *,
    border_handling: BorderHandling = MIRROR,
    sample_grid_model: SampleGridModel = MATCH_EDGES,
    field_based: FieldBased | None = None,
    linear: bool = False,
    sigmoid: bool | tuple[Slope, Center] = False,
    blur: float = 1.0,
    ignore_mask: VideoNode | None = None,
    **kwargs: Any
) -> ConstantFormatVideoNode
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@inject_self.cached
@inject_kwargs_params
def descale(
    self, clip: vs.VideoNode, width: int | None = None, height: int | None = None,
    shift: ShiftT = (0, 0),
    *,
    # `border_handling`, `sample_grid_model` and `field_based` from Descaler
    border_handling: BorderHandling = BorderHandling.MIRROR,
    sample_grid_model: SampleGridModel = SampleGridModel.MATCH_EDGES,
    field_based: FieldBased | None = None,
    # `linear` and `sigmoid` from LinearDescaler
    linear: bool = False, sigmoid: bool | tuple[Slope, Center] = False,
    # `blur` and `ignore_mask` parameters from ZimgDescaler
    blur: float = 1.0, ignore_mask: vs.VideoNode | None = None,
    **kwargs: Any
) -> ConstantFormatVideoNode:
    ...

ensure_obj classmethod

ensure_obj(
    kernel: KernelT | None = None, func_except: FuncExceptT | None = None
) -> Kernel
ensure_obj(
    kernel: ScalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Scaler
ensure_obj(
    kernel: DescalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Descaler
ensure_obj(
    kernel: ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Resampler
ensure_obj(
    kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Scaler | Descaler | Resampler | Kernel
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@classmethod
def ensure_obj(
    cls: type[Kernel], kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None
) -> Scaler | Descaler | Resampler | Kernel:
    from ..util import abstract_kernels
    return _base_ensure_obj(  # type: ignore
        cls, Kernel, kernel, UnknownKernelError, abstract_kernels, func_except
    )

from_param classmethod

from_param(
    kernel: KernelT | None = None, func_except: FuncExceptT | None = None
) -> type[Kernel]
from_param(
    kernel: ScalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Scaler]
from_param(
    kernel: DescalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Descaler]
from_param(
    kernel: ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Resampler]
from_param(
    kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Scaler] | type[Descaler] | type[Resampler] | type[Kernel]
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@classmethod
def from_param(
    cls: type[Kernel], kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None
) -> type[Scaler] | type[Descaler] | type[Resampler] | type[Kernel]:
    from ..util import abstract_kernels
    return _base_from_param(
        cls, Kernel, kernel, UnknownKernelError, abstract_kernels, func_except  # type: ignore
    )

get_clean_kwargs

get_clean_kwargs(*funcs: Callable[..., Any] | None) -> KwargsT
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def get_clean_kwargs(self, *funcs: Callable[..., Any] | None) -> KwargsT:
    return _clean_self_kwargs(funcs, self)

get_descale_args

get_descale_args(
    clip: VideoNode,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None,
    height: int | None = None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_descale_args(
    self, clip: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None, height: int | None = None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(src_top=shift[0], src_left=shift[1])
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(True, clip, width, height, **kwargs)
    )

get_implemented_funcs

get_implemented_funcs() -> tuple[Callable[..., Any], ...]
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def get_implemented_funcs(self) -> tuple[Callable[..., Any], ...]:
    return (self.shift, )  # type: ignore

get_params_args

get_params_args(
    is_descale: bool,
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    **kwargs: Any
) -> dict[str, Any]
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def get_params_args(
    self, is_descale: bool, clip: vs.VideoNode, width: int | None = None, height: int | None = None, **kwargs: Any
) -> dict[str, Any]:
    args = super().get_params_args(is_descale, clip, width, height, **kwargs)

    if not is_descale:
        for key in ('border_handling', 'ignore_mask'):
            args.pop(key, None)

    return args

get_resample_args

get_resample_args(
    clip: VideoNode,
    format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None,
    matrix_in: MatrixT | None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_resample_args(
    self, clip: vs.VideoNode, format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None, matrix_in: MatrixT | None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(
            format=get_video_format(format).id,
            matrix=Matrix.from_param(matrix),
            matrix_in=Matrix.from_param(matrix_in)
        )
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(False, clip, **kwargs)
    )

