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README.md
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@@ -12,10 +12,10 @@ In biology, "targeting peptides" typically refer to "targeting signal peptides"
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**TarPepSubLoc-ESM2** (TarPepSubLoc, Targeting Peptide Subcellular Localization) is a protein language model fine-tuned from [**ESM2**](https://github.com/facebookresearch/esm) pretrained model [(***facebook/esm2_t36_3B_UR50D***)](https://huggingface.co/facebook/esm2_t36_3B_UR50D) on a trageting peptides subcelluar localization dataset with five classes.
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**TarPepSubLoc-ESM2** achieved the following results:
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Train Loss: 0.
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Train Accuracy: 0.
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Validation Loss: 0.
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Validation Accuracy: 0.
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Epoch: 20
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# The dataset for training **TarPepSubLoc-ESM2**
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The full dataset contains 13,005 protein sequences, including SP (2,697), MT (499), CH (227), TH (45), and Other (9,537).
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**TarPepSubLoc-ESM2** (TarPepSubLoc, Targeting Peptide Subcellular Localization) is a protein language model fine-tuned from [**ESM2**](https://github.com/facebookresearch/esm) pretrained model [(***facebook/esm2_t36_3B_UR50D***)](https://huggingface.co/facebook/esm2_t36_3B_UR50D) on a trageting peptides subcelluar localization dataset with five classes.
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**TarPepSubLoc-ESM2** achieved the following results:
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Train Loss: 0.0385
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Train Accuracy: 0.9881
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Validation Loss: 0.0566
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Validation Accuracy: 0.9812
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Epoch: 20
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# The dataset for training **TarPepSubLoc-ESM2**
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The full dataset contains 13,005 protein sequences, including SP (2,697), MT (499), CH (227), TH (45), and Other (9,537).
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