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shisa-v2 Base Model ablation

Using a fork of Lightblue's Shaberi benchmark framework:

Model Average ELYZA-tasks-100 MT-Bench Rakuda Tengu-Bench
gpt-4-turbo-2024-04-09 8.75 8.78 8.74 9.18 8.31
CohereForAI/c4ai-command-r-plus 7.69 7.50 7.43 9.05 6.79
gpt-3.5-turbo-0125 7.17 7.24 6.98 7.64 6.82
shisa-ai/shisa-v1-llama3-70b 7.17 7.16 7.45 7.98 6.09
karakuri-ai/karakuri-lm-70b-chat-v0.1 6.84 6.86 6.43 7.85 6.23
lightblue/ao-karasu-72B 6.81 7.19 6.54 7.25 6.27
shisa-ai/shisa-v1-llama3-8b^ 6.29 6.62 6.41 7.05 5.07
shisa-ai/shisa-swallowmx-13a47b-v1 6.17 6.48 6.07 7.11 5.03
shisa-ai/shisa-v1-llama3-8b 6.10 6.52 6.20 6.37 5.33
Rakuten/RakutenAI-7B-chat 5.58 5.92 4.60 6.58 5.24
shisa-ai/shisa-v1-gemma-8b 5.64 6.50 5.42 5.10 5.55
augmxnt/shisa-gamma-7b-v1 5.56 5.84 4.00 6.73 5.68
lightblue/qarasu-14B-chat-plus-unleashed 5.20 5.58 4.74 5.46 5.01
cyberagent/calm2-7b-chat 4.76 4.90 3.58 5.75 4.81
mistralai/Mistral-7B-Instruct-v0.2 4.69 5.78 4.65 3.80 4.53
shisa-ai/shisa-v1-yi1.5-9b 4.63 5.98 4.28 3.26 5.00
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Dataset used to train shisa-ai/shisa-v1-yi1.5-9b