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{ | |
"nbformat": 4, | |
"nbformat_minor": 0, | |
"metadata": { | |
"colab": { | |
"name": "tortoise-tts.ipynb", | |
"provenance": [], | |
"collapsed_sections": [] | |
}, | |
"kernelspec": { | |
"name": "python3", | |
"display_name": "Python 3" | |
}, | |
"language_info": { | |
"name": "python" | |
}, | |
"accelerator": "GPU" | |
}, | |
"cells": [ | |
{ | |
"cell_type": "markdown", | |
"source": [ | |
"Welcome to Tortoise! 🐢🐢🐢🐢\n", | |
"\n", | |
"Before you begin, I **strongly** recommend you turn on a GPU runtime.\n", | |
"\n", | |
"There's a reason this is called \"Tortoise\" - this model takes up to a minute to perform inference for a single sentence on a GPU. Expect waits on the order of hours on a CPU." | |
], | |
"metadata": { | |
"id": "_pIZ3ZXNp7cf" | |
} | |
}, | |
{ | |
"cell_type": "code", | |
"execution_count": null, | |
"metadata": { | |
"id": "JrK20I32grP6" | |
}, | |
"outputs": [], | |
"source": [ | |
"!git clone https://github.com/neonbjb/tortoise-tts.git\n", | |
"%cd tortoise-tts\n", | |
"!pip3 install -r requirements.txt\n", | |
"!python3 setup.py install" | |
] | |
}, | |
{ | |
"cell_type": "code", | |
"source": [ | |
"# Imports used through the rest of the notebook.\n", | |
"import torch\n", | |
"import torchaudio\n", | |
"import torch.nn as nn\n", | |
"import torch.nn.functional as F\n", | |
"\n", | |
"import IPython\n", | |
"\n", | |
"from tortoise.api import TextToSpeech\n", | |
"from tortoise.utils.audio import load_audio, load_voice, load_voices\n", | |
"\n", | |
"# This will download all the models used by Tortoise from the HF hub.\n", | |
"tts = TextToSpeech()" | |
], | |
"metadata": { | |
"id": "Gen09NM4hONQ" | |
}, | |
"execution_count": null, | |
"outputs": [] | |
}, | |
{ | |
"cell_type": "code", | |
"source": [ | |
"# This is the text that will be spoken.\n", | |
"text = \"Joining two modalities results in a surprising increase in generalization! What would happen if we combined them all?\"\n", | |
"\n", | |
"# Here's something for the poetically inclined.. (set text=)\n", | |
"\"\"\"\n", | |
"Then took the other, as just as fair,\n", | |
"And having perhaps the better claim,\n", | |
"Because it was grassy and wanted wear;\n", | |
"Though as for that the passing there\n", | |
"Had worn them really about the same,\"\"\"\n", | |
"\n", | |
"# Pick a \"preset mode\" to determine quality. Options: {\"ultra_fast\", \"fast\" (default), \"standard\", \"high_quality\"}. See docs in api.py\n", | |
"preset = \"fast\"" | |
], | |
"metadata": { | |
"id": "bt_aoxONjfL2" | |
}, | |
"execution_count": null, | |
"outputs": [] | |
}, | |
{ | |
"cell_type": "code", | |
"source": [ | |
"# Tortoise will attempt to mimic voices you provide. It comes pre-packaged\n", | |
"# with some voices you might recognize.\n", | |
"\n", | |
"# Let's list all the voices available. These are just some random clips I've gathered\n", | |
"# from the internet as well as a few voices from the training dataset.\n", | |
"# Feel free to add your own clips to the voices/ folder.\n", | |
"%ls tortoise/voices\n", | |
"\n", | |
"IPython.display.Audio('tortoise/voices/tom/1.wav')" | |
], | |
"metadata": { | |
"id": "SSleVnRAiEE2" | |
}, | |
"execution_count": null, | |
"outputs": [] | |
}, | |
{ | |
"cell_type": "code", | |
"source": [ | |
"# Pick one of the voices from the output above\n", | |
"voice = 'tom'\n", | |
"\n", | |
"# Load it and send it through Tortoise.\n", | |
"voice_samples, conditioning_latents = load_voice(voice)\n", | |
"gen = tts.tts_with_preset(text, voice_samples=voice_samples, conditioning_latents=conditioning_latents, \n", | |
" preset=preset)\n", | |
"torchaudio.save('generated.wav', gen.squeeze(0).cpu(), 24000)\n", | |
"IPython.display.Audio('generated.wav')" | |
], | |
"metadata": { | |
"id": "KEXOKjIvn6NW" | |
}, | |
"execution_count": null, | |
"outputs": [] | |
}, | |
{ | |
"cell_type": "code", | |
"source": [ | |
"# Tortoise can also generate speech using a random voice. The voice changes each time you execute this!\n", | |
"# (Note: random voices can be prone to strange utterances)\n", | |
"gen = tts.tts_with_preset(text, voice_samples=None, conditioning_latents=None, preset=preset)\n", | |
"torchaudio.save('generated.wav', gen.squeeze(0).cpu(), 24000)\n", | |
"IPython.display.Audio('generated.wav')" | |
], | |
"metadata": { | |
"id": "16Xs2SSC3BXa" | |
}, | |
"execution_count": null, | |
"outputs": [] | |
}, | |
{ | |
"cell_type": "code", | |
"source": [ | |
"# You can also combine conditioning voices. Combining voices produces a new voice\n", | |
"# with traits from all the parents.\n", | |
"#\n", | |
"# Lets see what it would sound like if Picard and Kirk had a kid with a penchant for philosophy:\n", | |
"voice_samples, conditioning_latents = load_voices(['pat', 'william'])\n", | |
"\n", | |
"gen = tts.tts_with_preset(\"They used to say that if man was meant to fly, he’d have wings. But he did fly. He discovered he had to.\", \n", | |
" voice_samples=None, conditioning_latents=None, preset=preset)\n", | |
"torchaudio.save('captain_kirkard.wav', gen.squeeze(0).cpu(), 24000)\n", | |
"IPython.display.Audio('captain_kirkard.wav')" | |
], | |
"metadata": { | |
"id": "fYTk8KUezUr5" | |
}, | |
"execution_count": null, | |
"outputs": [] | |
}, | |
{ | |
"cell_type": "code", | |
"source": [ | |
"del tts # Will break other cells, but necessary to conserve RAM if you want to run this cell.\n", | |
"\n", | |
"# Tortoise comes with some scripts that does a lot of the lifting for you. For example,\n", | |
"# read.py will read a text file for you.\n", | |
"!python3 tortoise/read.py --voice=train_atkins --textfile=tortoise/data/riding_hood.txt --preset=ultra_fast --output_path=.\n", | |
"\n", | |
"IPython.display.Audio('train_atkins/combined.wav')\n", | |
"# This will take awhile.." | |
], | |
"metadata": { | |
"id": "t66yqWgu68KL" | |
}, | |
"execution_count": null, | |
"outputs": [] | |
} | |
] | |
} |