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+ ---
2
+ language:
3
+ - en,fr
4
+ license: mit
5
+ tags:
6
+ - lm-detection
7
+ datasets:
8
+ - hc3_multi_custom_ms_hg
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+ metrics:
10
+ - f1
11
+ model-index:
12
+ - name: xlmr-chatgptdetect-noisy
13
+ results:
14
+ - task:
15
+ name: Text Classification
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+ type: text-classification
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+ dataset:
18
+ name: HC3 FULL_MULTI_1.0_0.5_0.5
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+ type: glue
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+ config: full_multi_1.0_0.5_0.5
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+ split: vsl
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+ args: full_multi_1.0_0.5_0.5
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+ metrics:
24
+ - name: F1
25
+ type: f1
26
+ value: 0.963274059512108
27
+ ---
28
+
29
+ # xlmr-chatgptdetect-noisy
30
+
31
+ Multilingual ChatGPT detection model from [Towards a Robust Detection of Language Model-Generated Text: Is ChatGPT that easy to detect?](TODO:)
32
+
33
+ This model is a fine-tuned version of [xlm-roberta-base](https://huggingface.co/xlm-roberta-base) on the HC3 FULL_MULTI_1.0_0.5_0.5 dataset with noise added.
34
+ It achieves the following results on the evaluation set:
35
+ - Loss: 0.1573
36
+ - F1: 0.9633
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+
38
+ ## Model description
39
+
40
+ This a model trained to detect text created by ChatGPT in French.
41
+ The training data is the combination of the `hc3_fr_full` and `hc3_en_full` subsets of [almanach/hc3_multi](https://huggingface.co/almanach/hc3_multi), but with added misspelling and homoglyph attacks.
42
+
43
+ ## Intended uses & limitations
44
+
45
+ This model is for research purposes only.
46
+ It is not intended to be used in production as we said in our paper:
47
+
48
+ **We would like to emphasize that our study does not claim to have produced an universally accurate detector. Our strong results are based on in-domain testing and, unsurprisingly, do not generalize in out-of-domain scenarios. This is even more so when used on text specifically designed to fool language model detectors and on text intentionally stylistically similar to ChatGPT-generated text, especially instructional text.**
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+
50
+ ## Training procedure
51
+
52
+ ### Training hyperparameters
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+
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+ The following hyperparameters were used during training:
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+ - learning_rate: 2e-05
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+ - train_batch_size: 8
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+ - eval_batch_size: 8
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+ - seed: 1
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+ - gradient_accumulation_steps: 4
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+ - total_train_batch_size: 32
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+ - optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
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+ - lr_scheduler_type: linear
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+ - lr_scheduler_warmup_ratio: 0.1
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+ - num_epochs: 5.0
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+ - mixed_precision_training: Native AMP
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+
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+ ### Training results
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+
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+ | Training Loss | Epoch | Step | Validation Loss | F1 |
70
+ |:-------------:|:-----:|:-----:|:---------------:|:------:|
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+ | 0.0317 | 1.0 | 8538 | 0.1732 | 0.9492 |
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+ | 0.008 | 2.0 | 17076 | 0.3541 | 0.9270 |
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+ | 0.0085 | 3.0 | 25614 | 0.1161 | 0.9726 |
74
+ | 0.0015 | 4.0 | 34152 | 0.2557 | 0.9516 |
75
+ | 0.0 | 5.0 | 42690 | 0.2286 | 0.9650 |
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+
77
+
78
+ ### Framework versions
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+
80
+ - Transformers 4.26.1
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+ - Pytorch 1.11.0+cu115
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+ - Datasets 2.8.0
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+ - Tokenizers 0.13.2
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