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smallBERTa_Pretraining.ipynb
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{
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"colab": {
"name": "smallBERTa_Pretraining.ipynb",
"provenance": [],
"collapsed_sections": [],
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"cells": [
{
"cell_type": "markdown",
"metadata": {
"id": "view-in-github",
"colab_type": "text"
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"source": [
"<a href=\"https://colab.research.google.com/gist/aditya-malte/2d4f896f471be9c38eb4d723a710768b/smallberta_pretraining.ipynb\" target=\"_parent\"><img src=\"https://colab.research.google.com/assets/colab-badge.svg\" alt=\"Open In Colab\"/></a>"
]
},
{
"cell_type": "markdown",
"metadata": {
"id": "V4OynugZvMG2",
"colab_type": "text"
},
"source": [
"# Pre-training SmallBERTa - A tiny model to train on a tiny dataset\n",
"(Using HuggingFace Transformers)<br>\n",
"Admittedly, while language modeling is associated with terabytes of data, not all of use have either the processing power nor the resources to train huge models on such huge amounts of data.\n",
"In this example, we are going to train a relatively small neural net on a small dataset (which still happens to have over 2M rows).\n",
"<br>\n",
"\n",
"The ***main purpose*** of this blog is not to achieve state-of-the-art performance on LM tasks but to show a simple idea of how the recent language_modeling.py script can be used to train a Transformer model from scratch.\n",
"\n",
"This very notebook can be extended to various esoteric use cases where general purpose pre-trained models fail to perform well. Examples include medical dataset, scientific literature, legal documentation, etc.\n",
"\n",
"Input:\n",
" 1. To the Tokenizer:<br>\n",
" LM data in a directory containing all samples in separate *.txt files.\n",
" \n",
" 2. To the Model:<br>\n",
" LM data split into:<br>\n",
" 1. train.txt <br>\n",
" 2. eval.txt \n",
" \n",
"Output:<br>\n",
" Trained Model weights(that can be used elsewhere) and Tensorboard logs"
]
},
{
"cell_type": "markdown",
"metadata": {
"id": "5sHQ_tWig474",
"colab_type": "text"
},
"source": [
"## Install Dependencies"
]
},
{
"cell_type": "code",
"metadata": {
"id": "hPxoElNugaMu",
"colab_type": "code",
"outputId": "705e0776-70b3-4d51-a50c-b67e5f639997",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 1000
}
},
"source": [
"#tokenizer working version --- 0.5.0\n",
"#transformer working version --- 2.5.0\n",
"!pip install transformers\n",
"!pip install tokenizers\n",
"!pip install tensorboard==2.1.0"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
"Collecting transformers\n",
"\u001b[?25l Downloading https://files.pythonhosted.org/packages/04/58/3d789b98923da6485f376be1e04d59ad7003a63bdb2b04b5eea7e02857e5/transformers-2.5.0-py3-none-any.whl (481kB)\n",
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"\u001b[?25hCollecting tokenizers==0.5.0\n",
"\u001b[?25l Downloading https://files.pythonhosted.org/packages/7e/1d/ea7e2c628942e686595736f73678348272120d026b7acd54fe43e5211bb1/tokenizers-0.5.0-cp36-cp36m-manylinux1_x86_64.whl (3.8MB)\n",
"\u001b[K |████████████████████████████████| 3.8MB 51.0MB/s \n",
"\u001b[?25hCollecting sacremoses\n",
"\u001b[?25l Downloading https://files.pythonhosted.org/packages/a6/b4/7a41d630547a4afd58143597d5a49e07bfd4c42914d8335b2a5657efc14b/sacremoses-0.0.38.tar.gz (860kB)\n",
"\u001b[K |████████████████████████████████| 870kB 51.0MB/s \n",
"\u001b[?25hRequirement already satisfied: requests in /usr/local/lib/python3.6/dist-packages (from transformers) (2.21.0)\n",
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"Collecting sentencepiece\n",
"\u001b[?25l Downloading https://files.pythonhosted.org/packages/74/f4/2d5214cbf13d06e7cb2c20d84115ca25b53ea76fa1f0ade0e3c9749de214/sentencepiece-0.1.85-cp36-cp36m-manylinux1_x86_64.whl (1.0MB)\n",
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"Building wheels for collected packages: sacremoses\n",
" Building wheel for sacremoses (setup.py) ... \u001b[?25l\u001b[?25hdone\n",
" Created wheel for sacremoses: filename=sacremoses-0.0.38-cp36-none-any.whl size=884628 sha256=bfd64cc598a7e475f655abf031d4190a57d3ca64431f51d59dfb570f216a77f8\n",
" Stored in directory: /root/.cache/pip/wheels/6d/ec/1a/21b8912e35e02741306f35f66c785f3afe94de754a0eaf1422\n",
"Successfully built sacremoses\n",
"Installing collected packages: tokenizers, sacremoses, sentencepiece, transformers\n",
"Successfully installed sacremoses-0.0.38 sentencepiece-0.1.85 tokenizers-0.5.0 transformers-2.5.0\n",
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"Collecting tensorboard==2.1.0\n",
