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import gradio as gr | |
from gradio_webrtc import WebRTC, ReplyOnPause, AdditionalOutputs | |
import anthropic | |
from pyht import Client as PyHtClient, TTSOptions | |
import dataclasses | |
import os | |
import numpy as np | |
from huggingface_hub import InferenceClient | |
import io | |
from pydub import AudioSegment | |
from dotenv import load_dotenv | |
load_dotenv() | |
account_sid = os.environ.get("TWILIO_ACCOUNT_SID") | |
auth_token = os.environ.get("TWILIO_AUTH_TOKEN") | |
if account_sid and auth_token: | |
from twilio.rest import Client | |
client = Client(account_sid, auth_token) | |
token = client.tokens.create() | |
rtc_configuration = { | |
"iceServers": token.ice_servers, | |
"iceTransportPolicy": "relay", | |
} | |
else: | |
rtc_configuration = None | |
class Clients: | |
claude: anthropic.Anthropic | |
play_ht: PyHtClient | |
hf: InferenceClient | |
tts_options = TTSOptions(voice="s3://voice-cloning-zero-shot/775ae416-49bb-4fb6-bd45-740f205d20a1/jennifersaad/manifest.json", | |
sample_rate=24000) | |
def aggregate_chunks(chunks_iterator): | |
leftover = b'' # Store incomplete bytes between chunks | |
for chunk in chunks_iterator: | |
# Combine with any leftover bytes from previous chunk | |
current_bytes = leftover + chunk | |
# Calculate complete samples | |
n_complete_samples = len(current_bytes) // 2 # int16 = 2 bytes | |
bytes_to_process = n_complete_samples * 2 | |
# Split into complete samples and leftover | |
to_process = current_bytes[:bytes_to_process] | |
leftover = current_bytes[bytes_to_process:] | |
if to_process: # Only yield if we have complete samples | |
audio_array = np.frombuffer(to_process, dtype=np.int16).reshape(1, -1) | |
yield audio_array | |
def audio_to_bytes(audio: tuple[int, np.ndarray]) -> bytes: | |
audio_buffer = io.BytesIO() | |
segment = AudioSegment( | |
audio[1].tobytes(), | |
frame_rate=audio[0], | |
sample_width=audio[1].dtype.itemsize, | |
channels=1, | |
) | |
segment.export(audio_buffer, format="mp3") | |
return audio_buffer.getvalue() | |
def set_api_key(claude_key, play_ht_username, play_ht_key): | |
try: | |
claude_client = anthropic.Anthropic(api_key=claude_key) | |
play_ht_client = PyHtClient(user_id=play_ht_username, api_key=play_ht_key) | |
except: | |
raise gr.Error("Invalid API keys. Please try again.") | |
gr.Info("Successfully set API keys.", duration=3) | |
return Clients(claude=claude_client, play_ht=play_ht_client, | |
hf=InferenceClient()), gr.skip() | |
def response(audio: tuple[int, np.ndarray], conversation_llm_format: list[dict], | |
chatbot: list[dict], client_state: Clients): | |
if not client_state: | |
raise gr.Error("Please set your API keys first.") | |
prompt = client_state.hf.automatic_speech_recognition(audio_to_bytes(audio)).text | |
conversation_llm_format.append({"role": "user", "content": prompt}) | |
response = client_state.claude.messages.create( | |
model="claude-3-5-haiku-20241022", | |
max_tokens=512, | |
messages=conversation_llm_format, | |
) | |
response_text = " ".join(block.text for block in response.content if getattr(block, "type", None) == "text") | |
conversation_llm_format.append({"role": "assistant", "content": response_text}) | |
chatbot.append({"role": "user", "content": prompt}) | |
chatbot.append({"role": "assistant", "content": response_text}) | |
yield AdditionalOutputs(conversation_llm_format, chatbot) | |
iterator = client_state.play_ht.tts(response_text, options=tts_options, voice_engine="Play3.0") | |
for chunk in aggregate_chunks(iterator): | |
audio_array = np.frombuffer(chunk, dtype=np.int16).reshape(1, -1) | |
yield (24000, audio_array, "mono") | |
with gr.Blocks() as demo: | |
with gr.Group(): | |
with gr.Row(): | |
chatbot = gr.Chatbot(label="Conversation", type="messages") | |
with gr.Row(equal_height=True): | |
with gr.Column(scale=1): | |
with gr.Row(): | |
claude_key = gr.Textbox(type="password", value=os.getenv("ANTHROPIC_API_KEY"), | |
label="Enter your Anthropic API Key") | |
play_ht_username = gr.Textbox(type="password", | |
value=os.getenv("PLAY_HT_USER_ID"), | |
label="Enter your PlayHt Username") | |
play_ht_key = gr.Textbox(type="password", | |
value=os.getenv("PLAY_HT_API_KEY"), | |
label="Enter your PlayHt API Key") | |
with gr.Row(): | |
set_key_button = gr.Button("Set Keys", variant="primary") | |
with gr.Column(scale=5): | |
audio = WebRTC(modality="audio", mode="send-receive", | |
label="Audio Stream", | |
rtc_configuration=rtc_configuration) | |
client_state = gr.State(None) | |
conversation_llm_format = gr.State([]) | |
set_key_button.click(set_api_key, inputs=[claude_key, play_ht_username, play_ht_key], | |
outputs=[client_state, set_key_button]) | |
audio.stream( | |
ReplyOnPause(response), | |
inputs=[audio, conversation_llm_format, chatbot, client_state], | |
outputs=[audio] | |
) | |
audio.on_additional_outputs(lambda l, g: (l, g), outputs=[conversation_llm_format, chatbot]) | |
if __name__ == "__main__": | |
demo.launch() |