Upload EXL2_Private_Quant_V1.ipynb
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EXL2_Private_Quant_V1.ipynb
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{
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"nbformat": 4,
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"nbformat_minor": 0,
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"metadata": {
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"colab": {
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"provenance": [],
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"gpuType": "T4"
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},
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"kernelspec": {
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"name": "python3",
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"display_name": "Python 3"
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},
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"language_info": {
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"name": "python"
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},
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"accelerator": "GPU"
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},
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"cells": [
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{
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"cell_type": "markdown",
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"source": [
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"#Quantizing huggingface models to exl2\n",
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"This version of my exl2 quantize colab creates a single quantizaion to download privatly.\\\n",
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"To calculate an estimate for VRAM size use: [NyxKrage/LLM-Model-VRAM-Calculator](https://huggingface.co/spaces/NyxKrage/LLM-Model-VRAM-Calculator)\\\n",
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"Not all models and architectures are compatible with exl2.\\\n",
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"Will upload to private hf repo in future."
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],
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"metadata": {
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"id": "Ku0ezvyD42ng"
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}
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},
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{
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"cell_type": "code",
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"execution_count": null,
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"metadata": {
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"cellView": "form",
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"id": "G7zSk2LWHtPU"
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},
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"outputs": [],
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| 40 |
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"source": [
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"#@title Download and install environment\n",
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"!git clone https://github.com/turboderp/exllamav2\n",
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| 43 |
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"%cd exllamav2\n",
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| 44 |
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"print(\"Installing pip dependencies\")\n",
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| 45 |
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"!pip install -q -r requirements.txt\n",
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| 46 |
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"!pip install -q huggingface_hub requests tqdm\n",
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| 47 |
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"!wget https://raw.githubusercontent.com/oobabooga/text-generation-webui/main/download-model.py\n",
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| 48 |
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"modeldw = \"none\""
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]
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},
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{
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"cell_type": "code",
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"source": [
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"#@title Login to HF (Required only for gated models)\n",
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| 55 |
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"#@markdown From my Colab/Kaggle login script on [Anthonyg5005/hf-scripts](https://huggingface.co/Anthonyg5005/hf-scripts/blob/main/HF%20Login%20Snippet%20Kaggle.py)\n",
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"#import required functions\n",
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"import os\n",
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"from huggingface_hub import login, get_token, whoami\n",
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"\n",
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"#get token\n",
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"if os.environ.get('KAGGLE_KERNEL_RUN_TYPE', None) is not None: #check if user in kaggle\n",
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| 62 |
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" from kaggle_secrets import UserSecretsClient\n",
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| 63 |
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" from kaggle_web_client import BackendError\n",
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| 64 |
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" try:\n",
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| 65 |
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" login(UserSecretsClient().get_secret(\"HF_TOKEN\")) #login if token secret found\n",
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| 66 |
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" except BackendError:\n",
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| 67 |
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" print('''\n",
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| 68 |
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" When using Kaggle, make sure to use the secret key HF_TOKEN.\n",
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| 69 |
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" This will prevent the need to login every time you run the script.\n",
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| 70 |
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" Set your secrets with the secrets add-on on the top of the screen.\n",
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| 71 |
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" ''')\n",
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| 72 |
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"if get_token() is not None:\n",
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| 73 |
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" #if the token is found then log in:\n",
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| 74 |
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" login(get_token())\n",
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"else:\n",
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| 76 |
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" #if the token is not found then prompt user to provide it:\n",
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| 77 |
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" login(input(\"API token not detected. Enter your HuggingFace (WRITE) token: \"))"