"\u001b[?25l Downloading https://files.pythonhosted.org/packages/40/23/53ffe290341cd0855d595b0a2e7485932f473798af173bbe3a584b99bb06/tensorboard-2.1.0-py3-none-any.whl (3.8MB)\n",
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"\u001b[31mERROR: tensorflow 1.15.0 has requirement tensorboard<1.16.0,>=1.15.0, but you'll have tensorboard 2.1.0 which is incompatible.\u001b[0m\n",
"Installing collected packages: tensorboard\n",
" Found existing installation: tensorboard 1.15.0\n",
" Uninstalling tensorboard-1.15.0:\n",
" Successfully uninstalled tensorboard-1.15.0\n",
"Successfully installed tensorboard-2.1.0\n"
],
"name": "stdout"
}
]
},
{
"cell_type": "markdown",
"metadata": {
"id": "cBcbCQoEg9cT",
"colab_type": "text"
},
"source": [
"## Fetch Data\n",
"We will be using a tiny dataset(The Examiner - SpamClickBait News) of around 3M rows from kaggle to train our model. The dataset also contains output labels which will be dropped and only the text shall be used. For convenience we are using the Kaggle API to direcltly download the data from Kaggle to save our time and efforts. "
]
},
{
"cell_type": "code",
"metadata": {
"id": "AtFnApKwiGUb",
"colab_type": "code",
"outputId": "99c4c4e6-147a-46ae-91da-d89a148a6c0c",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 169
}
},
"source": [
"import os\n",
"import getpass\n",
"\n",
"#For a kaggle username & key, just go to your kaggle account and generate key\n",
"#The JSON file so downloaded contains both of them\n",
"if(\"examine-the-examiner.zip\" not in os.listdir()):\n",
" print(\"Copy these two values from the JSON file so generated\")\n",
" os.environ['KAGGLE_USERNAME'] = getpass.getpass(prompt='Kaggle username: ') \n",
" os.environ['KAGGLE_KEY'] = getpass.getpass(prompt='Kaggle key: ')\n",
" !kaggle datasets download -d therohk/examine-the-examiner\n",
" !unzip /content/examine-the-examiner.zip"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
"Copy these two values from the JSON file so generated\n",
"Kaggle username: ··········\n",
"Kaggle key: ··········\n",
"Downloading examine-the-examiner.zip to /content\n",
" 86% 123M/142M [00:00<00:00, 132MB/s]\n",
"100% 142M/142M [00:00<00:00, 163MB/s]\n",
"Archive: /content/examine-the-examiner.zip\n",
" inflating: examiner-date-text.csv \n",
" inflating: examiner-date-tokens.csv \n"
],
"name": "stdout"
}
]
},
{
"cell_type": "markdown",
"metadata": {
"id": "IQ7hj9kuhBIj",
"colab_type": "text"
},
"source": [
"## Load and Preprocess data"
]
},
{
"cell_type": "code",
"metadata": {
"id": "HOG-fl1cGhJ4",
"colab_type": "code",
"colab": {}
},
"source": [
"import regex as re\n",
"def basicPreprocess(text):\n",
" try:\n",
" processed_text = text.lower()\n",
" processed_text = re.sub(r'\\W +', ' ', processed_text)\n",
" except Exception as e:\n",
" print(\"Exception:\",e,\",on text:\", text)\n",
" return None\n",
" return processed_text"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"id": "Fn68O17MsqYp",
"colab_type": "code",
"colab": {}
},
"source": [
"import pandas as pd\n",
"from tqdm import tqdm"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "markdown",
"metadata": {
"id": "iUtf-gZ_hWEE",
"colab_type": "text"
},
"source": [
"## Read and Prune the data\n",
"For our purpose we are going to read a subset (~200,000 samples) to train, just to see results quickly. Feel free to increase (or remove) this limitation. "
]
},
{
"cell_type": "code",
"metadata": {
"id": "bj7Bo6hMiySr",
"colab_type": "code",
"outputId": "0886be29-864c-4e12-b4b0-28c4e23f88f1",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 253
}
},
"source": [
"data = pd.read_csv(\"/content/examiner-date-text.csv\")\n",
"print(data)"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
" publish_date headline_text\n",
"0 20100101 100 Most Anticipated books releasing in 2010\n",
"1 20100101 10 best films of 2009 - What's on your list?\n",
"2 20100101 10 days of free admission at Lan Su Chinese Ga...\n",
"3 20100101 10 PlayStation games to watch out for in 2010\n",
"4 20100101 10 resolutions for a Happy New Year for you an...\n",
"... ... ...\n",
"3089776 20151231 Which is better investment, Lego bricks or gol...\n",
"3089777 20151231 Wild score three unanswered goals to defeat th...\n",
"3089778 20151231 With NASA and Russia on the sidelines, Europe ...\n",
"3089779 20151231 Wolf Pack battling opponents, officials on the...\n",
"3089780 20151231 Writespace hosts all genre open mic night\n",
"\n",
"[3089781 rows x 2 columns]\n"
],
"name": "stdout"
}
]
},
{
"cell_type": "code",
"metadata": {
"id": "1JaLDYtAnZIP",
"colab_type": "code",
"colab": {}
},
"source": [
"data = data.sample(frac=1).sample(frac=1)\n",
"data = data[:200000]"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "markdown",
"metadata": {
"id": "qYYUOhiXhHP8",
