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We are evaluating NSQL to build our text-to-SQL model. As part of this exercise, we would like to train NSQL with our custom business-related datasets, definitions, and glossary. While finding the ways to do this we see LORA to be promising as it reduces the trainable parameters by 10,000 times. Though we are able to run LORA using the llama-2-7B model we are unable to find a way to train this model with custom datasets, definitions, and terms through the LORA technique. Could you please assist or point us to the right resources to do the same?
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