get_scale_args

get_scale_args(
    clip: VideoNode,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None,
    height: int | None = None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_scale_args(
    self, clip: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None, height: int | None = None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(src_top=shift[0], src_left=shift[1])
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(False, clip, width, height, **kwargs)
    )

kernel_radius

kernel_radius() -> int
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@inject_self.cached.property
def kernel_radius(self) -> int:
    return _default_kernel_radius(__class__, self)  # type: ignore

multi

multi(
    clip: VideoNode,
    multi: float = 2,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
def multi(
    self, clip: vs.VideoNode, multi: float = 2, shift: tuple[TopShift, LeftShift] = (0, 0), **kwargs: Any
) -> vs.VideoNode:
    assert check_variable_resolution(clip, self.multi)

    dst_width, dst_height = ceil(clip.width * multi), ceil(clip.height * multi)

    if max(dst_width, dst_height) <= 0.0:
        raise CustomValueError(
            'Multiplying the resolution by "multi" must result in a positive resolution!', self.multi, multi
        )

    return self.scale(clip, dst_width, dst_height, shift, **kwargs)

pretty_string

pretty_string() -> str
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@inject_self.cached.property
def pretty_string(self) -> str:
    attrs = {}

    if hasattr(self, 'b'):
        attrs.update(b=self.b, c=self.c)
    elif hasattr(self, 'taps'):
        attrs['taps'] = self.taps

    if hasattr(self, 'kwargs'):
        attrs.update(self.kwargs)

    return f"{self.__class__.__name__}{' (' + ', '.join(f'{k}={v}' for k, v in attrs.items()) + ')' if attrs else ''}"

resample

resample(
    clip: VideoNode,
    format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None = None,
    matrix_in: MatrixT | None = None,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
@inject_kwargs_params
def resample(
    self, clip: vs.VideoNode, format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None = None, matrix_in: MatrixT | None = None, **kwargs: Any
) -> vs.VideoNode:
    return self.resample_function(
        clip, **_norm_props_enums(self.get_resample_args(clip, format, matrix, matrix_in, **kwargs))
    )

scale

scale(
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    *,
    border_handling: BorderHandling = MIRROR,
    sample_grid_model: SampleGridModel = MATCH_EDGES,
    sar: Sar | float | bool | None = None,
    dar: Dar | float | bool | None = None,
    dar_in: Dar | bool | float | None = None,
    keep_ar: bool | None = None,
    linear: bool = False,
    sigmoid: bool | tuple[Slope, Center] = False,
    blur: float = 1.0,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
@inject_kwargs_params
def scale(
    self, clip: vs.VideoNode, width: int | None = None, height: int | None = None,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    *,
    # `border_handling`, `sample_grid_model`, `sar`, `dar`, `dar_in` and `keep_ar` from KeepArScaler
    border_handling: BorderHandling = BorderHandling.MIRROR,
    sample_grid_model: SampleGridModel = SampleGridModel.MATCH_EDGES,
    sar: Sar | float | bool | None = None, dar: Dar | float | bool | None = None,
    dar_in: Dar | bool | float | None = None, keep_ar: bool | None = None,
    # `linear` and `sigmoid` from LinearScaler
    linear: bool = False, sigmoid: bool | tuple[Slope, Center] = False,
    # ZimgComplexKernel adds blur parameter
    blur: float = 1.0,
    **kwargs: Any
) -> vs.VideoNode:
    ...