"colab_type": "text"
},
"source": [
"### Before Preprocessing "
]
},
{
"cell_type": "code",
"metadata": {
"id": "8STrareTIxox",
"colab_type": "code",
"outputId": "3553e801-b2b4-463a-c7c2-03e1d1b6c500",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 253
}
},
"source": [
"print(data)"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
" publish_date headline_text\n",
"618246 20100816 Triangle UFO low and silent over rural Deansbo...\n",
"1794117 20120420 Kevin Hart and 'Think Like a Man' co-stars lea...\n",
"3053438 20150920 Uma Thurman custody battle finally settled wit...\n",
"180273 20100313 Legislator confident of Health Care bill\n",
"938083 20101228 McDonald's ad in Spanish, provoking sparks\n",
"... ... ...\n",
"1737672 20120319 Washington Post: Obama has been lying to Ameri...\n",
"1780904 20120413 California retiree collects $227k Mega Million...\n",
"1614310 20120105 This Weekend at Miami Science Museum Laser Show\n",
"1565925 20111205 December 12th is National Poinsettia Day\n",
"1358212 20110731 Spartans' Cousins gives stirring, thought-prov...\n",
"\n",
"[200000 rows x 2 columns]\n"
],
"name": "stdout"
}
]
},
{
"cell_type": "code",
"metadata": {
"id": "Z8md5U5tGx1J",
"colab_type": "code",
"colab": {}
},
"source": [
"data[\"headline_text\"] = data[\"headline_text\"].apply(basicPreprocess).dropna() #ignore exception if for empty/nan values"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "markdown",
"metadata": {
"id": "DCzsk_sVhLsi",
"colab_type": "text"
},
"source": [
"### After Preprocessing"
]
},
{
"cell_type": "code",
"metadata": {
"id": "wV8ysU3cI1a-",
"colab_type": "code",
"outputId": "b3962d3a-6d6a-468b-9534-d9d1dd6f457b",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 253
}
},
"source": [
"print(data)"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
" publish_date headline_text\n",
"618246 20100816 triangle ufo low and silent over rural deansbo...\n",
"1794117 20120420 kevin hart and 'think like a man co-stars lear...\n",
"3053438 20150920 uma thurman custody battle finally settled wit...\n",
"180273 20100313 legislator confident of health care bill\n",
"938083 20101228 mcdonald's ad in spanish provoking sparks\n",
"... ... ...\n",
"1737672 20120319 washington post obama has been lying to americ...\n",
"1780904 20120413 california retiree collects $227k mega million...\n",
"1614310 20120105 this weekend at miami science museum laser show\n",
"1565925 20111205 december 12th is national poinsettia day\n",
"1358212 20110731 spartans cousins gives stirring thought-provok...\n",
"\n",
"[200000 rows x 2 columns]\n"
],
"name": "stdout"
}
]
},
{
"cell_type": "markdown",
"metadata": {
"id": "dbp40Xkrhs8l",
"colab_type": "text"
},
"source": [
"Removing newline characters just in case the input text has them. This is because the LineByLine class that we are going to use later assumes that samples are separated by newline"
]
},
{
"cell_type": "code",
"metadata": {
"id": "9dBFTDQnjXnE",
"colab_type": "code",
"colab": {}
},
"source": [
"data = data[\"headline_text\"]\n",
"data = data.replace(\"\\n\",\" \")"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "markdown",
"metadata": {
"id": "gI1Tp54IiVBj",
"colab_type": "text"
},
"source": [
"## Train a custom tokenizer\n",
"I have used a ByteLevelBPETokenizer just to prevent \\<unk> tokens entirely.\n",
"Furthermore, the function used to train the tokenizer assumes that each sample is stored in a different text file."
]
},
{
"cell_type": "code",
"metadata": {
"id": "rs-wK-N1EACp",
"colab_type": "code",
"colab": {}
},
"source": [
"txt_files_dir = \"/tmp/text_split\"\n",
"!mkdir {txt_files_dir}"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "markdown",
"metadata": {
"id": "QIvCE_svi7sQ",
"colab_type": "text"
},
"source": [
"Split LM data into individual files. These files are stored in /tmp/text_split and are used to train the tokenizer **only**."
]
},
{
"cell_type": "code",
"metadata": {
"id": "_2oI92Z0tyAp",
"colab_type": "code",
"outputId": "022fc930-6312-4e83-eb4f-24b68e0b0394",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 34
}
},
"source": [
"i=0\n",
"for row in tqdm(data.to_list()):\n",
" file_name = os.path.join(txt_files_dir, str(i)+'.txt')\n",
" try:\n",
" f = open(file_name, 'w')\n",
" f.write(row)\n",
" f.close()\n",
" except Exception as e: #catch exceptions(for eg. empty rows)\n",
" print(row, e) \n",
" i+=1"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
"100%|██████████| 200000/200000 [00:09<00:00, 20693.63it/s]\n"
],
"name": "stderr"
}
]
},
{
"cell_type": "code",
"metadata": {
"id": "3r6RuiCBXIJy",
"colab_type": "code",
"colab": {}
},
"source": [
"from pathlib import Path\n",
"from tokenizers import ByteLevelBPETokenizer\n",
