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* adding template * update model * model update * update conf for debug model * update conversion * update conversion script * update conversion script * fix missing keys check * add tests to test the tokenizer in the local machine * Change variable name * add tests on xnli dataset * add more description * add descriptions + clearer code * clearer code * adding new tests + skipping few tests because of env problems * change comment * add dtype on the configuration * add test embeddings * add hardcoded test * fix dtype issue * adding torch.float16 to config * adding more metrics (min, max, mean) * add sum * now the test passes with almost equal * add files for conversion - test passes on cpu gpu * add final changes * cleaning code * add new args in the docstring * fix one liner function * remove macros * remove forward attention * clean up init funtion * add comments on the issue * rm scale mask softmax * do make style * fix dtype in init * fixing for loop on att probs * fix style with black * fix style + doc error * fix and debug CI errors (docs + style) * some updates - change new operations - finally add scaled softmax - added new args in the config * make use cache working * add changes - save sharded models - final changes on the modeling script * add changes - comment on alibi - add TODO on seq length * test commit - added a text to test the commit Co-authored-by: thomasw21 <24695242+thomasw21@users.noreply.github.com> * final changes - attention mask change - generation works on BS176b Co-authored-by: thomasw21 <24695242+thomasw21@users.noreply.github.com> * changes - model + conversion * move to correct dir * put , * fex fixes * fix tokenizer autodoc * fix minor CI issues * fix minor CI issues * fix minor CI issues * fix style issue * fix minor import issues * fix few issues * remove def main on the test * add require torch * replace decorator with 'with' * fix style * change to bloom * add quick fix tokenizer * fix tokenizer file * fix tokenizer - merge tests - small fixes * fix import issue * add bloom to readme * fix consistency * Update docs/source/en/model_doc/bloom.mdx Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> * Apply suggestions from code review fix comment issues on file headers Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> * fix doc issue * small fix - modeling test * some changes - refactor some code - taking into account reviews - more tests should pass - removed pruning tests * remove useless division * more tests should pass * more tests should pass * more tests should pass * let's try this one -add alibi offset - remove all permutes to make the grad operations work - finger crossed * refactor - refactor code - style changes - add new threshold for test * major changes - change BLOOM to Bloom - add quick doc on bloom.mdx - move embeddings test on modeling test * modify readme * small fixes * small fix - better threshold for a test * remove old test file from fetcher * fix small typo * major change - change BloomLMHead to BloomForCausalLM * remove onnx config * major changes - refactor the code - remove asserts - change tol for test * make style * small change * adding a slow test + commenting old ones for now * make style * Apply suggestions from code review Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> * make style * fix duplicates * cleaning comments on config * clean a bit conversion file * refacor a bit modeling file * refactor tokenizer file * fix tokenization test issue * fix tokenization issue #2 * fix tokenization issue second try * fix test issue * make style + add suggestions * change test fetcher * try this one - slow tests should pass - finger crossed * possible final changes * make style * try fix padding side issue * fix side * fix padding issue * fix ko-readme * fix config auto * cleaning modeling file * keep bloom in caps in ko * update config docs * remove pretraining_pp * remove model parallel * update config - add correct config files * fix duplicates * fix fetcher * fix refactor issue - remove divide function * try to remove alibi * small fixes - fix alibi - remove seq length - refactor a bit the code * put correct values - fix bos and eos token ids * fix attention mask loop Co-authored-by: thomasw21 <24695242+thomasw21@users.noreply.github.com> * small fixes: - remove skip bias add * small fixes - fix typo in readme - fix typos in config * small changes - remove a test - add reconstruction test - change config * small changes - change Scaled Softmax to BloomScaledSoftmax * small fixes - fix alibi dtype * major changes - removing explicit dtype when loading modules - fixing test args (torch_dtype=auto) - add dosctring * fix readmes * major changes - now bloom supports alibi shifting - refactor a bit the code - better test tolerance now * refactor a bit * refactor a bit * put correct name on test * change docstring * small changes - fix docstring modeling - fix test tolerance * fix small nit - take dtype from tensors in the conversion script * minor fix - fix mdx issue * minor fix - change config docstring * forward contrib credits from PR14084 * Apply suggestions from code review Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> * apply