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Cuckoo C4 Super Rainbow

Developed by KomeijiForce
Cuckoo is a 300-million-parameter information extraction model that mimics the next-token prediction paradigm of large language models for information extraction, capable of self-enhancement using various text resources.
Downloads 159
Release Time : 2/16/2025

Model Overview

The Cuckoo model is a small yet efficient information extraction model that predicts by labeling the next token in a given context, differing from traditional vocabulary retrieval methods. It excels particularly in self-enhancement using data prepared for large language models.

Model Features

Self-enhancement Capability
Capable of self-enhancement using any text resources, especially adept at utilizing data prepared for large language models.
Few-shot Adaptation
Excels in few-shot adaptation, achieving good performance even with limited annotated data.
Multi-task Processing
Capable of handling multiple information extraction tasks, including entity recognition and relation extraction.

Model Capabilities

Entity recognition
Relation extraction
Next token prediction
Information extraction
Few-shot learning

Use Cases

Text Understanding
Person and Location Recognition
Identify mentioned persons and locations from text
Example output: Who are the mentioned persons? ['Tom', 'Jack']
Event Understanding
Understand events and activities described in text
Example output: What was Tom and Jack's purpose for going to Paris? ['Travel']
Knowledge QA
Attribute Query
Answer simple questions about object attributes
Example output: Grass ['green']
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