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import os | |
import sys | |
import time | |
import requests | |
import json | |
from subprocess import Popen, PIPE | |
import threading | |
from huggingface_hub import HfApi | |
import gradio as gr | |
# start xVASynth service (no HTTP) | |
import resources.app.no_server as xvaserver | |
# model | |
hf_model_name = "Pendrokar/xvapitch_nvidia" | |
model_repo = HfApi() | |
commits = model_repo.list_repo_commits(repo_id=hf_model_name) | |
latest_commit_sha = commits[0].commit_id | |
hf_cache_models_path = f'/home/user/.cache/huggingface/hub/models--Pendrokar--xvapitch_nvidia/snapshots/{latest_commit_sha}/' | |
models_path = hf_cache_models_path | |
voice_models = [ | |
("Male #6671", "ccby_nvidia_hifi_6671_M"), | |
("Male #6670", "ccby_nvidia_hifi_6670_M"), | |
("Male #9017", "ccby_nvidia_hifi_9017_M"), | |
("Male #6097", "ccby_nvidia_hifi_6097_M"), | |
("Female #92", "ccby_nvidia_hifi_92_F"), | |
("Female #11697", "ccby_nvidia_hifi_11697_F"), | |
("Female #12787", "ccby_nvidia_hifi_12787_F"), | |
("Female #11614", "ccby_nv_hifi_11614_F"), | |
("Female #8051", "ccby_nvidia_hifi_8051_F"), | |
("Female #9136", "ccby_nvidia_hifi_9136_F"), | |
] | |
current_voice_model = None | |
base_speaker_emb = '' | |
# order ranked by similarity to English due to the xVASynth's use of ARPAbet instead of IPA | |
languages = [ | |
("🇬🇧 EN", "en"), | |
("🇩🇪 DE", "de"), | |
("🇪🇸 ES", "es"), | |
("🇮🇹 IT", "it"), | |
("🇳🇱 NL", "nl"), | |
("🇵🇹 PT", "pt"), | |
("🇵🇱 PL", "pl"), | |
("🇷🇴 RO", "ro"), | |
("🇸🇪 SV", "sv"), | |
("🇩🇰 DA", "da"), | |
("🇫🇮 FI", "fi"), | |
("🇭🇺 HU", "hu"), | |
("🇬🇷 EL", "el"), | |
("🇫🇷 FR", "fr"), | |
("🇷🇺 RU", "ru"), | |
("🇺🇦 UK", "uk"), | |
("🇹🇷 TR", "tr"), | |
("🇸🇦 AR", "ar"), | |
("🇮🇳 HI", "hi"), | |
("🇯🇵 JP", "jp"), | |
("🇰🇷 KO", "ko"), | |
("🇨🇳 ZH", "zh"), | |
("🇻🇳 VI", "vi"), | |
("🇻🇦 LA", "la"), | |
("HA", "ha"), | |
("SW", "sw"), | |
("🇳🇬 YO", "yo"), | |
("WO", "wo"), | |
] | |
# Translated from English by DeepMind's Gemini Pro | |
default_text = { | |
"ar": "هذا هو صوتي.", | |
"da": "Sådan lyder min stemme.", | |
"de": "So klingt meine Stimme.", | |
"el": "Έτσι ακούγεται η φωνή μου.", | |
"en": "This is what my voice sounds like.", | |
"es": "Así suena mi voz.", | |
"fi": "Näin ääneni kuulostaa.", | |
"fr": "Voici à quoi ressemble ma voix.", | |
"ha": "Wannan ne muryata ke.", | |
"hi": "यह मेरी आवाज़ कैसी लगती है।", | |
"hu": "Így hangzik a hangom.", | |
"it": "Così suona la mia voce.", | |
"jp": "これが私の声です。", | |
"ko": "여기 제 목소리가 어떤지 들어보세요.", | |
"la": "Haec est vox mea sonans.", | |
"nl": "Dit is hoe mijn stem klinkt.", | |
"pl": "Tak brzmi mój głos.", | |
"pt": "É assim que minha voz soa.", | |
"ro": "Așa sună vocea mea.", | |
"ru": "Вот как звучит мой голос.", | |
"sv": "Såhär låter min röst.", | |
"sw": "Sauti yangu inasikika hivi.", | |
"tr": "Benim sesimin sesi böyle.", | |
"uk": "Ось як звучить мій голос.", | |
"vi": "Đây là giọng nói của tôi.", | |
"wo": "Ndox li neen xewnaal ma.", | |
"yo": "Ìyí ni ohùn mi ńlá.", | |
"zh": "这是我的声音。", | |
} | |
def run_xvaserver(): | |
# start the process without waiting for a response | |
print('Running xVAServer subprocess...\n') | |