modifications Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> * resolve softmax upcast * Apply suggestions from code review Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> * Update src/transformers/models/bloom/modeling_bloom.py Co-authored-by: Niklas Muennighoff <n.muennighoff@gmail.com> * final changes modeling Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> * Merge commit 'd156898f3b9b2c990e5963f5030a7143d57921a2' * merge commit * Apply suggestions from code review Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> * apply suggestions Apply suggestions from Stas comments Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> * Fix gradient checkpointing Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> * add slow but exact * add accelerate compatibility Co-authored-by: Nicolas Patry <Narsil@users.noreply.github.com> * forward contrib credits Co-authored-by: thomasw21 <thomasw21@users.noreply.github.com> Co-authored-by: sgugger <sgugger@users.noreply.github.com> Co-authored-by: patrickvonplaten <patrickvonplaten@users.noreply.github.com> Co-authored-by: Niklas Muennighoff <n.muennighoff@gmail.com> Co-authored-by: LysandreJik <LysandreJik@users.noreply.github.com> * Apply suggestions from code review Co-authored-by: Patrick von Platen <patrick.v.platen@gmail.com> * fix torch device on tests * make style * Apply suggestions from code review Co-authored-by: Patrick von Platen <patrick.v.platen@gmail.com> * fix nits Co-authored-by: patrickvonplaten<patrickvonplaten@users.noreply.github.com> * remove final nits * fix doc - add more details on the doc - add links to checkpoints * Update src/transformers/__init__.py Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> * Update src/transformers/models/bloom/modeling_bloom.py Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> * apply suggestions Co-authored-by: sgugger <sgugger@users.noreply.github.com> * put test torchscript to false * Update src/transformers/models/bloom/modeling_bloom.py Co-authored-by: justheuristic <justheuristic@gmail.com> * fix alibi - create alibi only once * add small doc * make quality * replace torch.nn * remove token type emb * fix fused op + output bias * add fused op - now can control fused operation from config * remove fused op * make quality * small changes - remove unsed args on config - removed bias gelu file - make the model torchscriptable - add torchscript slow tests * Update src/transformers/models/bloom/modeling_bloom.py * fix slow * make style * add accelerate support * add bloom to deepspeed tests * minor changes * Apply suggestions from code review Co-authored-by: Patrick von Platen <patrick.v.platen@gmail.com> * minor change * slow tests pass * Apply suggestions from code review Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> * Update docs/source/en/model_doc/bloom.mdx Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> * minor changes: - change docstring - add link to paper Co-authored-by: Thomwolf <thomwolf@gmail.com> Co-authored-by: Thomas Wolf <thomas@huggingface.co> Co-authored-by: thomasw21 <24695242+thomasw21@users.noreply.github.com> Co-authored-by: Sylvain Gugger <35901082+sgugger@users.noreply.github.com> Co-authored-by: sIncerass <sheng.s@berkeley.edu> Co-authored-by: Stas Bekman <stas00@users.noreply.github.com> Co-authored-by: Niklas Muennighoff <n.muennighoff@gmail.com> Co-authored-by: Nicolas Patry <Narsil@users.noreply.github.com> Co-authored-by: thomasw21 <thomasw21@users.noreply.github.com> Co-authored-by: sgugger <sgugger@users.noreply.github.com> Co-authored-by: patrickvonplaten <patrickvonplaten@users.noreply.github.com> Co-authored-by: LysandreJik <LysandreJik@users.noreply.github.com> Co-authored-by: Patrick von Platen <patrick.v.platen@gmail.com> Co-authored-by: justheuristic <justheuristic@gmail.com> Co-authored-by: Stas Bekman <stas@stason.org>
130 lines
5.3 KiB
Python
130 lines
5.3 KiB
Python
# coding=utf-8
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# Copyright 2022 The HuggingFace Team. All rights reserved.
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#
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# Licensed under the Apache License, Version 2.0 (the "License");
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# you may not use this file except in compliance with the License.
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# You may obtain a copy of the License at
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#
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# http://www.apache.org/licenses/LICENSE-2.0
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#
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# Unless required by applicable law or agreed to in writing, software
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# distributed under the License is distributed on an "AS IS" BASIS,
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# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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# See the License for the specific language governing permissions and
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# limitations under the License.
