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    S^(h¯;  ã                   óò   — d Z ddlmZmZmZmZ ddlZddlm	Z	m
Z
mZ ddlmZmZmZ ddlmZmZmZmZmZmZmZmZmZmZmZ ddlmZmZmZm Z   e«       rddl!Z! e jD                  e#«      Z$ G d	„ d
e	«      Z%d
gZ&y)zImage processor class for BLIP.é    )ÚDictÚListÚOptionalÚUnionNé   )ÚBaseImageProcessorÚBatchFeatureÚget_size_dict)Úconvert_to_rgbÚresizeÚto_channel_dimension_format)ÚOPENAI_CLIP_MEANÚOPENAI_CLIP_STDÚChannelDimensionÚ
ImageInputÚPILImageResamplingÚinfer_channel_dimension_formatÚis_scaled_imageÚmake_flat_list_of_imagesÚto_numpy_arrayÚvalid_imagesÚvalidate_preprocess_arguments)Ú
TensorTypeÚfilter_out_non_signature_kwargsÚis_vision_availableÚloggingc                   ól  ‡ — e Zd ZdZdgZddej                  ddddddf	dedee	e
f   ded	ed
ee
ef   dedeeeee   f      deeeee   f      deddfˆ fd„Zej                  ddfdej"                  dee	e
f   dedeee	ef      deee	ef      dej"                  fd„Z e«       ddddddddddej*                  dfdedee   deee	e
f      ded	ee   d
ee   dee   deeeee   f      deeeee   f      deee	ef      dee   dedeee	ef      dej2                  j2                  fd„«       Zˆ xZS )ÚBlipImageProcessora×	  
    Constructs a BLIP image processor.

    Args:
        do_resize (`bool`, *optional*, defaults to `True`):
            Whether to resize the image's (height, width) dimensions to the specified `size`. Can be overridden by the
            `do_resize` parameter in the `preprocess` method.
        size (`dict`, *optional*, defaults to `{"height": 384, "width": 384}`):
            Size of the output image after resizing. Can be overridden by the `size` parameter in the `preprocess`
            method.
        resample (`PILImageResampling`, *optional*, defaults to `Resampling.BICUBIC`):
            Resampling filter to use if resizing the image. Only has an effect if `do_resize` is set to `True`. Can be
            overridden by the `resample` parameter in the `preprocess` method.
        do_rescale (`bool`, *optional*, defaults to `True`):
            Whether to rescale the image by the specified scale `rescale_factor`. Can be overridden by the
            `do_rescale` parameter in the `preprocess` method.
        rescale_factor (`int` or `float`, *optional*, defaults to `1/255`):
            Scale factor to use if rescaling the image. Only has an effect if `do_rescale` is set to `True`. Can be
            overridden by the `rescale_factor` parameter in the `preprocess` method.
        do_normalize (`bool`, *optional*, defaults to `True`):
            Whether to normalize the image. Can be overridden by the `do_normalize` parameter in the `preprocess`
            method. Can be overridden by the `do_normalize` parameter in the `preprocess` method.
        image_mean (`float` or `List[float]`, *optional*, defaults to `IMAGENET_STANDARD_MEAN`):
            Mean to use if normalizing the image. This is a float or list of floats the length of the number of
            channels in the image. Can be overridden by the `image_mean` parameter in the `preprocess` method. Can be
            overridden by the `image_mean` parameter in the `preprocess` method.
        image_std (`float` or `List[float]`, *optional*, defaults to `IMAGENET_STANDARD_STD`):
            Standard deviation to use if normalizing the image. This is a float or list of floats the length of the
            number of channels in the image. Can be overridden by the `image_std` parameter in the `preprocess` method.
            Can be overridden by the `image_std` parameter in the `preprocess` method.
        do_convert_rgb (`bool`, *optional*, defaults to `True`):
            Whether to convert the image to RGB.
    Úpixel_valuesTNgp?Ú	do_resizeÚsizeÚresampleÚ
do_rescaleÚrescale_factorÚdo_normalizeÚ
image_meanÚ	image_stdÚdo_convert_rgbÚreturnc
                 óî   •— t        ‰| �  di |
¤Ž |�|ndddœ}t        |d¬«      }|| _        || _        || _        || _        || _        || _        |�|nt        | _
        |�|nt        | _        |	| _        y )Ni€  )ÚheightÚwidthT©Údefault_to_square© )ÚsuperÚ__init__r
   r    r!   r"   r#   r$   r%   r   r&   r   r'   r(   )Úselfr    r!   r"   r#   r$   r%   r&   r'   r(   ÚkwargsÚ	__class__s              €úl/var/www/skyplay_api_hub/venv/lib/python3.12/site-packages/transformers/models/blip/image_processing_blip.pyr1   zBlipImageProcessor.__init__S   sƒ   ø€ ô 	‰ÑÑ"˜6Ò"ØÐ'‰t¸ÀcÑ-JˆÜ˜T°TÔ:ˆà"ˆŒØˆŒ	Ø ˆŒØ$ˆŒØ,ˆÔØ(ˆÔØ(2Ð(>™*ÔDTˆŒØ&/Ð&;™ÄˆŒØ,ˆÕó    ÚimageÚdata_formatÚinput_data_formatc                 ó–   — t        |«      }d|vsd|vrt        d|j                  «       › �«      ‚|d   |d   f}t        |f||||dœ|¤ŽS )a‹  
        Resize an image to `(size["height"], size["width"])`.

