BAAI
/

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README.md ADDED
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1
+ ---
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+ inference: false
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+ license: apache-2.0
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+ ---
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+
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+ # Model Card
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+
8
+ <p align="center">
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+ <img src="./icon.png" alt="Logo" width="350">
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+ </p>
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+
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+ 📖 [Technical report](https://arxiv.org/abs/2402.11530) | 🏠 [Code](https://github.com/BAAI-DCAI/Bunny) | 🐰 [Demo](https://d61b68ac93656b614f.gradio.live/)
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+
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+ This is Bunny-v1.1-4B.
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+
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+ Bunny is a family of lightweight but powerful multimodal models. It offers multiple plug-and-play vision encoders, like EVA-CLIP, SigLIP and language backbones, including Phi-3-mini, Llama-3-8B, Phi-1.5, StableLM-2 and Phi-2. To compensate for the decrease in model size, we construct more informative training data by curated selection from a broader data source.
17
+
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+ We provide Bunny-v1.1-4B, which is built upon [SigLIP](https://huggingface.co/google/siglip-so400m-patch14-384) and [Phi-3-mini-4k-instruct](https://huggingface.co/microsoft/Phi-3-mini-4k-instruct) with [S\\(^{2}\\)-Wrapper](https://github.com/bfshi/scaling_on_scales), supporting 1152x1152 resolution. More details about this model can be found in [GitHub](https://github.com/BAAI-DCAI/Bunny).
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+
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+ | | MME \\(^{\text{P}}\\) | MME \\(^{\text{C}}\\) | MMB \\(^{\text{T/D}}\\) | MMB-CN \\(^{\text{T/D}}\\) |SEED(-IMG) | MMMU \\(^{\text{V/T}}\\) | VQA \\(^{\text{v2}}\\) | GQA | SQA \\(^{\text{I}}\\) | POPE |
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+ | ------------------ | :--------------: | :--------------: |:--------------: | :----------------: | :--: | :-----------------: | :---------------: | :--: | :--------------: | :--: |
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+ | Bunny-v1.1-4B | 1503.9 | 362.9 | 74.1/74.1 |66.3/64.8 | 64.6(71.7) | 40.2/38.8 | 81.7 | 63.4 | 76.3 | 87.0 |
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+
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+
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+
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+
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+ # Quickstart
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+
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+ Here we show a code snippet to show you how to use the model with transformers.
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+
31
+ Before running the snippet, you need to install the following dependencies:
32
+
33
+ ```shell
34
+ pip install torch transformers accelerate pillow
35
+ ```
36
+ If the CUDA memory is enough, it would be faster to execute this snippet by setting `CUDA_VISIBLE_DEVICES=0`.
37
+
38
+ ```python
39
+ import torch
40
+ import transformers
41
+ from transformers import AutoModelForCausalLM, AutoTokenizer
42
+ from PIL import Image
43
+ import warnings
44
+
45
+ # disable some warnings
46
+ transformers.logging.set_verbosity_error()
47
+ transformers.logging.disable_progress_bar()
48
+ warnings.filterwarnings('ignore')
49
+
50
+ # set device
51
+ device = 'cuda' # or cpu
52
+ torch.set_default_device(device)
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+
54
+ # create model
55
+ model = AutoModelForCausalLM.from_pretrained(
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+ 'BAAI/Bunny-v1_1-4B',
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+ torch_dtype=torch.float16, # float32 for cpu
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+ device_map='auto',
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+ trust_remote_code=True)
60
+ tokenizer = AutoTokenizer.from_pretrained(
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+ 'BAAI/Bunny-v1_1-4B',
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+ trust_remote_code=True)
63
+
64
+ # text prompt
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+ prompt = 'Why is the image funny?'
