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Model: brittlewis12/Memphis-CoT-3B-GGUF Source: Original Platform
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README.md
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---
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base_model: euclaise/Memphis-CoT-3B
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datasets:
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- euclaise/TinyCoT
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- euclaise/reddit-instruct
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- sablo/oasst2_curated
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license: cc-by-sa-3.0
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language:
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- en
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model_creator: euclaise
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model_name: Memphis-CoT-3B
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model_type: stablelm_epoch
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inference: false
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tags:
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- supertrainer2000
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- human-data
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- stablelm_epoch
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pipeline_tag: text-generation
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prompt_template: |
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{{system_message}}
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### User:
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{{prompt}}
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### Assistant:
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quantized_by: brittlewis12
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---
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# Memphis-CoT-3B GGUF
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Original model: [Memphis-CoT-3B](https://huggingface.co/euclaise/Memphis-CoT-3B)
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Model creator: [euclaise](https://huggingface.co/euclaise)
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This repo contains GGUF format model files for euclaise’s Memphis-CoT-3B, updated for the latest training run as of 2/2/24.
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> Memphis-CoT is a finetune of StableLM 3b 4e1t on TinyCoT, along with reddit-instruct (subset to 5000 examples, excluding posts with brackets in the title) and a curated subset of oasst2.
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### What is GGUF?
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GGUF is a file format for representing AI models. It is the third version of the format, introduced by the llama.cpp team on August 21st 2023. It is a replacement for GGML, which is no longer supported by llama.cpp.
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Converted using llama.cpp b2022 ([8f8ddfc](https://github.com/ggerganov/llama.cpp/commits/8f8ddfcfadc830b936318c3ea9fe2e8e3365aa85))
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### Prompt template:
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```
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{{system_message}}
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### User:
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{{prompt}}
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### Assistant:
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```
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or Tiny CoT:
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```
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### User:
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{{prompt}}
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### Rationale:
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[...]
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### Answer:
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```
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---
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## Download & run with [cnvrs](https://twitter.com/cnvrsai) on iPhone, iPad, and Mac!
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[cnvrs](https://testflight.apple.com/join/sFWReS7K) is the best app for private, local AI on your device:
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- create & save **Characters** with custom system prompts & temperature settings
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- download and experiment with any **GGUF model** you can [find on HuggingFace](https://huggingface.co/models?library=gguf)!
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- make it your own with custom **Theme colors**
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- powered by Metal ⚡️ & [Llama.cpp](https://github.com/ggerganov/llama.cpp), with **haptics** during response streaming!
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- **try it out** yourself today, on [Testflight](https://testflight.apple.com/join/sFWReS7K)!
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- follow [cnvrs on twitter](https://twitter.com/cnvrsai) to stay up to date
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---
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## Original Model Evaluations:
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| Model | Size | Data | Method | GSM8K (5-shot) | AGIEval (English/Nous subset, acc_norm) | BIG Bench Hard (CoT, few-shot*) |
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|:-----------------------------------------------------------------------|--------|:--------------------|---------------|:---------------|:----------------------------------------|:------------------------------ |
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| [StableLM 3B Base](https://hf.co/stabilityai/stablelm-3b-4e1t) | 3B | Base | Base | 2.05% | 25.14% | 36.75% |
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| [StableHermes 3B](https://hf.co/cxllin/StableHermes-3b) | 3B | GPT | SFT | 3.64% | 24.31% | *37.28%* |
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| [MPT 7B Instruct](https://hf.co/mosaicml/mpt-7b-instruct) | **7B** | **Human**+Anthropic | SFT | 2.05% | 24.12% | 11.01% |
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| [OpenLLaMA 7B v2 open-instruct](http://hf.co/VMware/open-llama-7b-v2-open-instruct) | **7B** | **Human** (nearly: ecqa is an exception) | SFT | 8.64% | 23.21% | 29.84% |
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| [StableLM Zephyr 3B](https://hf.co/stabilityai/stablelm-zephyr-3b) | 3B | GPT | DPO | possibly contaminated (45.72%) | **33.31%** | 0.91% |
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| [**Memphis-CoT 3B**](https://hf.co/euclaise/memphis-cot-3b) | 3B | **Human** | Self-teaching | **13.8%** | *26.24%* | **38.24%** |
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*5-shot, as performed automatically by LM Evaluation Harness bbh_cot_fewshot even with num_fewshot=0
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> Memphis outperforms other primarily-human-data models that are over twice its size, along with SFT models of its size, and trades with the Zephyr DPO model. That said, Zephyr uses synthetic data, and *much* more of it.
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