modeling_openai.py 34 KB
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# coding=utf-8
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# Copyright 2018 The OpenAI Team Authors and HuggingFace Inc. team.
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# Copyright (c) 2018, NVIDIA CORPORATION.  All rights reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
#     http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
"""PyTorch OpenAI GPT model."""

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from __future__ import absolute_import, division, print_function, unicode_literals

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import collections
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import json
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import logging
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import math
import os
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import sys
from io import open
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import torch
import torch.nn as nn
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from torch.nn import CrossEntropyLoss
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from torch.nn.parameter import Parameter

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from .modeling_utils import (Conv1D, CONFIG_NAME, WEIGHTS_NAME, PretrainedConfig,
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                             PreTrainedModel, prune_conv1d_layer, SequenceSummary)
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from .modeling_bert import BertLayerNorm as LayerNorm
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logger = logging.getLogger(__name__)

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OPENAI_GPT_PRETRAINED_MODEL_ARCHIVE_MAP = {"openai-gpt": "https://s3.amazonaws.com/models.huggingface.co/bert/openai-gpt-pytorch_model.bin"}
OPENAI_GPT_PRETRAINED_CONFIG_ARCHIVE_MAP = {"openai-gpt": "https://s3.amazonaws.com/models.huggingface.co/bert/openai-gpt-config.json"}
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def load_tf_weights_in_openai_gpt(model, config, openai_checkpoint_folder_path):
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    """ Load tf pre-trained weights in a pytorch model (from NumPy arrays here)
    """
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    import re
    import numpy as np
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    if '.ckpt' in openai_checkpoint_folder_path:
        openai_checkpoint_folder_path = os.path.dirname(openai_checkpoint_folder_path)

    logger.info("Loading weights from {}".format(openai_checkpoint_folder_path))

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    names = json.load(open(openai_checkpoint_folder_path + '/parameters_names.json', "r", encoding='utf-8'))
    shapes = json.load(open(openai_checkpoint_folder_path + '/params_shapes.json', "r", encoding='utf-8'))
    offsets = np.cumsum([np.prod(shape) for shape in shapes])
    init_params = [np.load(openai_checkpoint_folder_path + '/params_{}.npy'.format(n)) for n in range(10)]
    init_params = np.split(np.concatenate(init_params, 0), offsets)[:-1]
    init_params = [param.reshape(shape) for param, shape in zip(init_params, shapes)]

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    # This was used when we had a single embedding matrix for positions and tokens
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    # init_params[0] = np.concatenate([init_params[1], init_params[0]], 0)
    # del init_params[1]
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    init_params = [arr.squeeze() for arr in init_params]

    try:
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        assert model.tokens_embed.weight.shape == init_params[1].shape
        assert model.positions_embed.weight.shape == init_params[0].shape
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    except AssertionError as e:
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        e.args += (model.tokens_embed.weight.shape, init_params[1].shape)
        e.args += (model.positions_embed.weight.shape, init_params[0].shape)
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        raise

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    model.tokens_embed.weight.data = torch.from_numpy(init_params[1])
    model.positions_embed.weight.data = torch.from_numpy(init_params[0])
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    names.pop(0)
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    # Pop position and token embedding arrays
    init_params.pop(0)
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    init_params.pop(0)

    for name, array in zip(names, init_params): # names[1:n_transfer], init_params[1:n_transfer]):
        name = name[6:]  # skip "model/"
        assert name[-2:] == ":0"
        name = name[:-2]
        name = name.split('/')
        pointer = model
        for m_name in name:
            if re.fullmatch(r'[A-Za-z]+\d+', m_name):
                l = re.split(r'(\d+)', m_name)
            else:
                l = [m_name]
            if l[0] == 'g':
                pointer = getattr(pointer, 'weight')
            elif l[0] == 'b':
                pointer = getattr(pointer, 'bias')
            elif l[0] == 'w':
                pointer = getattr(pointer, 'weight')
            else:
                pointer = getattr(pointer, l[0])
            if len(l) >= 2:
                num = int(l[1])
                pointer = pointer[num]
        try:
            assert pointer.shape == array.shape
        except AssertionError as e:
            e.args += (pointer.shape, array.shape)
            raise
        try:
            assert pointer.shape == array.shape
        except AssertionError as e:
            e.args += (pointer.shape, array.shape)
            raise
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        logger.info("Initialize PyTorch weight {}".format(name))
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        pointer.data = torch.from_numpy(array)
    return model