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+ text = f"A chat between a curious user and an artificial intelligence assistant. The assistant gives helpful, detailed, and polite answers to the user's questions. USER: <image>\n{prompt} ASSISTANT:"
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+ text_chunks = [tokenizer(chunk).input_ids for chunk in text.split('<image>')]
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+ input_ids = torch.tensor(text_chunks[0] + [-200] + text_chunks[1][1:], dtype=torch.long).unsqueeze(0).to(device)
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+
70
+ # image, sample images can be found in images folder
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+ image = Image.open('example_2.png')
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+ image_tensor = model.process_images([image], model.config).to(dtype=model.dtype, device=device)
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+
74
+ # generate
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+ output_ids = model.generate(
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+ input_ids,
77
+ images=image_tensor,
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+ max_new_tokens=100,
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+ use_cache=True)[0]
80
+
81
+ print(tokenizer.decode(output_ids[input_ids.shape[1]:], skip_special_tokens=True).strip())
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+ ```
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+
added_tokens.json ADDED
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+ {
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+ "<|/code|>": 32014,
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+ "<|/data|>": 32033,
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+ "<|/inst|>": 32037,
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+ "<|/query|>": 32031,
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+ "<|/sys|>": 32035,
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+ "<|assistant_mask|>": 32017,
8
+ "<|assistant|>": 32001,
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+ "<|calc|>": 32012,
10
+ "<|code|>": 32013,
11
+ "<|continue|>": 32009,
12
+ "<|data|>": 32032,
13
+ "<|diff_marker|>": 32025,
14
+ "<|disc_sep|>": 32029,
15
+ "<|disc_start|>": 32028,
16
+ "<|disc_thread|><|query|>": 32030,
17
+ "<|endoftext|>": 32000,
18
+ "<|end|>": 32007,
19
+ "<|fim_middle|>": 32021,
20
+ "<|fim_prefix|>": 32020,
21
+ "<|fim_suffix|>": 32022,
22
+ "<|function_call|>": 32005,
23
+ "<|function_list|>": 32011,
24
+ "<|function_output|>": 32003,
25
+ "<|ghissue|>": 32026,
26
+ "<|ghreview|>": 32027,
27
+ "<|inst|>": 32036,
28
+ "<|ipynb_marker|>": 32024,
29
+ "<|message|>": 32019,
30
+ "<|meta_start|>": 32023,
31
+ "<|raw|>": 32008,
32
+ "<|resource|>": 32016,
33
+ "<|start|>": 32018,
34
+ "<|step|>": 32002,
35
+ "<|summary|>": 32015,
36
+ "<|system|>": 32006,
37
+ "<|sys|>": 32034,
38
+ "<|tag|>": 32004,
39
+ "<|user|>": 32010
40
+ }
config.json ADDED
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+ {
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+ "_name_or_path": "BAAI/Bunny-v1_1-4B",
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+ "architectures": [
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+ "BunnyPhi3ForCausalLM"
5
+ ],
6
+ "attention_dropout": 0.0,
7
+ "auto_map": {
8
+ "AutoConfig": "configuration_bunny_phi3.BunnyPhi3Config",
9
+ "AutoModelForCausalLM": "modeling_bunny_phi3.BunnyPhi3ForCausalLM"
10
+ },
11
+ "bos_token_id": 1,
12
+ "embd_pdrop": 0.0,
13
+ "eos_token_id": 32000,
14
+ "freeze_mm_mlp_adapter": false,
15
+ "hidden_act": "silu",
16
+ "hidden_size": 3072,
17
+ "image_aspect_ratio": "pad",
18
+ "initializer_range": 0.02,
19
+ "intermediate_size": 8192,
20
+ "max_position_embeddings": 4096,
21
+ "mm_hidden_size": 3456,
22
+ "mm_projector_lr": 2e-05,
23
+ "mm_projector_type": "mlp2x_gelu",
24
+ "mm_vision_tower": "google/siglip-so400m-patch14-384",
25
+ "model_type": "bunny-phi3",
26
+ "num_attention_heads": 32,
27
+ "num_hidden_layers": 32,
28
+ "num_key_value_heads": 32,
29
+ "original_max_position_embeddings": 4096,
30
+ "pad_token_id": 32000,
31
+ "resid_pdrop": 0.0,
32
+ "rms_norm_eps": 1e-05,
33
+ "rope_scaling": null,
34
+ "rope_theta": 10000.0,
35
+ "sliding_window": 2047,
36
+ "tie_word_embeddings": false,
37
+ "tokenizer_model_max_length": 4096,
38
+ "tokenizer_padding_side": "right",
39
+ "torch_dtype": "float16",
40
+ "transformers_version": "4.40.0",
41
+ "tune_mm_mlp_adapter": false,
42
+ "unfreeze_vision_tower": true,
43
+ "use_cache": true,
44
+ "use_mm_proj": true,
45
+ "use_s2": true,
46
+ "vocab_size": 32038
47
+ }
configuration_bunny_phi3.py ADDED
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+ # coding=utf-8
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+ # Copyright 2024 Microsoft and the HuggingFace Inc. team. All rights reserved.
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+ #
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+ # Licensed under the Apache License, Version 2.0 (the "License");
5
+ # you may not use this file except in compliance with the License.
