Commit
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9ff6a7b
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Parent(s):
Initial commit
Browse files- .DS_Store +0 -0
- .gitattributes +35 -0
- DUMMY.md +0 -0
- README.md +200 -0
- tabpfn-v2-regression-09gpqh39.ckpt +3 -0
- tabpfn-v2-regression-2noar4o2.ckpt +3 -0
- tabpfn-v2-regression-5wof9ojf.ckpt +3 -0
- tabpfn-v2-regression-wyl4o83o.ckpt +3 -0
- tabpfn-v2-regression.ckpt +3 -0
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| 1 |
+
---
|
| 2 |
+
extra_gated_prompt: |-
|
| 3 |
+
By accessing TabPFN, you agree to:
|
| 4 |
+
1. Not use the model in ways that could harm individuals or communities
|
| 5 |
+
2. Comply with all applicable laws and regulations
|
| 6 |
+
3. Properly cite the model and its creators in any resulting publications
|
| 7 |
+
4. Report any discovered vulnerabilities or safety concerns to Prior Labs
|
| 8 |
+
extra_gated_fields:
|
| 9 |
+
Organization:
|
| 10 |
+
type: text
|
| 11 |
+
required: true
|
| 12 |
+
description: Company or institution you represent
|
| 13 |
+
Role:
|
| 14 |
+
type: text
|
| 15 |
+
required: true
|
| 16 |
+
description: Your role in the organization
|
| 17 |
+
Country:
|
| 18 |
+
type: country
|
| 19 |
+
required: true
|
| 20 |
+
description: Country where you or your organization is based
|
| 21 |
+
Intended Use:
|
| 22 |
+
type: select
|
| 23 |
+
required: true
|
| 24 |
+
options:
|
| 25 |
+
- Academic Research
|
| 26 |
+
- Education/Teaching
|
| 27 |
+
- Commercial Evaluation
|
| 28 |
+
- Non-profit Use
|
| 29 |
+
- Personal Learning
|
| 30 |
+
- label: Other
|
| 31 |
+
value: other
|
| 32 |
+
description: Primary intended use of TabPFN
|
| 33 |
+
Industry:
|
| 34 |
+
type: select
|
| 35 |
+
required: true
|
| 36 |
+
options:
|
| 37 |
+
- Healthcare/Life Sciences
|
| 38 |
+
- Financial Services
|
| 39 |
+
- Technology
|
| 40 |
+
- Education
|
| 41 |
+
- Manufacturing
|
| 42 |
+
- Research Institution
|
| 43 |
+
- label: Other
|
| 44 |
+
value: other
|
| 45 |
+
description: Your industry sector
|
| 46 |
+
Dataset Size:
|
| 47 |
+
type: select
|
| 48 |
+
required: true
|
| 49 |
+
options:
|
| 50 |
+
- <1000 rows
|
| 51 |
+
- 1000-10000 rows
|
| 52 |
+
- 10000-100000 rows
|
| 53 |
+
- '>100000 rows'
|
| 54 |
+
description: Typical size of datasets you plan to use
|
| 55 |
+
License Agreement:
|
| 56 |
+
type: checkbox
|
| 57 |
+
required: true
|
| 58 |
+
label: >-
|
| 59 |
+
I agree to the terms of the non-commercial license for research and
|
| 60 |
+
evaluation
|
| 61 |
+
Contact Permission:
|
| 62 |
+
type: checkbox
|
| 63 |
+
required: false
|
| 64 |
+
label: Prior Labs may contact me about my use case and provide support (optional)
|
| 65 |
+
pipeline_tag: tabular-classification
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| 66 |
+
---
|
| 67 |
+
|
| 68 |
+
# Model Card for TabPFN-v2
|
| 69 |
+
|
| 70 |
+
TabPFN is a transformer-based foundation model for tabular data that leverages prior-data based learning to achieve strong performance on small tabular datasets without requiring task-specific training.
|
| 71 |
+
|
| 72 |
+
## Model Details
|
| 73 |
+
|
| 74 |
+
### Model Description
|
| 75 |
+
|
| 76 |
+
TabPFN is a novel approach to tabular data modeling that uses transformer architectures combined with prior knowledge injection to create a foundation model specifically designed for tabular data tasks.