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| 78 |
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],
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| 79 |
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"metadata": {
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| 80 |
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"cellView": "form",
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"id": "8Hl3fQmRLybp"
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| 82 |
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},
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| 83 |
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"execution_count": null,
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| 84 |
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"outputs": []
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| 85 |
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},
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| 86 |
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{
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| 87 |
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"cell_type": "code",
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| 88 |
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"source": [
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| 89 |
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"#@title ##Choose HF model to download\n",
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| 90 |
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"#@markdown Weights must be stored in safetensors\n",
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| 91 |
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"if modeldw != \"none\":\n",
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| 92 |
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" !rm {model}-{BPW}bpw.zip\n",
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| 93 |
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" !rm -r {model}-exl2-{BPW}bpw\n",
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| 94 |
+
"User = \"meta-llama\" # @param {type:\"string\"}\n",
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| 95 |
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"Repo = \"Llama-2-7b-chat-hf\" # @param {type:\"string\"}\n",
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| 96 |
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"modeldw = f\"{User}/{Repo}\"\n",
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| 97 |
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"model = f\"{User}_{Repo}\"\n",
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| 98 |
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"!python download-model.py {modeldw}"
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| 99 |
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],
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| 100 |
+
"metadata": {
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| 101 |
+
"cellView": "form",
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| 102 |
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"id": "NI1LUMD7H-Zx"
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| 103 |
+
},
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| 104 |
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"execution_count": null,
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| 105 |
+
"outputs": []
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| 106 |
+
},
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| 107 |
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{
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| 108 |
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"cell_type": "code",
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| 109 |
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"source": [
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| 110 |
+
"#@title Quantize the model\n",
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| 111 |
+
"#@markdown ###Takes ~13 minutes to start quantizing first time, then quantization will last based on model size\n",
|
| 112 |
+
"#@markdown Target bits per weight:\n",
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| 113 |
+
"BPW = \"4.125\" # @param {type:\"string\"}\n",
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| 114 |
+
"!mkdir {model}-exl2-{BPW}bpw-WD\n",
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| 115 |
+
"!mkdir {model}-exl2-{BPW}bpw\n",
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| 116 |
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"!cp models/{model}/config.json {model}-exl2-{BPW}bpw-WD\n",
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| 117 |
+
"#@markdown Calibrate with dataset, may improve model output: (NOT WORKING YET)\n",
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| 118 |
+
"Calibrate = False # @param {type:\"boolean\"}\n",
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| 119 |
+
"#@markdown Calibration dataset, check above (must be parquet file):\n",
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| 120 |
+
"dataset = \"wikitext\" # @param {type:\"string\"}\n",
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| 121 |
+
"if Calibrate == True:\n",
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| 122 |
+
" quant = f\"convert.py -i models/{model} -o {model}-exl2-{BPW}bpw-WD -cf {model}-exl2-{BPW}bpw -c {dataset} -b {BPW}\"\n",
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| 123 |
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"else:\n",
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| 124 |
+
" quant = f\"convert.py -i models/{model} -o {model}-exl2-{BPW}bpw-WD -cf {model}-exl2-{BPW}bpw -b {BPW}\"\n",
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| 125 |
+
"!python {quant}"
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| 126 |
+
],
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| 127 |
+
"metadata": {
|
| 128 |
+
"id": "8anbEbGyNmBI",
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| 129 |
+
"cellView": "form"
|
| 130 |
+
},
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| 131 |
+
"execution_count": null,
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| 132 |
+
"outputs": []
|
| 133 |
+
},
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| 134 |
+
{
|
| 135 |
+
"cell_type": "code",
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| 136 |
+
"source": [
|
| 137 |
+
"#@title Zip and download the model\n",
|
| 138 |
+
"!rm -r {model}-exl2-{BPW}bpw-WD\n",
|
| 139 |
+
"!rm -r models/{model}\n",
|
| 140 |
+
"print(\"Zipping. May take a few minutes\")\n",
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| 141 |
+
"!zip -r {model}-{BPW}bpw.zip {model}-exl2-{BPW}bpw\n",
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| 142 |
+
"from google.colab import files\n",
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| 143 |
+
"files.download(f\"{model}-{BPW}bpw.zip\")\n",
|
| 144 |
+
"print(\"Colab download speeds very slow so download will take a while\")"
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| 145 |
+
],
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| 146 |
+
"metadata": {
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| 147 |
+
"cellView": "form",
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| 148 |
+
"id": "XORLS2uPrbma"
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| 149 |
+
},
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| 150 |
+
"execution_count": null,
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| 151 |
+
"outputs": []
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| 152 |
+
}
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| 153 |
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]
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| 154 |
+
}
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