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Codev R1 Qwen 7B

Developed by zhuyaoyu
CodeV-R1-Qwen-7B is a model obtained through reinforcement learning fine-tuning based on the CodeV-R1 framework and the Qwen/Qwen2.5-Coder-7B-Instruct. It focuses on Verilog-related tasks and can effectively solve the problem of automatically generating hardware description languages in electronic design automation.
Downloads 138
Release Time : 6/3/2025

Model Overview

This model is mainly used in the field of electronic design automation (EDA), especially for automatically generating hardware description languages (such as Verilog) from natural language specifications. Through the innovative CodeV-R1 framework and high-quality datasets, the model performs excellently in Verilog generation tasks.

Model Features

Innovative framework
The CodeV-R1 framework is introduced for training large language models for Verilog generation, which solves the challenges faced in automatically generating hardware description languages in electronic design automation.
High-quality dataset
A round-trip data synthesis method is proposed to verify the consistency of code-natural language-code through the generated testbench, resulting in a high-quality dataset.
Efficient training
A two-stage training process of distillation followed by reinforcement learning is adopted. First, the inference ability is initiated through distillation, and then the adaptive DAPO algorithm is used to reduce the training cost.

Model Capabilities

Verilog code generation
Hardware description language conversion
Natural language to Verilog conversion
Verilog code completion

Use Cases

Electronic design automation
Specification to RTL translation
Convert hardware design specifications described in natural language into Verilog RTL code
Achieved an accuracy of 68.8% in the VerilogEval v2 benchmark test
Verilog code completion
Perform intelligent completion based on partial Verilog code
Achieved an accuracy of 69.9% in the VerilogEval v2 benchmark test
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