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 2650 of 490 papers

TitleStatusHype
Adapting Fake News Detection to the Era of Large Language ModelsCode1
Detecting Deepfakes Without Seeing AnyCode1
Fake News in Sheep's Clothing: Robust Fake News Detection Against LLM-Empowered Style AttacksCode1
Towards LLM-based Fact Verification on News Claims with a Hierarchical Step-by-Step Prompting MethodCode1
Prompt-and-Align: Prompt-Based Social Alignment for Few-Shot Fake News DetectionCode1
Bad Actor, Good Advisor: Exploring the Role of Large Language Models in Fake News DetectionCode1
A Survey on Interpretable Cross-modal ReasoningCode1
A Generalized Deep Markov Random Fields Framework for Fake News Detection.Code1
Learn over Past, Evolve for Future: Forecasting Temporal Trends for Fake News DetectionCode1
3HAN: A Deep Neural Network for Fake News DetectionCode1
LTCR: Long-Text Chinese Rumor Detection DatasetCode1
TieFake: Title-Text Similarity and Emotion-Aware Fake News DetectionCode1
Cross-modal Contrastive Learning for Multimodal Fake News DetectionCode1
Entity-Aware Dual Co-Attention Network for Fake News DetectionCode1
Nothing Stands Alone: Relational Fake News Detection with Hypergraph Neural NetworksCode1
Exploring Fake News Detection with Heterogeneous Social Media Context GraphsCode1
Multiverse: Multilingual Evidence for Fake News DetectionCode1
Adversarial Contrastive Learning for Evidence-aware Fake News Detection with Graph Neural NetworksCode1
A Coarse-to-fine Cascaded Evidence-Distillation Neural Network for Explainable Fake News DetectionCode1
Improving Fake News Detection of Influential Domain via Domain- and Instance-Level TransferCode1
Public Wisdom Matters! Discourse-Aware Hyperbolic Fourier Co-Attention for Social-Text ClassificationCode1
Memory-Guided Multi-View Multi-Domain Fake News DetectionCode1
Bootstrapping Multi-view Representations for Fake News DetectionCode1
Fake News Detection with Heterogeneous TransformerCode1
Tackling Fake News Detection by Continually Improving Social Context Representations using Graph Neural NetworksCode1
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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
#ModelMetricClaimedVerifiedStatus
1Persuasive Writing StrategyF155.8Unverified
2HiSSF153.9Unverified
3CofCEDF151.1Unverified
4ReActF149.8Unverified
5Standard prompting with articlesF147.9Unverified
6CoTF144.4Unverified
#ModelMetricClaimedVerifiedStatus
1Text-Transformers + Five-fold five model cross-validation +Pseudo Label AlgorithmUnpaired Accuracy98.5Unverified
2Grover-MegaUnpaired Accuracy92Unverified
3Grover-LargeUnpaired Accuracy80.8Unverified
4BERT-LargeUnpaired Accuracy73.1Unverified
5GPT2 (355M)Unpaired Accuracy70.1Unverified
#ModelMetricClaimedVerifiedStatus
1Hybrid CNNs (Text + All)Test Accuracy0.27Unverified
2CNNsTest Accuracy0.27Unverified
3Hybrid CNNs (Text + Speaker)Test Accuracy0.25Unverified
4Bi-LSTMsTest Accuracy0.23Unverified
#ModelMetricClaimedVerifiedStatus
1Auxiliary IndicBertF1 score0.77Unverified
2Auxiliary IndicBertF1 score0.57Unverified
#ModelMetricClaimedVerifiedStatus
1Ensemble Model + Heuristic Post-ProcessingF10.99Unverified
#ModelMetricClaimedVerifiedStatus
1SEMI-FNDAccuracy85.8Unverified
#ModelMetricClaimedVerifiedStatus
1Convolutional Tsetlin Machine1:1 Accuracy91.21Unverified
#ModelMetricClaimedVerifiedStatus
1TextRNNAccuracy92.4Unverified
#ModelMetricClaimedVerifiedStatus
1SEMI-FNDAccuracy86.83Unverified