SOTAVerified

Natural Language Inference

Natural language inference (NLI) is the task of determining whether a "hypothesis" is true (entailment), false (contradiction), or undetermined (neutral) given a "premise".

Example:

| Premise | Label | Hypothesis | | --- | ---| --- | | A man inspects the uniform of a figure in some East Asian country. | contradiction | The man is sleeping. | | An older and younger man smiling. | neutral | Two men are smiling and laughing at the cats playing on the floor. | | A soccer game with multiple males playing. | entailment | Some men are playing a sport. |

Approaches used for NLI include earlier symbolic and statistical approaches to more recent deep learning approaches. Benchmark datasets used for NLI include SNLI, MultiNLI, SciTail, among others. You can get hands-on practice on the SNLI task by following this d2l.ai chapter.

Further readings:

Papers

Showing 18011825 of 1961 papers

TitleStatusHype
SqueezeBERT: What can computer vision teach NLP about efficient neural networks?Code0
Tougher Text, Smarter Models: Raising the Bar for Adversarial Defence BenchmarksCode0
AILS-NTUA at SemEval-2024 Task 6: Efficient model tuning for hallucination detection and analysisCode0
Learning with Different Amounts of Annotation: From Zero to Many LabelsCode0
Learning General Purpose Distributed Sentence Representations via Large Scale Multi-task LearningCode0
Utilizing Background Knowledge for Robust Reasoning over Traffic SituationsCode0
Doctor XAvIer: Explainable Diagnosis on Physician-Patient Dialogues and XAI EvaluationCode0
Learning Latent Trees with Stochastic Perturbations and Differentiable Dynamic ProgrammingCode0
Learning Natural Language Inference using Bidirectional LSTM model and Inner-AttentionCode0
Learning Natural Language Inference with LSTMCode0
Can Large Language Models Capture Dissenting Human Voices?Code0
Learning Semantic Textual Similarity from ConversationsCode0
Prompt Combines Paraphrase: Teaching Pre-trained Models to Understand Rare Biomedical WordsCode0
Learning the Difference that Makes a Difference with Counterfactually-Augmented DataCode0
Universal Evasion Attacks on Summarization ScoringCode0
ASCM: An Answer Space Clustered Prompting Method without Answer EngineeringCode0
Learning to Compose Task-Specific Tree StructuresCode0
ArNLI: Arabic Natural Language Inference for Entailment and Contradiction DetectionCode0
Learning to Distinguish Hypernyms and Co-HyponymsCode0
Learning to Few-Shot Learn Across Diverse Natural Language Classification TasksCode0
Can current NLI systems handle German word order? Investigating language model performance on a new German challenge set of minimal pairsCode0
D-NLP at SemEval-2024 Task 2: Evaluating Clinical Inference Capabilities of Large Language ModelsCode0
Learning to Infer from Unlabeled Data: A Semi-supervised Learning Approach for Robust Natural Language InferenceCode0
A Regularized Framework for Sparse and Structured Neural AttentionCode0
Learning to Model and Ignore Dataset Bias with Mixed Capacity EnsemblesCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1UnitedSynT5 (3B)% Test Accuracy94.7Unverified
2UnitedSynT5 (335M)% Test Accuracy93.5Unverified
3Neural Tree Indexers for Text Understanding% Test Accuracy93.1Unverified
4EFL (Entailment as Few-shot Learner) + RoBERTa-large% Test Accuracy93.1Unverified
5RoBERTa-large+Self-Explaining% Test Accuracy92.3Unverified
6RoBERTa-large + self-explaining layer% Test Accuracy92.3Unverified
7CA-MTL% Test Accuracy92.1Unverified
8SemBERT% Test Accuracy91.9Unverified
9MT-DNN-SMARTLARGEv0% Test Accuracy91.7Unverified
10MT-DNN-SMART_100%ofTrainingDataDev Accuracy91.6Unverified
#ModelMetricClaimedVerifiedStatus
1Vega v2 6B (KD-based prompt transfer)Accuracy96Unverified
2PaLM 540B (fine-tuned)Accuracy95.7Unverified
3Turing NLR v5 XXL 5.4B (fine-tuned)Accuracy94.1Unverified
4ST-MoE-32B 269B (fine-tuned)Accuracy93.5Unverified
5DeBERTa-1.5BAccuracy93.2Unverified
6MUPPET Roberta LargeAccuracy92.8Unverified
7DeBERTaV3largeAccuracy92.7Unverified
8T5-XXL 11B (fine-tuned)Accuracy92.5Unverified
9T5-XXL 11BAccuracy92.5Unverified
10ST-MoE-L 4.1B (fine-tuned)Accuracy92.1Unverified
#ModelMetricClaimedVerifiedStatus
1UnitedSynT5 (3B)Matched92.6Unverified
2Turing NLR v5 XXL 5.4B (fine-tuned)Matched92.6Unverified
3T5-XXL 11B (fine-tuned)Matched92Unverified
4T5Matched92Unverified
5T5-11BMismatched91.7Unverified
6T5-3BMatched91.4Unverified
7ALBERTMatched91.3Unverified
8Adv-RoBERTa ensembleMatched91.1Unverified
9DeBERTa (large)Matched91.1Unverified
10SMARTRoBERTaDev Matched91.1Unverified