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---
base_model:
- v000000/L3.1-8B-RP-Test-003-Task_Arithmetic
- v000000/L3.1-Niitorm-8B-t0.0001
- Sao10K/L3.1-8B-Niitama-v1.1
- arcee-ai/Llama-3.1-SuperNova-Lite
- akjindal53244/Llama-3.1-Storm-8B
- arcee-ai/Llama-Spark
- v000000/L3.1-8B-RP-Test-002-Task_Arithmetic
- grimjim/Llama-3-Instruct-abliteration-LoRA-8B
library_name: transformers
tags:
- mergekit
- merge
- llama
---
[![QuantFactory Banner](https://lh7-rt.googleusercontent.com/docsz/AD_4nXeiuCm7c8lEwEJuRey9kiVZsRn2W-b4pWlu3-X534V3YmVuVc2ZL-NXg2RkzSOOS2JXGHutDuyyNAUtdJI65jGTo8jT9Y99tMi4H4MqL44Uc5QKG77B0d6-JfIkZHFaUA71-RtjyYZWVIhqsNZcx8-OMaA?key=xt3VSDoCbmTY7o-cwwOFwQ)](https://hf.co/QuantFactory)
# QuantFactory/L3.1-Storniitova-8B-GGUF
This is quantized version of [v000000/L3.1-Storniitova-8B](https://huggingface.co/v000000/L3.1-Storniitova-8B) created using llama.cpp
# Original Model Card
# Llama-3.1-Storniitova-8B
Storniitova-8B is a RP/Instruct model built on the foundation of Llama-3.1-SuperNova-Lite, which is distilled from the 405B parameter variant of Llama-3.1
By only changing the vector tasks, I attempt to retain the full 405B distillation while learning roleplaying capabilties.
# (GGUF) mradermacher quants:
* [GGUFs](https://huggingface.co/mradermacher/L3.1-Storniitova-8B-GGUF)
* [GGUFs imatrix](https://huggingface.co/mradermacher/L3.1-Storniitova-8B-i1-GGUF)
-----------------------------------------------------------------------------------------------------------
# merge
This is a merge of pre-trained language models created using [mergekit](https://github.com/cg123/mergekit) and other proprietary tools.
## Merge Details
### Merge Method
This model was merged using the <b>SLERP, Task_Arithmetic and NEARSWAP</b> merge method.
### Models Merged
The following models were included in the merge:
* [v000000/L3.1-Niitorm-8B-t0.0001](https://huggingface.co/v000000/L3.1-Niitorm-8B-t0.0001)
* [akjindal53244/Llama-3.1-Storm-8B](https://huggingface.co/akjindal53244/Llama-3.1-Storm-8B)
* [arcee-ai/Llama-Spark](https://huggingface.co/arcee-ai/Llama-Spark)
* [arcee-ai/Llama-3.1-SuperNova-Lite](https://huggingface.co/arcee-ai/Llama-3.1-SuperNova-Lite)
* [v000000/L3.1-8B-RP-Test-003-Task_Arithmetic](https://huggingface.co/v000000/L3.1-8B-RP-Test-003-Task_Arithmetic)
* [Sao10K/L3.1-8B-Niitama-v1.1](https://huggingface.co/Sao10K/L3.1-8B-Niitama-v1.1) + [grimjim/Llama-3-Instruct-abliteration-LoRA-8B](https://huggingface.co/grimjim/Llama-3-Instruct-abliteration-LoRA-8B)
* [v000000/L3.1-8B-RP-Test-002-Task_Arithmetic](https://huggingface.co/v000000/L3.1-8B-RP-Test-002-Task_Arithmetic) + [grimjim/Llama-3-Instruct-abliteration-LoRA-8B](https://huggingface.co/grimjim/Llama-3-Instruct-abliteration-LoRA-8B)
### Recipe
The following YAML configuration was used to produce this model:
```yaml
#Step1 - Add smarts to Niitama with alchemonaut's algorithm.
slices:
- sources:
- model: Sao10K/L3.1-8B-Niitama-v1.1+grimjim/Llama-3-Instruct-abliteration-LoRA-8B
layer_range: [0, 32]
- model: akjindal53244/Llama-3.1-Storm-8B
layer_range: [0, 32]
merge_method: nearswap
base_model: Sao10K/L3.1-8B-Niitama-v1.1+grimjim/Llama-3-Instruct-abliteration-LoRA-8B
parameters:
t:
- value: 0.0001
dtype: bfloat16
out_type: float16
#Step 2 - Learn vectors onto Supernova 0.4(Niitorm)
models:
- model: arcee-ai/Llama-3.1-SuperNova-Lite
parameters:
weight: 1.0
- model: v000000/L3.1-Niitorm-8B-t0.0001
parameters:
weight: 0.4
merge_method: task_arithmetic
base_model: arcee-ai/Llama-3.1-SuperNova-Lite
parameters:
normalize: false
dtype: float16
#Step 3 - Fully learn vectors onto Supernova 1.25(Niitorm)
models:
- model: arcee-ai/Llama-3.1-SuperNova-Lite
parameters:
weight: 0.0
- model: v000000/L3.1-Niitorm-8B-t0.0001
parameters:
weight: 1.25
merge_method: task_arithmetic
base_model: arcee-ai/Llama-3.1-SuperNova-Lite
parameters:
normalize: false
dtype: float16
#Step 4 - Merge checkpoints and keep output/input Supernova heavy
#Merge with a triangular slerp from sophosympatheia.
models:
- model: v000000/L3.1-8B-RP-Test-003-Task_Arithmetic
merge_method: slerp
base_model: v000000/L3.1-8B-RP-Test-002-Task_Arithmetic+grimjim/Llama-3-Instruct-abliteration-LoRA-8B
# This model needed some abliteration^
parameters:
t:
- value: [0, 0, 0.3, 0.4, 0.5, 0.6, 0.5, 0.4, 0.3, 0, 0]
dtype: float16
```
*SLERP distribution* used to smoothly blend the mostly Supernova base with the roleplay vectors:
![image/png](https://cdn-uploads.huggingface.co/production/uploads/64f74b6e6389380c77562762/GP2LMRvMkhVJwNDSEC4oU.png)