"from tokenizers.processors import BertProcessing\n",
"\n",
"\n",
"paths = [str(x) for x in Path(txt_files_dir).glob(\"**/*.txt\")]\n",
"\n",
"# Initialize a tokenizer\n",
"tokenizer = ByteLevelBPETokenizer()\n",
"\n",
"vocab_size=5000\n",
"# Customize training\n",
"tokenizer.train(files=paths, vocab_size=vocab_size, min_frequency=5, special_tokens=[\n",
" \"<s>\",\n",
" \"<pad>\",\n",
" \"</s>\",\n",
" \"<unk>\",\n",
" \"<mask>\",\n",
"])"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"id": "0bv78Z2UjIci",
"colab_type": "code",
"colab": {}
},
"source": [
"lm_data_dir = \"/tmp/lm_data\"\n",
"!mkdir {lm_data_dir}"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "markdown",
"metadata": {
"id": "sI5kEwUojOQo",
"colab_type": "text"
},
"source": [
"## Split into Valdation and Train set\n",
"We split the train data into validation and train. These two files are used to train and evaluate our model"
]
},
{
"cell_type": "code",
"metadata": {
"id": "2nWv7Yuki66k",
"colab_type": "code",
"colab": {}
},
"source": [
"train_split = 0.9\n",
"train_data_size = int(len(data)*train_split)\n",
"\n",
"with open(os.path.join(lm_data_dir,'train.txt') , 'w') as f:\n",
" for item in data[:train_data_size].tolist():\n",
" f.write(\"%s\\n\" % item)\n",
"\n",
"with open(os.path.join(lm_data_dir,'eval.txt') , 'w') as f:\n",
" for item in data[train_data_size:].tolist():\n",
" f.write(\"%s\\n\" % item)"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"id": "UKaVWBiVTtEO",
"colab_type": "code",
"colab": {}
},
"source": [
"!mkdir /content/models\n",
"!mkdir /content/models/smallBERTa"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"id": "noQfBUkhJmFC",
"colab_type": "code",
"outputId": "9deb334f-d4ec-45e3-df14-1c048a4890ba",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 50
}
},
"source": [
"tokenizer.save(\"/content/models/smallBERTa\", \"smallBERTa\")"
],
"execution_count": 0,
"outputs": [
{
"output_type": "execute_result",
"data": {
"text/plain": [
"['/content/models/smallBERTa/smallBERTa-vocab.json',\n",
" '/content/models/smallBERTa/smallBERTa-merges.txt']"
]
},
"metadata": {
"tags": []
},
"execution_count": 17
}
]
},
{
"cell_type": "code",
"metadata": {
"id": "odSTiCM--4_p",
"colab_type": "code",
"colab": {}
},
"source": [
"!mv /content/models/smallBERTa/smallBERTa-vocab.json /content/models/smallBERTa/vocab.json\n",
"!mv /content/models/smallBERTa/smallBERTa-merges.txt /content/models/smallBERTa/merges.txt"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"id": "naEJbZDjFnNo",
"colab_type": "code",
"colab": {}
},
"source": [
"train_path = os.path.join(lm_data_dir,\"train.txt\")\n",
"eval_path = os.path.join(lm_data_dir,\"eval.txt\")"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "markdown",
"metadata": {
"id": "P91yVQkXj9rc",
"colab_type": "text"
},
"source": [
"## Set Model Configuration\n",
"For our purpose, we are training a very small model for demo purposes"
]
},
{
"cell_type": "code",
"metadata": {
"id": "XS4q1YtxZ2GW",
"colab_type": "code",
"colab": {}
},
"source": [
"import json\n",
"config = {\n",
" \"attention_probs_dropout_prob\": 0.1,\n",
" \"hidden_act\": \"gelu\",\n",
" \"hidden_dropout_prob\": 0.3,\n",
" \"hidden_size\": 128,\n",
" \"initializer_range\": 0.02,\n",
" \"num_attention_heads\": 1,\n",
" \"num_hidden_layers\": 1,\n",
" \"vocab_size\": vocab_size,\n",
" \"intermediate_size\": 256,\n",
" \"max_position_embeddings\": 256\n",
"}\n",
"with open(\"/content/models/smallBERTa/config.json\", 'w') as fp:\n",
" json.dump(config, fp)"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"colab_type": "code",
"id": "CbVBgrDbmVJ2",
"outputId": "160bd4f1-ae4b-474e-bb4f-19a8907d05e3",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 135
}
},
"source": [
"#%cd /content\n",
"!git clone https://github.com/huggingface/transformers.git"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
"Cloning into 'transformers'...\n",
"remote: Enumerating objects: 24, done.\u001b[K\n",
"remote: Counting objects: 100% (24/24), done.\u001b[K\n",
"remote: Compressing objects: 100% (23/23), done.\u001b[K\n",
"remote: Total 19858 (delta 5), reused 6 (delta 0), pack-reused 19834\u001b[K\n",
"Receiving objects: 100% (19858/19858), 11.95 MiB | 4.05 MiB/s, done.\n",
"Resolving deltas: 100% (14423/14423), done.\n"
],
"name": "stdout"
}
]
},
{
"cell_type": "markdown",
"metadata": {
"id": "EZMJ0zMxDIyc",
"colab_type": "text"
},
"source": [
"## Run training using the run_language_modeling.py examples script"
]
},
{
"cell_type": "code",
"metadata": {
"id": "4kvkxHIk2Vgn",
"colab_type": "code",
"outputId": "7dbd97f4-e05b-4158-86a5-083818c57082",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 304
}
},
"source": [
