Model Card for ModernBert-DNA-v1-37M-virus (Mistral for DNA)
The ModernBert-DNA-v1-37M-virus Large Language Model (LLM) is a pretrained generative DNA sequence model with 37M parameters. It is derived from ModernBERT model, which was simplified for DNA: the number of layers and the hidden size were reduced. The model was pretrained using around 15071 viruses > 1kb. Virus genomes were split into 1kb sequences.
Virus genome database was downloaded from https://www.ncbi.nlm.nih.gov/labs/virus/vssi/#/virus?SeqType_s=Genome&VirusLineage_ss=taxid:10239&SourceDB_s=RefSeq. NB: the DNA sequence was used, not the RNA sequence.
Load the model from huggingface:
import torch
from transformers import AutoTokenizer, AutoModel
tokenizer = AutoTokenizer.from_pretrained("RaphaelMourad/ModernBert-DNA-v1-37M-virus", trust_remote_code=True)
model = AutoModel.from_pretrained("RaphaelMourad/ModernBert-DNA-v1-37M-virus", trust_remote_code=True)
Calculate the embedding of a DNA sequence
DNAseq = "TGATGATTGGCGCGGCTAGGATCGGCT"
inputs = tokenizer(DNAseq, return_tensors = 'pt')["input_ids"]
hidden_states = model(inputs)[0] # [1, sequence_length, 256]
# embedding with max pooling
embedding_max = torch.max(hidden_states[0], dim=0)[0]
print(embedding_max.shape) # expect to be 256
Troubleshooting
Ensure you are utilizing a stable version of Transformers, 4.34.0 or newer.
Notice
ModernBert-DNA-v1-37M-virus is a pretrained base model for DNA.
Contact
Raphaël Mourad. [email protected]
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