shift

shift(
    clip: VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0), **kwargs: Any
) -> VideoNode
shift(
    clip: VideoNode,
    shift_top: float | list[float] = 0.0,
    shift_left: float | list[float] = 0.0,
    **kwargs: Any
) -> VideoNode
shift(
    clip: VideoNode,
    shifts_or_top: float | tuple[float, float] | list[float] | None = None,
    shift_left: float | list[float] | None = None,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached  # type: ignore
@inject_kwargs_params
def shift(
    self, clip: vs.VideoNode,
    shifts_or_top: float | tuple[float, float] | list[float] | None = None,
    shift_left: float | list[float] | None = None, **kwargs: Any
) -> vs.VideoNode:
    assert clip.format

    n_planes = clip.format.num_planes

    def _shift(src: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0)) -> vs.VideoNode:
        return Scaler.scale(self, src, src.width, src.height, shift, **kwargs)

    if not shifts_or_top and not shift_left:
        return _shift(clip)
    elif isinstance(shifts_or_top, tuple):
        return _shift(clip, shifts_or_top)
    elif isinstance(shifts_or_top, float) and isinstance(shift_left, float):
        return _shift(clip, (shifts_or_top, shift_left))

    if shifts_or_top is None:
        shifts_or_top = 0.0
    if shift_left is None:
        shift_left = 0.0

    shifts_top = shifts_or_top if isinstance(shifts_or_top, list) else [shifts_or_top]
    shifts_left = shift_left if isinstance(shift_left, list) else [shift_left]

    if not shifts_top:
        shifts_top = [0.0] * n_planes
    elif (ltop := len(shifts_top)) > n_planes:
        shifts_top = shifts_top[:n_planes]
    else:
        shifts_top += shifts_top[-1:] * (n_planes - ltop)

    if not shifts_left:
        shifts_left = [0.0] * n_planes
    elif (lleft := len(shifts_left)) > n_planes:
        shifts_left = shifts_left[:n_planes]
    else:
        shifts_left += shifts_left[-1:] * (n_planes - lleft)

    if len(set(shifts_top)) == len(set(shifts_left)) == 1 or n_planes == 1:
        return _shift(clip, (shifts_top[0], shifts_left[0]))

    planes = cast(list[vs.VideoNode], clip.std.SplitPlanes())

    shifted_planes = [
        plane if top == left == 0 else _shift(plane, (top, left))
        for plane, top, left in zip(planes, shifts_top, shifts_left)
    ]

    return core.std.ShufflePlanes(shifted_planes, [0, 0, 0], clip.format.color_family)

Lanczos

Lanczos(taps: int = 3, **kwargs: Any)

Bases: ZimgComplexKernel

Built-in lanczos resizer.

Dependencies:

  • VapourSynth-descale

Parameters:

  • taps

    (int, default: 3 ) –

    taps param for lanczos kernel

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def __init__(self, taps: int = 3, **kwargs: Any) -> None:
    self.taps = taps
    super().__init__(**kwargs)

descale_function class-attribute instance-attribute

descale_function = Delanczos

kwargs instance-attribute

kwargs: KwargsT = kwargs

Arguments passed to the internal scale function

resample_function class-attribute instance-attribute

resample_function = Lanczos

scale_function class-attribute instance-attribute

scale_function = Lanczos

taps instance-attribute

taps = taps

descale

descale(
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    shift: ShiftT = (0, 0),
    *,
    border_handling: BorderHandling = MIRROR,
    sample_grid_model: SampleGridModel = MATCH_EDGES,
    field_based: FieldBased | None = None,
    linear: bool = False,
    sigmoid: bool | tuple[Slope, Center] = False,
    blur: float = 1.0,
    ignore_mask: VideoNode | None = None,
    **kwargs: Any
) -> ConstantFormatVideoNode
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@inject_self.cached
@inject_kwargs_params
def descale(
    self, clip: vs.VideoNode, width: int | None = None, height: int | None = None,
    shift: ShiftT = (0, 0),
    *,
    # `border_handling`, `sample_grid_model` and `field_based` from Descaler
    border_handling: BorderHandling = BorderHandling.MIRROR,
    sample_grid_model: SampleGridModel = SampleGridModel.MATCH_EDGES,
    field_based: FieldBased | None = None,
    # `linear` and `sigmoid` from LinearDescaler
    linear: bool = False, sigmoid: bool | tuple[Slope, Center] = False,
    # `blur` and `ignore_mask` parameters from ZimgDescaler
    blur: float = 1.0, ignore_mask: vs.VideoNode | None = None,
    **kwargs: Any
) -> ConstantFormatVideoNode:
    ...

