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 11261150 of 1961 papers

TitleStatusHype
TrustDataFilter:Leveraging Trusted Knowledge Base Data for More Effective Filtering of Unknown Information0
Tuning HeidelTime for identifying time expressions in clinical texts in English and French0
UAlacant: Using Online Machine Translation for Cross-Lingual Textual Entailment0
UCCA: A Semantics-based Grammatical Annotation Scheme0
UCL Machine Reading Group: Four Factor Framework For Fact Finding (HexaF)0
UDLex: Towards Cross-language Subcategorization Lexicons0
UIO-Lien: Entailment Recognition using Minimal Recursion Semantics0
UKP-BIU: Similarity and Entailment Metrics for Student Response Analysis0
UKP: Computing Semantic Textual Similarity by Combining Multiple Content Similarity Measures0
Ukrainian Texts Classification: Exploration of Cross-lingual Knowledge Transfer Approaches0
UMCC\_DLSI: Multidimensional Lexical-Semantic Textual Similarity0
UMCC\_DLSI: Textual Similarity based on Lexical-Semantic features0
Umelb: Cross-lingual Textual Entailment with Word Alignment and String Similarity Features0
Uncertain Natural Language Inference0
Uncovering More Shallow Heuristics: Probing the Natural Language Inference Capacities of Transformer-Based Pre-Trained Language Models Using Syllogistic Patterns0
Understanding and Predicting Human Label Variation in Natural Language Inference through Explanation0
Understanding Deep Learning Performance through an Examination of Test Set Difficulty: A Psychometric Case Study0
Understanding Roles and Entities: Datasets and Models for Natural Language Inference0
Understanding tables with intermediate pre-training0
Undivided Attention: Are Intermediate Layers Necessary for BERT?0
Unicoder: A Universal Language Encoder by Pre-training with Multiple Cross-lingual Tasks0
UniMelb at SemEval-2016 Task 3: Identifying Similar Questions by combining a CNN with String Similarity Measures0
Universal Multimodal Representation for Language Understanding0
Universal Sentence Representation Learning with Conditional Masked Language Model0
Universal Sentence Representations Learning with Conditional Masked Language Model0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1UnitedSynT5 (3B)% Test Accuracy94.7Unverified
2UnitedSynT5 (335M)% Test Accuracy93.5Unverified
3EFL (Entailment as Few-shot Learner) + RoBERTa-large% Test Accuracy93.1Unverified
4Neural Tree Indexers for Text Understanding% 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 11BAccuracy92.5Unverified
9T5-XXL 11B (fine-tuned)Accuracy92.5Unverified
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
8DeBERTa (large)Matched91.1Unverified
9Adv-RoBERTa ensembleMatched91.1Unverified
10SMARTRoBERTaDev Matched91.1Unverified