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Browse files
pytorch_model.bin → pytorch_model-00001-of-00002.bin
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|
230 |
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|
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|
232 |
+
"model.norm.weight": "pytorch_model-00002-of-00002.bin"
|
233 |
+
}
|
234 |
+
}
|
tokenization_baichuan.py
CHANGED
@@ -43,7 +43,6 @@ PRETRAINED_POSITIONAL_EMBEDDINGS_SIZES = {}
|
|
43 |
class BaichuanTokenizer(PreTrainedTokenizer):
|
44 |
"""
|
45 |
Construct a Baichuan tokenizer. Based on byte-level Byte-Pair-Encoding.
|
46 |
-
|
47 |
Args:
|
48 |
vocab_file (`str`):
|
49 |
Path to the vocabulary file.
|
@@ -72,6 +71,13 @@ class BaichuanTokenizer(PreTrainedTokenizer):
|
|
72 |
eos_token = AddedToken(eos_token, lstrip=False, rstrip=False) if isinstance(eos_token, str) else eos_token
|
73 |
unk_token = AddedToken(unk_token, lstrip=False, rstrip=False) if isinstance(unk_token, str) else unk_token
|
74 |
pad_token = AddedToken(pad_token, lstrip=False, rstrip=False) if isinstance(pad_token, str) else pad_token
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
75 |
super().__init__(
|
76 |
bos_token=bos_token,
|
77 |
eos_token=eos_token,
|
@@ -82,12 +88,7 @@ class BaichuanTokenizer(PreTrainedTokenizer):
|
|
82 |
sp_model_kwargs=self.sp_model_kwargs,
|
83 |
clean_up_tokenization_spaces=clean_up_tokenization_spaces,
|
84 |
**kwargs,
|
85 |
-
)
|
86 |
-
self.vocab_file = vocab_file
|
87 |
-
self.add_bos_token = add_bos_token
|
88 |
-
self.add_eos_token = add_eos_token
|
89 |
-
self.sp_model = spm.SentencePieceProcessor(**self.sp_model_kwargs)
|
90 |
-
self.sp_model.Load(vocab_file)
|
91 |
|
92 |
def __getstate__(self):
|
93 |
state = self.__dict__.copy()
|
@@ -145,11 +146,9 @@ class BaichuanTokenizer(PreTrainedTokenizer):
|
|
145 |
def save_vocabulary(self, save_directory, filename_prefix: Optional[str] = None) -> Tuple[str]:
|
146 |
"""
|
147 |
Save the vocabulary and special tokens file to a directory.
|
148 |
-
|
149 |
Args:
|
150 |
save_directory (`str`):
|
151 |
The directory in which to save the vocabulary.
|
152 |
-
|
153 |
Returns:
|
154 |
`Tuple(str)`: Paths to the files saved.
|
155 |
"""
|
@@ -186,7 +185,6 @@ class BaichuanTokenizer(PreTrainedTokenizer):
|
|
186 |
"""
|
187 |
Retrieve sequence ids from a token list that has no special tokens added. This method is called when adding
|
188 |
special tokens using the tokenizer `prepare_for_model` method.
|
189 |
-
|
190 |
Args:
|
191 |
token_ids_0 (`List[int]`):
|
192 |
List of IDs.
|
@@ -194,7 +192,6 @@ class BaichuanTokenizer(PreTrainedTokenizer):
|
|
194 |
Optional second list of IDs for sequence pairs.
|
195 |
already_has_special_tokens (`bool`, *optional*, defaults to `False`):
|
196 |
Whether or not the token list is already formatted with special tokens for the model.
|
197 |
-
|
198 |
Returns:
|
199 |
`List[int]`: A list of integers in the range [0, 1]: 1 for a special token, 0 for a sequence token.
|
200 |
"""
|
@@ -223,20 +220,16 @@ class BaichuanTokenizer(PreTrainedTokenizer):
|
|
223 |
"""
|
224 |
Creates a mask from the two sequences passed to be used in a sequence-pair classification task. An ALBERT
|
225 |
sequence pair mask has the following format:
|
226 |
-
|
227 |
```
|
228 |
0 0 0 0 0 0 0 0 0 0 0 1 1 1 1 1 1 1 1 1
|
229 |
| first sequence | second sequence |
|
230 |
```
|
231 |
-
|
232 |
if token_ids_1 is None, only returns the first portion of the mask (0s).
