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Nli Distilroberta Base

Developed by cross-encoder
A cross-encoder based on DistilRoBERTa for natural language inference tasks, capable of determining the relationship between sentence pairs (contradiction, entailment, or neutral).
Downloads 26.81k
Release Time : 3/2/2022

Model Overview

This model is trained using the CrossEncoder class from SentenceTransformers, specifically designed for Natural Language Inference (NLI) tasks, enabling the analysis of logical relationships between two sentences.

Model Features

Efficient Inference
Based on the DistilRoBERTa architecture, it improves inference efficiency while maintaining performance.
Multi-task Support
In addition to natural language inference, it can also be used for tasks such as zero-shot classification.
Easy to Use
Provides seamless integration with HuggingFace Transformers and SentenceTransformers.

Model Capabilities

Natural Language Inference
Zero-shot Classification
Textual Relationship Analysis

Use Cases

Text Analysis
Logical Relationship Judgment
Determine whether two sentences are in contradiction, entailment, or neutral relationship.
Accurately identifies logical relationships between sentences.
Text Classification
Zero-shot Classification
Perform classification without domain-specific training data.
Achieves classification on unseen categories.
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