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import time |
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import matplotlib.pyplot as plt |
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import IPython.display as ipd |
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import re |
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import os |
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import json |
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import math |
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import torch |
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from torch import nn |
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from torch.nn import functional as F |
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from torch.utils.data import DataLoader |
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import gradio as gr |
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import commons |
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import utils |
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from data_utils import TextAudioLoader, TextAudioCollate, TextAudioSpeakerLoader, TextAudioSpeakerCollate |
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from models import SynthesizerTrn |
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from text.symbols import symbols |
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from text import text_to_sequence |
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import unicodedata |
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from scipy.io.wavfile import write |
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import openai |
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def get_text(text, hps): |
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text_norm = text_to_sequence(text, hps.data.text_cleaners) |
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if hps.data.add_blank: |
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text_norm = commons.intersperse(text_norm, 0) |
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text_norm = torch.LongTensor(text_norm) |
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return text_norm |
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def get_label(text, label): |
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if f'[{label}]' in text: |
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return True, text.replace(f'[{label}]', '') |
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else: |
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return False, text |
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def selection(speaker): |
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if speaker == "高咲侑(误)": |
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spk = 0 |
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return spk |
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elif speaker == "歩夢": |
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spk = 1 |
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return spk |
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elif speaker == "かすみ": |
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spk = 2 |
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return spk |
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elif speaker == "しずく": |
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spk = 3 |
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return spk |
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elif speaker == "果林": |
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spk = 4 |
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return spk |
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elif speaker == "愛": |
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spk = 5 |
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return spk |
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elif speaker == "彼方": |
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spk = 6 |
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return spk |
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elif speaker == "せつ菜": |
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spk = 7 |
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return spk |
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elif speaker == "エマ": |
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spk = 8 |
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return spk |
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elif speaker == "璃奈": |
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spk = 9 |
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return spk |
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elif speaker == "栞子": |
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spk = 10 |
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return spk |
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elif speaker == "ランジュ": |
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spk = 11 |
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return spk |
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elif speaker == "ミア": |
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spk = 12 |
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return spk |
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elif speaker == "三色绘恋1": |
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spk = 13 |
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return spk |
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elif speaker == "三色绘恋2": |
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spk = 15 |
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return spk |
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elif speaker == "派蒙": |
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spk = 16 |
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return spk |
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def friend_chat(text,key,call_name,tts_input3): |
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call_name = call_name |
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openai.api_key = key |
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identity = tts_input3 |
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start_sequence = '\n'+str(call_name)+':' |
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restart_sequence = "\nYou: " |
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all_text = identity + restart_sequence |
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if 1 == 1: |
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prompt0 = text |
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if text == 'quit': |
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return prompt0 |
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prompt = identity + prompt0 + start_sequence |
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response = openai.Completion.create( |
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model="text-davinci-003", |
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prompt=prompt, |
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temperature=0.5, |
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max_tokens=1000, |
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top_p=1.0, |
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frequency_penalty=0.5, |
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presence_penalty=0.0, |
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stop=["\nYou:"] |
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) |
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return response['choices'][0]['text'].strip() |
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def is_japanese(string): |
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for ch in string: |
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if ord(ch) > 0x3040 and ord(ch) < 0x30FF: |
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return True |
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return False |
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def sle(language,text,tts_input2,call_name,tts_input3): |
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if language == "中文": |
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tts_input1 = "[ZH]" + text.replace('\n','。').replace(' ',',') + "[ZH]" |
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return tts_input1 |
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if language == "对话": |
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text = friend_chat(text,tts_input2,call_name,tts_input3).replace('\n','。').replace(' ',',') |
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text = f"[JA]{text}[JA]" if is_japanese(text) else f"[ZH]{text}[ZH]" |
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return text |
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elif language == "日文": |
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tts_input1 = "[JA]" + text.replace('\n','。').replace(' ',',') + "[JA]" |
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return tts_input1 |
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def infer(language,text,tts_input2,tts_input3,speaker_id,n_scale= 0.667,n_scale_w = 0.8, l_scale = 1 ): |
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speaker_name = speaker_id |
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speaker_id = int(selection(speaker_id)) |
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stn_tst = get_text(sle(language,text,tts_input2,speaker_name,tts_input3), hps_ms) |
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with torch.no_grad(): |
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x_tst = stn_tst.unsqueeze(0).to(dev) |
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x_tst_lengths = torch.LongTensor([stn_tst.size(0)]).to(dev) |
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sid = torch.LongTensor([speaker_id]).to(dev) |
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t1 = time.time() |
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audio = net_g_ms.infer(x_tst, x_tst_lengths, sid=sid, noise_scale=n_scale, noise_scale_w=n_scale_w, length_scale=l_scale)[0][0,0].data.cpu().float().numpy() |
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t2 = time.time() |
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spending_time = "推理时间:"+str(t2-t1)+"s" |
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print(spending_time) |
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return (hps_ms.data.sampling_rate, audio) |
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lan = ["中文","日文","对话"] |
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idols = ["高咲侑(误)","歩夢","かすみ","しずく","果林","愛","彼方","せつ菜","璃奈","栞子","エマ","ランジュ","ミア","三色绘恋1","三色绘恋2","派蒙"] |
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dev = torch.device("cpu") |
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hps_ms = utils.get_hparams_from_file("config.json") |
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net_g_ms = SynthesizerTrn( |
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len(symbols), |
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hps_ms.data.filter_length // 2 + 1, |
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hps_ms.train.segment_size // hps_ms.data.hop_length, |
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n_speakers=hps_ms.data.n_speakers, |
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**hps_ms.model).to(dev) |
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_ = net_g_ms.eval() |
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_ = utils.load_checkpoint("G_1415000.pth", net_g_ms, None) |
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def inference(text): |
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html = ( |
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"<div >" |
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"<img src='chara_ayumu.png' alt='image One'>" |
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+ "</div>" |
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) |
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return html |
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title = 'ayumu' |
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gr.Interface( |
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inference, |
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gr.inputs.Textbox(placeholder="Enter sentence here..."), |
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outputs=["html"], |
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title=title, |
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allow_flagging="never", |
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).launch(enable_queue=True) |
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app = gr.Blocks() |
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with app: |
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with gr.Tabs(): |
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with gr.TabItem("Basic"): |
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tts_input1 = gr.TextArea(label="输入你的文本", value="一次審査、二次審査、それぞれの欄に記入をお願いします。") |
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tts_input2 = gr.TextArea(label="如需使用openai,输入你的openai-key", value="官网") |
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tts_input3 = gr.TextArea(label="写上你给她的设定", value="恶魔系学妹。") |
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language = gr.Dropdown(label="选择合成方式",choices=lan, value="日文", interactive=True) |
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para_input1 = gr.Slider(minimum= 0.01,maximum=1.0,label="更改噪声比例", value=0.667) |
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para_input2 = gr.Slider(minimum= 0.01,maximum=1.0,label="更改噪声偏差", value=0.8) |
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para_input3 = gr.Slider(minimum= 0.1,maximum=10,label="更改时间比例", value=1) |
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tts_submit = gr.Button("Generate", variant="primary") |
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speaker1 = gr.Dropdown(label="选择说话人",choices=idols, value="かすみ", interactive=True) |
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tts_output2 = gr.Audio(label="Output") |
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tts_submit.click(infer, [language,tts_input1,tts_input2,tts_input3,speaker1,para_input1,para_input2,para_input3], [tts_output2]) |
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app.launch() |