|
233 |
-
|
234 |
Args:
|
235 |
token_ids_0 (`List[int]`):
|
236 |
List of ids.
|
237 |
token_ids_1 (`List[int]`, *optional*):
|
238 |
Optional second list of IDs for sequence pairs.
|
239 |
-
|
240 |
Returns:
|
241 |
`List[int]`: List of [token type IDs](../glossary#token-type-ids) according to the given sequence(s).
|
242 |
"""
|
|
|
43 |
class BaichuanTokenizer(PreTrainedTokenizer):
|
44 |
"""
|
45 |
Construct a Baichuan tokenizer. Based on byte-level Byte-Pair-Encoding.
|
|
|
46 |
Args:
|
47 |
vocab_file (`str`):
|
48 |
Path to the vocabulary file.
|
|
|
71 |
eos_token = AddedToken(eos_token, lstrip=False, rstrip=False) if isinstance(eos_token, str) else eos_token
|
72 |
unk_token = AddedToken(unk_token, lstrip=False, rstrip=False) if isinstance(unk_token, str) else unk_token
|
73 |
pad_token = AddedToken(pad_token, lstrip=False, rstrip=False) if isinstance(pad_token, str) else pad_token
|
74 |
+
|
75 |
+
self.vocab_file = vocab_file
|
76 |
+
self.add_bos_token = add_bos_token
|
77 |
+
self.add_eos_token = add_eos_token
|
78 |
+
self.sp_model = spm.SentencePieceProcessor(**self.sp_model_kwargs)
|
79 |
+
self.sp_model.Load(vocab_file)
|
80 |
+
|
81 |
super().__init__(
|
82 |
bos_token=bos_token,
|
83 |
eos_token=eos_token,
|
|
|
88 |
sp_model_kwargs=self.sp_model_kwargs,
|
89 |
clean_up_tokenization_spaces=clean_up_tokenization_spaces,
|
90 |
**kwargs,
|
91 |
+
)
|
|
|
|
|
|
|
|
|
|
|
92 |
|
93 |
def __getstate__(self):
|
94 |
state = self.__dict__.copy()
|
|
|
146 |
def save_vocabulary(self, save_directory, filename_prefix: Optional[str] = None) -> Tuple[str]:
|
147 |
"""
|
148 |
Save the vocabulary and special tokens file to a directory.
|
|
|
149 |
Args:
|
150 |
save_directory (`str`):
|
151 |
The directory in which to save the vocabulary.
|
|
|
152 |
Returns:
|
153 |
`Tuple(str)`: Paths to the files saved.
|
154 |
"""
|
|
|
185 |
"""
|
186 |
Retrieve sequence ids from a token list that has no special tokens added. This method is called when adding
|
187 |
special tokens using the tokenizer `prepare_for_model` method.
|
|
|
188 |
Args:
|
189 |
token_ids_0 (`List[int]`):
|
190 |
List of IDs.
|
|
|
192 |
Optional second list of IDs for sequence pairs.
|
193 |
already_has_special_tokens (`bool`, *optional*, defaults to `False`):
|
194 |
Whether or not the token list is already formatted with special tokens for the model.
|
|
|
195 |
Returns:
|
196 |
`List[int]`: A list of integers in the range [0, 1]: 1 for a special token, 0 for a sequence token.
|
197 |
"""
|
|
|
220 |
"""
|
221 |
Creates a mask from the two sequences passed to be used in a sequence-pair classification task. An ALBERT
|
222 |
sequence pair mask has the following format:
|
|
|
223 |
```
|
224 |
0 0 0 0 0 0 0 0 0 0 0 1 1 1 1 1 1 1 1 1
|
225 |
| first sequence | second sequence |
|
226 |
```
|
|
|
227 |
if token_ids_1 is None, only returns the first portion of the mask (0s).
|
|
|
228 |
Args:
|
229 |
token_ids_0 (`List[int]`):
|
230 |
List of ids.
|
231 |
token_ids_1 (`List[int]`, *optional*):
|
232 |
Optional second list of IDs for sequence pairs.
|
|
|
233 |
Returns:
|
234 |
`List[int]`: List of [token type IDs](../glossary#token-type-ids) according to the given sequence(s).
|
235 |
"""
|