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def gelu(x):
    return 0.5 * x * (1 + torch.tanh(math.sqrt(2 / math.pi) * (x + 0.044715 * torch.pow(x, 3))))


def swish(x):
    return x * torch.sigmoid(x)


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ACT_FNS = {"relu": nn.ReLU, "swish": swish, "gelu": gelu}

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class OpenAIGPTConfig(PretrainedConfig):
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    """
    Configuration class to store the configuration of a `OpenAIGPTModel`.

    Args:
        vocab_size_or_config_json_file: Vocabulary size of `inputs_ids` in `OpenAIGPTModel` or a configuration json file.
        n_special: The number of special tokens to learn during fine-tuning ('[SEP]', '[CLF]', ...)
        n_positions: Number of positional embeddings.
        n_ctx: Size of the causal mask (usually same as n_positions).
        n_embd: Dimensionality of the embeddings and hidden states.
        n_layer: Number of hidden layers in the Transformer encoder.
        n_head: Number of attention heads for each attention layer in
            the Transformer encoder.
        afn: The non-linear activation function (function or string) in the
            encoder and pooler. If string, "gelu", "relu" and "swish" are supported.
        resid_pdrop: The dropout probabilitiy for all fully connected
            layers in the embeddings, encoder, and pooler.
        attn_pdrop: The dropout ratio for the attention
            probabilities.
        embd_pdrop: The dropout ratio for the embeddings.
        layer_norm_epsilon: epsilon to use in the layer norm layers
        initializer_range: The sttdev of the truncated_normal_initializer for
            initializing all weight matrices.
        predict_special_tokens: should we predict special tokens (when the model has a LM head)
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    """
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    pretrained_config_archive_map = OPENAI_GPT_PRETRAINED_CONFIG_ARCHIVE_MAP
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    def __init__(
        self,
        vocab_size_or_config_json_file=40478,
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        n_positions=512,
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        n_ctx=512,
        n_embd=768,
        n_layer=12,
        n_head=12,
        afn="gelu",
        resid_pdrop=0.1,
        embd_pdrop=0.1,
        attn_pdrop=0.1,
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        layer_norm_epsilon=1e-5,
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        initializer_range=0.02,
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        predict_special_tokens=True,
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        num_labels=1,
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        summary_type='token_ids',
        summary_use_proj=True,
        summary_activation=None,
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        summary_proj_to_labels=True,
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        summary_first_dropout=0.1,
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        **kwargs
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    ):
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        """Constructs OpenAIGPTConfig.
        """
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        super(OpenAIGPTConfig, self).__init__(**kwargs)

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        if isinstance(vocab_size_or_config_json_file, str) or (sys.version_info[0] == 2
                        and isinstance(vocab_size_or_config_json_file, unicode)):
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            with open(vocab_size_or_config_json_file, "r", encoding="utf-8") as reader:
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                json_config = json.loads(reader.read())
            for key, value in json_config.items():
                self.__dict__[key] = value
        elif isinstance(vocab_size_or_config_json_file, int):
            self.vocab_size = vocab_size_or_config_json_file
            self.n_ctx = n_ctx
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            self.n_positions = n_positions
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            self.n_embd = n_embd
            self.n_layer = n_layer
            self.n_head = n_head
            self.afn = afn
            self.resid_pdrop = resid_pdrop
            self.embd_pdrop = embd_pdrop
            self.attn_pdrop = attn_pdrop
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            self.layer_norm_epsilon = layer_norm_epsilon
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            self.initializer_range = initializer_range
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            self.predict_special_tokens = predict_special_tokens
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            self.num_labels = num_labels
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            self.summary_type = summary_type
            self.summary_use_proj = summary_use_proj
            self.summary_activation = summary_activation
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            self.summary_first_dropout = summary_first_dropout
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            self.summary_proj_to_labels = summary_proj_to_labels
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        else:
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            raise ValueError(
                "First argument must be either a vocabulary size (int)"
                "or the path to a pretrained model config file (str)"
            )
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    @property
    def hidden_size(self):
        return self.n_embd

