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TinyLlama-1.1B-intermediate-step-1195k-token-2.5T - GGUF

Name Quant method Size
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q2_K.gguf Q2_K 0.4GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.IQ3_XS.gguf IQ3_XS 0.44GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.IQ3_S.gguf IQ3_S 0.47GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q3_K_S.gguf Q3_K_S 0.47GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.IQ3_M.gguf IQ3_M 0.48GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q3_K.gguf Q3_K 0.51GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q3_K_M.gguf Q3_K_M 0.51GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q3_K_L.gguf Q3_K_L 0.55GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.IQ4_XS.gguf IQ4_XS 0.57GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q4_0.gguf Q4_0 0.59GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.IQ4_NL.gguf IQ4_NL 0.6GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q4_K_S.gguf Q4_K_S 0.6GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q4_K.gguf Q4_K 0.62GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q4_K_M.gguf Q4_K_M 0.62GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q4_1.gguf Q4_1 0.65GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q5_0.gguf Q5_0 0.71GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q5_K_S.gguf Q5_K_S 0.71GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q5_K.gguf Q5_K 0.73GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q5_K_M.gguf Q5_K_M 0.73GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q5_1.gguf Q5_1 0.77GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q6_K.gguf Q6_K 0.84GB
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T.Q8_0.gguf Q8_0 1.09GB

Original model description:

license: apache-2.0 datasets: - cerebras/SlimPajama-627B - bigcode/starcoderdata language: - en

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 ๐Ÿš€๐Ÿš€. 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 Collection

This collection contains all checkpoints after the 1T fix. Branch name indicates the step and number of tokens seen.

Eval

Model Pretrain Tokens HellaSwag Obqa WinoGrande ARC_c ARC_e boolq piqa avg
Pythia-1.0B 300B 47.16 31.40 53.43 27.05 48.99 60.83 69.21 48.30
TinyLlama-1.1B-intermediate-step-50K-104b 103B 43.50 29.80 53.28 24.32 44.91 59.66 67.30 46.11
TinyLlama-1.1B-intermediate-step-240k-503b 503B 49.56 31.40 55.80 26.54 48.32 56.91 69.42 48.28
TinyLlama-1.1B-intermediate-step-480k-1007B 1007B 52.54 33.40 55.96 27.82 52.36 59.54 69.91 50.22
TinyLlama-1.1B-intermediate-step-715k-1.5T 1.5T 53.68 35.20 58.33 29.18 51.89 59.08 71.65 51.29
TinyLlama-1.1B-intermediate-step-955k-2T 2T 54.63 33.40 56.83 28.07 54.67 63.21 70.67 51.64
TinyLlama-1.1B-intermediate-step-1195k-token-2.5T 2.5T 58.96 34.40 58.72 31.91 56.78 63.21 73.07 53.86
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