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Nli MiniLM2 L6 H768

Developed by cross-encoder
A pre-trained natural language inference model based on the MiniLMv2 architecture, used to determine the relationship between sentence pairs (contradiction/entailment/neutral).
Downloads 10.02k
Release Time : 3/2/2022

Model Overview

This model uses a cross-encoder architecture specifically designed for natural language inference tasks, capable of determining the logical relationship between two sentences (contradiction, entailment, or neutral).

Model Features

Efficient inference capability
Utilizes distillation technology compressed from RoBERTa-Large, improving inference speed while maintaining high performance.
Multi-dataset training
Jointly trained on two mainstream natural language inference datasets: SNLI and MultiNLI.
Zero-shot classification support
Can be directly used for zero-shot classification tasks without additional training.

Model Capabilities

Natural language inference
Text relationship judgment
Zero-shot classification
Sentence pair analysis

Use Cases

Text analysis
Content consistency check
Detect logical contradictions between two pieces of text.
Automatically identifies contradictory relationships between texts.
Knowledge verification
Verify whether statements align with known facts.
Determines if statements are entailed by the knowledge base.
Intelligent customer service
Question matching
Assess the match between user questions and knowledge base answers.
Improves the accuracy of automated Q&A systems.
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