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gorkemgoknar
commited on
Commit
•
f81d4f2
1
Parent(s):
d8cc0b4
Use inference via python directly
Browse files
app.py
CHANGED
@@ -1,10 +1,12 @@
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import sys
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-
import os,stat
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import subprocess
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import random
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from zipfile import ZipFile
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import uuid
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-
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# By using XTTS you agree to CPML license https://coqui.ai/cpml
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os.environ["COQUI_TOS_AGREED"] = "1"
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@@ -13,9 +15,18 @@ os.environ["COQUI_TOS_AGREED"] = "1"
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import langid
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import gradio as gr
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from TTS.api import TTS
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HF_TOKEN = os.environ.get("HF_TOKEN")
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from huggingface_hub import HfApi
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# will use api to restart space on a unrecoverable error
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api = HfApi(token=HF_TOKEN)
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repo_id = "coqui/xtts"
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@@ -29,8 +40,19 @@ os.chmod('ffmpeg', st.st_mode | stat.S_IEXEC)
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# Load TTS
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tts = TTS("tts_models/multilingual/multi-dataset/xtts_v1")
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tts.to("cuda")
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# This is for debugging purposes only
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DEVICE_ASSERT_DETECTED=0
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@@ -40,14 +62,15 @@ DEVICE_ASSERT_LANG=None
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def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_cleanup, no_lang_auto_detect, agree,):
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if agree == True:
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supported_languages=["en","es","fr","de","it","pt","pl","tr","ru","nl","cs","ar","zh-cn"]
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-
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if language not in supported_languages:
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gr.Warning("Language you put in is not in is not in our Supported Languages, please choose from dropdown")
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return (
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None,
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None,
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None,
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)
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language_predicted=langid.classify(prompt)[0].strip() # strip need as there is space at end!
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@@ -72,6 +95,7 @@ def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_clea
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None,
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None,
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None,
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)
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@@ -84,6 +108,7 @@ def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_clea
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None,
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None,
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None,
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)
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else:
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@@ -129,6 +154,7 @@ def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_clea
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None,
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None,
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None,
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)
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if len(prompt)>200:
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gr.Warning("Text length limited to 200 characters for this demo, please try shorter text. You can clone this space and edit code for your own usage")
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@@ -136,6 +162,7 @@ def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_clea
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None,
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None,
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None,
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)
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global DEVICE_ASSERT_DETECTED
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if DEVICE_ASSERT_DETECTED:
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@@ -145,12 +172,33 @@ def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_clea
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print(f"Unrecoverable exception caused by language:{DEVICE_ASSERT_LANG} prompt:{DEVICE_ASSERT_PROMPT}")
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try:
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-
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-
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)
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except RuntimeError as e :
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if "device-side assert" in str(e):
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# cannot do anything on cuda device side error, need tor estart
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@@ -173,6 +221,7 @@ def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_clea
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audio="output.wav",
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),
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"output.wav",
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speaker_wav,
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)
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else:
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@@ -181,6 +230,7 @@ def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_clea
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None,
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None,
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None,
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)
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@@ -205,7 +255,7 @@ Arabic: ar, Brazilian Portuguese: pt , Chinese: zh-cn, Czech: cs,<br/>
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Dutch: nl, English: en, French: fr, Italian: it, Polish: pl,<br/>
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Russian: ru, Spanish: es, Turkish: tr <br/>
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</p>
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<img referrerpolicy="no-referrer-when-downgrade" src="https://static.scarf.sh/a.png?x-pxid=
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"""
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article = """
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@@ -234,7 +284,6 @@ examples = [
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False,
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False,
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True,
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False,
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],
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[
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"Als ich sechs war, sah ich einmal ein wunderbares Bild",
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@@ -399,7 +448,8 @@ gr.Interface(
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],
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outputs=[
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gr.Video(label="Waveform Visual"),
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gr.Audio(label="Synthesised Audio",
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gr.Audio(label="Reference Audio Used"),
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],
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title=title,
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import sys
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import io, os, stat
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import subprocess
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import random
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from zipfile import ZipFile
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import uuid
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import time
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import torch
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import torchaudio
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# By using XTTS you agree to CPML license https://coqui.ai/cpml
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os.environ["COQUI_TOS_AGREED"] = "1"
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import langid
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import gradio as gr
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from scipy.io.wavfile import write
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from pydub import AudioSegment
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from TTS.api import TTS