ensure_obj classmethod

ensure_obj(
    kernel: KernelT | None = None, func_except: FuncExceptT | None = None
) -> Kernel
ensure_obj(
    kernel: ScalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Scaler
ensure_obj(
    kernel: DescalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Descaler
ensure_obj(
    kernel: ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Resampler
ensure_obj(
    kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Scaler | Descaler | Resampler | Kernel
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@classmethod
def ensure_obj(
    cls: type[Kernel], kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None
) -> Scaler | Descaler | Resampler | Kernel:
    from ..util import abstract_kernels
    return _base_ensure_obj(  # type: ignore
        cls, Kernel, kernel, UnknownKernelError, abstract_kernels, func_except
    )

from_param classmethod

from_param(
    kernel: KernelT | None = None, func_except: FuncExceptT | None = None
) -> type[Kernel]
from_param(
    kernel: ScalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Scaler]
from_param(
    kernel: DescalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Descaler]
from_param(
    kernel: ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Resampler]
from_param(
    kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Scaler] | type[Descaler] | type[Resampler] | type[Kernel]
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@classmethod
def from_param(
    cls: type[Kernel], kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None
) -> type[Scaler] | type[Descaler] | type[Resampler] | type[Kernel]:
    from ..util import abstract_kernels
    return _base_from_param(
        cls, Kernel, kernel, UnknownKernelError, abstract_kernels, func_except  # type: ignore
    )

get_clean_kwargs

get_clean_kwargs(*funcs: Callable[..., Any] | None) -> KwargsT
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def get_clean_kwargs(self, *funcs: Callable[..., Any] | None) -> KwargsT:
    return _clean_self_kwargs(funcs, self)

get_descale_args

get_descale_args(
    clip: VideoNode,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None,
    height: int | None = None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_descale_args(
    self, clip: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None, height: int | None = None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(src_top=shift[0], src_left=shift[1])
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(True, clip, width, height, **kwargs)
    )

get_implemented_funcs

get_implemented_funcs() -> tuple[Callable[..., Any], ...]
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def get_implemented_funcs(self) -> tuple[Callable[..., Any], ...]:
    return (self.shift, )  # type: ignore

get_params_args

get_params_args(
    is_descale: bool,
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    **kwargs: Any
) -> dict[str, Any]
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def get_params_args(
    self, is_descale: bool, clip: vs.VideoNode, width: int | None = None, height: int | None = None, **kwargs: Any
) -> dict[str, Any]:
    args = super().get_params_args(is_descale, clip, width, height, **kwargs)
    if is_descale:
        return args | dict(taps=self.taps)
    return args | dict(filter_param_a=self.taps)

get_resample_args

get_resample_args(
    clip: VideoNode,
    format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None,
    matrix_in: MatrixT | None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_resample_args(
    self, clip: vs.VideoNode, format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None, matrix_in: MatrixT | None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(
            format=get_video_format(format).id,
            matrix=Matrix.from_param(matrix),
            matrix_in=Matrix.from_param(matrix_in)
        )
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(False, clip, **kwargs)
    )

get_scale_args

get_scale_args(
    clip: VideoNode,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None,
    height: int | None = None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_scale_args(
    self, clip: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None, height: int | None = None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(src_top=shift[0], src_left=shift[1])
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(False, clip, width, height, **kwargs)
    )

kernel_radius

kernel_radius() -> int
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@inject_self.cached.property
def kernel_radius(self) -> int:
    return ceil(self.taps)

multi

multi(
    clip: VideoNode,
    multi: float = 2,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
def multi(
    self, clip: vs.VideoNode, multi: float = 2, shift: tuple[TopShift, LeftShift] = (0, 0), **kwargs: Any
) -> vs.VideoNode:
    assert check_variable_resolution(clip, self.multi)

    dst_width, dst_height = ceil(clip.width * multi), ceil(clip.height * multi)

    if max(dst_width, dst_height) <= 0.0:
        raise CustomValueError(
            'Multiplying the resolution by "multi" must result in a positive resolution!', self.multi, multi
        )

    return self.scale(clip, dst_width, dst_height, shift, **kwargs)

