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refactor - use app.py
Browse files- .vscode/launch.json +2 -2
- app.py +77 -218
- d_app.py +0 -131
.vscode/launch.json
CHANGED
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@@ -19,8 +19,8 @@
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"program": "/opt/miniconda3/envs/streamlit/bin/streamlit",
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"args": [
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"run",
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-
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"
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]
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}
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]
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"program": "/opt/miniconda3/envs/streamlit/bin/streamlit",
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"args": [
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"run",
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"app.py"
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// "debug_app.py"
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]
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}
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]
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app.py
CHANGED
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@@ -3,6 +3,7 @@ from collections import deque
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import os
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import threading
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import time
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import av
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import numpy as np
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import streamlit as st
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@@ -15,258 +16,116 @@ from sample_utils.turn import get_ice_servers
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import json
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from typing import List
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from dotenv import load_dotenv
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load_dotenv()
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-
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system_one = {
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"audio_bit_rate": 16000,
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# "audio_bit_rate": 32000,
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# "audio_bit_rate": 48000,
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system_one["video_detection_emotions"] = [
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"a happy person",
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"the person is happy",
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"the person's emotional state is happy",
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"a sad person",
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"a scared person",
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"a disgusted person",
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"an angry person",
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"a suprised person",
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"a bored person",
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"an interested person",
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"a guilty person",
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"an indiffert person",
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"a distracted person",
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]
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# system_one["video_detection_emotions"] = [
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# "Happiness",
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# "Sadness",
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# "Fear",
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# "Disgust",
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# "Anger",
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# "Surprise",
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# "Boredom",
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# "Interest",
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# "Excitement",
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# "Guilt",
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# "Shame",
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# "Relief",
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# "Love",
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# "Embarrassment",
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# "Pride",
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# "Envy",
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# "Jealousy",
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# "Anxiety",
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# "Hope",
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# "Despair",
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# "Frustration",
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# "Confusion",
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# "Curiosity",
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# "Contentment",
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# "Indifference",
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# "Anticipation",
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# "Gratitude",
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# "Bitterness"
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# ]
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system_one["video_detection_engement"] = [
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"the person is engaged in the conversation",
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"the person is not engaged in the conversation",
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"the person is looking at me",
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"the person is not looking at me",
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"the person is talking to me",
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"the person is not talking to me",
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"the person is engaged",
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"the person is talking",
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"the person is listening",
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]
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system_one["video_detection_present"] = [
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"the view from a webcam",
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"the view from a webcam we see a person",
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# "the view from a webcam. I see a person",
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# "the view from a webcam. The person is looking at the camera",
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# "i am a webcam",
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# "i am a webcam and i see a person",
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# "i am a webcam and i see a person. The person is looking at me",
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# "a person",
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# "a person on a Zoom call",
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# "a person on a FaceTime call",
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# "a person on a WebCam call",
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# "no one",
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# " ",
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# "multiple people",
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# "a group of people",
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]
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system_one_audio_status = st.empty()
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playing = st.checkbox("Playing", value=True)
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pass
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# create frames to be returned.
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new_frames = []
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for frame in frames:
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input_array = frame.to_ndarray()
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new_frame = av.AudioFrame.from_ndarray(
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np.zeros(input_array.shape, dtype=input_array.dtype),
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layout=frame.layout.name,
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)
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new_frame.sample_rate = frame.sample_rate
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new_frames.append(new_frame)
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# TODO: replace with the audio we want to send to the other side.
