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LREC-COLING 2024main

Saliency-Aware Interpolative Augmentation for Multimodal Financial Prediction

Proceedings of the 2024 Joint International Conference on Computational Linguistics, Language Resources and Evaluation (LREC-COLING 2024)

DOI:10.63317/56i8oif49gjp

Abstract

Predicting price variations of financial instruments for risk modeling and stock trading is challenging due to the stochastic nature of the stock market. While recent advancements in the Financial AI realm have expanded the scope of data and methods they use, such as textual and audio cues from financial earnings calls, limitations exist. Most datasets are small, and show domain distribution shifts due to the nature of their source, suggesting the exploration for data augmentation for robust augmentation strategies such as Mixup. To tackle such challenges in the financial domain, we propose SH-Mix: Saliency-guided Hierarchical Mixup augmentation technique for multimodal financial prediction tasks. SH-Mix combines multi-level embedding mixup strategies based on the contribution of each modality and context subsequences. Through extensive quantitative and qualitative experiments on financial earnings and conference call datasets consisting of text and speech, we show that SH-Mix outperforms state-of-the-art methods by 3-7%. Additionally, we show that SH-Mix is generalizable across different modalities and models.

Details

Paper ID
lrec2024-main-1244
Pages
pp. 14285-14297
BibKey
jain-etal-2024-saliency
Editor
N/A
Publisher
European Language Resources Association (ELRA) and ICCL
ISSN
2522-2686
ISBN
979-10-95546-34-4
Conference
Joint International Conference on Computational Linguistics, Language Resources and Evaluation
Location
Turin, Italy
Date
20 May 2024 25 May 2024

Authors

  • SJ

    Samyak Jain

  • PC

    Parth Chhabra

  • AN

    Atula Tejaswi Neerkaje

  • PM

    Puneet Mathur

  • RS

    Ramit Sawhney

  • SA

    Shivam Agarwal

  • PN

    Preslav Nakov

  • SC

    Sudheer Chava

  • DM

    Dinesh Manocha

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