6
+ # You may obtain a copy of the License at
7
+ #
8
+ # http://www.apache.org/licenses/LICENSE-2.0
9
+ #
10
+ # Unless required by applicable law or agreed to in writing, software
11
+ # distributed under the License is distributed on an "AS IS" BASIS,
12
+ # WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13
+ # See the License for the specific language governing permissions and
14
+ # limitations under the License.
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+
16
+ """ Phi-3 model configuration"""
17
+
18
+ from transformers.configuration_utils import PretrainedConfig
19
+ from transformers.utils import logging
20
+
21
+ logger = logging.get_logger(__name__)
22
+
23
+ PHI3_PRETRAINED_CONFIG_ARCHIVE_MAP = {
24
+ "microsoft/Phi-3-mini-4k-instruct": "https://huggingface.co/microsoft/Phi-3-mini-4k-instruct/resolve/main/config.json",
25
+ "microsoft/Phi-3-mini-128k-instruct": "https://huggingface.co/microsoft/Phi-3-mini-128k-instruct/resolve/main/config.json",
26
+ }
27
+
28
+
29
+ class Phi3Config(PretrainedConfig):
30
+ r"""
31
+ This is the configuration class to store the configuration of a [`Phi3Model`]. It is used to instantiate a Phi-3
32
+ model according to the specified arguments, defining the model architecture. Instantiating a configuration with the
33
+ defaults will yield a similar configuration to that of the
34
+ [microsoft/Phi-3-mini-4k-instruct](https://huggingface.co/microsoft/Phi-3-mini-4k-instruct).
35
+
36
+ Configuration objects inherit from [`PretrainedConfig`] and can be used to control the model outputs. Read the
37
+ documentation from [`PretrainedConfig`] for more information.
38
+
39
+ Args:
40
+ vocab_size (`int`, *optional*, defaults to 32064):
41
+ Vocabulary size of the Phi-3 model. Defines the number of different tokens that can be represented by the
42
+ `inputs_ids` passed when calling [`Phi3Model`].
43
+ hidden_size (`int`, *optional*, defaults to 3072):
44
+ Dimension of the hidden representations.
45
+ intermediate_size (`int`, *optional*, defaults to 8192):
46
+ Dimension of the MLP representations.
47
+ num_hidden_layers (`int`, *optional*, defaults to 32):
48
+ Number of hidden layers in the Transformer decoder.
49
+ num_attention_heads (`int`, *optional*, defaults to 32):
50
+ Number of attention heads for each attention layer in the Transformer decoder.
51
+ num_key_value_heads (`int`, *optional*):
52
+ This is the number of key_value heads that should be used to implement Grouped Query Attention. If
53
+ `num_key_value_heads=num_attention_heads`, the model will use Multi Head Attention (MHA), if
54
+ `num_key_value_heads=1 the model will use Multi Query Attention (MQA) otherwise GQA is used. When
55
+ converting a multi-head checkpoint to a GQA checkpoint, each group key and value head should be constructed
56
+ by meanpooling all the original heads within that group. For more details checkout [this
57
+ paper](https://arxiv.org/pdf/2305.13245.pdf). If it is not specified, will default to
58
+ `num_attention_heads`.
59
+ resid_pdrop (`float`, *optional*, defaults to 0.0):
60
+ Dropout probability for mlp outputs.
61
+ embd_pdrop (`int`, *optional*, defaults to 0.0):
62
+ The dropout ratio for the embeddings.
63
+ attention_dropout (`float`, *optional*, defaults to 0.0):
64
+ The dropout ratio after computing the attention scores.
65
+ hidden_act (`str` or `function`, *optional*, defaults to `"silu"`):
66
+ The non-linear activation function (function or string) in the decoder.
67
+ max_position_embeddings (`int`, *optional*, defaults to 4096):
68
+ The maximum sequence length that this model might ever be used with.
69
+ original_max_position_embeddings (`int`, *optional*, defaults to 4096):
70
+ The maximum sequence length that this model was trained with. This is used to determine the size of the
71
+ original RoPE embeddings when using long scaling.
72
+ initializer_range (`float`, *optional*, defaults to 0.02):
73
+ The standard deviation of the truncated_normal_initializer for initializing all weight matrices.
74
+ rms_norm_eps (`float`, *optional*, defaults to 1e-05):
75
+ The epsilon value used for the RMSNorm.
76
+ use_cache (`bool`, *optional*, defaults to `True`):
77
+ Whether or not the model should return the last key/values attentions (not used by all models). Only
78
+ relevant if `config.is_decoder=True`. Whether to tie weight embeddings or not.