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return new_frames
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from clip_transform import CLIPTransform
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clip_transform = CLIPTransform()
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chat_pipeline = ChatPipeline()
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await chat_pipeline.start()
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system_one["video_detection_emotions_embeddings"] = embeddings
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embeddings = clip_transform.text_to_embeddings(system_one["video_detection_engement"])
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system_one["video_detection_engement_embeddings"] = embeddings
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embeddings = clip_transform.text_to_embeddings(system_one["video_detection_present"])
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system_one["video_detection_present_embeddings"] = embeddings
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system_one_audio_status.write("Initializing webrtc_streamer")
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webrtc_ctx = webrtc_streamer(
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key="charles",
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desired_playing_state=playing,
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queued_video_frames_callback=queued_video_frames_callback,
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mode=WebRtcMode.SENDRECV,
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rtc_configuration={"iceServers": get_ice_servers()},
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async_processing=True,
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)
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-
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if not webrtc_ctx.state.playing:
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exit
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system_one_audio_status.write("Initializing
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system_one_audio_history = []
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system_one_audio_history_output = st.empty()
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sound_chunk = pydub.AudioSegment.empty()
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current_video_embedding = None
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current_video_embedding_timestamp = time.monotonic()
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def get_dot_similarities(video_embedding, embeddings, embeddings_labels):
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dot_product = torch.mm(embeddings, video_embedding.T)
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similarity_image_label = [(float("{:.4f}".format(dot_product[i][0])), embeddings_labels[i]) for i in range(len(embeddings_labels))]
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similarity_image_label.sort(reverse=True)
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return similarity_image_label
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def get_top_3_similarities_as_a_string(video_embedding, embeddings, embeddings_labels):
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similarities = get_dot_similarities(video_embedding, embeddings, embeddings_labels)
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top_3 = ""
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range_len = 3 if len(similarities) > 3 else len(similarities)
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for i in range(range_len):
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top_3 += f"{similarities[i][1]} ({similarities[i][0]}) "
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return top_3
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if webrtc_ctx.state.playing:
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# handle video
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video_frames = []
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with video_frames_deque_lock:
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while len(video_frames_deque) > 0:
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frame = video_frames_deque.popleft()
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video_frames.append(frame)
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get_embeddings = False
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get_embeddings |= current_video_embedding is None
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current_time = time.monotonic()
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elapsed_time = current_time - current_video_embedding_timestamp
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get_embeddings |= elapsed_time > 1. / system_one['vision_embeddings_fps']
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if get_embeddings and len(video_frames) > 0:
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current_video_embedding_timestamp = current_time
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current_video_embedding = clip_transform.image_to_embeddings(video_frames[-1].to_ndarray())
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emotions_top_3 = get_top_3_similarities_as_a_string(current_video_embedding, system_one["video_detection_emotions_embeddings"], system_one["video_detection_emotions"])
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engagement_top_3 = get_top_3_similarities_as_a_string(current_video_embedding, system_one["video_detection_engement_embeddings"], system_one["video_detection_engement"])
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present_top_3 = get_top_3_similarities_as_a_string(current_video_embedding, system_one["video_detection_present_embeddings"], system_one["video_detection_present"])
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# table_content = "**System 1 Video:**\n\n"
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table_content = "| System 1 Video | |\n| --- | --- |\n"
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table_content += f"| Present | {present_top_3} |\n"
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table_content += f"| Emotion | {emotions_top_3} |\n"
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table_content += f"| Engagement | {engagement_top_3} |\n"
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system_one_video_output.markdown(table_content)
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# system_one_video_output.markdown(f"**System 1 Video:** \n [Emotion: {emotions_top_3}], \n [Engagement: {engagement_top_3}], \n [Present: {present_top_3}] ")
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# for similarity, image_label in similarity_image_label:
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# print (f"{similarity} {image_label}")
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if len(audio_frames) == 0:
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time.sleep(0.1)
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system_one_audio_status.write("No frame arrived.")
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continue
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system_one_audio_status.write("Running. Say something!")
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for audio_frame in audio_frames:
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sound = pydub.AudioSegment(
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data=audio_frame.to_ndarray().tobytes(),
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sample_width=audio_frame.format.bytes,
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frame_rate=audio_frame.sample_rate,
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channels=len(audio_frame.layout.channels),
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)
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sound = sound.set_channels(1)
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sound = sound.set_frame_rate(system_one['audio_bit_rate'])
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sound_chunk += sound
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if len(sound_chunk) > 0:
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buffer = np.array(sound_chunk.get_array_of_samples())
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text, speaker_finished = do_work(buffer.tobytes())
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system_one_audio_output.markdown(f"**System 1 Audio:** {text}")
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if speaker_finished and len(text) > 0:
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system_one_audio_history.append(text)
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if len(system_one_audio_history) > 10:
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system_one_audio_history = system_one_audio_history[-10:]
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table_content = "| System 1 Audio History |\n| --- |\n"
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table_content += "\n".join([f"| {item} |" for item in reversed(system_one_audio_history)])
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system_one_audio_history_output.markdown(table_content)
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await chat_pipeline.enqueue(text)
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sound_chunk = pydub.AudioSegment.empty()
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else:
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system_one_audio_status.write("Stopped.")