pretty_string

pretty_string() -> str
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@inject_self.cached.property
def pretty_string(self) -> str:
    attrs = {}

    if hasattr(self, 'b'):
        attrs.update(b=self.b, c=self.c)
    elif hasattr(self, 'taps'):
        attrs['taps'] = self.taps

    if hasattr(self, 'kwargs'):
        attrs.update(self.kwargs)

    return f"{self.__class__.__name__}{' (' + ', '.join(f'{k}={v}' for k, v in attrs.items()) + ')' if attrs else ''}"

resample

resample(
    clip: VideoNode,
    format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None = None,
    matrix_in: MatrixT | None = None,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
@inject_kwargs_params
def resample(
    self, clip: vs.VideoNode, format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None = None, matrix_in: MatrixT | None = None, **kwargs: Any
) -> vs.VideoNode:
    return self.resample_function(
        clip, **_norm_props_enums(self.get_resample_args(clip, format, matrix, matrix_in, **kwargs))
    )

scale

scale(
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    *,
    border_handling: BorderHandling = MIRROR,
    sample_grid_model: SampleGridModel = MATCH_EDGES,
    sar: Sar | float | bool | None = None,
    dar: Dar | float | bool | None = None,
    dar_in: Dar | bool | float | None = None,
    keep_ar: bool | None = None,
    linear: bool = False,
    sigmoid: bool | tuple[Slope, Center] = False,
    blur: float = 1.0,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
@inject_kwargs_params
def scale(
    self, clip: vs.VideoNode, width: int | None = None, height: int | None = None,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    *,
    # `border_handling`, `sample_grid_model`, `sar`, `dar`, `dar_in` and `keep_ar` from KeepArScaler
    border_handling: BorderHandling = BorderHandling.MIRROR,
    sample_grid_model: SampleGridModel = SampleGridModel.MATCH_EDGES,
    sar: Sar | float | bool | None = None, dar: Dar | float | bool | None = None,
    dar_in: Dar | bool | float | None = None, keep_ar: bool | None = None,
    # `linear` and `sigmoid` from LinearScaler
    linear: bool = False, sigmoid: bool | tuple[Slope, Center] = False,
    # ZimgComplexKernel adds blur parameter
    blur: float = 1.0,
    **kwargs: Any
) -> vs.VideoNode:
    ...

shift

shift(
    clip: VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0), **kwargs: Any
) -> VideoNode
shift(
    clip: VideoNode,
    shift_top: float | list[float] = 0.0,
    shift_left: float | list[float] = 0.0,
    **kwargs: Any
) -> VideoNode
shift(
    clip: VideoNode,
    shifts_or_top: float | tuple[float, float] | list[float] | None = None,
    shift_left: float | list[float] | None = None,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached  # type: ignore
@inject_kwargs_params
def shift(
    self, clip: vs.VideoNode,
    shifts_or_top: float | tuple[float, float] | list[float] | None = None,
    shift_left: float | list[float] | None = None, **kwargs: Any
) -> vs.VideoNode:
    assert clip.format

    n_planes = clip.format.num_planes

    def _shift(src: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0)) -> vs.VideoNode:
        return Scaler.scale(self, src, src.width, src.height, shift, **kwargs)

    if not shifts_or_top and not shift_left:
        return _shift(clip)
    elif isinstance(shifts_or_top, tuple):
        return _shift(clip, shifts_or_top)
    elif isinstance(shifts_or_top, float) and isinstance(shift_left, float):
        return _shift(clip, (shifts_or_top, shift_left))

    if shifts_or_top is None:
        shifts_or_top = 0.0
    if shift_left is None:
        shift_left = 0.0

    shifts_top = shifts_or_top if isinstance(shifts_or_top, list) else [shifts_or_top]
    shifts_left = shift_left if isinstance(shift_left, list) else [shift_left]

    if not shifts_top:
        shifts_top = [0.0] * n_planes
    elif (ltop := len(shifts_top)) > n_planes:
        shifts_top = shifts_top[:n_planes]
    else:
        shifts_top += shifts_top[-1:] * (n_planes - ltop)

