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fd1f187
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upload model for transformers>=4.46

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449
+ }
450
+ }
special_tokens_map.json ADDED
@@ -0,0 +1,9 @@
 
 
 
 
 
 
 
 
 
 
1
+ {
2
+ "eos_token": {
3
+ "content": "<|endoftext|>",
4
+ "lstrip": false,
5
+ "normalized": false,
6
+ "rstrip": false,
7
+ "single_word": false
8
+ }
9
+ }
tokenization_chatglm.py ADDED
@@ -0,0 +1,265 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ import regex as re
2
+ import base64
3
+ import os
4
+ import json
5
+ import tiktoken
6
+ from transformers import PreTrainedTokenizer
7
+ from typing import List, Optional, Union, Dict
8
+ from transformers import PreTrainedTokenizer
9
+ from transformers.utils import logging, PaddingStrategy
10
+ from transformers.tokenization_utils_base import EncodedInput, BatchEncoding
11
+
12
+
13
+ class ChatGLM4Tokenizer(PreTrainedTokenizer):
14
+ vocab_files_names = {"vocab_file": "tokenizer.model"}
15
+ model_input_names = ["input_ids", "attention_mask", "position_ids"]
16
+
17
+ def __init__(
18
+ self,
19
+ vocab_file,
20
+ padding_side="left",
21
+ clean_up_tokenization_spaces=False,
22
+ encode_special_tokens=False,
23
+ **kwargs
24
+ ):
25
+ self.name = "GLMTokenizer"
26
+ self.vocab_file = vocab_file
27
+ pat_str = "(?i:'s|'t|'re|'ve|'m|'ll|'d)|[^\\r\\n\\p{L}\\p{N}]?\\p{L}+|\\p{N}{1,3}| ?[^\\s\\p{L}\\p{N}]+[\\r\\n]*|\\s*[\\r\\n]+|\\s+(?!\\S)|\\s+"
28
+ self.pat_str = re.compile(pat_str)
29
+ self.encode_special_tokens = encode_special_tokens
30
+
31
+ mergeable_ranks = {}
32
+ with open(vocab_file) as f:
33
+ for line in f:
34
+ token, rank = line.strip().split()
35
+ rank = int(rank)
36
+ token = base64.b64decode(token)
37
+ mergeable_ranks[token] = rank
38
+
39
+ self.mergeable_ranks = mergeable_ranks
40
+ self.special_tokens = ["<|endoftext|>", "[MASK]", "[gMASK]", "[sMASK]", "<sop>", "<eop>", "<|system|>",
41
+ "<|user|>", "<|assistant|>", "<|observation|>", "<|begin_of_image|>", "<|end_of_image|>",
42
+ "<|begin_of_video|>", "<|end_of_video|>"]
43
+
44
+ self.special_tokens = {
45
+ token: idx for idx, token in enumerate(self.special_tokens, start=len(mergeable_ranks))
46
+ }
47
+ self.special_token_ids = {idx: token for token, idx in self.special_tokens.items()}
48
+
49
+ self.tokenizer = tiktoken.Encoding(
50
+ name="my_tokenizer",
51
+ pat_str=pat_str,
52
+ mergeable_ranks=mergeable_ranks,
53
+ special_tokens=self.special_tokens
54
+ )
55
+ self.decoder = {rank: token for token, rank in mergeable_ranks.items()}
56
+ self.n_words = len(self.decoder) + len(self.special_tokens)
57
+
58
+ super().__init__(
59
+ padding_side=padding_side,
60
+ clean_up_tokenization_spaces=clean_up_tokenization_spaces,
61
+ **kwargs
62
+ )
63
+
64
+ def get_command(self, token):
65
+ assert token in self.special_tokens
66
+ return self.special_tokens[token]
67
+
68
+ @property
69
+ def vocab_size(self):
70
+ return self.n_words
71
+
72
+ @property
73
+ def eos_token_id(self):
74
+ return self.get_command("<|endoftext|>")
75
+
76
+ def get_vocab(self):
77
+ """ Returns vocab as a dict """
78
+ vocab = {self._convert_id_to_token(i): i for i in range(self.vocab_size)}
79
+ vocab.update(self.added_tokens_encoder)
80
+ return vocab
81
+
82
+ def convert_tokens_to_string(self, tokens: List[Union[bytes, str]]) -> str:
83
+ """
84
+ Converts a sequence of tokens in a single string.
85
+ """
86
+ text = ""
87
+ temp = b""
88
+ for t in tokens:
89
+ if isinstance(t, str):
90
+ if temp:
91
+ text += temp.decode("utf-8", errors="replace")
