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HomeLLMsQwen1.5 MoE A2.7B

Qwen1.5 MoE A2.7B

by Qwen

Open source · 135k downloads · 224 likes

2.9
(224 reviews)ChatAPI & Local
About

Open source model by Qwen. Pipeline: text-generation. 224 likes on HuggingFace.

Documentation

Qwen1.5-MoE-A2.7B

Introduction

Qwen1.5-MoE is a transformer-based MoE decoder-only language model pretrained on a large amount of data.

For more details, please refer to our blog post and GitHub repo.

Model Details

Qwen1.5-MoE employs Mixture of Experts (MoE) architecture, where the models are upcycled from dense language models. For instance, Qwen1.5-MoE-A2.7B is upcycled from Qwen-1.8B. It has 14.3B parameters in total and 2.7B activated parameters during runtime, while achieving comparable performance to Qwen1.5-7B, it only requires 25% of the training resources. We also observed that the inference speed is 1.74 times that of Qwen1.5-7B.

Requirements

The code of Qwen1.5-MoE has been in the latest Hugging face transformers and we advise you to build from source with command pip install git+https://github.com/huggingface/transformers, or you might encounter the following error:

VB.NET
KeyError: 'qwen2_moe'.

Usage

We do not advise you to use base language models for text generation. Instead, you can apply post-training, e.g., SFT, RLHF, continued pretraining, etc., on this model.

Capabilities & Tags
transformerssafetensorsqwen2_moetext-generationpretrainedmoeconversationalenendpoints_compatible
Links & Resources
Specifications
CategoryChat
AccessAPI & Local
LicenseOpen Source
PricingOpen Source
Parameters7B parameters
Rating
2.9

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