pkedzia commited on
Commit
ef29aa0
1 Parent(s): 6b7758a

Better model performance

Browse files
README.md CHANGED
@@ -5,15 +5,10 @@ tags:
5
  - feature-extraction
6
  - sentence-similarity
7
  - transformers
8
- language:
9
- - pl
10
- license: lgpl-3.0
11
- library_name: sentence-transformers
12
- datasets:
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- - radlab/polish-sts-dataset
14
  ---
15
 
16
- # polish-roberta-large-v2-sts
17
 
18
  This is a [sentence-transformers](https://www.SBERT.net) model: It maps sentences & paragraphs to a 1024 dimensional dense vector space and can be used for tasks like clustering or semantic search.
19
 
@@ -31,9 +26,9 @@ Then you can use the model like this:
31
 
32
  ```python
33
  from sentence_transformers import SentenceTransformer
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- sentences = ["Ala ma kota", "Ala ma psa"]
35
 
36
- model = SentenceTransformer('radlab/polish-roberta-large-v2-sts')
37
  embeddings = model.encode(sentences)
38
  print(embeddings)
39
  ```
@@ -56,11 +51,11 @@ def mean_pooling(model_output, attention_mask):
56
 
57
 
58
  # Sentences we want sentence embeddings for
59
- sentences = ['Ala ma kota', 'Ala ma psa']
60
 
61
  # Load model from HuggingFace Hub
62
- tokenizer = AutoTokenizer.from_pretrained('radlab/polish-roberta-large-v2-sts')
63
- model = AutoModel.from_pretrained('radlab/polish-roberta-large-v2-sts')
64
 
65
  # Tokenize sentences
66
  encoded_input = tokenizer(sentences, padding=True, truncation=True, return_tensors='pt')
@@ -90,9 +85,9 @@ The model was trained with the parameters:
90
 
91
  **DataLoader**:
92
 
93
- `torch.utils.data.dataloader.DataLoader` of length 752 with parameters:
94
  ```
95
- {'batch_size': 4, 'sampler': 'torch.utils.data.sampler.RandomSampler', 'batch_sampler': 'torch.utils.data.sampler.BatchSampler'}
96
  ```
97
 
98
  **Loss**:
@@ -103,7 +98,7 @@ Parameters of the fit()-Method:
103
  ```
104
  {
105
  "epochs": 5,
106
- "evaluation_steps": 1000,
107
  "evaluator": "sentence_transformers.evaluation.EmbeddingSimilarityEvaluator.EmbeddingSimilarityEvaluator",
108
  "max_grad_norm": 1,
109
  "optimizer_class": "<class 'torch.optim.adamw.AdamW'>",
@@ -112,7 +107,7 @@ Parameters of the fit()-Method:
112
  },
113
  "scheduler": "WarmupLinear",
114
  "steps_per_epoch": null,
115
- "warmup_steps": 376,
116
  "weight_decay": 0.01
117
  }
118
  ```
 
5
  - feature-extraction
6
  - sentence-similarity
7
  - transformers
8
+
 
 
 
 
 
9
  ---
10
 
11
+ # {MODEL_NAME}
12
 
13
  This is a [sentence-transformers](https://www.SBERT.net) model: It maps sentences & paragraphs to a 1024 dimensional dense vector space and can be used for tasks like clustering or semantic search.
14
 
 
26
 
27
  ```python
28
  from sentence_transformers import SentenceTransformer
29
+ sentences = ["This is an example sentence", "Each sentence is converted"]
30
 
31
+ model = SentenceTransformer('{MODEL_NAME}')
32
  embeddings = model.encode(sentences)
33
  print(embeddings)
34
  ```
 
51
 
52
 
53
  # Sentences we want sentence embeddings for
54
+ sentences = ['This is an example sentence', 'Each sentence is converted']
55
 
56
  # Load model from HuggingFace Hub
57
+ tokenizer = AutoTokenizer.from_pretrained('{MODEL_NAME}')
58
+ model = AutoModel.from_pretrained('{MODEL_NAME}')
59
 
60
  # Tokenize sentences
61
  encoded_input = tokenizer(sentences, padding=True, truncation=True, return_tensors='pt')
 
85
 
86
  **DataLoader**:
87
 
88
+ `torch.utils.data.dataloader.DataLoader` of length 8225 with parameters:
89
  ```
90
+ {'batch_size': 8, 'sampler': 'torch.utils.data.sampler.RandomSampler', 'batch_sampler': 'torch.utils.data.sampler.BatchSampler'}
91
  ```
92
 
93
  **Loss**:
 
98
  ```
99
  {
100
  "epochs": 5,
101
+ "evaluation_steps": 250,
102
  "evaluator": "sentence_transformers.evaluation.EmbeddingSimilarityEvaluator.EmbeddingSimilarityEvaluator",
103
  "max_grad_norm": 1,
104
  "optimizer_class": "<class 'torch.optim.adamw.AdamW'>",
 
107
  },
108
  "scheduler": "WarmupLinear",
109
  "steps_per_epoch": null,
110
+ "warmup_steps": 4113,
111
  "weight_decay": 0.01
112
  }
113
  ```
config.json CHANGED
@@ -20,7 +20,7 @@
20
  "pad_token_id": 1,
21
  "position_embedding_type": "absolute",
22
  "torch_dtype": "float32",
23
- "transformers_version": "4.25.0.dev0",
24
  "type_vocab_size": 1,
25
  "use_cache": true,
26
  "vocab_size": 128001
 
20
  "pad_token_id": 1,
21
  "position_embedding_type": "absolute",
22
  "torch_dtype": "float32",
23
+ "transformers_version": "4.30.2",
24
  "type_vocab_size": 1,
25
  "use_cache": true,
26
  "vocab_size": 128001
config_sentence_transformers.json CHANGED
@@ -1,7 +1,7 @@
1
  {
2
  "__version__": {
3
  "sentence_transformers": "2.2.2",
4
- "transformers": "4.25.0.dev0",
5
- "pytorch": "1.12.1+cu116"
6
  }
7
  }
 
1
  {
2
  "__version__": {
3
  "sentence_transformers": "2.2.2",
4
+ "transformers": "4.30.2",
5
+ "pytorch": "2.0.1+cu117"
6
  }
7
  }
eval/similarity_evaluation_sts-dev_results.csv CHANGED
@@ -1,6 +1,166 @@
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