    @property
    def num_attention_heads(self):
        return self.n_head

    @property
    def num_hidden_layers(self):
        return self.n_layer

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class Attention(nn.Module):
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    def __init__(self, nx, n_ctx, config, scale=False):
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        super(Attention, self).__init__()
        n_state = nx  # in Attention: n_state=768 (nx=n_embd)
        # [switch nx => n_state from Block to Attention to keep identical to TF implem]
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        assert n_state % config.n_head == 0
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        self.register_buffer("bias", torch.tril(torch.ones(n_ctx, n_ctx)).view(1, 1, n_ctx, n_ctx))
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        self.n_head = config.n_head
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        self.split_size = n_state
        self.scale = scale
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        self.output_attentions = config.output_attentions
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        self.c_attn = Conv1D(n_state * 3, nx)
        self.c_proj = Conv1D(n_state, nx)
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        self.attn_dropout = nn.Dropout(config.attn_pdrop)
        self.resid_dropout = nn.Dropout(config.resid_pdrop)
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    def prune_heads(self, heads):
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        if len(heads) == 0:
            return
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        mask = torch.ones(self.n_head, self.split_size // self.n_head)
        for head in heads:
            mask[head] = 0
        mask = mask.view(-1).contiguous().eq(1)
        index = torch.arange(len(mask))[mask].long()
        index_attn = torch.cat([index, index + self.split_size, index + (2*self.split_size)])
        # Prune conv1d layers
        self.c_attn = prune_conv1d_layer(self.c_attn, index_attn, dim=1)
        self.c_proj = prune_conv1d_layer(self.c_proj, index, dim=0)
        # Update hyper params
        self.split_size = (self.split_size // self.n_head) * (self.n_head - len(heads))
        self.n_head = self.n_head - len(heads)

    def _attn(self, q, k, v, head_mask=None):
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        w = torch.matmul(q, k)
        if self.scale:
            w = w / math.sqrt(v.size(-1))
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        # w = w * self.bias + -1e9 * (1 - self.bias)  # TF implem method: mask_attn_weights
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        # XD: self.b may be larger than w, so we need to crop it
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        b = self.bias[:, :, : w.size(-2), : w.size(-1)]
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        w = w * b + -1e9 * (1 - b)

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        w = nn.Softmax(dim=-1)(w)
        w = self.attn_dropout(w)
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        # Mask heads if we want to
        if head_mask is not None:
            w = w * head_mask

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        outputs = [torch.matmul(w, v)]
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        if self.output_attentions:
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            outputs.append(w)
        return outputs
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    def merge_heads(self, x):
        x = x.permute(0, 2, 1, 3).contiguous()
        new_x_shape = x.size()[:-2] + (x.size(-2) * x.size(-1),)
        return x.view(*new_x_shape)  # in Tensorflow implem: fct merge_states

    def split_heads(self, x, k=False):
        new_x_shape = x.size()[:-1] + (self.n_head, x.size(-1) // self.n_head)
        x = x.view(*new_x_shape)  # in Tensorflow implem: fct split_states
        if k:
            return x.permute(0, 2, 3, 1)
        else:
            return x.permute(0, 2, 1, 3)

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    def forward(self, x, head_mask=None):
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        x = self.c_attn(x)
        query, key, value = x.split(self.split_size, dim=2)
        query = self.split_heads(query)
        key = self.split_heads(key, k=True)
        value = self.split_heads(value)
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        attn_outputs = self._attn(query, key, value, head_mask)
        a = attn_outputs[0]
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        a = self.merge_heads(a)
        a = self.c_proj(a)
        a = self.resid_dropout(a)
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        outputs = [a] + attn_outputs[1:]
        return outputs  # a, (attentions)
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class MLP(nn.Module):
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    def __init__(self, n_state, config):  # in MLP: n_state=3072 (4 * n_embd)
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        super(MLP, self).__init__()
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        nx = config.n_embd
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        self.c_fc = Conv1D(n_state, nx)
        self.c_proj = Conv1D(nx, n_state)
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        self.act = ACT_FNS[config.afn]
        self.dropout = nn.Dropout(config.resid_pdrop)
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    def forward(self, x):
        h = self.act(self.c_fc(x))
        h2 = self.c_proj(h)
        return self.dropout(h2)