    if not shifts_left:
        shifts_left = [0.0] * n_planes
    elif (lleft := len(shifts_left)) > n_planes:
        shifts_left = shifts_left[:n_planes]
    else:
        shifts_left += shifts_left[-1:] * (n_planes - lleft)

    if len(set(shifts_top)) == len(set(shifts_left)) == 1 or n_planes == 1:
        return _shift(clip, (shifts_top[0], shifts_left[0]))

    planes = cast(list[vs.VideoNode], clip.std.SplitPlanes())

    shifted_planes = [
        plane if top == left == 0 else _shift(plane, (top, left))
        for plane, top, left in zip(planes, shifts_top, shifts_left)
    ]

    return core.std.ShufflePlanes(shifted_planes, [0, 0, 0], clip.format.color_family)

Point

Point(**kwargs: Any)

Bases: ZimgComplexKernel

Built-in point resizer.

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def __init__(self, **kwargs: Any) -> None:
    self.kwargs = kwargs

descale_function class-attribute instance-attribute

descale_function = Depoint

kwargs instance-attribute

kwargs: KwargsT = kwargs

Arguments passed to the internal scale function

resample_function class-attribute instance-attribute

resample_function = Point

scale_function class-attribute instance-attribute

scale_function = Point

descale

descale(
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    shift: ShiftT = (0, 0),
    *,
    border_handling: BorderHandling = MIRROR,
    sample_grid_model: SampleGridModel = MATCH_EDGES,
    field_based: FieldBased | None = None,
    linear: bool = False,
    sigmoid: bool | tuple[Slope, Center] = False,
    blur: float = 1.0,
    ignore_mask: VideoNode | None = None,
    **kwargs: Any
) -> ConstantFormatVideoNode
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@inject_self.cached
@inject_kwargs_params
def descale(
    self, clip: vs.VideoNode, width: int | None = None, height: int | None = None,
    shift: ShiftT = (0, 0),
    *,
    # `border_handling`, `sample_grid_model` and `field_based` from Descaler
    border_handling: BorderHandling = BorderHandling.MIRROR,
    sample_grid_model: SampleGridModel = SampleGridModel.MATCH_EDGES,
    field_based: FieldBased | None = None,
    # `linear` and `sigmoid` from LinearDescaler
    linear: bool = False, sigmoid: bool | tuple[Slope, Center] = False,
    # `blur` and `ignore_mask` parameters from ZimgDescaler
    blur: float = 1.0, ignore_mask: vs.VideoNode | None = None,
    **kwargs: Any
) -> ConstantFormatVideoNode:
    ...

ensure_obj classmethod

ensure_obj(
    kernel: KernelT | None = None, func_except: FuncExceptT | None = None
) -> Kernel
ensure_obj(
    kernel: ScalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Scaler
ensure_obj(
    kernel: DescalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Descaler
ensure_obj(
    kernel: ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Resampler
ensure_obj(
    kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> Scaler | Descaler | Resampler | Kernel
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@classmethod
def ensure_obj(
    cls: type[Kernel], kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None
) -> Scaler | Descaler | Resampler | Kernel:
    from ..util import abstract_kernels
    return _base_ensure_obj(  # type: ignore
        cls, Kernel, kernel, UnknownKernelError, abstract_kernels, func_except
    )

from_param classmethod

from_param(
    kernel: KernelT | None = None, func_except: FuncExceptT | None = None
) -> type[Kernel]
from_param(
    kernel: ScalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Scaler]
from_param(
    kernel: DescalerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Descaler]
from_param(
    kernel: ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Resampler]
from_param(
    kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None,
) -> type[Scaler] | type[Descaler] | type[Resampler] | type[Kernel]
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@classmethod
def from_param(
    cls: type[Kernel], kernel: ScalerT | DescalerT | ResamplerT | KernelT | None = None,
    func_except: FuncExceptT | None = None
) -> type[Scaler] | type[Descaler] | type[Resampler] | type[Kernel]:
    from ..util import abstract_kernels
    return _base_from_param(
        cls, Kernel, kernel, UnknownKernelError, abstract_kernels, func_except  # type: ignore
    )