xvaserver = Popen(['python', f'{os.path.dirname(os.path.abspath(__file__))}/resources/app/server.py'], stdout=PIPE, stderr=PIPE, cwd=f'{os.path.dirname(os.path.abspath(__file__))}/resources/app/') | |
# Wait for a moment to ensure the server starts up | |
time.sleep(10) | |
# Check if the server is running | |
if xvaserver.poll() is not None: | |
print("Web server failed to start.") | |
sys.exit(0) | |
# contact local xVASynth server | |
print('Attempting to connect to xVASynth...') | |
try: | |
response = requests.get('http://0.0.0.0:8008') | |
response.raise_for_status() # If the response contains an HTTP error status code, raise an exception | |
except requests.exceptions.RequestException as err: | |
print('Failed to connect!') | |
return | |
print('xVAServer running on port 8008') | |
# load default model | |
load_model("ccby_nvidia_hifi_6671_M") | |
# Wait for the process to exit | |
xvaserver.wait() | |
def load_model(voice_model_name): | |
model_path = models_path + voice_model_name | |
model_type = 'xVAPitch' | |
language = 'en' | |
data = { | |
'outputs': None, | |
'version': '3.0', | |
'model': model_path, | |
'modelType': model_type, | |
'base_lang': language, | |
'pluginsContext': '{}', | |
} | |
embs = base_speaker_emb | |
print('Loading voice model...') | |
try: | |
json_data = xvaserver.loadModel(data) | |
current_voice_model = voice_model_name | |
with open(model_path + '.json', 'r', encoding='utf-8') as f: | |
voice_model_json = json.load(f) | |
embs = voice_model_json['games'][0]['base_speaker_emb'] | |
except requests.exceptions.RequestException as err: | |
print(f'FAILED to load voice model: {err}') | |
return embs | |
def predict( | |
input_text, | |
voice, | |
lang, | |
pacing, | |
pitch, | |
energy, | |
anger, | |
happy, | |
sad, | |
surprise, | |
use_deepmoji | |
): | |
# grab only the first 1000 characters | |
input_text = input_text[:1000] | |
# load voice model if not the current model | |
if (current_voice_model != voice): | |
base_speaker_emb = load_model(voice) | |
model_type = 'xVAPitch' | |
pace = pacing if pacing else 1.0 | |
save_path = '/tmp/xvapitch_audio_sample.wav' | |
language = lang | |
use_sr = 0 | |
use_cleanup = 0 | |
pluginsContext = {} | |
pluginsContext["mantella_settings"] = { | |
"emAngry": (anger if anger > 0 else 0), | |
"emHappy": (happy if happy > 0 else 0), | |
"emSad": (sad if sad > 0 else 0), | |
"emSurprise": (surprise if surprise > 0 else 0), | |
"run_model": use_deepmoji | |
} | |
data = { | |
'pluginsContext': json.dumps(pluginsContext), | |
'modelType': model_type, | |
# pad with whitespaces as a workaround to avoid cutoffs | |
'sequence': input_text.center(len(input_text) + 2, ' '), | |
'pace': pace, | |
'outfile': save_path, | |
'vocoder': 'n/a', | |
'base_lang': language, | |
'base_emb': base_speaker_emb, | |
'useSR': use_sr, | |
'useCleanup': use_cleanup, | |
} | |
print('Synthesizing...') | |
try: | |
json_data = xvaserver.synthesize(data) | |
# response = requests.post('http://0.0.0.0:8008/synthesize', json=data, timeout=60) | |
# response.raise_for_status() # If the response contains an HTTP error status code, raise an exception | |
# json_data = json.loads(response.text) | |
except requests.exceptions.RequestException as err: | |
print('FAILED to synthesize: {err}') | |
save_path = '' | |