class Block(nn.Module):
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    def __init__(self, n_ctx, config, scale=False):
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        super(Block, self).__init__()
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        nx = config.n_embd
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        self.attn = Attention(nx, n_ctx, config, scale)
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        self.ln_1 = LayerNorm(nx, eps=config.layer_norm_epsilon)
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        self.mlp = MLP(4 * nx, config)
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        self.ln_2 = LayerNorm(nx, eps=config.layer_norm_epsilon)
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    def forward(self, x, head_mask=None):
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        attn_outputs = self.attn(x, head_mask=head_mask)
        a = attn_outputs[0]

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        n = self.ln_1(x + a)
        m = self.mlp(n)
        h = self.ln_2(n + m)
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        outputs = [h] + attn_outputs[1:]
        return outputs
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class OpenAIGPTPreTrainedModel(PreTrainedModel):
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    """ An abstract class to handle weights initialization and
        a simple interface for dowloading and loading pretrained models.
    """
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    config_class = OpenAIGPTConfig
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    pretrained_model_archive_map = OPENAI_GPT_PRETRAINED_MODEL_ARCHIVE_MAP
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    load_tf_weights = load_tf_weights_in_openai_gpt
    base_model_prefix = "transformer"
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    def __init__(self, *inputs, **kwargs):
        super(OpenAIGPTPreTrainedModel, self).__init__(*inputs, **kwargs)

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    def init_weights(self, module):
        """ Initialize the weights.
        """
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        if isinstance(module, (nn.Linear, nn.Embedding, Conv1D)):
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            # Slightly different from the TF version which uses truncated_normal for initialization
            # cf https://github.com/pytorch/pytorch/pull/5617
            module.weight.data.normal_(mean=0.0, std=self.config.initializer_range)
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            if isinstance(module, (nn.Linear, Conv1D)) and module.bias is not None:
                module.bias.data.zero_()
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        elif isinstance(module, LayerNorm):
            module.bias.data.zero_()
            module.weight.data.fill_(1.0)
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class OpenAIGPTModel(OpenAIGPTPreTrainedModel):
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    """OpenAI GPT model ("Improving Language Understanding by Generative Pre-Training").

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    OpenAI GPT uses a single embedding matrix to store the word and special embeddings.
    Special tokens embeddings are additional tokens that are not pre-trained, such as: [SEP], [CLS]...

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    Special tokens need to be trained during the fine-tuning if you use them.
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    The number of special embeddings can be controlled using the ``set_num_special_tokens(num_special_tokens)`` function.

    The embeddings are ordered as follow in the token embeddings matrix:

    ::
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        [0,                                                         ----------------------
         ...                                                        -> word embeddings
         config.vocab_size - 1,                                     ______________________
         config.vocab_size,
         ...                                                        -> special embeddings
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         config.vocab_size + n_special - 1]                  ______________________
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    where ``total_tokens_embeddings``  is:
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    ::

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        total_tokens_embeddings = config.vocab_size + n_special
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    You should use the associated indices to index the embeddings.

    Args:
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        `config`: a OpenAIGPTConfig class instance with the configuration to build a new model
        `output_attentions`: If True, also output attentions weights computed by the model at each layer. Default: False
        `keep_multihead_output`: If True, saves output of the multi-head attention module with its gradient.
            This can be used to compute head importance metrics. Default: False
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    Example::
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        config = modeling_openai.OpenAIGPTConfig()
        model = modeling_openai.OpenAIGPTModel(config)
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    """
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    def __init__(self, config):
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        super(OpenAIGPTModel, self).__init__(config)
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        self.output_attentions = config.output_attentions
        self.output_hidden_states = config.output_hidden_states

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        self.tokens_embed = nn.Embedding(config.vocab_size, config.n_embd)
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        self.positions_embed = nn.Embedding(config.n_positions, config.n_embd)
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        self.drop = nn.Dropout(config.embd_pdrop)
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        self.h = nn.ModuleList([Block(config.n_ctx, config, scale=True) for _ in range(config.n_layer)])
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        self.apply(self.init_weights)

