fix #1034
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@@ -440,8 +440,10 @@ XLM_INPUTS_DOCSTRING = r"""
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Indices are selected in the vocabulary (unlike BERT which has a specific vocabulary for segment indices).
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**langs**: (`optional`) ``torch.LongTensor`` of shape ``(batch_size, sequence_length)``:
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A parallel sequence of tokens to be used to indicate the language of each token in the input.
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Indices are selected in the pre-trained language vocabulary,
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i.e. in the range ``[0, config.n_langs - 1[``.
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Indices are languages ids which can be obtained from the language names by using two conversion mappings
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provided in the configuration of the model (only provided for multilingual models).
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More precisely, the `language name -> language id` mapping is in `model.config.lang2id` (dict str -> int) and
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the `language id -> language name` mapping is `model.config.id2lang` (dict int -> str).
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**attention_mask**: (`optional`) ``torch.FloatTensor`` of shape ``(batch_size, sequence_length)``:
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Mask to avoid performing attention on padding token indices.
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Mask values selected in ``[0, 1]``:
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