generate_samples_gpt.py 4.25 KB
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# coding=utf-8
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# Copyright (c) 2020, NVIDIA CORPORATION.  All rights reserved.
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#
# 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.

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"""Sample Generate GPT"""
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import os
import sys
sys.path.append(os.path.abspath(os.path.join(os.path.dirname(__file__),
                                             os.path.pardir)))

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from megatron import get_args
from megatron import print_rank_0
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from megatron import get_tokenizer
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from megatron import mpu
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from megatron.checkpointing import load_checkpoint
from megatron.initialize import initialize_megatron
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from megatron.model import GPTModel
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from megatron.training import get_model
from megatron.text_generation_utils import generate_and_write_samples_unconditional
from megatron.text_generation_utils import generate_samples_input_from_file
from megatron.text_generation_utils import generate_samples_interactive


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def model_provider(pre_process=True, post_process=True):
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    """Build the model."""

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    print_rank_0('building GPT model ...')
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    model = GPTModel(num_tokentypes=0, parallel_output=False,
                     pre_process=pre_process, post_process=post_process)
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    return model


def add_text_generate_args(parser):
    """Text generation arguments."""
    group = parser.add_argument_group(title='text generation')

    group.add_argument("--temperature", type=float, default=1.0,
                       help='Sampling temperature.')
    group.add_argument("--greedy", action='store_true', default=False,
                       help='Use greedy sampling.')
    group.add_argument("--top_p", type=float, default=0.0,
                       help='Top p sampling.')
    group.add_argument("--top_k", type=int, default=0,
                       help='Top k sampling.')
    group.add_argument("--out-seq-length", type=int, default=1024,
                       help='Size of the output generated text.')
    group.add_argument("--sample-input-file", type=str, default=None,
                       help='Get input from file instead of interactive mode, '
                       'each line is an input.')
    group.add_argument("--sample-output-file", type=str, default=None,
                       help='Output file got from --sample-input-file')
    group.add_argument("--num-samples", type=int, default=0,
                       help='Number of samples to generate unconditionally, '
                       'defaults to 0 and interactive conditional sampling')
    group.add_argument("--genfile", type=str,
                       help='Output file when generating unconditionally')
    group.add_argument("--recompute", action='store_true',
                       help='During generation recompute all attention '
                       'instead of using previously computed keys/values.')

    return parser


def main():
    """Main program."""

    initialize_megatron(extra_args_provider=add_text_generate_args,
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                        args_defaults={'tokenizer_type': 'GPT2BPETokenizer',
                                       'no_load_rng': True,
                                       'no_load_optim': True})
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    args = get_args()
    if args.num_layers_per_virtual_pipeline_stage is not None:
        print("Interleaved pipeline schedule is not yet supported for text generation.")
        exit()

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    # Set up model and load checkpoint.
    model = get_model(model_provider)
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    if args.load is not None:
        _ = load_checkpoint(model, None, None)

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    assert len(model) == 1, "Above condition should have caught this"
    model = model[0]

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    # Generate samples.
    if args.num_samples == 0:
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        args.micro_batch_size = 1
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        if args.sample_input_file != None:
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            generate_samples_input_from_file(model)
        else:
            generate_samples_interactive(model)
    else:
        generate_and_write_samples_unconditional(model)


if __name__ == "__main__":

    main()