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Towards Better Serialization of Tabular Data for Few-shot Classification with Large Language Models

18 December 2023
Sukriti Jaitly
Tanay Shah
Ashish Shugani
Razik Singh Grewal
    LMTD
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Abstract

We present a study on the integration of Large Language Models (LLMs) in tabular data classification, emphasizing an efficient framework. Building upon existing work done in TabLLM (arXiv:2210.10723), we introduce three novel serialization techniques, including the standout LaTeX serialization method. This method significantly boosts the performance of LLMs in processing domain-specific datasets, Our method stands out for its memory efficiency and ability to fully utilize complex data structures. Through extensive experimentation, including various serialization approaches like feature combination and importance, we demonstrate our work's superiority in accuracy and efficiency over traditional models.

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