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TinyLlama-1.1B

https://github.com/jzhang38/TinyLlama

The TinyLlama project aims to pretrain a 1.1B Llama model on 3 trillion tokens. With some proper optimization, we can achieve this within a span of "just" 90 days using 16 A100-40G GPUs πŸš€πŸš€. The training has started on 2023-09-01.

We adopted exactly the same architecture and tokenizer as Llama 2. This means TinyLlama can be plugged and played in many open-source projects built upon Llama. Besides, TinyLlama is compact with only 1.1B parameters. This compactness allows it to cater to a multitude of applications demanding a restricted computation and memory footprint.

This Model

This is the chat model finetuned on PY007/TinyLlama-1.1B-intermediate-step-240k-503b. The dataset used is OpenAssistant/oasst_top1_2023-08-25.

Update from V0.1: 1. Different dataset. 2. Different chat format (now chatml formatted conversations).

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Model size
1.1B params
Architecture
llama

4-bit

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Datasets used to train TinyLlama/TinyLlama-1.1B-Chat-v0.2-GGUF

Spaces using TinyLlama/TinyLlama-1.1B-Chat-v0.2-GGUF 3