        Args:
            image (`np.ndarray`):
                Image to resize.
            size (`Dict[str, int]`):
                Dictionary in the format `{"height": int, "width": int}` specifying the size of the output image.
            resample (`PILImageResampling`, *optional*, defaults to `PILImageResampling.BICUBIC`):
                `PILImageResampling` filter to use when resizing the image e.g. `PILImageResampling.BICUBIC`.
            data_format (`ChannelDimension` or `str`, *optional*):
                The channel dimension format for the output image. If unset, the channel dimension format of the input
                image is used. Can be one of:
                - `"channels_first"` or `ChannelDimension.FIRST`: image in (num_channels, height, width) format.
                - `"channels_last"` or `ChannelDimension.LAST`: image in (height, width, num_channels) format.
                - `"none"` or `ChannelDimension.NONE`: image in (height, width) format.
            input_data_format (`ChannelDimension` or `str`, *optional*):
                The channel dimension format for the input image. If unset, the channel dimension format is inferred
                from the input image. Can be one of:
                - `"channels_first"` or `ChannelDimension.FIRST`: image in (num_channels, height, width) format.
                - `"channels_last"` or `ChannelDimension.LAST`: image in (height, width, num_channels) format.
                - `"none"` or `ChannelDimension.NONE`: image in (height, width) format.

        Returns:
            `np.ndarray`: The resized image.
        r+   r,   zFThe `size` dictionary must contain the keys `height` and `width`. Got )r!   r"   r8   r9   )r
   Ú
ValueErrorÚkeysr   )r2   r7   r!   r"   r8   r9   r3   Úoutput_sizes           r5   r   zBlipImageProcessor.resizeo   sy   € ôF ˜TÓ"ˆØ˜4Ñ 7°$Ñ#6ÜÐeÐfj×foÑfoÓfqÐerÐsÓtÐtØ˜H‘~ t¨G¡}Ð5ˆÜØð
àØØ#Ø/ñ
ð ñ
ð 	
r6   ÚimagesÚreturn_tensorsc           
      óÜ  — |�|n| j                   }|�|n| j                  }|�|n| j                  }|�|n| j                  }|�|n| j                  }|�|n| j
                  }|	�|	n| j                  }	|�|n| j                  }|�|n| j                  }t        |d¬«      }t        |«      }t        |«      st        d«      ‚t        |||||	|||¬«       |r|D �cg c]  }t        |«      ‘Œ }}|D �cg c]  }t        |«      ‘Œ }}|r#t!        |d   «      rt"        j%                  d«       |€t'        |d   «      }|r"|D �cg c]  }| j)                  ||||¬«      ‘Œ }}|r!|D �cg c]  }| j+                  |||¬«      ‘Œ }}|r"|D �cg c]  }| j-                  |||	|¬	«      ‘Œ }}|D �cg c]  }t/        |||¬
«      ‘Œ }}t1        d|i|
¬«      }|S c c}w c c}w c c}w c c}w c c}w c c}w )am  
        Preprocess an image or batch of images.

        Args:
            images (`ImageInput`):
                Image to preprocess. Expects a single or batch of images with pixel values ranging from 0 to 255. If
                passing in images with pixel values between 0 and 1, set `do_rescale=False`.
            do_resize (`bool`, *optional*, defaults to `self.do_resize`):
                Whether to resize the image.
            size (`Dict[str, int]`, *optional*, defaults to `self.size`):
                Controls the size of the image after `resize`. The shortest edge of the image is resized to
                `size["shortest_edge"]` whilst preserving the aspect ratio. If the longest edge of this resized image
                is > `int(size["shortest_edge"] * (1333 / 800))`, then the image is resized again to make the longest
                edge equal to `int(size["shortest_edge"] * (1333 / 800))`.
            resample (`PILImageResampling`, *optional*, defaults to `self.resample`):
                Resampling filter to use if resizing the image. Only has an effect if `do_resize` is set to `True`.
            do_rescale (`bool`, *optional*, defaults to `self.do_rescale`):
                Whether to rescale the image values between [0 - 1].
            rescale_factor (`float`, *optional*, defaults to `self.rescale_factor`):
                Rescale factor to rescale the image by if `do_rescale` is set to `True`.
            do_normalize (`bool`, *optional*, defaults to `self.do_normalize`):
                Whether to normalize the image.
            image_mean (`float` or `List[float]`, *optional*, defaults to `self.image_mean`):
                Image mean to normalize the image by if `do_normalize` is set to `True`.
            image_std (`float` or `List[float]`, *optional*, defaults to `self.image_std`):
                Image standard deviation to normalize the image by if `do_normalize` is set to `True`.
            do_convert_rgb (`bool`, *optional*, defaults to `self.do_convert_rgb`):
                Whether to convert the image to RGB.
            return_tensors (`str` or `TensorType`, *optional*):
                The type of tensors to return. Can be one of:
                    - Unset: Return a list of `np.ndarray`.