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    def _resize_token_embeddings(self, new_num_tokens):
        self.tokens_embed = self._get_resized_embeddings(self.tokens_embed, new_num_tokens)
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        return self.tokens_embed
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    def _prune_heads(self, heads_to_prune):
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        """ Prunes heads of the model.
            heads_to_prune: dict of {layer_num: list of heads to prune in this layer}
        """
        for layer, heads in heads_to_prune.items():
            self.h[layer].attn.prune_heads(heads)

    def forward(self, input_ids, position_ids=None, token_type_ids=None, head_mask=None):
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        """
        Performs a model forward pass. **Can be called by calling the class directly, once it has been instantiated.**

        Args:
            `input_ids`: a ``torch.LongTensor`` of shape [batch_size, sequence_length] (or more generally [d_1, ..., d_n, sequence_length]
                were d_1 ... d_n are arbitrary dimensions) with the word BPE token indices selected in the range [0, total_tokens_embeddings[
            `position_ids`: an optional ``torch.LongTensor`` with the same shape as input_ids
                with the position indices (selected in the range [0, config.n_positions - 1[.
            `token_type_ids`: an optional ``torch.LongTensor`` with the same shape as input_ids
                You can use it to add a third type of embedding to each input token in the sequence
                (the previous two being the word and position embeddings).
                The input, position and token_type embeddings are summed inside the Transformer before the first
                self-attention block.
            `head_mask`: an optional ``torch.Tensor`` of shape [num_heads] or [num_layers, num_heads] with indices between 0 and 1.
                It's a mask to be used to nullify some heads of the transformer. 1.0 => head is fully masked, 0.0 => head is not masked.

        Returns:
            ``hidden_states``, a list of all the encoded-hidden-states in the model (length of the list is number
            of layers + 1 for the output of the embeddings)
            as ``torch.FloatTensor`` of size [batch_size, sequence_length, hidden_size]
            (or more generally [d_1, ..., d_n, hidden_size] were d_1 ... d_n are the dimension of input_ids)

        Example::

            # Already been converted into BPE token ids
            input_ids = torch.LongTensor([[31, 51, 99], [15, 5, 0]])

            hidden_states = model(input_ids)
            # or
            hidden_states = model.forward(input_ids)
        """
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        if position_ids is None:
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            # This was used when we had a single embedding matrice from position and token embeddings
            # start = self.config.vocab_size + self.config.n_special
            # end = start + input_ids.size(-1)
            # position_ids = torch.arange(start, end, dtype=torch.long, device=input_ids.device)
            position_ids = torch.arange(input_ids.size(-1), dtype=torch.long, device=input_ids.device)
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            position_ids = position_ids.unsqueeze(0).expand_as(input_ids)

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        # Prepare head mask if needed
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        # 1.0 in head_mask indicate we keep the head
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        # attention_probs has shape bsz x n_heads x N x N
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        # head_mask has shape n_layer x batch x n_heads x N x N
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        if head_mask is not None:
            if head_mask.dim() == 1:
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                head_mask = head_mask.unsqueeze(0).unsqueeze(0).unsqueeze(-1).unsqueeze(-1)
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                head_mask = head_mask.expand(self.config.n_layer, -1, -1, -1, -1)
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            elif head_mask.dim() == 2:
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                head_mask = head_mask.unsqueeze(1).unsqueeze(-1).unsqueeze(-1)  # We can specify head_mask for each layer
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            head_mask = head_mask.to(dtype=next(self.parameters()).dtype) # switch to fload if need + fp16 compatibility
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        else:
            head_mask = [None] * self.config.n_layer
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        input_shape = input_ids.size()
        input_ids = input_ids.view(-1, input_ids.size(-1))
        position_ids = position_ids.view(-1, position_ids.size(-1))