79
+ tie_word_embeddings (`bool`, *optional*, defaults to `False`):
80
+ Whether to tie weight embeddings
81
+ rope_theta (`float`, *optional*, defaults to 10000.0):
82
+ The base period of the RoPE embeddings.
83
+ rope_scaling (`dict`, *optional*):
84
+ The scaling strategy for the RoPE embeddings. If `None`, no scaling is applied. If a dictionary, it must
85
+ contain the following keys: `type`, `short_factor` and `long_factor`. The `type` must be either `su` or `yarn` and
86
+ the `short_factor` and `long_factor` must be lists of numbers with the same length as the hidden size
87
+ divided by the number of attention heads divided by 2.
88
+ bos_token_id (`int`, *optional*, defaults to 1):
89
+ The id of the "beginning-of-sequence" token.
90
+ eos_token_id (`int`, *optional*, defaults to 32000):
91
+ The id of the "end-of-sequence" token.
92
+ pad_token_id (`int`, *optional*, defaults to 32000):
93
+ The id of the padding token.
94
+ sliding_window (`int`, *optional*):
95
+ Sliding window attention window size. If `None`, no sliding window is applied.
96
+
97
+ Example:
98
+
99
+ ```python
100
+ >>> from transformers import Phi3Model, Phi3Config
101
+
102
+ >>> # Initializing a Phi-3 style configuration
103
+ >>> configuration = Phi3Config.from_pretrained("microsoft/Phi-3-mini-4k-instruct")
104
+
105
+ >>> # Initializing a model from the configuration
106
+ >>> model = Phi3Model(configuration)
107
+
108
+ >>> # Accessing the model configuration
109
+ >>> configuration = model.config
110
+ ```"""
111
+
112
+ model_type = "phi3"
113
+ keys_to_ignore_at_inference = ["past_key_values"]
114
+
115
+ def __init__(
116
+ self,
117
+ vocab_size=32064,
118
+ hidden_size=3072,
119
+ intermediate_size=8192,
120
+ num_hidden_layers=32,
121
+ num_attention_heads=32,
122
+ num_key_value_heads=None,
123
+ resid_pdrop=0.0,
124
+ embd_pdrop=0.0,
125
+ attention_dropout=0.0,
126
+ hidden_act="silu",
127
+ max_position_embeddings=4096,
128
+ original_max_position_embeddings=4096,
129
+ initializer_range=0.02,
130
+ rms_norm_eps=1e-5,
131
+ use_cache=True,
132
+ tie_word_embeddings=False,
133
+ rope_theta=10000.0,
134
+ rope_scaling=None,
135
+ bos_token_id=1,
136
+ eos_token_id=32000,
137
+ pad_token_id=32000,
138
+ sliding_window=None,
139
+ **kwargs,
140
+ ):
141
+ self.vocab_size = vocab_size
142
+ self.hidden_size = hidden_size
143
+ self.intermediate_size = intermediate_size
144
+ self.num_hidden_layers = num_hidden_layers
145
+ self.num_attention_heads = num_attention_heads
146
+
147
+ if num_key_value_heads is None:
148
+ num_key_value_heads = num_attention_heads
149
+
150
+ self.num_key_value_heads = num_key_value_heads
151
+ self.resid_pdrop = resid_pdrop
152
+ self.embd_pdrop = embd_pdrop
153
+ self.attention_dropout = attention_dropout
154
+ self.hidden_act = hidden_act
155
+ self.max_position_embeddings = max_position_embeddings
156
+ self.original_max_position_embeddings = original_max_position_embeddings
157
+ self.initializer_range = initializer_range
158
+ self.rms_norm_eps = rms_norm_eps
159
+ self.use_cache = use_cache
160
+ self.rope_theta = rope_theta
161
+ self.rope_scaling = rope_scaling
162
+ self._rope_scaling_validation()
163
+ self.sliding_window = sliding_window
164
+
165
+ super().__init__(
166
+ bos_token_id=bos_token_id,
167
+ eos_token_id=eos_token_id,
168
+ pad_token_id=pad_token_id,
169
+ tie_word_embeddings=tie_word_embeddings,
170
+ **kwargs,
171
+ )
172
+
173
+ def _rope_scaling_validation(self):
174
+ """
175
+ Validate the `rope_scaling` configuration.