|
| 77 |
+
|
| 78 |
+
- **Developed by:** Prior Labs
|
| 79 |
+
- **Model type:** Transformer-based foundation model for tabular data
|
| 80 |
+
- **Language(s):** Python
|
| 81 |
+
- **License:** Dual licensing - Open source for research/non-commercial use
|
| 82 |
+
- **Finetuned from model:** Custom architecture, trained from scratch
|
| 83 |
+
|
| 84 |
+
### Model Sources
|
| 85 |
+
|
| 86 |
+
- **Repository:** https://github.com/priorlabs/tabpfn
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| 87 |
+
- **Paper:** [More Information Needed]
|
| 88 |
+
- **Demo:** Available via API access
|
| 89 |
+
|
| 90 |
+
## Uses
|
| 91 |
+
|
| 92 |
+
### Direct Use
|
| 93 |
+
|
| 94 |
+
TabPFN can be directly used for:
|
| 95 |
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- Classification tasks on small to medium-sized tabular datasets
|
| 96 |
+
- Automated machine learning workflows
|
| 97 |
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- Quick prototyping and baseline model creation
|
| 98 |
+
- Transfer learning applications for tabular data
|
| 99 |
+
|
| 100 |
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### Downstream Use
|
| 101 |
+
|
| 102 |
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The model can be used as:
|
| 103 |
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- A feature extractor for downstream tasks
|
| 104 |
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- A foundation for transfer learning on domain-specific tabular data
|
| 105 |
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- A component in automated ML pipelines
|
| 106 |
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- A baseline model for benchmarking
|
| 107 |
+
|
| 108 |
+
### Out-of-Scope Use
|
| 109 |
+
|
| 110 |
+
- The model is not designed for:
|
| 111 |
+
- Very large datasets (currently optimized for smaller datasets)
|
| 112 |
+
- Non-tabular data formats
|
| 113 |
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- Time series forecasting
|
| 114 |
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- Direct regression tasks
|
| 115 |
+
|
| 116 |
+
## Bias, Risks, and Limitations
|
| 117 |
+
|
| 118 |
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- Performance may vary based on dataset size and characteristics
|
| 119 |
+
- Model behavior heavily depends on the quality and representativeness of training data
|
| 120 |
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- May not perform optimally on highly imbalanced datasets
|
| 121 |
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- Resource intensive for very large datasets
|
| 122 |
+
|
| 123 |
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### Recommendations
|
| 124 |
+
|
| 125 |
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- Use on datasets with clear structure and well-defined features
|
| 126 |
+
- Validate model outputs especially for sensitive applications
|
| 127 |
+
- Consider dataset size limitations when applying the model
|
| 128 |
+
- Monitor performance across different subgroups in the data
|
| 129 |
+
|
| 130 |
+
## How to Get Started with the Model
|
| 131 |
+
|
| 132 |
+
```python
|
| 133 |
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from tabpfn import TabPFNClassifier
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| 134 |
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|
| 135 |
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# Initialize model
|
| 136 |
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classifier = TabPFNClassifier()
|
| 137 |
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|
| 138 |
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# Fit and predict
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| 139 |
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classifier.fit(X_train, y_train)
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| 140 |
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predictions = classifier.predict(X_test)
|
| 141 |
+
```
|
| 142 |
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|
| 143 |
+
## Training Details
|
| 144 |
+
|
| 145 |
+
### Training Data
|
| 146 |
+
|
| 147 |
+
[More Information Needed]
|
| 148 |
+
|
| 149 |
+
### Training Procedure
|
| 150 |
+
|
| 151 |
+
#### Training Hyperparameters
|
| 152 |
+
|
| 153 |
+
- **Training regime:** Mixed precision training
|
| 154 |
+
|
| 155 |
+
## Evaluation
|
| 156 |
+
|
| 157 |
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### Testing Data, Factors & Metrics
|
| 158 |
+
|
| 159 |
+
#### Metrics
|
| 160 |
+
|
| 161 |
+
- Classification accuracy
|
| 162 |
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- F1 score
|
| 163 |
+
- ROC-AUC
|
| 164 |
+
- Precision-Recall curves
|
| 165 |
+
|
| 166 |
+
### Results
|
| 167 |
+
|
| 168 |
+
[More Information Needed]
|
| 169 |
+
|
| 170 |
+
## Environmental Impact
|
| 171 |
+
|
| 172 |
+
- **Hardware Type:** [More Information Needed]
|
| 173 |
+
- **Hours used:** [More Information Needed]
|
| 174 |
+
- **Cloud Provider:** [More Information Needed]
|
| 175 |
+
- **Compute Region:** [More Information Needed]
|
| 176 |
+
- **Carbon Emitted:** [More Information Needed]
|
| 177 |
+
|
| 178 |
+
## Technical Specifications
|
| 179 |
+
|
| 180 |
+
### Model Architecture and Objective
|
| 181 |
+
|
| 182 |
+
TabPFN uses a transformer-based architecture specifically designed for tabular data processing, with modifications to handle varying input sizes and feature types.
|
| 183 |
+
|
| 184 |
+
### Compute Infrastructure
|
| 185 |
+
|
| 186 |
+
#### Hardware
|
| 187 |
+
|
| 188 |
+
Recommended minimum specifications:
|
| 189 |
+
- CPU: Modern multi-core processor
|
| 190 |
+
- RAM: 16GB+
|
| 191 |
+
- GPU: Optional, CPU inference supported
|
| 192 |
+
|
| 193 |
+
#### Software
|
| 194 |
+
|
| 195 |
+
- Python 3.7+
|
| 196 |
+
- Key dependencies: PyTorch, NumPy, Pandas
|
| 197 |
+
|
| 198 |
+
## Model Card Contact
|
| 199 |
+
|
| 200 |
+
For more information, contact Prior Labs.
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tabpfn-v2-regression-09gpqh39.ckpt
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tabpfn-v2-regression-2noar4o2.ckpt
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