response = {'text': '{"message": "Failed"}'} | |
json_data = { | |
'arpabet': ['Failed'], | |
'durations': [0], | |
'em_anger': anger, | |
'em_happy': happy, | |
'em_sad': sad, | |
'em_surprise': surprise, | |
} | |
# print('server.log contents:') | |
# with open('resources/app/server.log', 'r') as f: | |
# print(f.read()) | |
arpabet_html = '<h6>ARPAbet & Phoneme lengths</h6>' | |
arpabet_symbols = json_data['arpabet'].split('|') | |
utter_time = 0 | |
for symb_i in range(len(json_data['durations'])): | |
# skip PAD symbol | |
if (arpabet_symbols[symb_i] == '<PAD>'): | |
continue | |
length = float(json_data['durations'][symb_i]) | |
arpa_length = str(round(length/2, 1)) | |
arpabet_html += '<strong\ | |
class="arpabet"\ | |
style="padding: 0 '\ | |
+ str(arpa_length)\ | |
+'em"'\ | |
+f" title=\"{utter_time} + {length}\""\ | |
+'>'\ | |
+ arpabet_symbols[symb_i]\ | |
+ '</strong> ' | |
utter_time += round(length, 1) | |
return [ | |
save_path, | |
arpabet_html, | |
round(json_data['em_angry'][0], 2), | |
round(json_data['em_happy'][0], 2), | |
round(json_data['em_sad'][0], 2), | |
round(json_data['em_surprise'][0], 2), | |
json_data | |
] | |
input_textbox = gr.Textbox( | |
label="Input Text", | |
value="This is what my voice sounds like.", | |
info="Also accepts ARPAbet symbols placed within {} brackets.", | |
lines=1, | |
max_lines=5, | |
autofocus=True | |
) | |
pacing_slider = gr.Slider(0.5, 2.0, value=1.0, step=0.1, label="Duration") | |
pitch_slider = gr.Slider(0, 1.0, value=0.5, step=0.05, label="Pitch", visible=False) | |
energy_slider = gr.Slider(0.1, 1.0, value=1.0, step=0.05, label="Energy", visible=False) | |
anger_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😠 Anger", info="Tread lightly beyond 0.9") | |
happy_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😃 Happiness", info="Tread lightly beyond 0.7") | |
sad_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😭 Sadness", info="Duration increased when beyond 0.2") | |
surprise_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😮 Surprise", info="Does not play well with Happiness with either being beyond 0.3") | |
voice_radio = gr.Radio( | |
voice_models, | |
value="ccby_nvidia_hifi_6671_M", | |
label="Voice", | |
info="NVIDIA HIFI CC-BY-4.0 xVAPitch voice model" | |
) | |
def set_default_text(lang, deepmoji_checked): | |
# DeepMoji only works on English Text | |
# checkbox_enabled = True | |
# if lang != 'en': | |
# checkbox_enabled = False | |
if lang == 'en': | |
checkbox_enabled = gr.Checkbox( | |
label="Use DeepMoji", | |
info="Auto adjust emotional values", | |
value=deepmoji_checked, | |
interactive=True | |
) | |
else: | |
checkbox_enabled = gr.Checkbox( | |
label="Use DeepMoji", | |
info="Works only with English!", | |
value=False, | |
interactive=False | |
) | |
return default_text[lang], checkbox_enabled # Return the modified textbox (important for Blocks) | |
en_examples = [ | |
"This is what my voice sounds like.", | |
"If there is anything else you need, feel free to ask.", | |
"Amazing! Could you do that again?", | |
"Why, I would be more than happy to help you!", | |
"That was unexpected.", | |
"How dare you! . You have no right.", | |
"Ahh, well, you see. There is more to it.", | |