get_clean_kwargs

get_clean_kwargs(*funcs: Callable[..., Any] | None) -> KwargsT
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def get_clean_kwargs(self, *funcs: Callable[..., Any] | None) -> KwargsT:
    return _clean_self_kwargs(funcs, self)

get_descale_args

get_descale_args(
    clip: VideoNode,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None,
    height: int | None = None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_descale_args(
    self, clip: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None, height: int | None = None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(src_top=shift[0], src_left=shift[1])
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(True, clip, width, height, **kwargs)
    )

get_implemented_funcs

get_implemented_funcs() -> tuple[Callable[..., Any], ...]
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def get_implemented_funcs(self) -> tuple[Callable[..., Any], ...]:
    return (self.shift, )  # type: ignore

get_params_args

get_params_args(
    is_descale: bool,
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    **kwargs: Any
) -> dict[str, Any]
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def get_params_args(
    self, is_descale: bool, clip: vs.VideoNode, width: int | None = None, height: int | None = None, **kwargs: Any
) -> dict[str, Any]:
    args = super().get_params_args(is_descale, clip, width, height, **kwargs)

    if not is_descale:
        for key in ('border_handling', 'ignore_mask'):
            args.pop(key, None)

    return args

get_resample_args

get_resample_args(
    clip: VideoNode,
    format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None,
    matrix_in: MatrixT | None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_resample_args(
    self, clip: vs.VideoNode, format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None, matrix_in: MatrixT | None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(
            format=get_video_format(format).id,
            matrix=Matrix.from_param(matrix),
            matrix_in=Matrix.from_param(matrix_in)
        )
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(False, clip, **kwargs)
    )

get_scale_args

get_scale_args(
    clip: VideoNode,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None,
    height: int | None = None,
    *funcs: Callable[..., Any],
    **kwargs: Any
) -> KwargsT
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@inject_kwargs_params
def get_scale_args(
    self, clip: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0),
    width: int | None = None, height: int | None = None,
    *funcs: Callable[..., Any], **kwargs: Any
) -> KwargsT:
    return (
        dict(src_top=shift[0], src_left=shift[1])
        | self.get_clean_kwargs(*funcs)
        | self.get_params_args(False, clip, width, height, **kwargs)
    )

kernel_radius

kernel_radius() -> int
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@inject_self.cached.property
def kernel_radius(self) -> int:
    return _default_kernel_radius(__class__, self)  # type: ignore

multi

multi(
    clip: VideoNode,
    multi: float = 2,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
def multi(
    self, clip: vs.VideoNode, multi: float = 2, shift: tuple[TopShift, LeftShift] = (0, 0), **kwargs: Any
) -> vs.VideoNode:
    assert check_variable_resolution(clip, self.multi)

    dst_width, dst_height = ceil(clip.width * multi), ceil(clip.height * multi)

    if max(dst_width, dst_height) <= 0.0:
        raise CustomValueError(
            'Multiplying the resolution by "multi" must result in a positive resolution!', self.multi, multi
        )

    return self.scale(clip, dst_width, dst_height, shift, **kwargs)

pretty_string

pretty_string() -> str
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@inject_self.cached.property
def pretty_string(self) -> str:
    attrs = {}

    if hasattr(self, 'b'):
        attrs.update(b=self.b, c=self.c)
    elif hasattr(self, 'taps'):
        attrs['taps'] = self.taps

    if hasattr(self, 'kwargs'):
        attrs.update(self.kwargs)

    return f"{self.__class__.__name__}{' (' + ', '.join(f'{k}={v}' for k, v in attrs.items()) + ')' if attrs else ''}"

resample

resample(
    clip: VideoNode,
    format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None = None,
    matrix_in: MatrixT | None = None,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
@inject_kwargs_params
def resample(
    self, clip: vs.VideoNode, format: int | VideoFormatT | HoldsVideoFormatT,
    matrix: MatrixT | None = None, matrix_in: MatrixT | None = None, **kwargs: Any
) -> vs.VideoNode:
    return self.resample_function(
        clip, **_norm_props_enums(self.get_resample_args(clip, format, matrix, matrix_in, **kwargs))
    )