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from TTS.tts.configs.xtts_config import XttsConfig
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from TTS.tts.models.xtts import Xtts
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from TTS.utils.generic_utils import get_user_data_dir
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HF_TOKEN = os.environ.get("HF_TOKEN")
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from huggingface_hub import HfApi
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# will use api to restart space on a unrecoverable error
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api = HfApi(token=HF_TOKEN)
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repo_id = "coqui/xtts"
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# Load TTS
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tts = TTS("tts_models/multilingual/multi-dataset/xtts_v1")
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model_path = os.path.join(get_user_data_dir("tts"), "tts_models--multilingual--multi-dataset--xtts_v1")
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config = XttsConfig()
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config.load_json(os.path.join(model_path, "config.json"))
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model = Xtts.init_from_config(config)
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model.load_checkpoint(
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config,
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checkpoint_path=os.path.join(model_path, "model.pth"),
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vocab_path=os.path.join(model_path, "vocab.json"),
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eval=True,
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use_deepspeed=True
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)
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model.cuda()
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# This is for debugging purposes only
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DEVICE_ASSERT_DETECTED=0
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def predict(prompt, language, audio_file_pth, mic_file_path, use_mic, voice_cleanup, no_lang_auto_detect, agree,):
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if agree == True:
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supported_languages=["en","es","fr","de","it","pt","pl","tr","ru","nl","cs","ar","zh-cn"]
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if language not in supported_languages:
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gr.Warning(f"Language you put {language} in is not in is not in our Supported Languages, please choose from dropdown")
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return (
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None,
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None,
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None,
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None,
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)
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language_predicted=langid.classify(prompt)[0].strip() # strip need as there is space at end!
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None,
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None,
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None,
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None,
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)
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None,
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None,
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None,
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None,
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)
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else:
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None,
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None,
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None,
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None,
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)
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if len(prompt)>200:
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gr.Warning("Text length limited to 200 characters for this demo, please try shorter text. You can clone this space and edit code for your own usage")
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None,
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None,
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None,
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None,
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)
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global DEVICE_ASSERT_DETECTED
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if DEVICE_ASSERT_DETECTED:
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print(f"Unrecoverable exception caused by language:{DEVICE_ASSERT_LANG} prompt:{DEVICE_ASSERT_PROMPT}")
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try:
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metrics_text=""
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t_latent=time.time()
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# note diffusion_conditioning not used on hifigan (default mode), it will be empty but need to pass it to model.inference
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gpt_cond_latent, diffusion_conditioning, speaker_embedding = model.get_conditioning_latents(audio_path=speaker_wav)
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latent_calculation_time = time.time() - t_latent
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#metrics_text=f"Embedding calculation time: {latent_calculation_time:.2f} seconds\n"
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wav_chunks = []
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print("I: Generating new audio...")
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t0 = time.time()
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out = model.inference(
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prompt,
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language,
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gpt_cond_latent,
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speaker_embedding,
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diffusion_conditioning
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)
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inference_time = time.time() - t0
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print(f"I: Time to generate audio: {round(inference_time*1000)} milliseconds")
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metrics_text+=f"Time to generate audio: {round(inference_time*1000)} milliseconds\n"
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real_time_factor= (time.time() - t0) / out['wav'].shape[-1] * 24000
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print(f"Real-time factor (RTF): {real_time_factor}")
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metrics_text+=f"Real-time factor (RTF): {real_time_factor:.2f}\n"
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torchaudio.save("output.wav", torch.tensor(out["wav"]).unsqueeze(0), 24000)
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except RuntimeError as e :
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if "device-side assert" in str(e):
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# cannot do anything on cuda device side error, need tor estart
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audio="output.wav",
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),
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"output.wav",
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metrics_text,
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speaker_wav,
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)
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else:
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None,
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None,
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None,
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None,
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)
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Dutch: nl, English: en, French: fr, Italian: it, Polish: pl,<br/>
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Russian: ru, Spanish: es, Turkish: tr <br/>
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</p>
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<img referrerpolicy="no-referrer-when-downgrade" src="https://static.scarf.sh/a.png?x-pxid=8946ef36-c454-4a8e-a9c9-8a8dd735fabd" />
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"""
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article = """
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False,
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False,
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True,
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],
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[
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"Als ich sechs war, sah ich einmal ein wunderbares Bild",
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],
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outputs=[
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gr.Video(label="Waveform Visual"),
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gr.Audio(label="Synthesised Audio",autoplay=True),
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gr.Text(label="Metrics"),
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gr.Audio(label="Reference Audio Used"),
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],
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title=title,
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