"I can't believe she is gone.", | |
"Stay out of my way!!!", | |
# ARPAbet example | |
"This { IH1 Z } { W AH1 T } { M AY1 } { V OY1 S } { S AW1 N D Z } like.", | |
] | |
def set_example_as_input(example_text): | |
return example_text | |
def reset_em_sliders( | |
deepmoji_enabled, | |
anger, | |
happy, | |
sad, | |
surprise | |
): | |
if (deepmoji_enabled): | |
return (0, 0, 0, 0) | |
else: | |
return ( | |
anger, | |
happy, | |
sad, | |
surprise | |
) | |
def set_default_audio(voice_id): | |
return models_path + voice_id + '.wav' | |
def toggle_deepmoji( | |
checked, | |
anger, | |
happy, | |
sad, | |
surprise | |
): | |
if checked: | |
return (0, 0, 0, 0) | |
else: | |
return ( | |
anger, | |
happy, | |
sad, | |
surprise | |
) | |
language_radio = gr.Radio( | |
languages, | |
value="en", | |
label="Language", | |
info="Will be more monotone and have an English accent. Tested mostly by a native Briton." | |
) | |
_DESCRIPTION = ''' | |
<div> | |
<a style="display:inline-block;" href="https://github.com/DanRuta/xVA-Synth"><img src='https://img.shields.io/github/stars/DanRuta/xVA-Synth?style=social'/></a> | |
<a style="display:inline-block;" href="https://www.nexusmods.com/skyrimspecialedition/mods/44184"><img src='https://img.shields.io/badge/Endorsements-3.3k-blue?logo=nexusmods'/></a> | |
<a style="display:inline-block; margin-left: .5em" href="https://discord.gg/nv7c6E2TzV"><img src='https://img.shields.io/discord/794590496202293278.svg?label=&logo=discord&logoColor=ffffff&color=7389D8&labelColor=6A7EC2'/></a> | |
<span style="display: inline-block;margin-left: .5em;vertical-align: top;"><a href="https://huggingface.co/spaces/Pendrokar/xVASynth?duplicate=true" style="" target="_blank"><img style="margin-bottom: 0em;display: inline;" src="https://bit.ly/3gLdBN6" alt="Duplicate Space"></a> for a personal CPU-run one</span> | |
</div> | |
''' | |
with gr.Blocks(css=".arpabet {display: inline-block; background-color: gray; border-radius: 5px; font-size: 120%; margin: 0.1em 0}") as demo: | |
gr.Markdown("# xVASynth TTS") | |
gr.HTML(label="description", value=_DESCRIPTION) | |
with gr.Row(): # Main row for inputs and language selection | |
with gr.Column(): # Input column | |
input_textbox = gr.Textbox( | |
label="Input Text", | |
value="This is what my voice sounds like.", | |
info="Also accepts ARPAbet symbols placed within {} brackets.", | |
lines=1, | |
max_lines=5, | |
autofocus=True | |
) | |
language_radio = gr.Radio( | |
languages, | |
value="en", | |
label="Language", | |
info="Will be more monotone and have an English accent. Tested mostly by a native Briton." | |
) | |
with gr.Row(): | |
with gr.Column(): | |
en_examples_dropdown = gr.Dropdown( | |
en_examples, | |
value=en_examples[0], | |
label="Example dropdown", | |
show_label=False, | |
info="English Examples", | |
visible=(language_radio.value == 'en') | |
) | |
with gr.Column(): | |
pacing_slider = gr.Slider(0.5, 2.0, value=1.0, step=0.1, label="Duration") | |
with gr.Column(): # Control column | |
voice_radio = gr.Radio( | |
voice_models, | |
value="ccby_nvidia_hifi_6671_M", | |
label="Voice", | |
info="NVIDIA HIFI CC-BY-4.0 xVAPitch voice model" | |
) | |
pitch_slider = gr.Slider(0, 1.0, value=0.5, step=0.05, label="Pitch", visible=False) | |
