Unraveling the Dominance of Large Language Models Over Transformer Models for Bangla Natural Language Inference: A Comprehensive Study
Fatema Tuj Johora Faria, Mukaffi Bin Moin, Asif Iftekher Fahim, Pronay, Debnath, Faisal Muhammad Shah

TL;DR
This comprehensive study evaluates the performance of large language models versus transformer models in Bengali natural language inference, highlighting LLMs' potential and limitations in low-resource language NLP tasks.
Contribution
It provides the first extensive comparison of LLMs and transformer models for Bengali NLI using zero-shot and few-shot evaluations on the XNLI dataset.
Findings
LLMs perform comparably or better in few-shot scenarios.
Transformer models still hold advantages in certain low-resource settings.
Further research needed to improve LLMs for Bengali NLP.
Abstract
Natural Language Inference (NLI) is a cornerstone of Natural Language Processing (NLP), providing insights into the entailment relationships between text pairings. It is a critical component of Natural Language Understanding (NLU), demonstrating the ability to extract information from spoken or written interactions. NLI is mainly concerned with determining the entailment relationship between two statements, known as the premise and hypothesis. When the premise logically implies the hypothesis, the pair is labeled "entailment". If the hypothesis contradicts the premise, the pair receives the "contradiction" label. When there is insufficient evidence to establish a connection, the pair is described as "neutral". Despite the success of Large Language Models (LLMs) in various tasks, their effectiveness in NLI remains constrained by issues like low-resource domain accuracy, model…
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Taxonomy
TopicsNatural Language Processing Techniques · Topic Modeling · Speech Recognition and Synthesis
MethodsRefunds@Expedia|||How do I get a full refund from Expedia? · 15 Ways to Contact How can i speak to someone at Delta Airlines · Attention Is All You Need · Dropout · Residual Connection · Softmax · WordPiece · Byte Pair Encoding · {Dispute@FaQ-s}How to file a dispute with Expedia? · Linear Layer
