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README.md
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---
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base_model:
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- cgato/TheSpice-7b-v0.1.1
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- ABX-AI/Laymonade-7B
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library_name: transformers
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tags:
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- mergekit
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- merge
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- not-for-all-audiences
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license: other
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---
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# GGUF / IQ / Imatrix for [Spicy-Laymonade-7B](https://huggingface.co/ABX-AI/Spicy-Laymonade-7B)
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![image/png](https://cdn-uploads.huggingface.co/production/uploads/65d936ad52eca001fdcd3245/bMW7mRqBS_xQJBXn-szWS.png)
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**Why Importance Matrix?**
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**Importance Matrix**, at least based on my testing, has shown to improve the output and performance of "IQ"-type quantizations, where the compression becomes quite heavy.
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The **Imatrix** performs a calibration, using a provided dataset. Testing has shown that semi-randomized data can help perserve more important segments as the compression is applied.
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Related discussions in Github:
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[[1]](https://github.com/ggerganov/llama.cpp/discussions/5006) [[2]](https://github.com/ggerganov/llama.cpp/discussions/5263#discussioncomment-8395384)
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The imatrix.txt file that I used contains general, semi-random data, with some custom kink.
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# Spicy-Laymonade-7B
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Well, we have Laymonade, so why not spice it up? This merge is a step into creating a new 9B.
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However, I did try it out, and it seemed to work pretty well.
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## Merge Details
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This is a merge of pre-trained language models created using [mergekit](https://github.com/cg123/mergekit).
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### Merge Method
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This model was merged using the SLERP merge method.
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### Models Merged
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The following models were included in the merge:
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* [cgato/TheSpice-7b-v0.1.1](https://huggingface.co/cgato/TheSpice-7b-v0.1.1)
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* [ABX-AI/Laymonade-7B](https://huggingface.co/ABX-AI/Laymonade-7B)
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### Configuration
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The following YAML configuration was used to produce this model:
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```yaml
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slices:
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- sources:
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- model: cgato/TheSpice-7b-v0.1.1
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layer_range: [0, 32]
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- model: ABX-AI/Laymonade-7B
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layer_range: [0, 32]
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merge_method: slerp
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base_model: ABX-AI/Laymonade-7B
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parameters:
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t:
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- filter: self_attn
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value: [0.7, 0.3, 0.6, 0.2, 0.5]
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- filter: mlp
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value: [0.3, 0.7, 0.4, 0.8, 0.5]
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- value: 0.5
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dtype: bfloat16
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```
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