                    - `TensorType.TENSORFLOW` or `'tf'`: Return a batch of type `tf.Tensor`.
                    - `TensorType.PYTORCH` or `'pt'`: Return a batch of type `torch.Tensor`.
                    - `TensorType.NUMPY` or `'np'`: Return a batch of type `np.ndarray`.
                    - `TensorType.JAX` or `'jax'`: Return a batch of type `jax.numpy.ndarray`.
            data_format (`ChannelDimension` or `str`, *optional*, defaults to `ChannelDimension.FIRST`):
                The channel dimension format for the output image. Can be one of:
                - `"channels_first"` or `ChannelDimension.FIRST`: image in (num_channels, height, width) format.
                - `"channels_last"` or `ChannelDimension.LAST`: image in (height, width, num_channels) format.
                - Unset: Use the channel dimension format of the input image.
            input_data_format (`ChannelDimension` or `str`, *optional*):
                The channel dimension format for the input image. If unset, the channel dimension format is inferred
                from the input image. Can be one of:
                - `"channels_first"` or `ChannelDimension.FIRST`: image in (num_channels, height, width) format.
                - `"channels_last"` or `ChannelDimension.LAST`: image in (height, width, num_channels) format.
                - `"none"` or `ChannelDimension.NONE`: image in (height, width) format.
        Fr-   zkInvalid image type. Must be of type PIL.Image.Image, numpy.ndarray, torch.Tensor, tf.Tensor or jax.ndarray.)r#   r$   r%   r&   r'   r    r!   r"   r   z­It looks like you are trying to rescale already rescaled images. If the input images have pixel values between 0 and 1, set `do_rescale=False` to avoid rescaling them again.)r7   r!   r"   r9   )r7   Úscaler9   )r7   ÚmeanÚstdr9   )Úinput_channel_dimr   )ÚdataÚtensor_type)r    r"   r#   r$   r%   r&   r'   r(   r!   r
   r   r   r;   r   r   r   r   ÚloggerÚwarning_oncer   r   ÚrescaleÚ	normalizer   r	   )r2   r>   r    r!   r"   r#   r$   r%   r&   r'   r?   r(   r8   r9   r7   Úencoded_outputss                   r5   Ú
preprocesszBlipImageProcessor.preprocessŸ   s^  € ð@ "+Ð!6‘I¸D¿N¹Nˆ	Ø'Ð3‘8¸¿¹ˆØ#-Ð#9‘Z¸t¿¹ˆ
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 Ð$ä >¸vÀa¹yÓ IÐáð $öàð —‘ %¨d¸XÐYj�ÕkðˆFð ñ
 ð $öàð —‘ 5°ÐRc�ÕdðˆFð ñ
 ð $öàð —‘ U°ÀÐ^o�ÕpðˆFð ð ouö
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
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__module__Ú__qualname__Ú__doc__Úmodel_input_namesr   ÚBICUBICÚboolr   ÚstrÚintr   Úfloatr   r   r1   ÚnpÚndarrayr   r   r   ÚFIRSTr   r   ÚPILÚImagerL   Ú__classcell__)r4   s   @r5   r   r   .   s¡  ø„ ñ ðD (Ð(Ðð Ø#Ø'9×'AÑ'AØØ,3Ø!Ø:>Ø9=Ø#ñ-àð-ð �3˜�8‰nð-ð %ð	-ð
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õ-ð@ (:×'AÑ'AØ>BØDHñ.
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 %ðEð ˜T‘NðEð ! ™ðEð ˜t‘nðEð ˜U 5¨$¨u©+Ð#5Ñ6Ñ7ðEð ˜E %¨¨e©Ð"4Ñ5Ñ6ðEð !  s¨J Ñ!7Ñ8ðEð ! ™ðEð &ðEð $ E¨#Ð/?Ð*?Ñ$@ÑAðEð 
�‰�‰òEó 'ôEr6   r   )'rP   Útypingr   r   r   r   ÚnumpyrW   Úimage_processing_utilsr   r	   r
   Úimage_transformsr   r   r   Úimage_utilsr   r   r   r   r   r   r   r   r   r   r   Úutilsr   r   r   r   rZ   Ú
get_loggerrM   rG   r   Ú__all__r/   r6   r5   ú<module>re      su   ðñ &ç .Ó .ã ç UÑ Uß SÑ S÷÷ ÷ ñ ÷ _Ó ^ñ ÔÛð 
ˆ×	Ñ	˜HÓ	%€ôwÐ+ô wðt  Ð
 �r6   