"!nvidia-smi #just to confirm that you are on a GPU, if not go to Runtime->Change Runtime"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
"Fri Feb 21 12:17:21 2020 \n",
"+-----------------------------------------------------------------------------+\n",
"| NVIDIA-SMI 440.48.02 Driver Version: 418.67 CUDA Version: 10.1 |\n",
"|-------------------------------+----------------------+----------------------+\n",
"| GPU Name Persistence-M| Bus-Id Disp.A | Volatile Uncorr. ECC |\n",
"| Fan Temp Perf Pwr:Usage/Cap| Memory-Usage | GPU-Util Compute M. |\n",
"|===============================+======================+======================|\n",
"| 0 Tesla P4 Off | 00000000:00:04.0 Off | 0 |\n",
"| N/A 41C P8 7W / 75W | 0MiB / 7611MiB | 0% Default |\n",
"+-------------------------------+----------------------+----------------------+\n",
" \n",
"+-----------------------------------------------------------------------------+\n",
"| Processes: GPU Memory |\n",
"| GPU PID Type Process name Usage |\n",
"|=============================================================================|\n",
"| No running processes found |\n",
"+-----------------------------------------------------------------------------+\n"
],
"name": "stdout"
}
]
},
{
"cell_type": "code",
"metadata": {
"id": "Hk2MUnKFV58z",
"colab_type": "code",
"colab": {}
},
"source": [
"#Setting environment variables\n",
"os.environ[\"train_path\"] = train_path\n",
"os.environ[\"eval_path\"] = eval_path\n",
"os.environ[\"CUDA_LAUNCH_BLOCKING\"]='1' #Makes for easier debugging (just in case)\n",
"weights_dir = \"/content/models/smallBERTa/weights\"\n",
"!mkdir {weights_dir}"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"id": "6UJ_BSAlmccq",
"colab_type": "code",
"colab": {}
},
"source": [
"cmd = '''python /content/transformers/examples/run_language_modeling.py --output_dir {0} \\\n",
" --model_type roberta \\\n",
" --mlm \\\n",
" --train_data_file {1} \\\n",
" --eval_data_file {2} \\\n",
" --config_name /content/models/smallBERTa \\\n",
" --tokenizer_name /content/models/smallBERTa \\\n",
" --do_train \\\n",
" --line_by_line \\\n",
" --overwrite_output_dir \\\n",
" --do_eval \\\n",
" --block_size 256 \\\n",
" --learning_rate 1e-4 \\\n",
" --num_train_epochs 5 \\\n",
" --save_total_limit 2 \\\n",
" --save_steps 2000 \\\n",
" --logging_steps 500 \\\n",
" --per_gpu_eval_batch_size 32 \\\n",
" --per_gpu_train_batch_size 32 \\\n",
" --evaluate_during_training \\\n",
" --seed 42 \\\n",
" '''.format(weights_dir, train_path, eval_path)"
],
"execution_count": 0,
"outputs": []
},
{
"cell_type": "code",
"metadata": {
"id": "jqhJzq03Fc15",
"colab_type": "code",
"outputId": "3a02319a-1040-457b-baf8-f5e4ed3c1e0e",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 1000
}
},
"source": [
"!{cmd}"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
"\u001b[1;30;43mStreaming output truncated to the last 5000 lines.\u001b[0m\n",
"Evaluating: 96% 598/625 [00:04<00:00, 124.17it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 98% 611/625 [00:04<00:00, 124.94it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 100% 625/625 [00:05<00:00, 126.93it/s]\u001b[A\u001b[A\n",
"\n",
"\u001b[A\u001b[A02/21/2020 12:30:10 - INFO - __main__ - ***** Eval results *****\n",
"02/21/2020 12:30:10 - INFO - __main__ - perplexity = tensor(873.4072)\n",
"\n",
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"02/21/2020 12:31:27 - INFO - __main__ - ***** Running evaluation *****\n",
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"02/21/2020 12:31:47 - INFO - __main__ - ***** Running evaluation *****\n",
"02/21/2020 12:31:47 - INFO - __main__ - Num examples = 20000\n",
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"02/21/2020 12:31:52 - INFO - __main__ - perplexity = tensor(833.0645)\n",
"02/21/2020 12:31:52 - INFO - transformers.configuration_utils - Configuration saved in /content/models/smallBERTa/weights/checkpoint-20000/config.json\n",
"02/21/2020 12:31:52 - INFO - transformers.modeling_utils - Model weights saved in /content/models/smallBERTa/weights/checkpoint-20000/pytorch_model.bin\n",
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"02/21/2020 12:33:15 - INFO - transformers.configuration_utils - Configuration saved in /content/models/smallBERTa/weights/checkpoint-22000/config.json\n",
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"02/21/2020 12:34:12 - INFO - __main__ - ***** Running evaluation *****\n",
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"02/21/2020 12:34:32 - INFO - __main__ - ***** Running evaluation *****\n",
"02/21/2020 12:34:32 - INFO - __main__ - Num examples = 20000\n",
"02/21/2020 12:34:32 - INFO - __main__ - Batch size = 32\n",
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"02/21/2020 12:34:37 - INFO - transformers.configuration_utils - Configuration saved in /content/models/smallBERTa/weights/checkpoint-24000/config.json\n",