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if __name__ == "__main__":
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-
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import os
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import threading
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import time
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import traceback
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import av
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import numpy as np
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import streamlit as st
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import json
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from typing import List
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from vosk import SetLogLevel, Model, KaldiRecognizer
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SetLogLevel(-1) # mutes vosk verbosity
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from dotenv import load_dotenv
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load_dotenv()
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webrtc_ctx = None
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# Initialize Ray
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import ray
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if not ray.is_initialized():
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# Try to connect to a running Ray cluster
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ray_address = os.getenv('RAY_ADDRESS')
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if ray_address:
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ray.init(ray_address, namespace="project_charles")
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else:
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ray.init(namespace="project_charles")
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async def main():
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system_one_audio_status = st.empty()
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playing = st.checkbox("Playing", value=True)
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system_one_audio_status.write("Initializing streaming")
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system_one_audio_output = st.empty()
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system_one_video_output = st.empty()
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system_one_audio_history = []
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system_one_audio_history_output = st.empty()
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# Initialize resources if not already done
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system_one_audio_status.write("Initializing streaming")
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if "streamlit_av_queue" not in st.session_state:
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from streamlit_av_queue import StreamlitAVQueue
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st.session_state.streamlit_av_queue = StreamlitAVQueue()
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system_one_audio_status.write("resources referecned")
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system_one_audio_status.write("Initializing webrtc_streamer")
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webrtc_ctx = webrtc_streamer(
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key="charles",
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desired_playing_state=playing,
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queued_audio_frames_callback=st.session_state.streamlit_av_queue.queued_audio_frames_callback,
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| 68 |
+
queued_video_frames_callback=st.session_state.streamlit_av_queue.queued_video_frames_callback,
|
|
|
|
| 69 |
mode=WebRtcMode.SENDRECV,
|
| 70 |
+
media_stream_constraints={
|
| 71 |
+
"video": True,
|
| 72 |
+
"audio": {
|
| 73 |
+
"sampleRate": 48000,
|
| 74 |
+
"sampleSize": 16,
|
| 75 |
+
"noiseSuppression": True,
|
| 76 |
+
"echoCancellation": True,
|
| 77 |
+
"channelCount": 1,
|
| 78 |
+
}
|
| 79 |
+
},
|
| 80 |
rtc_configuration={"iceServers": get_ice_servers()},
|
| 81 |
async_processing=True,
|
| 82 |
)
|
| 83 |
|
|
|
|
| 84 |
if not webrtc_ctx.state.playing:
|
| 85 |
exit
|
| 86 |
|
| 87 |
+
system_one_audio_status.write("Initializing speech")
|
| 88 |
+
|
| 89 |
+
from charles_actor import CharlesActor
|
| 90 |
+
charles_actor = None
|
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| 91 |
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|
| 92 |
|
| 93 |
+
try:
|
| 94 |
+
while True:
|
| 95 |
+
if not webrtc_ctx.state.playing:
|
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|
| 96 |
system_one_audio_status.write("Stopped.")
|
| 97 |
+
await asyncio.sleep(0.1)
|
| 98 |
+
continue
|
| 99 |
+
if charles_actor is None:
|
| 100 |
+
try:
|
| 101 |
+
charles_actor = ray.get_actor("CharlesActor")
|
| 102 |
+
system_one_audio_status.write("Charles is here.")
|
| 103 |
+
except ValueError as e:
|
| 104 |
+
system_one_audio_status.write("Charles is sleeping.")
