SOTAVerified

Fake News Detection

Fake News Detection is a natural language processing task that involves identifying and classifying news articles or other types of text as real or fake. The goal of fake news detection is to develop algorithms that can automatically identify and flag fake news articles, which can be used to combat misinformation and promote the dissemination of accurate information.

Papers

Showing 110 of 490 papers

TitleStatusHype
DCR: Quantifying Data Contamination in LLMs EvaluationCode0
KEN: Knowledge Augmentation and Emotion Guidance Network for Multimodal Fake News Detection0
Lifelong Evolution: Collaborative Learning between Large and Small Language Models for Continuous Emergent Fake News Detection0
Synergizing LLMs with Global Label Propagation for Multimodal Fake News DetectionCode1
Interpretable Graph Learning Over Sets of Temporally-Sparse Data0
Improving Bangla Linguistics: Advanced LSTM, Bi-LSTM, and Seq2Seq Models for Translating Sylheti to Modern Bangla0
KGAlign: Joint Semantic-Structural Knowledge Encoding for Multimodal Fake News DetectionCode0
MPPFND: A Dataset and Analysis of Detecting Fake News with Multi-Platform Propagation0
The Truth Becomes Clearer Through Debate! Multi-Agent Systems with Large Language Models Unmask Fake News0
Multimodal Fake News Detection: MFND Dataset and Shallow-Deep Multitask LearningCode1
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Sepúlveda-Torres R., Vicente M., Saquete E., Lloret E., Palomar M. (2021)Weighted Accuracy90.73Unverified
2ZAINAB A. JAWAD, AHMED J. OBAID (CNN and DNN with SCM, 2022)Weighted Accuracy84.6Unverified
3Bhatt et al.Weighted Accuracy83.08Unverified
4Bi-LSTM (max-pooling, attention)Weighted Accuracy82.23Unverified
53rd place at FNC-1 - Team UCL Machine Reading (Riedel et al., 2017)Weighted Accuracy81.72Unverified
6Neural method from Mohtarami et al. + TF-IDF (Mohtarami et al., 2018)Weighted Accuracy81.23Unverified
7Neural method from Mohtarami et al. (Mohtarami et al., 2018)Weighted Accuracy78.97Unverified
8Baseline based on skip-thought embeddings (Bhatt et al., 2017)Weighted Accuracy76.18Unverified
9Baseline based on word2vec + hand-crafted features (Bhatt et al., 2017)Weighted Accuracy72.78Unverified
10Neural baseline based on bi-directional LSTMs (Bhatt et al., 2017)Weighted Accuracy63.11Unverified