92
+ temp = b""
93
+ text += t
94
+ elif isinstance(t, bytes):
95
+ temp += t
96
+ else:
97
+ raise TypeError("token should only be of type types or str")
98
+ if temp:
99
+ text += temp.decode("utf-8", errors="replace")
100
+ return text
101
+
102
+ def _tokenize(self, text, **kwargs):
103
+ tokens = []
104
+ if self.encode_special_tokens:
105
+ ids = self.tokenizer.encode(text, allowed_special="all")
106
+ else:
107
+ ids = self.tokenizer.encode(text, disallowed_special=())
108
+ for t in ids:
109
+ tokens.append(self.decoder[t])
110
+ return tokens
111
+
112
+ def _convert_token_to_id(self, token):
113
+ """ Converts a token (str) in an id using the vocab. """
114
+ if token in self.special_tokens:
115
+ return self.special_tokens[token]
116
+ return self.mergeable_ranks[token]
117
+
118
+ def _convert_id_to_token(self, index):
119
+ """Converts an index (integer) in a token (str) using the vocab."""
120
+ if index in self.special_token_ids:
121
+ return self.special_token_ids[index]
122
+ return self.decoder[index]
123
+
124
+ def save_vocabulary(self, save_directory, filename_prefix=None):
125
+ """
126
+ Save the vocabulary and special tokens file to a directory.
127
+
128
+ Args:
129
+ save_directory (`str`):
130
+ The directory in which to save the vocabulary.
131
+ filename_prefix (`str`, *optional*):
132
+ An optional prefix to add to the named of the saved files.
133
+
134
+ Returns:
135
+ `Tuple(str)`: Paths to the files saved.
136
+ """
137
+ if os.path.isdir(save_directory):
138
+ vocab_file = os.path.join(
139
+ save_directory, self.vocab_files_names["vocab_file"]
140
+ )
141
+ else:
142
+ vocab_file = save_directory
143
+
144
+ with open(self.vocab_file, 'rb') as fin:
145
+ proto_str = fin.read()
146
+
147
+ with open(vocab_file, "wb") as writer:
148
+ writer.write(proto_str)
149
+
150
+ return (vocab_file,)
151
+
152
+ def get_prefix_tokens(self):
153
+ prefix_tokens = [self.get_command("[gMASK]"), self.get_command("<sop>")]
154
+ return prefix_tokens
155
+
156
+ def build_single_message(self, role, metadata, message):
157
+ assert role in ["system", "user", "assistant", "observation"], role
158
+ role_tokens = [self.get_command(f"<|{role}|>")] + self.tokenizer.encode(f"{metadata}\n")
159
+ message_tokens = self.tokenizer.encode(message, disallowed_special=())
160
+ tokens = role_tokens + message_tokens
161
+ return tokens
162
+
163
+ def build_chat_input(self, query, history=None, role="user"):
164
+ if history is None:
165
+ history = []
166
+ input_ids = []
167
+ for item in history:
168
+ content = item["content"]
169
+ if item["role"] == "system" and "tools" in item:
170
+ for function in item["tools"]:
171
+ content += f"\n\n## {function['name']}\n\n{json.dumps(function, ensure_ascii=False, indent=4)}"
172
+ content += "\n在调用上述函数时,请使用 Json 格式表示调用的参数。"
173
+ input_ids.extend(self.build_single_message(item["role"], item.get("metadata", ""), content))
174
+ input_ids.extend(self.build_single_message(role, "", query))
175
+ input_ids.extend([self.get_command("<|assistant|>")])
176
+ return self.batch_encode_plus([input_ids], return_tensors="pt", is_split_into_words=True)
177
+
178
+ def build_inputs_with_special_tokens(
179
+ self, token_ids_0: List[int], token_ids_1: Optional[List[int]] = None
180
+ ) -> List[int]:
181
+ """
182
+ Build model inputs from a sequence or a pair of sequence for sequence classification tasks by concatenating and
183
+ adding special tokens. A BERT sequence has the following format:
184
+
185
+ - single sequence: `[CLS] X [SEP]`
186
+ - pair of sequences: `[CLS] A [SEP] B [SEP]`
