Spaces:
Running
on
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Running
on
Zero
import io | |
import gradio as gr | |
import torch | |
from modules.hf import spaces | |
from modules.webui.webui_utils import get_speakers, tts_generate | |
from modules.speaker import speaker_mgr, Speaker | |
import tempfile | |
def spk_to_tensor(spk): | |
spk = spk.split(" : ")[1].strip() if " : " in spk else spk | |
if spk == "None" or spk == "": | |
return None | |
return speaker_mgr.get_speaker(spk).emb | |
def get_speaker_show_name(spk): | |
if spk.gender == "*" or spk.gender == "": | |
return spk.name | |
return f"{spk.gender} : {spk.name}" | |
def merge_spk( | |
spk_a, | |
spk_a_w, | |
spk_b, | |
spk_b_w, | |
spk_c, | |
spk_c_w, | |
spk_d, | |
spk_d_w, | |
): | |
tensor_a = spk_to_tensor(spk_a) | |
tensor_b = spk_to_tensor(spk_b) | |
tensor_c = spk_to_tensor(spk_c) | |
tensor_d = spk_to_tensor(spk_d) | |
assert ( | |
tensor_a is not None | |
or tensor_b is not None | |
or tensor_c is not None | |
or tensor_d is not None | |
), "At least one speaker should be selected" | |
merge_tensor = torch.zeros_like( | |
tensor_a | |
if tensor_a is not None | |
else ( | |
tensor_b | |
if tensor_b is not None | |
else tensor_c if tensor_c is not None else tensor_d | |
) | |
) | |
total_weight = 0 | |
if tensor_a is not None: | |
merge_tensor += spk_a_w * tensor_a | |
total_weight += spk_a_w | |
if tensor_b is not None: | |
merge_tensor += spk_b_w * tensor_b | |
total_weight += spk_b_w | |
if tensor_c is not None: | |
merge_tensor += spk_c_w * tensor_c | |
total_weight += spk_c_w | |
if tensor_d is not None: | |
merge_tensor += spk_d_w * tensor_d | |
total_weight += spk_d_w | |
if total_weight > 0: | |
merge_tensor /= total_weight | |
merged_spk = Speaker.from_tensor(merge_tensor) | |
merged_spk.name = "<MIX>" | |
return merged_spk | |
def merge_and_test_spk_voice( | |
spk_a, spk_a_w, spk_b, spk_b_w, spk_c, spk_c_w, spk_d, spk_d_w, test_text | |
): | |
merged_spk = merge_spk( | |
spk_a, | |
spk_a_w, | |
spk_b, | |
spk_b_w, | |
spk_c, | |
spk_c_w, | |
spk_d, | |
spk_d_w, | |
) | |
return tts_generate( | |
spk=merged_spk, | |
text=test_text, | |
) | |
def merge_spk_to_file( | |
spk_a, | |
spk_a_w, | |
spk_b, | |
spk_b_w, | |
spk_c, | |
spk_c_w, | |
spk_d, | |
spk_d_w, | |
speaker_name, | |
speaker_gender, | |
speaker_desc, | |
): | |
merged_spk = merge_spk( | |
spk_a, spk_a_w, spk_b, spk_b_w, spk_c, spk_c_w, spk_d, spk_d_w | |
) | |
merged_spk.name = speaker_name | |
merged_spk.gender = speaker_gender | |
merged_spk.desc = speaker_desc | |
with tempfile.NamedTemporaryFile(delete=False, suffix=".pt") as tmp_file: | |
torch.save(merged_spk, tmp_file) | |
tmp_file_path = tmp_file.name | |
return tmp_file_path | |
merge_desc = """ | |
## Speaker Merger | |
在本面板中,您可以选择多个说话人并指定他们的权重,合成新的语音并进行测试。以下是各个功能的详细说明: | |