scale

scale(
    clip: VideoNode,
    width: int | None = None,
    height: int | None = None,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    *,
    border_handling: BorderHandling = MIRROR,
    sample_grid_model: SampleGridModel = MATCH_EDGES,
    sar: Sar | float | bool | None = None,
    dar: Dar | float | bool | None = None,
    dar_in: Dar | bool | float | None = None,
    keep_ar: bool | None = None,
    linear: bool = False,
    sigmoid: bool | tuple[Slope, Center] = False,
    blur: float = 1.0,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached
@inject_kwargs_params
def scale(
    self, clip: vs.VideoNode, width: int | None = None, height: int | None = None,
    shift: tuple[TopShift, LeftShift] = (0, 0),
    *,
    # `border_handling`, `sample_grid_model`, `sar`, `dar`, `dar_in` and `keep_ar` from KeepArScaler
    border_handling: BorderHandling = BorderHandling.MIRROR,
    sample_grid_model: SampleGridModel = SampleGridModel.MATCH_EDGES,
    sar: Sar | float | bool | None = None, dar: Dar | float | bool | None = None,
    dar_in: Dar | bool | float | None = None, keep_ar: bool | None = None,
    # `linear` and `sigmoid` from LinearScaler
    linear: bool = False, sigmoid: bool | tuple[Slope, Center] = False,
    # ZimgComplexKernel adds blur parameter
    blur: float = 1.0,
    **kwargs: Any
) -> vs.VideoNode:
    ...

shift

shift(
    clip: VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0), **kwargs: Any
) -> VideoNode
shift(
    clip: VideoNode,
    shift_top: float | list[float] = 0.0,
    shift_left: float | list[float] = 0.0,
    **kwargs: Any
) -> VideoNode
shift(
    clip: VideoNode,
    shifts_or_top: float | tuple[float, float] | list[float] | None = None,
    shift_left: float | list[float] | None = None,
    **kwargs: Any
) -> VideoNode
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@inject_self.cached  # type: ignore
@inject_kwargs_params
def shift(
    self, clip: vs.VideoNode,
    shifts_or_top: float | tuple[float, float] | list[float] | None = None,
    shift_left: float | list[float] | None = None, **kwargs: Any
) -> vs.VideoNode:
    assert clip.format

    n_planes = clip.format.num_planes

    def _shift(src: vs.VideoNode, shift: tuple[TopShift, LeftShift] = (0, 0)) -> vs.VideoNode:
        return Scaler.scale(self, src, src.width, src.height, shift, **kwargs)

    if not shifts_or_top and not shift_left:
        return _shift(clip)
    elif isinstance(shifts_or_top, tuple):
        return _shift(clip, shifts_or_top)
    elif isinstance(shifts_or_top, float) and isinstance(shift_left, float):
        return _shift(clip, (shifts_or_top, shift_left))

    if shifts_or_top is None:
        shifts_or_top = 0.0
    if shift_left is None:
        shift_left = 0.0

    shifts_top = shifts_or_top if isinstance(shifts_or_top, list) else [shifts_or_top]
    shifts_left = shift_left if isinstance(shift_left, list) else [shift_left]

    if not shifts_top:
        shifts_top = [0.0] * n_planes
    elif (ltop := len(shifts_top)) > n_planes:
        shifts_top = shifts_top[:n_planes]
    else:
        shifts_top += shifts_top[-1:] * (n_planes - ltop)

    if not shifts_left:
        shifts_left = [0.0] * n_planes
    elif (lleft := len(shifts_left)) > n_planes:
        shifts_left = shifts_left[:n_planes]
    else:
        shifts_left += shifts_left[-1:] * (n_planes - lleft)

    if len(set(shifts_top)) == len(set(shifts_left)) == 1 or n_planes == 1:
        return _shift(clip, (shifts_top[0], shifts_left[0]))

    planes = cast(list[vs.VideoNode], clip.std.SplitPlanes())

    shifted_planes = [
        plane if top == left == 0 else _shift(plane, (top, left))
        for plane, top, left in zip(planes, shifts_top, shifts_left)
    ]

    return core.std.ShufflePlanes(shifted_planes, [0, 0, 0], clip.format.color_family)