"Actionable Help" in Crises: A Novel Dataset and Resource-Efficient Models for Identifying Request and Offer Social Media Posts
Rabindra Lamsal, Maria Rodriguez Read, Shanika Karunasekera, Muhammad, Imran

TL;DR
This paper introduces CrisisHelpOffer, a new dataset of 101k labeled tweets, and develops resource-efficient mini models that outperform larger models in classifying crisis-related social media posts, enabling faster and more accurate crisis response.
Contribution
The paper presents the first crisis-specific mini models optimized for resource-constrained environments, surpassing BERT and existing distilled models in accuracy and speed.
Findings
Mini models are significantly smaller and faster than BERT.
Mini models outperform or match larger models in accuracy.
The dataset enables better classification of crisis-related social media posts.
Abstract
During crises, social media serves as a crucial coordination tool, but the vast influx of posts--from "actionable" requests and offers to generic content like emotional support, behavioural guidance, or outdated information--complicates effective classification. Although generative LLMs (Large Language Models) can address this issue with few-shot classification, their high computational demands limit real-time crisis response. While fine-tuning encoder-only models (e.g., BERT) is a popular choice, these models still exhibit higher inference times in resource-constrained environments. Moreover, although distilled variants (e.g., DistilBERT) exist, they are not tailored for the crisis domain. To address these challenges, we make two key contributions. First, we present CrisisHelpOffer, a novel dataset of 101k tweets collaboratively labelled by generative LLMs and validated by humans,…
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Taxonomy
TopicsMisinformation and Its Impacts · Spam and Phishing Detection · Social Media and Politics
MethodsRefunds@Expedia|||How do I get a full refund from Expedia? · Attention Is All You Need · Adam · Softmax · Dropout · Weight Decay · Linear Layer · Layer Normalization · WordPiece · Dense Connections
