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mZmZmZ ddlmZmZ ddlmZ  G d	 d
e
d      Z ej(                  e      Z G d de      ZdgZy)z$
Image/Text processor class for GIT
    )ListOptionalUnion   )BatchFeature)
ImageInput)ProcessingKwargsProcessorMixinUnpack!_validate_images_text_input_order)PreTokenizedInput	TextInput)loggingc                       e Zd Zi Zy)GitProcessorKwargsN)__name__
__module____qualname__	_defaults     |/var/www/pru.catia.catastroantioquia-mas.com/valormas/lib/python3.12/site-packages/transformers/models/git/processing_git.pyr   r      s    Ir   r   F)totalc                        e Zd ZdZddgZdZdZ fdZ	 	 	 	 ddee	   dee
eeee   ee   f      d	ee   d
efdZd Zd Zed        Z xZS )GitProcessora  
    Constructs a GIT processor which wraps a CLIP image processor and a BERT tokenizer into a single processor.

    [`GitProcessor`] offers all the functionalities of [`CLIPImageProcessor`] and [`BertTokenizerFast`]. See the
    [`~GitProcessor.__call__`] and [`~GitProcessor.decode`] for more information.

    Args:
        image_processor ([`AutoImageProcessor`]):
            The image processor is a required input.
        tokenizer ([`AutoTokenizer`]):
            The tokenizer is a required input.
    image_processor	tokenizerAutoImageProcessorAutoTokenizerc                 H    t         |   ||       | j                  | _        y )N)super__init__r   current_processor)selfr   r   	__class__s      r   r"   zGitProcessor.__init__5   s     )4!%!5!5r   imagestextkwargsreturnc                 ~   ||t        d      t        ||      \  }} | j                  t        fd| j                  j
                  i|}i }|' | j                  |fi |d   }|j                  |       |' | j                  |fi |d   }	|j                  |	       t        ||d   j                  d            S )a	  
        Main method to prepare for the model one or several sequences(s) and image(s). This method forwards the `text`
        and `kwargs` arguments to BertTokenizerFast's [`~BertTokenizerFast.__call__`] if `text` is not `None` to encode
        the text. To prepare the image(s), this method forwards the `images` and `kwrags` arguments to
        CLIPImageProcessor's [`~CLIPImageProcessor.__call__`] if `images` is not `None`. Please refer to the docstring
        of the above two methods for more information.

        Args:
            images (`PIL.Image.Image`, `np.ndarray`, `torch.Tensor`, `List[PIL.Image.Image]`, `List[np.ndarray]`, `List[torch.Tensor]`):
                The image or batch of images to be prepared. Each image can be a PIL image, NumPy array or PyTorch
                tensor. Both channels-first and channels-last formats are supported.
            text (`TextInput`, `PreTokenizedInput`, `List[TextInput]`, `List[PreTokenizedInput]`, *optional*):
                The sequence or batch of sequences to be encoded. Each sequence can be a string or a list of strings
                (pretokenized string). If the sequences are provided as list of strings (pretokenized), you must set
                `is_split_into_words=True` (to lift the ambiguity with a batch of sequences).

            return_tensors (`str` or [`~utils.TensorType`], *optional*):
                If set, will return tensors of a particular framework. Acceptable values are:

                - `'tf'`: Return TensorFlow `tf.constant` objects.
                - `'pt'`: Return PyTorch `torch.Tensor` objects.
                - `'np'`: Return NumPy `np.ndarray` objects.
                - `'jax'`: Return JAX `jnp.ndarray` objects.

        Returns:
            [`BatchFeature`]: A [`BatchFeature`] with the following fields:

            - **input_ids** -- List of token ids to be fed to a model. Returned when `text` is not `None`.
            - **attention_mask** -- List of indices specifying which tokens should be attended to by the model (when
              `return_attention_mask=True` or if *"attention_mask"* is in `self.model_input_names` and if `text` is not
              `None`).
            - **pixel_values** -- Pixel values to be fed to a model. Returned when `images` is not `None`.
        z?You have to specify either text or images. Both cannot be none.tokenizer_init_kwargstext_kwargsimages_kwargscommon_kwargsreturn_tensors)datatensor_type)

ValueErrorr   _merge_kwargsr   r   init_kwargsupdater   r   get)
r$   r&   r'   audiovideosr(   output_kwargsr0   text_featuresimage_featuress
             r   __call__zGitProcessor.__call__9   s    R <FN^__ 9F***
"&.."<"<
 
 *DNN4P=3OPMKK&1T11&[M/<Z[NKK'=3Q3U3UVf3ghhr   c                 :     | j                   j                  |i |S )z
        This method forwards all its arguments to BertTokenizerFast's [`~PreTrainedTokenizer.batch_decode`]. Please
        refer to the docstring of this method for more information.
        )r   batch_decoder$   argsr(   s      r   r>   zGitProcessor.batch_decodex   s     
 +t~~**D;F;;r   c                 :     | j                   j                  |i |S )z
        This method forwards all its arguments to BertTokenizerFast's [`~PreTrainedTokenizer.decode`]. Please refer to
        the docstring of this method for more information.
        )r   decoder?   s      r   rB   zGitProcessor.decode   s     
 %t~~$$d5f55r   c                 
    g dS )N)	input_idsattention_maskpixel_valuesr   )r$   s    r   model_input_nameszGitProcessor.model_input_names   s    >>r   )NNNN)r   r   r   __doc__
attributesimage_processor_classtokenizer_classr"   r   r   r   r   r   r   r   r   r   r<   r>   rB   propertyrG   __classcell__)r%   s   @r   r   r   #   s     $[1J0%O6 (,hl=i$=i uY(94	?DQbLccde=i +,=i 
=i~<6 ? ?r   r   N)rH   typingr   r   r   feature_extraction_utilsr   image_utilsr   processing_utilsr	   r
   r   r   tokenization_utils_baser   r   utilsr   r   
get_loggerr   loggerr   __all__r   r   r   <module>rW      s`    ) ( 4 % k k C )  
		H	%e?> e?P 
r   