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        inputs_embeds = self.tokens_embed(input_ids)
        position_embeds = self.positions_embed(position_ids)
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        if token_type_ids is not None:
            token_type_ids = token_type_ids.view(-1, token_type_ids.size(-1))
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            token_type_embeds = self.tokens_embed(token_type_ids)
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        else:
            token_type_embeds = 0
        hidden_states = inputs_embeds + position_embeds + token_type_embeds
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        hidden_states = self.drop(hidden_states)

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        output_shape = input_shape + (hidden_states.size(-1),)

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        all_attentions = ()
        all_hidden_states = ()
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        for i, block in enumerate(self.h):
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            if self.output_hidden_states:
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                all_hidden_states = all_hidden_states + (hidden_states.view(*output_shape),)
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            outputs = block(hidden_states, head_mask[i])
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            hidden_states = outputs[0]
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            if self.output_attentions:
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                all_attentions = all_attentions + (outputs[1],)
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        # Add last layer
        if self.output_hidden_states:
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            all_hidden_states = all_hidden_states + (hidden_states.view(*output_shape),)
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        outputs = (hidden_states.view(*output_shape),)
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        if self.output_hidden_states:
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            outputs = outputs + (all_hidden_states,)
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        if self.output_attentions:
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            outputs = outputs + (all_attentions,)
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        return outputs  # last hidden state, (all hidden states), (all attentions)
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class OpenAIGPTLMHeadModel(OpenAIGPTPreTrainedModel):
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    """OpenAI GPT model with a Language Modeling head ("Improving Language Understanding by Generative Pre-Training").

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    OpenAI GPT use a single embedding matrix to store the word and special embeddings.
    Special tokens embeddings are additional tokens that are not pre-trained: [SEP], [CLS]...
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    Special tokens need to be trained during the fine-tuning if you use them. The number of special embeddings
    can be controlled using the ``set_num_special_tokens(num_special_tokens)`` function.

    The embeddings are ordered as follow in the token embeddings matrix:

    ::
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        [0,                                                         ----------------------
         ...                                                        -> word embeddings
         config.vocab_size - 1,                                     ______________________
         config.vocab_size,
         ...                                                        -> special embeddings
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         config.vocab_size + config.n_special - 1]                  ______________________
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    where ``total_tokens_embeddings`` can be obtained as ``config.total_tokens_embeddings`` and is:

    ::

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        total_tokens_embeddings = config.vocab_size + config.n_special
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    You should use the associated indices to index the embeddings.

    Args:
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        `config`: a OpenAIGPTConfig class instance with the configuration to build a new model
        `output_attentions`: If True, also output attentions weights computed by the model at each layer. Default: False
        `keep_multihead_output`: If True, saves output of the multi-head attention module with its gradient.
            This can be used to compute head importance metrics. Default: False
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    Example::
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        config = modeling_openai.OpenAIGPTConfig()
        model = modeling_openai.OpenAIGPTLMHeadModel(config)
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    """
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    def __init__(self, config):
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        super(OpenAIGPTLMHeadModel, self).__init__(config)
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        self.transformer = OpenAIGPTModel(config)
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        self.lm_head = nn.Linear(config.n_embd, config.vocab_size, bias=False)
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        self.apply(self.init_weights)
        self.tie_weights()
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    def tie_weights(self):
        """ Make sure we are sharing the input and output embeddings.
            Export to TorchScript can't handle parameter sharing so we are cloning them instead.
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        """
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        self._tie_or_clone_weights(self.lm_head,
                                   self.transformer.tokens_embed)
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    def forward(self, input_ids, position_ids=None, token_type_ids=None, lm_labels=None, head_mask=None):
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        """
        Performs a model forward pass. **Can be called by calling the class directly, once it has been instantiated.**