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"02/21/2020 12:36:56 - INFO - __main__ - ***** Running evaluation *****\n",
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"02/21/2020 12:37:16 - INFO - __main__ - ***** Running evaluation *****\n",
"02/21/2020 12:37:16 - INFO - __main__ - Num examples = 20000\n",
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"Evaluating: 68% 426/625 [00:03<00:01, 129.12it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 70% 439/625 [00:03<00:01, 126.25it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 72% 453/625 [00:03<00:01, 127.40it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 75% 466/625 [00:03<00:01, 126.84it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 77% 480/625 [00:03<00:01, 127.74it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 79% 493/625 [00:03<00:01, 127.33it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 81% 506/625 [00:04<00:00, 121.71it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 83% 519/625 [00:04<00:00, 123.77it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 85% 532/625 [00:04<00:00, 121.86it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 87% 545/625 [00:04<00:00, 122.11it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 89% 558/625 [00:04<00:00, 118.65it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 91% 571/625 [00:04<00:00, 119.80it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 93% 584/625 [00:04<00:00, 122.16it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 96% 597/625 [00:04<00:00, 123.91it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 98% 611/625 [00:04<00:00, 126.25it/s]\u001b[A\u001b[A\n",
"\n",
"Evaluating: 100% 625/625 [00:04<00:00, 128.41it/s]\u001b[A\u001b[A\n",
"\n",
"\u001b[A\u001b[A02/21/2020 12:37:21 - INFO - __main__ - ***** Eval results *****\n",
"02/21/2020 12:37:21 - INFO - __main__ - perplexity = tensor(787.6224)\n",
"02/21/2020 12:37:21 - INFO - transformers.configuration_utils - Configuration saved in /content/models/smallBERTa/weights/checkpoint-28000/config.json\n",
"02/21/2020 12:37:21 - INFO - transformers.modeling_utils - Model weights saved in /content/models/smallBERTa/weights/checkpoint-28000/pytorch_model.bin\n",
"02/21/2020 12:37:21 - INFO - __main__ - Saving model checkpoint to /content/models/smallBERTa/weights/checkpoint-28000\n",
"02/21/2020 12:37:21 - INFO - __main__ - Deleting older checkpoint [/content/models/smallBERTa/weights/checkpoint-24000] due to args.save_total_limit\n",
"02/21/2020 12:37:21 - INFO - __main__ - Saving optimizer and scheduler states to /content/models/smallBERTa/weights/checkpoint-28000\n",
"\n",
"Iteration: 98% 5500/5625 [03:45<01:06, 1.89it/s]\u001b[A\n",
"Iteration: 98% 5504/5625 [03:45<00:45, 2.64it/s]\u001b[A\n",
"Iteration: 98% 5508/5625 [03:45<00:32, 3.66it/s]\u001b[A\n",
"Iteration: 98% 5512/5625 [03:45<00:22, 5.00it/s]\u001b[A\n",
"Iteration: 98% 5516/5625 [03:46<00:16, 6.72it/s]\u001b[A\n",
"Iteration: 98% 5520/5625 [03:46<00:11, 8.92it/s]\u001b[A\n",
"Iteration: 98% 5524/5625 [03:46<00:08, 11.53it/s]\u001b[A\n",
"Iteration: 98% 5528/5625 [03:46<00:06, 14.57it/s]\u001b[A\n",
"Iteration: 98% 5532/5625 [03:46<00:05, 17.84it/s]\u001b[A\n",
"Iteration: 98% 5536/5625 [03:46<00:04, 21.14it/s]\u001b[A\n",
"Iteration: 98% 5540/5625 [03:46<00:03, 24.31it/s]\u001b[A\n",
"Iteration: 99% 5544/5625 [03:46<00:03, 26.41it/s]\u001b[A\n",
"Iteration: 99% 5548/5625 [03:46<00:02, 28.68it/s]\u001b[A\n",
"Iteration: 99% 5552/5625 [03:47<00:02, 30.54it/s]\u001b[A\n",
"Iteration: 99% 5556/5625 [03:47<00:02, 31.89it/s]\u001b[A\n",
"Iteration: 99% 5560/5625 [03:47<00:01, 33.02it/s]\u001b[A\n",
"Iteration: 99% 5564/5625 [03:47<00:01, 33.75it/s]\u001b[A\n",
"Iteration: 99% 5568/5625 [03:47<00:01, 33.29it/s]\u001b[A\n",
"Iteration: 99% 5572/5625 [03:47<00:01, 33.61it/s]\u001b[A\n",
"Iteration: 99% 5576/5625 [03:47<00:01, 33.91it/s]\u001b[A\n",
"Iteration: 99% 5580/5625 [03:47<00:01, 34.73it/s]\u001b[A\n",
"Iteration: 99% 5584/5625 [03:47<00:01, 34.29it/s]\u001b[A\n",
"Iteration: 99% 5588/5625 [03:48<00:01, 34.15it/s]\u001b[A\n",
"Iteration: 99% 5592/5625 [03:48<00:00, 34.74it/s]\u001b[A\n",
"Iteration: 99% 5596/5625 [03:48<00:00, 35.24it/s]\u001b[A\n",
"Iteration: 100% 5600/5625 [03:48<00:00, 35.71it/s]\u001b[A\n",
"Iteration: 100% 5604/5625 [03:48<00:00, 36.07it/s]\u001b[A\n",
"Iteration: 100% 5608/5625 [03:48<00:00, 36.22it/s]\u001b[A\n",
"Iteration: 100% 5612/5625 [03:48<00:00, 36.41it/s]\u001b[A\n",
"Iteration: 100% 5616/5625 [03:48<00:00, 36.52it/s]\u001b[A\n",
"Iteration: 100% 5620/5625 [03:48<00:00, 36.48it/s]\u001b[A\n",