### 1. 选择说话人 | |
您可以从下拉菜单中选择最多四个说话人(A、B、C、D),每个说话人都有一个对应的权重滑块,范围从0到10。权重决定了每个说话人在合成语音中的影响程度。 | |
### 2. 合成语音 | |
在选择好说话人和设置好权重后,您可以在“测试文本”框中输入要测试的文本,然后点击“测试语音”按钮来生成并播放合成的语音。 | |
### 3. 保存说话人 | |
您还可以在右侧的“说话人信息”部分填写新的说话人的名称、性别和描述,并点击“保存说话人”按钮来保存合成的说话人。保存后的说话人文件将显示在“合成说话人”栏中,供下载使用。 | |
""" | |
# 显示 a b c d 四个选择框,选择一个或多个,然后可以试音,并导出 | |
def create_speaker_panel(): | |
speakers = get_speakers() | |
speaker_names = ["None"] + [get_speaker_show_name(speaker) for speaker in speakers] | |
with gr.Tabs(): | |
with gr.TabItem("Merger"): | |
gr.Markdown(merge_desc) | |
with gr.Row(): | |
with gr.Column(scale=5): | |
with gr.Row(): | |
with gr.Group(): | |
spk_a = gr.Dropdown( | |
choices=speaker_names, value="None", label="Speaker A" | |
) | |
spk_a_w = gr.Slider( | |
value=1, minimum=0, maximum=10, step=1, label="Weight A" | |
) | |
with gr.Group(): | |
spk_b = gr.Dropdown( | |
choices=speaker_names, value="None", label="Speaker B" | |
) | |
spk_b_w = gr.Slider( | |
value=1, minimum=0, maximum=10, step=1, label="Weight B" | |
) | |
with gr.Group(): | |
spk_c = gr.Dropdown( | |
choices=speaker_names, value="None", label="Speaker C" | |
) | |
spk_c_w = gr.Slider( | |
value=1, minimum=0, maximum=10, step=1, label="Weight C" | |
) | |
with gr.Group(): | |
spk_d = gr.Dropdown( | |
choices=speaker_names, value="None", label="Speaker D" | |
) | |
spk_d_w = gr.Slider( | |
value=1, minimum=0, maximum=10, step=1, label="Weight D" | |
) | |
with gr.Row(): | |
with gr.Column(scale=3): | |
with gr.Group(): | |
gr.Markdown("🎤Test voice") | |
with gr.Row(): | |
test_voice_btn = gr.Button( | |
"Test Voice", variant="secondary" | |
) | |
with gr.Column(scale=4): | |
test_text = gr.Textbox( | |
label="Test Text", | |
placeholder="Please input test text", | |
value="说话人合并测试 123456789 [uv_break] ok, test done [lbreak]", | |
) | |
output_audio = gr.Audio(label="Output Audio") | |
with gr.Column(scale=1): | |
with gr.Group(): | |
gr.Markdown("🗃️Save to file") | |
speaker_name = gr.Textbox( | |
label="Name", value="forge_speaker_merged" | |
) | |
speaker_gender = gr.Textbox(label="Gender", value="*") | |
speaker_desc = gr.Textbox( | |
label="Description", value="merged speaker" | |
) | |
save_btn = gr.Button("Save Speaker", variant="primary") | |
merged_spker = gr.File( | |
label="Merged Speaker", interactive=False, type="binary" | |
) | |
test_voice_btn.click( | |
merge_and_test_spk_voice, | |
inputs=[ | |
spk_a, | |
spk_a_w, | |
spk_b, | |
spk_b_w, | |
spk_c, | |
spk_c_w, | |
spk_d, | |
spk_d_w, | |
test_text, | |
], | |
outputs=[output_audio], | |
) | |
save_btn.click( | |
merge_spk_to_file, | |
inputs=[ | |
spk_a, | |
spk_a_w, | |
spk_b, | |
spk_b_w, | |
spk_c, | |
spk_c_w, | |
spk_d, | |
spk_d_w, | |
speaker_name, | |
speaker_gender, | |
speaker_desc, | |
], | |
outputs=[merged_spker], | |
) | |