187
+
188
+ Args:
189
+ token_ids_0 (`List[int]`):
190
+ List of IDs to which the special tokens will be added.
191
+ token_ids_1 (`List[int]`, *optional*):
192
+ Optional second list of IDs for sequence pairs.
193
+
194
+ Returns:
195
+ `List[int]`: List of [input IDs](../glossary#input-ids) with the appropriate special tokens.
196
+ """
197
+ prefix_tokens = self.get_prefix_tokens()
198
+ token_ids_0 = prefix_tokens + token_ids_0
199
+ if token_ids_1 is not None:
200
+ token_ids_0 = token_ids_0 + token_ids_1 + [self.get_command("<eos>")]
201
+ return token_ids_0
202
+
203
+ def _pad(
204
+ self,
205
+ encoded_inputs: Union[Dict[str, EncodedInput], BatchEncoding],
206
+ max_length: Optional[int] = None,
207
+ padding_strategy: PaddingStrategy = PaddingStrategy.DO_NOT_PAD,
208
+ pad_to_multiple_of: Optional[int] = None,
209
+ padding_side: Optional[str] = None,
210
+ return_attention_mask: Optional[bool] = None,
211
+ ) -> dict:
212
+ """
213
+ Pad encoded inputs (on left/right and up to predefined length or max length in the batch)
214
+
215
+ Args:
216
+ encoded_inputs:
217
+ Dictionary of tokenized inputs (`List[int]`) or batch of tokenized inputs (`List[List[int]]`).
218
+ max_length: maximum length of the returned list and optionally padding length (see below).
219
+ Will truncate by taking into account the special tokens.
220
+ padding_strategy: PaddingStrategy to use for padding.
221
+
222
+ - PaddingStrategy.LONGEST Pad to the longest sequence in the batch
223
+ - PaddingStrategy.MAX_LENGTH: Pad to the max length (default)
224
+ - PaddingStrategy.DO_NOT_PAD: Do not pad
225
+ The tokenizer padding sides are defined in self.padding_side:
226
+
227
+ - 'left': pads on the left of the sequences
228
+ - 'right': pads on the right of the sequences
229
+ pad_to_multiple_of: (optional) Integer if set will pad the sequence to a multiple of the provided value.
230
+ This is especially useful to enable the use of Tensor Core on NVIDIA hardware with compute capability
231
+ `>= 7.5` (Volta).
232
+ return_attention_mask:
233
+ (optional) Set to False to avoid returning attention mask (default: set to model specifics)
234
+ """
235
+ # Load from model defaults
236
+ assert self.padding_side == "left"
237
+
238
+ required_input = encoded_inputs[self.model_input_names[0]]
239
+ seq_length = len(required_input)
240
+
241
+ if padding_strategy == PaddingStrategy.LONGEST:
242
+ max_length = len(required_input)
243
+
244
+ if max_length is not None and pad_to_multiple_of is not None and (max_length % pad_to_multiple_of != 0):
245
+ max_length = ((max_length // pad_to_multiple_of) + 1) * pad_to_multiple_of
246
+
247
+ needs_to_be_padded = padding_strategy != PaddingStrategy.DO_NOT_PAD and len(required_input) != max_length
248
+
249
+ # Initialize attention mask if not present.
250
+ if "attention_mask" not in encoded_inputs:
251
+ encoded_inputs["attention_mask"] = [1] * seq_length
252
+
253
+ if "position_ids" not in encoded_inputs:
254
+ encoded_inputs["position_ids"] = list(range(seq_length))
255
+
256
+ if needs_to_be_padded:
257
+ difference = max_length - len(required_input)
258
+
259
+ if "attention_mask" in encoded_inputs:
260
+ encoded_inputs["attention_mask"] = [0] * difference + encoded_inputs["attention_mask"]
261
+ if "position_ids" in encoded_inputs:
262
+ encoded_inputs["position_ids"] = [0] * difference + encoded_inputs["position_ids"]
263
+ encoded_inputs[self.model_input_names[0]] = [self.pad_token_id] * difference + required_input
264
+
265
+ return encoded_inputs
tokenizer.json ADDED
@@ -0,0 +1,3 @@
 