"Iteration: 100% 5624/5625 [03:49<00:00, 35.76it/s]\u001b[A\n",
"Epoch: 100% 5/5 [19:20<00:00, 232.18s/it]\n",
"02/21/2020 12:37:25 - INFO - __main__ - global_step = 28125, average loss = 6.974579660627577\n",
"02/21/2020 12:37:25 - INFO - __main__ - Saving model checkpoint to /content/models/smallBERTa/weights\n",
"02/21/2020 12:37:25 - INFO - transformers.configuration_utils - Configuration saved in /content/models/smallBERTa/weights/config.json\n",
"02/21/2020 12:37:25 - INFO - transformers.modeling_utils - Model weights saved in /content/models/smallBERTa/weights/pytorch_model.bin\n",
"02/21/2020 12:37:25 - INFO - transformers.configuration_utils - loading configuration file /content/models/smallBERTa/weights/config.json\n",
"02/21/2020 12:37:25 - INFO - transformers.configuration_utils - Model config RobertaConfig {\n",
" \"architectures\": [\n",
" \"RobertaForMaskedLM\"\n",
" ],\n",
" \"attention_probs_dropout_prob\": 0.1,\n",
" \"bos_token_id\": 0,\n",
" \"do_sample\": false,\n",
" \"eos_token_ids\": 0,\n",
" \"finetuning_task\": null,\n",
" \"hidden_act\": \"gelu\",\n",
" \"hidden_dropout_prob\": 0.3,\n",
" \"hidden_size\": 128,\n",
" \"id2label\": {\n",
" \"0\": \"LABEL_0\",\n",
" \"1\": \"LABEL_1\"\n",
" },\n",
" \"initializer_range\": 0.02,\n",
" \"intermediate_size\": 256,\n",
" \"is_decoder\": false,\n",
" \"label2id\": {\n",
" \"LABEL_0\": 0,\n",
" \"LABEL_1\": 1\n",
" },\n",
" \"layer_norm_eps\": 1e-12,\n",
" \"length_penalty\": 1.0,\n",
" \"max_length\": 20,\n",
" \"max_position_embeddings\": 256,\n",
" \"model_type\": \"roberta\",\n",
" \"num_attention_heads\": 4,\n",
" \"num_beams\": 1,\n",
" \"num_hidden_layers\": 2,\n",
" \"num_labels\": 2,\n",
" \"num_return_sequences\": 1,\n",
" \"output_attentions\": false,\n",
" \"output_hidden_states\": false,\n",
" \"output_past\": true,\n",
" \"pad_token_id\": 0,\n",
" \"pruned_heads\": {},\n",
" \"repetition_penalty\": 1.0,\n",
" \"temperature\": 1.0,\n",
" \"top_k\": 50,\n",
" \"top_p\": 1.0,\n",
" \"torchscript\": false,\n",
" \"type_vocab_size\": 2,\n",
" \"use_bfloat16\": false,\n",
" \"vocab_size\": 5000\n",
"}\n",
"\n",
"02/21/2020 12:37:25 - INFO - transformers.modeling_utils - loading weights file /content/models/smallBERTa/weights/pytorch_model.bin\n",
"02/21/2020 12:37:25 - INFO - transformers.tokenization_utils - Model name '/content/models/smallBERTa/weights' not found in model shortcut name list (roberta-base, roberta-large, roberta-large-mnli, distilroberta-base, roberta-base-openai-detector, roberta-large-openai-detector). Assuming '/content/models/smallBERTa/weights' is a path, a model identifier, or url to a directory containing tokenizer files.\n",
"02/21/2020 12:37:25 - INFO - transformers.tokenization_utils - Didn't find file /content/models/smallBERTa/weights/added_tokens.json. We won't load it.\n",
"02/21/2020 12:37:25 - INFO - transformers.tokenization_utils - loading file /content/models/smallBERTa/weights/vocab.json\n",
"02/21/2020 12:37:25 - INFO - transformers.tokenization_utils - loading file /content/models/smallBERTa/weights/merges.txt\n",
"02/21/2020 12:37:25 - INFO - transformers.tokenization_utils - loading file None\n",
"02/21/2020 12:37:25 - INFO - transformers.tokenization_utils - loading file /content/models/smallBERTa/weights/special_tokens_map.json\n",
"02/21/2020 12:37:25 - INFO - transformers.tokenization_utils - loading file /content/models/smallBERTa/weights/tokenizer_config.json\n",
"02/21/2020 12:37:25 - INFO - __main__ - Evaluate the following checkpoints: ['/content/models/smallBERTa/weights']\n",
"02/21/2020 12:37:25 - INFO - transformers.configuration_utils - loading configuration file /content/models/smallBERTa/weights/config.json\n",
"02/21/2020 12:37:25 - INFO - transformers.configuration_utils - Model config RobertaConfig {\n",
" \"architectures\": [\n",
" \"RobertaForMaskedLM\"\n",
" ],\n",
" \"attention_probs_dropout_prob\": 0.1,\n",
" \"bos_token_id\": 0,\n",
" \"do_sample\": false,\n",
" \"eos_token_ids\": 0,\n",
" \"finetuning_task\": null,\n",
" \"hidden_act\": \"gelu\",\n",
" \"hidden_dropout_prob\": 0.3,\n",
" \"hidden_size\": 128,\n",
" \"id2label\": {\n",
" \"0\": \"LABEL_0\",\n",
" \"1\": \"LABEL_1\"\n",
" },\n",
" \"initializer_range\": 0.02,\n",
" \"intermediate_size\": 256,\n",
" \"is_decoder\": false,\n",
" \"label2id\": {\n",
" \"LABEL_0\": 0,\n",
" \"LABEL_1\": 1\n",
" },\n",
" \"layer_norm_eps\": 1e-12,\n",
" \"length_penalty\": 1.0,\n",
" \"max_length\": 20,\n",
" \"max_position_embeddings\": 256,\n",
" \"model_type\": \"roberta\",\n",
" \"num_attention_heads\": 4,\n",
" \"num_beams\": 1,\n",
" \"num_hidden_layers\": 2,\n",
" \"num_labels\": 2,\n",
" \"num_return_sequences\": 1,\n",
" \"output_attentions\": false,\n",
" \"output_hidden_states\": false,\n",