        Args:
            `input_ids`: a ``torch.LongTensor`` of shape [batch_size, sequence_length] (or more generally [d_1, ..., d_n, sequence_length]
                were d_1 ... d_n are arbitrary dimensions) with the word BPE token indices selected in the range [0, total_tokens_embeddings[
            `position_ids`: an optional ``torch.LongTensor`` with the same shape as input_ids
                with the position indices (selected in the range [0, config.n_positions - 1[.
            `token_type_ids`: an optional ``torch.LongTensor`` with the same shape as input_ids
                You can use it to add a third type of embedding to each input token in the sequence
                (the previous two being the word and position embeddings).
                The input, position and token_type embeddings are summed inside the Transformer before the first
                self-attention block.
            `lm_labels`: optional language modeling labels: ``torch.LongTensor`` of shape [batch_size, sequence_length]
                with indices selected in [-1, 0, ..., vocab_size]. All labels set to -1 are ignored (masked), the loss
                is only computed for the labels set in [0, ..., vocab_size]
            `head_mask`: an optional ``torch.Tensor`` of shape [num_heads] or [num_layers, num_heads] with indices between 0 and 1.
                It's a mask to be used to nullify some heads of the transformer. 1.0 => head is fully masked, 0.0 => head is not masked.

        Returns:
            if ``lm_labels`` is not ``None``, outputs the language modeling loss. Otherwise, outputs ``lm_logits``,
            the language modeling logits as a ``torch.FloatTensor`` of size [batch_size, sequence_length,
            total_tokens_embeddings] (or more generally [d_1, ..., d_n, total_tokens_embeddings] where d_1 ... d_n are
            the dimension of input_ids)

        Example::

            # Already been converted into BPE token ids
            input_ids = torch.LongTensor([[31, 51, 99], [15, 5, 0]])

            lm_logits = model(input_ids)
            # or
            lm_logits = model.forward(input_ids)
        """
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        transformer_outputs = self.transformer(input_ids, position_ids, token_type_ids, head_mask)
        hidden_states = transformer_outputs[0]
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        lm_logits = self.lm_head(hidden_states)
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        outputs = (lm_logits,) + transformer_outputs[1:]
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        if lm_labels is not None:
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            # Shift so that tokens < n predict n
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            shift_logits = lm_logits[..., :-1, :].contiguous()
            shift_labels = lm_labels[..., 1:].contiguous()
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            # Flatten the tokens
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            loss_fct = CrossEntropyLoss(ignore_index=-1)
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            loss = loss_fct(shift_logits.view(-1, shift_logits.size(-1)),
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                            shift_labels.view(-1))
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            outputs = (loss,) + outputs
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        return outputs  # (loss), lm_logits, (all hidden states), (all attentions)
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class OpenAIGPTDoubleHeadsModel(OpenAIGPTPreTrainedModel):
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    """OpenAI GPT model with a Language Modeling and a Multiple Choice head ("Improving Language Understanding by Generative Pre-Training").
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    OpenAI GPT use a single embedding matrix to store the word and special embeddings.
    Special tokens embeddings are additional tokens that are not pre-trained: [SEP], [CLS]...
    Special tokens need to be trained during the fine-tuning if you use them.
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    The number of special embeddings can be controlled using the ``set_num_special_tokens(num_special_tokens)``
    function.

    The embeddings are ordered as follow in the token embeddings matrix:

    ::
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        [0,                                                         ----------------------
         ...                                                        -> word embeddings
         config.vocab_size - 1,                                     ______________________
         config.vocab_size,
         ...                                                        -> special embeddings
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         config.vocab_size + n_special - 1]                  ______________________
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    where ``total_tokens_embeddings`` is:
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    ::

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        total_tokens_embeddings = config.vocab_size + .n_special
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    You should use the associate indices to index the embeddings.
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    Args:
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        `config`: a OpenAIGPTConfig class instance with the configuration to build a new model
        `output_attentions`: If True, also output attentions weights computed by the model at each layer. Default: False
        `keep_multihead_output`: If True, saves output of the multi-head attention module with its gradient.
            This can be used to compute head importance metrics. Default: False
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    Example::

        config = modeling_openai.OpenAIGPTConfig()
        model = modeling_openai.OpenAIGPTDoubleHeadsModel(config)
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    """
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    def __init__(self, config):
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        super(OpenAIGPTDoubleHeadsModel, self).__init__(config)
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        self.transformer = OpenAIGPTModel(config)
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        self.lm_head = nn.Linear(config.n_embd, config.vocab_size, bias=False)
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        self.multiple_choice_head = SequenceSummary(config)

