Fix AutoModel loading, add image processor and Apache-2.0 license

#4
by Slenser0 - opened
Files changed (5) hide show
  1. LICENSE +202 -0
  2. README.md +9 -24
  3. config.json +10 -9
  4. model.safetensors +2 -2
  5. preprocessor_config.json +24 -0
LICENSE ADDED
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README.md CHANGED
@@ -1,4 +1,5 @@
1
  ---
 
2
  library_name: transformers
3
  tags:
4
  - siglip
@@ -7,7 +8,7 @@ tags:
7
  - clip
8
  - image-embeddings
9
  - pet-recognition
10
- model_id: AvitoTech/SigLIP2-giant-for-animal-identification
11
  pipeline_tag: image-feature-extraction
12
  ---
13
 
@@ -110,38 +111,22 @@ pip install transformers torch pillow
110
 
111
  ```python
112
  import torch
113
- import torch.nn as nn
114
  import torch.nn.functional as F
115
  from PIL import Image
116
- from transformers import SiglipModel, SiglipProcessor
117
- from safetensors.torch import load_file
118
- from huggingface_hub import hf_hub_download
119
 
120
- class Model(nn.Module):
121
- def __init__(self):
122
- super().__init__()
123
- ckpt = "google/siglip2-giant-opt-patch16-384"
124
- self.clip = SiglipModel.from_pretrained(ckpt)
125
- self.processor = SiglipProcessor.from_pretrained(ckpt)
126
-
127
-
128
- def forward(self, images):
129
- clip_inputs = self.processor(images=images, return_tensors="pt").to(self.clip.device)
130
- return self.clip.get_image_features(**clip_inputs)
131
-
132
- model = Model()
133
-
134
- weights_path = hf_hub_download(repo_id="AvitoTech/SigLIP2-giant", filename="model.safetensors")
135
- state_dict = load_file(weights_path)
136
- model.load_state_dict(state_dict)
137
 
138
  device = "cuda" if torch.cuda.is_available() else "cpu"
139
- model = model.to(device).eval()
140
 
141
  image = Image.open("your_image.jpg").convert("RGB")
142
 
143
  with torch.no_grad():
144
- embedding = model([image])
 
145
  embedding = F.normalize(embedding, dim=1)
146
 
147
  print(f"Embedding shape: {embedding.shape}") # torch.Size([1, 1536])
 
1
  ---
2
+ license: apache-2.0
3
  library_name: transformers
4
  tags:
5
  - siglip
 
8
  - clip
9
  - image-embeddings
10
  - pet-recognition
11
+ model_id: AvitoTech/SigLIP2-giant
12
  pipeline_tag: image-feature-extraction
13
  ---
14
 
 
111
 
112
  ```python
113
  import torch
 
114
  import torch.nn.functional as F
115
  from PIL import Image
116
+ from transformers import AutoImageProcessor, AutoModel
 
 
117
 
118
+ repo = "AvitoTech/SigLIP2-giant"
119
+ processor = AutoImageProcessor.from_pretrained(repo)
120
+ model = AutoModel.from_pretrained(repo).eval()
 
 
 
 
 
 
 
 
 
 
 
 
 
 
121
 
122
  device = "cuda" if torch.cuda.is_available() else "cpu"
123
+ model = model.to(device)
124
 
125
  image = Image.open("your_image.jpg").convert("RGB")
126
 
127
  with torch.no_grad():
128
+ inputs = processor(images=[image], return_tensors="pt").to(device)
129
+ embedding = model.get_image_features(**inputs)
130
  embedding = F.normalize(embedding, dim=1)
131
 
132
  print(f"Embedding shape: {embedding.shape}") # torch.Size([1, 1536])
config.json CHANGED
@@ -9,18 +9,19 @@
9
  ],
10
  "attention_dropout": 0.0,
11
  "dropout": 0.0,
12
- "hidden_act": "gelu",
13
  "hidden_size": 1152,
14
  "initializer_factor": 1.0,
15
  "initializer_range": 0.02,
16
- "intermediate_size": 4608,
17
  "layer_norm_eps": 1e-06,
18
  "max_position_embeddings": 64,
19
  "model_type": "siglip_text_model",
20
  "num_attention_heads": 16,
21
- "num_hidden_layers": 32,
22
  "pad_token_id": 0,
23
- "vocab_size": 32000
 
24
  },
25
  "vision_config": {
26
  "architectures": [
@@ -28,18 +29,18 @@
28
  ],
29
  "attention_dropout": 0.0,
30
  "dropout": 0.0,
31
- "hidden_act": "gelu",
32
- "hidden_size": 1152,
33
  "image_size": 384,
34
  "initializer_factor": 1.0,
35
  "initializer_range": 0.02,
36
- "intermediate_size": 4608,
37
  "layer_norm_eps": 1e-06,
38
  "model_type": "siglip_vision_model",
39
  "num_attention_heads": 16,
40
  "num_channels": 3,
41
- "num_hidden_layers": 32,
42
  "patch_size": 16
43
  },
44
- "vision_dim": 1152
45
  }
 
9
  ],
10
  "attention_dropout": 0.0,
11
  "dropout": 0.0,
12
+ "hidden_act": "gelu_pytorch_tanh",
13
  "hidden_size": 1152,
14
  "initializer_factor": 1.0,
15
  "initializer_range": 0.02,
16
+ "intermediate_size": 4304,
17
  "layer_norm_eps": 1e-06,
18
  "max_position_embeddings": 64,
19
  "model_type": "siglip_text_model",
20
  "num_attention_heads": 16,
21
+ "num_hidden_layers": 27,
22
  "pad_token_id": 0,
23
+ "vocab_size": 256000,
24
+ "projection_size": 1536
25
  },
26
  "vision_config": {
27
  "architectures": [
 
29
  ],
30
  "attention_dropout": 0.0,
31
  "dropout": 0.0,
32
+ "hidden_act": "gelu_pytorch_tanh",
33
+ "hidden_size": 1536,
34
  "image_size": 384,
35
  "initializer_factor": 1.0,
36
  "initializer_range": 0.02,
37
+ "intermediate_size": 6144,
38
  "layer_norm_eps": 1e-06,
39
  "model_type": "siglip_vision_model",
40
  "num_attention_heads": 16,
41
  "num_channels": 3,
42
+ "num_hidden_layers": 40,
43
  "patch_size": 16
44
  },
45
+ "vision_dim": 1536
46
  }
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@@ -1,3 +1,3 @@
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- size 7487682160
 
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preprocessor_config.json ADDED
@@ -0,0 +1,24 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {
2
+ "do_convert_rgb": null,
3
+ "do_normalize": true,
4
+ "do_rescale": true,
5
+ "do_resize": true,
6
+ "image_mean": [
7
+ 0.5,
8
+ 0.5,
9
+ 0.5
10
+ ],
11
+ "image_processor_type": "SiglipImageProcessor",
12
+ "image_std": [
13
+ 0.5,
14
+ 0.5,
15
+ 0.5
16
+ ],
17
+ "processor_class": "SiglipProcessor",
18
+ "resample": 2,
19
+ "rescale_factor": 0.00392156862745098,
20
+ "size": {
21
+ "height": 384,
22
+ "width": 384
23
+ }
24
+ }