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import unittest
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from datasets import load_dataset
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from transformers import BloomTokenizerFast
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from transformers.testing_utils import require_tokenizers
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from ...test_tokenization_common import TokenizerTesterMixin
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@require_tokenizers
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class BloomTokenizationTest(TokenizerTesterMixin, unittest.TestCase):
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slow_tokenizer_class = None
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rust_tokenizer_class = BloomTokenizerFast
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tokenizer_class = BloomTokenizerFast
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test_rust_tokenizer = True
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test_slow_tokenizer = False
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from_pretrained_vocab_key = "tokenizer_file"
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special_tokens_map = {"bos_token": "<s>", "eos_token": "</s>", "unk_token": "<unk>", "pad_token": "<pad>"}
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def setUp(self):
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super().setUp()
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tokenizer = BloomTokenizerFast.from_pretrained("bigscience/tokenizer")
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tokenizer.save_pretrained(self.tmpdirname)
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def get_rust_tokenizer(self, **kwargs):
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kwargs.update(self.special_tokens_map)
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return BloomTokenizerFast.from_pretrained(self.tmpdirname, **kwargs)
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def test_encodings_from_sample_data(self):
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"""
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Assert that the created tokens are the same than the hard-coded ones
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"""
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tokenizer = self.get_rust_tokenizer()
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INPUT_SENTENCES = ["The quick brown fox</s>", "jumps over the lazy dog</s>"]
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TARGET_TOKENS = [[2175, 23714, 73173, 144252, 2], [77, 132619, 3478, 368, 109586, 35433, 2]]
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computed_tokens = tokenizer.batch_encode_plus(INPUT_SENTENCES)["input_ids"]
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self.assertListEqual(TARGET_TOKENS, computed_tokens)
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decoded_tokens = tokenizer.batch_decode(computed_tokens)
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self.assertListEqual(decoded_tokens, INPUT_SENTENCES)
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def test_padding(self, max_length=6):
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for tokenizer, pretrained_name, kwargs in self.tokenizers_list:
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with self.subTest(f"{tokenizer.__class__.__name__} ({pretrained_name})"):
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tokenizer_r = self.rust_tokenizer_class.from_pretrained(pretrained_name, **kwargs)
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# tokenizer_r.pad_token = None # Hotfixing padding = None
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# Simple input
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s = "This is a simple input"
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s2 = ["This is a simple input 1", "This is a simple input 2"]
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p = ("This is a simple input", "This is a pair")
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p2 = [
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("This is a simple input 1", "This is a simple input 2"),
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("This is a simple pair 1", "This is a simple pair 2"),
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]
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# Simple input tests
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try:
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tokenizer_r.encode(s, max_length=max_length)
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tokenizer_r.encode_plus(s, max_length=max_length)
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tokenizer_r.batch_encode_plus(s2, max_length=max_length)
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tokenizer_r.encode(p, max_length=max_length)
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tokenizer_r.batch_encode_plus(p2, max_length=max_length)
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except ValueError:
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self.fail("Bloom Tokenizer should be able to deal with padding")
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tokenizer_r.pad_token = None # Hotfixing padding = None
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self.assertRaises(ValueError, tokenizer_r.encode, s, max_length=max_length, padding="max_length")
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# Simple input
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self.assertRaises(ValueError, tokenizer_r.encode_plus, s, max_length=max_length, padding="max_length")
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# Simple input
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self.assertRaises(
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ValueError,
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tokenizer_r.batch_encode_plus,
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s2,
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max_length=max_length,
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padding="max_length",
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)
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# Pair input
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self.assertRaises(ValueError, tokenizer_r.encode, p, max_length=max_length, padding="max_length")
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# Pair input
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self.assertRaises(ValueError, tokenizer_r.encode_plus, p, max_length=max_length, padding="max_length")
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# Pair input
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self.assertRaises(
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ValueError,
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tokenizer_r.batch_encode_plus,
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p2,
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max_length=max_length,
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padding="max_length",
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)
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def test_encodings_from_xnli_dataset(self):
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"""
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Tests the tokenizer downloaded from here:
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- https://huggingface.co/bigscience/tokenizer/
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"""
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tokenizer = self.get_rust_tokenizer()
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ds = load_dataset("xnli", "all_languages", split="test", streaming=True)
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sample_data = next(iter(ds))["premise"] # pick up one data
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input_text = list(sample_data.values())
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output_tokens = list(map(tokenizer.encode, input_text))
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predicted_text = list(map(lambda x: tokenizer.decode(x, clean_up_tokenization_spaces=False), output_tokens))
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self.assertListEqual(predicted_text, input_text)
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