 
 
 
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+ version https://git-lfs.github.com/spec/v1
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+ oid sha256:50c5c9f6f9497c267ea16bb4dd25cbb3954767fe5e7b27bb72ebfc28533fb5fd
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+ size 19965418
tokenizer.model ADDED
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+ version https://git-lfs.github.com/spec/v1
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+ oid sha256:5a493598071550244b2ee7f26118f3edec2150b9dfa967929a99052ac83fe716
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+ size 2623634
tokenizer_config.json ADDED
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+ {
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+ "added_tokens_decoder": {
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+ "151329": {
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+ "content": "<|endoftext|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151330": {
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+ "content": "[MASK]",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151331": {
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+ "content": "[gMASK]",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151332": {
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+ "content": "[sMASK]",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151333": {
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+ "content": "<sop>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151334": {
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+ "content": "<eop>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151335": {
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+ "content": "<|system|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151336": {
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+ "content": "<|user|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151337": {
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+ "content": "<|assistant|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151338": {
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+ "content": "<|observation|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151339": {
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+ "content": "<|begin_of_image|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151340": {
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+ "content": "<|end_of_image|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151341": {
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+ "content": "<|begin_of_video|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ },
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+ "151342": {
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+ "content": "<|end_of_video|>",
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+ "lstrip": false,
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+ "normalized": false,
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+ "rstrip": false,
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+ "single_word": false,
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+ "special": true
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+ }
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+ },
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+ "additional_special_tokens": [
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+ "<|endoftext|>",
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+ "[MASK]",
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+ "[gMASK]",
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+ "[sMASK]",
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+ "<sop>",
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+ "<eop>",
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+ "<|system|>",
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+ "<|user|>",
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+ "<|assistant|>",
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+ "<|observation|>",
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+ "<|begin_of_image|>",
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+ "<|end_of_image|>",
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+ "<|begin_of_video|>",
130
+ "<|end_of_video|>"
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+ ],
132
+ "auto_map": {
133
+ "AutoTokenizer": [
134
+ "tokenization_chatglm.ChatGLM4Tokenizer",
135
+ null
136
+ ]
137
+ },
138
+ "chat_template": "[gMASK]<sop>{% for item in messages %}{% if item['tools'] is defined %}<|system|>\n你是一个名为 ChatGLM 的人工智能助手。你是基于智谱AI训练的语言模型 GLM-4 模型开发的,你的任务是针对用户的问题和要求提供适当的答复和支持。\n\n# 可用工具{% set tools = item['tools'] %}{% for tool in tools %}{% if tool['type'] == 'function' %}\n\n## {{ tool['function']['name'] }}\n\n{{ tool['function'] | tojson(indent=4) }}\n在调用上述函数时,请使用 Json 格式表示调用的参数。{% elif tool['type'] == 'python' %}\n\n## python\n\n当你向 `python` 发送包含 Python 代码的消息时,该代码将会在一个有状态的 Jupyter notebook 环境中执行。\n`python` 返回代码执行的输出,或在执行 60 秒后返回超时。\n`/mnt/data` 将会持久化存储你的文件。在此会话中,`python` 无法访问互联网。不要使用 `python` 进行任何网络请求或者在线 API 调用,这些在线内容的访问将不会成功。{% elif tool['type'] == 'simple_browser' %}\n\n## simple_browser\n\n你可以使用 `simple_browser` 工具。该工具支持以下函数:\n`search(query: str, recency_days: int)`:使用搜索引擎进行查询并显示结果,可以使用 `recency_days` 参数控制搜索内容的时效性。\n`mclick(ids: list[int])`:获取一系列指定 id 的页面内容。每次调用时,须选择3-10个页面。选择多个角度的页面,同时尽可能选择可信任的信息来源。考虑到部分页面是无法加载的,你也可以多打开一些可能有用的页面而不用担心内容过多。\n`open_url(url: str)`:打开指定的 URL。\n\n使用 `【{引用 id}†{引用文本}】` 来引用内容。\n\n操作步骤:1. 使用 `search` 来获得信息列表; 2. 使用 `mclick` 来获取指定 ID 页面的内容; 3. 根据获得的内容进行回复。在回复中应当引用信息来源。\n 如果用户提供了 URL,也可以用 `open_url` 直��打开页面。\n如果初次搜索结果没有找到合适的信息,也可以再次使用 `search` 进行搜索。{% elif tool['type'] == 'cogview' %}\n\n## cogview\n\n如果用户的请求中包含了对图像的描述,你可以使用 `cogview` 来生成图像并展示给用户。你需要向 `cogview` 发送图像描述,规则:\n- 发送给 `cogview` 的消息必须使用英语。用户的中文描述必须完全翻译为英语。\n- 应当尽可能详细地描述图像生成的需求,需求描述约 100 英文单词。\n- 保持用户原始描述的意图。不要虚构内容或者没见过的人物。\n- 如无特殊说明,所在地为中国,持有中国立场并遵循中国社会主义价值观。{% endif %}{% endfor %}{% endif %}{% if item['content'] %}<|{{ item['role'] }}|>{{ item['metadata'] }}\n{{ item['content'] }}{% endif %}{% endfor %}{% if add_generation_prompt %}<|assistant|>{% endif %}",
139
+ "clean_up_tokenization_spaces": false,
140
+ "do_lower_case": false,
141
+ "eos_token": "<|endoftext|>",
142
+ "model_input_names": [
143
+ "input_ids",
144
+ "attention_mask"
145
+ ],
146
+ "model_max_length": 128000,
147
+ "pad_token": "<|endoftext|>",
148
+ "padding_side": "left",
149
+ "remove_space": false,
150
+ "tokenizer_class": "PreTrainedTokenizerFast"
151
+ }