176
+ """
177
+ if self.rope_scaling is None:
178
+ return
179
+
180
+ if not isinstance(self.rope_scaling, dict) or len(self.rope_scaling) != 3:
181
+ raise ValueError(
182
+ "`rope_scaling` must be a dictionary with three fields, `type`, `short_factor` and `long_factor`, "
183
+ f"got {self.rope_scaling}"
184
+ )
185
+ rope_scaling_type = self.rope_scaling.get("type", None)
186
+ rope_scaling_short_factor = self.rope_scaling.get("short_factor", None)
187
+ rope_scaling_long_factor = self.rope_scaling.get("long_factor", None)
188
+ if rope_scaling_type is None or rope_scaling_type not in ["su", "yarn"]:
189
+ raise ValueError(f"`rope_scaling`'s type field must be one of ['su', 'yarn'], got {rope_scaling_type}")
190
+ if not (
191
+ isinstance(rope_scaling_short_factor, list)
192
+ and all(isinstance(x, (int, float)) for x in rope_scaling_short_factor)
193
+ ):
194
+ raise ValueError(
195
+ f"`rope_scaling`'s short_factor field must be a list of numbers, got {rope_scaling_short_factor}"
196
+ )
197
+ if not len(rope_scaling_short_factor) == self.hidden_size // self.num_attention_heads // 2:
198
+ raise ValueError(
199
+ f"`rope_scaling`'s short_factor field must have length {self.hidden_size // self.num_attention_heads // 2}, got {len(rope_scaling_short_factor)}"
200
+ )
201
+ if not (
202
+ isinstance(rope_scaling_long_factor, list)
203
+ and all(isinstance(x, (int, float)) for x in rope_scaling_long_factor)
204
+ ):
205
+ raise ValueError(
206
+ f"`rope_scaling`'s long_factor field must be a list of numbers, got {rope_scaling_long_factor}"
207
+ )
208
+ if not len(rope_scaling_long_factor) == self.hidden_size // self.num_attention_heads // 2:
209
+ raise ValueError(
210
+ f"`rope_scaling`'s long_factor field must have length {self.hidden_size // self.num_attention_heads // 2}, got {len(rope_scaling_long_factor)}"
211
+ )
212
+
213
+
214
+ from typing import Union
215
+ from transformers import PretrainedConfig
216
+ import os
217
+
218
+
219
+ class SigLipVisionConfig(PretrainedConfig):
220
+ model_type = "siglip_vision_model"
221
+
222
+ def __init__(
223
+ self,
224
+ hidden_size=1152,
225
+ image_mean=(0.5, 0.5, 0.5),
226
+ intermediate_size=4304,
227
+ num_hidden_layers=27,
228
+ num_attention_heads=16,
229
+ num_channels=3,
230
+ image_size=384,
231
+ patch_size=14,
232
+ hidden_act="gelu_pytorch_tanh",
233
+ layer_norm_eps=1e-6,
234
+ attention_dropout=0.0,
235
+ **kwargs,
236
+ ):
237
+ super().__init__(**kwargs)
238
+
239
+ self.hidden_size = hidden_size
240
+ self.intermediate_size = intermediate_size
241
+ self.num_hidden_layers = num_hidden_layers
242
+ self.num_attention_heads = num_attention_heads
243
+ self.num_channels = num_channels
244
+ self.patch_size = patch_size
245
+ self.image_size = image_size
246
+ self.attention_dropout = attention_dropout
247
+ self.layer_norm_eps = layer_norm_eps
248
+ self.hidden_act = hidden_act
249
+ self.image_mean = image_mean
250
+
251
+ @classmethod
252
+ def from_pretrained(cls, pretrained_model_name_or_path: Union[str, os.PathLike], **kwargs) -> "PretrainedConfig":
253
+ cls._set_token_in_kwargs(kwargs)
254
+
255
+ config_dict, kwargs = cls.get_config_dict(pretrained_model_name_or_path, **kwargs)
256
+
257
+ # get the vision config dict if we are loading from SigLipConfig
258
+ if config_dict.get("model_type") == "siglip":
259
+ config_dict = config_dict["vision_config"]
260
+
261
+ if "model_type" in config_dict and hasattr(cls, "model_type") and config_dict["model_type"] != cls.model_type:
262
+ logger.warning(
263
+ f"You are using a model of type {config_dict['model_type']} to instantiate a model of type "
264
+ f"{cls.model_type}. This is not supported for all configurations of models and can yield errors."
265
+ )
266
+
267
+ return cls.from_dict(config_dict, **kwargs)
268
+
269
+
270
+ class BunnyPhi3Config(Phi3Config):
271
+ model_type = "bunny-phi3"
generation_config.json ADDED
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