energy_slider = gr.Slider(0.1, 1.0, value=1.0, step=0.05, label="Energy", visible=False) | |
with gr.Row(): # Main row for inputs and language selection | |
with gr.Column(): # Input column | |
anger_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😠 Anger", info="Tread lightly beyond 0.9") | |
sad_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😭 Sadness", info="Duration increased when beyond 0.2") | |
with gr.Column(): # Input column | |
happy_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😃 Happiness", info="Tread lightly beyond 0.7") | |
surprise_slider = gr.Slider(0, 1.0, value=0, step=0.05, label="😮 Surprise", info="Can oversaturate Happiness") | |
deepmoji_checkbox = gr.Checkbox(label="Use DeepMoji", info="Auto adjust emotional values", value=True) | |
# Event handling using click | |
btn = gr.Button("Generate", variant="primary") | |
with gr.Row(): # Main row for inputs and language selection | |
with gr.Column(): # Input column | |
output_wav = gr.Audio( | |
label="22kHz audio output (autoplay enabled)", | |
type="filepath", | |
editable=False, | |
autoplay=True | |
) | |
with gr.Column(): # Input column | |
output_arpabet = gr.HTML(label="ARPAbet") | |
btn.click( | |
fn=predict, | |
inputs=[ | |
input_textbox, | |
voice_radio, | |
language_radio, | |
pacing_slider, | |
pitch_slider, | |
energy_slider, | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider, | |
deepmoji_checkbox | |
], | |
outputs=[ | |
output_wav, | |
output_arpabet, | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider, | |
# xVAServer response | |
gr.Textbox(visible=False) | |
] | |
) | |
input_textbox.submit( | |
fn=predict, | |
inputs=[ | |
input_textbox, | |
voice_radio, | |
language_radio, | |
pacing_slider, | |
pitch_slider, | |
energy_slider, | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider, | |
deepmoji_checkbox | |
], | |
outputs=[ | |
output_wav, | |
output_arpabet, | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider, | |
# xVAServer response | |
gr.Textbox(visible=False) | |
] | |
) | |
language_radio.change( | |
set_default_text, | |
inputs=[language_radio, deepmoji_checkbox], | |
outputs=[input_textbox, deepmoji_checkbox] | |
) | |
en_examples_dropdown.change( | |
set_example_as_input, | |
inputs=[en_examples_dropdown], | |
outputs=[input_textbox] | |
) | |
deepmoji_checkbox.change( | |
toggle_deepmoji, | |
inputs=[ | |
deepmoji_checkbox, | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider | |
], | |
outputs=[ | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider | |
] | |
) | |
input_textbox.change( | |
reset_em_sliders, | |
inputs=[ | |
deepmoji_checkbox, | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider | |
], | |
outputs=[ | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider | |
] | |
) | |
voice_radio.change( | |
reset_em_sliders, | |
inputs=[ | |
deepmoji_checkbox, | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider | |
], | |
outputs=[ | |
anger_slider, | |
happy_slider, | |
sad_slider, | |
surprise_slider | |
] | |
) | |
voice_radio.change( | |
set_default_audio, | |
inputs=voice_radio, | |
outputs=output_wav | |
) | |
if __name__ == "__main__": | |
print('running custom Gradio interface') | |
demo.launch() | |