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        self.apply(self.init_weights)
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        self.tie_weights()
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    def tie_weights(self):
        """ Make sure we are sharing the input and output embeddings.
            Export to TorchScript can't handle parameter sharing so we are cloning them instead.
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        """
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        self._tie_or_clone_weights(self.lm_head,
                                   self.transformer.tokens_embed)
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    def forward(self, input_ids, mc_token_ids=None, lm_labels=None, mc_labels=None, token_type_ids=None,
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                position_ids=None, head_mask=None):
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        """
        Performs a model forward pass. **Can be called by calling the class directly, once it has been instantiated.**

        Args:
            `input_ids`: a ``torch.LongTensor`` of shape [batch_size, num_choices, sequence_length] with the BPE token
                indices selected in the range [0, total_tokens_embeddings[
            `mc_token_ids`: a ``torch.LongTensor`` of shape [batch_size, num_choices] with the index of the token from
                which we should take the hidden state to feed the multiple choice classifier (usually last token of the sequence)
            `position_ids`: an optional ``torch.LongTensor`` with the same shape as input_ids
                with the position indices (selected in the range [0, config.n_positions - 1[.
            `token_type_ids`: an optional ``torch.LongTensor`` with the same shape as input_ids
                You can use it to add a third type of embedding to each input token in the sequence
                (the previous two being the word and position embeddings).
                The input, position and token_type embeddings are summed inside the Transformer before the first
                self-attention block.
            `lm_labels`: optional language modeling labels: ``torch.LongTensor`` of shape [batch_size, num_choices, sequence_length]
                with indices selected in [-1, 0, ..., total_tokens_embeddings]. All labels set to -1 are ignored (masked), the loss
                is only computed for the labels set in [0, ..., total_tokens_embeddings]
            `multiple_choice_labels`: optional multiple choice labels: ``torch.LongTensor`` of shape [batch_size]
                with indices selected in [0, ..., num_choices].
            `head_mask`: an optional ``torch.Tensor`` of shape [num_heads] or [num_layers, num_heads] with indices between 0 and 1.
                It's a mask to be used to nullify some heads of the transformer. 1.0 => head is fully masked, 0.0 => head is not masked.

        Returns:
            if ``lm_labels`` and ``multiple_choice_labels`` are not ``None``, outputs a tuple of losses with the
            language modeling loss and the multiple choice loss. Otherwise, returns a
            ``tuple(lm_logits, multiple_choice_logits)``.

                ``lm_logits`` are the language modeling logits as a ``torch.FloatTensor`` of size
                [batch_size, num_choices, sequence_length, total_tokens_embeddings]

                ``multiple_choice_logits``: the multiple choice logits as a ``torch.FloatTensor`` of
                size [batch_size, num_choices]

        Example::

            # Already been converted into BPE token ids
            input_ids = torch.LongTensor([[[31, 51, 99], [15, 5, 0]]])  # (bsz, number of choice, seq length)
            mc_token_ids = torch.LongTensor([[2], [1]]) # (bsz, number of choice)

            lm_logits, multiple_choice_logits = model(input_ids, mc_token_ids)
            # or
            lm_logits, multiple_choice_logits = model.forward(input_ids, mc_token_ids)
        """
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        transformer_outputs = self.transformer(input_ids, position_ids, token_type_ids, head_mask)
        hidden_states = transformer_outputs[0]
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        lm_logits = self.lm_head(hidden_states)
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        mc_logits = self.multiple_choice_head(hidden_states, mc_token_ids).squeeze(-1)
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        outputs = (lm_logits, mc_logits) + transformer_outputs[1:]
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        if mc_labels is not None:
            loss_fct = CrossEntropyLoss()
            loss = loss_fct(mc_logits.view(-1, mc_logits.size(-1)),
                            mc_labels.view(-1))
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            outputs = (loss,) + outputs
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        if lm_labels is not None:
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            shift_logits = lm_logits[..., :-1, :].contiguous()
            shift_labels = lm_labels[..., 1:].contiguous()
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            loss_fct = CrossEntropyLoss(ignore_index=-1)
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            loss = loss_fct(shift_logits.view(-1, shift_logits.size(-1)),
                            shift_labels.view(-1))
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            outputs = (loss,) + outputs
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        return outputs  # (lm loss), (mc loss), lm logits, mc logits, (all hidden_states), (attentions)