" \"output_past\": true,\n",
" \"pad_token_id\": 0,\n",
" \"pruned_heads\": {},\n",
" \"repetition_penalty\": 1.0,\n",
" \"temperature\": 1.0,\n",
" \"top_k\": 50,\n",
" \"top_p\": 1.0,\n",
" \"torchscript\": false,\n",
" \"type_vocab_size\": 2,\n",
" \"use_bfloat16\": false,\n",
" \"vocab_size\": 5000\n",
"}\n",
"\n",
"02/21/2020 12:37:25 - INFO - transformers.modeling_utils - loading weights file /content/models/smallBERTa/weights/pytorch_model.bin\n",
"02/21/2020 12:37:25 - INFO - __main__ - Creating features from dataset file at /tmp/lm_data/eval.txt\n",
"02/21/2020 12:37:28 - INFO - __main__ - ***** Running evaluation *****\n",
"02/21/2020 12:37:28 - INFO - __main__ - Num examples = 20000\n",
"02/21/2020 12:37:28 - INFO - __main__ - Batch size = 32\n",
"Evaluating: 100% 625/625 [00:04<00:00, 126.10it/s]\n",
"02/21/2020 12:37:33 - INFO - __main__ - ***** Eval results *****\n",
"02/21/2020 12:37:33 - INFO - __main__ - perplexity = tensor(788.3641)\n"
],
"name": "stdout"
}
]
},
{
"cell_type": "markdown",
"metadata": {
"id": "Pirlhhohke8T",
"colab_type": "text"
},
"source": [
"## View Results on Tensorboard"
]
},
{
"cell_type": "code",
"metadata": {
"id": "siSNrtODEqUV",
"colab_type": "code",
"outputId": "01e91567-abde-47ee-eea2-e674fab6292b",
"colab": {
"base_uri": "https://localhost:8080/",
"height": 1000
}
},
"source": [
"!tensorboard dev upload --logdir /content/runs"
],
"execution_count": 0,
"outputs": [
{
"output_type": "stream",
"text": [
"\n",
"***** TensorBoard Uploader *****\n",
"\n",
"This will upload your TensorBoard logs to https://tensorboard.dev/ from\n",
"the following directory:\n",
"\n",
"/content/runs\n",
"\n",
"This TensorBoard will be visible to everyone. Do not upload sensitive\n",
"data.\n",
"\n",
"Your use of this service is subject to Google's Terms of Service\n",
"<https://policies.google.com/terms> and Privacy Policy\n",
"<https://policies.google.com/privacy>, and TensorBoard.dev's Terms of Service\n",
"<https://tensorboard.dev/policy/terms/>.\n",
"\n",
"This notice will not be shown again while you are logged into the uploader.\n",
"To log out, run `tensorboard dev auth revoke`.\n",
"\n",
"Continue? (yes/NO) yes\n",
"\n",
"Please visit this URL to authorize this application: https://accounts.google.com/o/oauth2/auth?response_type=code&client_id=373649185512-8v619h5kft38l4456nm2dj4ubeqsrvh6.apps.googleusercontent.com&redirect_uri=urn%3Aietf%3Awg%3Aoauth%3A2.0%3Aoob&scope=openid+https%3A%2F%2Fwww.googleapis.com%2Fauth%2Fuserinfo.email&state=kgAdxJj3xxL6gDgTUoUWbPVrkXeIzl&prompt=consent&access_type=offline\n",
"Enter the authorization code: 4/wwHWmLi7O1avExJ9mp5Ka_Bbo3lSCOsRUHS1r2a5lqOiyIAllUK6KpY\n",
"\n",
"Upload started and will continue reading any new data as it's added\n",
"to the logdir. To stop uploading, press Ctrl-C.\n",
"View your TensorBoard live at: https://tensorboard.dev/experiment/wKOIBs5zRgCb0MY8KGi7Sg/\n",
"\n",
"Traceback (most recent call last):\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/uploader/uploader_main.py\", line 426, in execute\n",
" uploader.start_uploading()\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/uploader/uploader.py\", line 111, in start_uploading\n",
" self._upload_once()\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/uploader/uploader.py\", line 116, in _upload_once\n",
" self._rate_limiter.tick()\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/uploader/util.py\", line 41, in tick\n",
" self._time.sleep(wait_secs)\n",
"KeyboardInterrupt\n",
"\n",
"During handling of the above exception, another exception occurred:\n",
"\n",
"Traceback (most recent call last):\n",
" File \"/usr/local/bin/tensorboard\", line 8, in <module>\n",
" sys.exit(run_main())\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/main.py\", line 66, in run_main\n",
" app.run(tensorboard.main, flags_parser=tensorboard.configure)\n",
" File \"/usr/local/lib/python3.6/dist-packages/absl/app.py\", line 299, in run\n",
" _run_main(main, args)\n",
" File \"/usr/local/lib/python3.6/dist-packages/absl/app.py\", line 250, in _run_main\n",
" sys.exit(main(argv))\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/program.py\", line 268, in main\n",
" return runner(self.flags) or 0\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/uploader/uploader_main.py\", line 579, in run\n",
" return _run(flags)\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/uploader/uploader_main.py\", line 259, in _run\n",
" intent.execute(server_info, channel)\n",
" File \"/usr/local/lib/python3.6/dist-packages/tensorboard/uploader/uploader_main.py\", line 431, in execute\n",
" print()\n",
"KeyboardInterrupt\n",
"^C\n"
],
"name": "stdout"
}
]
}
]
}
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