|
| 105 |
+
pass
|
| 106 |
+
if charles_actor is not None:
|
| 107 |
+
try:
|
| 108 |
+
audio_history = await charles_actor.get_system_one_audio_history_output.remote()
|
| 109 |
+
system_one_audio_history_output.markdown(audio_history)
|
| 110 |
+
except Exception as e:
|
| 111 |
+
# assume we disconnected
|
| 112 |
+
charles_actor = None
|
| 113 |
+
await asyncio.sleep(0.1)
|
| 114 |
+
|
| 115 |
+
except Exception as e:
|
| 116 |
+
print(f"An error occurred: {e}")
|
| 117 |
+
traceback.print_exc()
|
| 118 |
+
raise e
|
| 119 |
|
| 120 |
|
| 121 |
if __name__ == "__main__":
|
| 122 |
+
try:
|
| 123 |
+
asyncio.run(main())
|
| 124 |
+
except Exception as e:
|
| 125 |
+
if webrtc_ctx is not None:
|
| 126 |
+
del webrtc_ctx
|
| 127 |
+
webrtc_ctx = None
|
| 128 |
+
if "streamlit_av_queue" in st.session_state:
|
| 129 |
+
del st.session_state.streamlit_av_queue
|
| 130 |
+
finally:
|
| 131 |
+
pass
|
d_app.py
DELETED
|
@@ -1,131 +0,0 @@
|
|
| 1 |
-
import asyncio
|
| 2 |
-
from collections import deque
|
| 3 |
-
import os
|
| 4 |
-
import threading
|
| 5 |
-
import time
|
| 6 |
-
import traceback
|
| 7 |
-
import av
|
| 8 |
-
import numpy as np
|
| 9 |
-
import streamlit as st
|
| 10 |
-
from streamlit_webrtc import WebRtcMode, webrtc_streamer
|
| 11 |
-
import pydub
|
| 12 |
-
import torch
|
| 13 |
-
# import av
|
| 14 |
-
# import cv2
|
| 15 |
-
from sample_utils.turn import get_ice_servers
|
| 16 |
-
import json
|
| 17 |
-
from typing import List
|
| 18 |
-
|
| 19 |
-
from vosk import SetLogLevel, Model, KaldiRecognizer
|
| 20 |
-
SetLogLevel(-1) # mutes vosk verbosity
|
| 21 |
-
|
| 22 |
-
from dotenv import load_dotenv
|
| 23 |
-
load_dotenv()
|
| 24 |
-
|
| 25 |
-
webrtc_ctx = None
|
| 26 |
-
|
| 27 |
-
# Initialize Ray
|
| 28 |
-
import ray
|
| 29 |
-
if not ray.is_initialized():
|
| 30 |
-
# Try to connect to a running Ray cluster
|
| 31 |
-
ray_address = os.getenv('RAY_ADDRESS')
|
| 32 |
-
if ray_address:
|
| 33 |
-
ray.init(ray_address, namespace="project_charles")
|
| 34 |
-
else:
|
| 35 |
-
ray.init(namespace="project_charles")
|
| 36 |
-
|
| 37 |
-
|
| 38 |
-
|
| 39 |
-
async def main():
|
| 40 |
-
|
| 41 |
-
system_one_audio_status = st.empty()
|
| 42 |
-
|
| 43 |
-
playing = st.checkbox("Playing", value=True)
|
| 44 |
-
|
| 45 |
-
system_one_audio_status.write("Initializing streaming")
|
| 46 |
-
system_one_audio_output = st.empty()
|
| 47 |
-
|
| 48 |
-
system_one_video_output = st.empty()
|
| 49 |
-
|
| 50 |
-
system_one_audio_history = []
|
| 51 |
-
system_one_audio_history_output = st.empty()
|
| 52 |
-
|
| 53 |
-
# Initialize resources if not already done
|
| 54 |
-
system_one_audio_status.write("Initializing streaming")
|
| 55 |
-
if "streamlit_av_queue" not in st.session_state:
|
| 56 |
-
from streamlit_av_queue import StreamlitAVQueue
|
| 57 |
-
st.session_state.streamlit_av_queue = StreamlitAVQueue()
|
| 58 |
-
|
| 59 |
-
system_one_audio_status.write("resources referecned")
|
| 60 |
-
|
| 61 |
-
|
| 62 |
-
|
| 63 |
-
system_one_audio_status.write("Initializing webrtc_streamer")
|
| 64 |
-
webrtc_ctx = webrtc_streamer(
|
| 65 |
-
key="charles",
|
| 66 |
-
desired_playing_state=playing,
|
| 67 |
-
queued_audio_frames_callback=st.session_state.streamlit_av_queue.queued_audio_frames_callback,
|
| 68 |
-
queued_video_frames_callback=st.session_state.streamlit_av_queue.queued_video_frames_callback,
|
| 69 |
-
mode=WebRtcMode.SENDRECV,
|
| 70 |
-
media_stream_constraints={
|
| 71 |
-
"video": True,
|
| 72 |
-
"audio": {
|
| 73 |
-
"sampleRate": 48000,
|
| 74 |
-
"sampleSize": 16,
|
| 75 |
-
"noiseSuppression": True,
|
| 76 |
-
"echoCancellation": True,
|
| 77 |
-
"channelCount": 1,
|
| 78 |
-
}
|
| 79 |
-
},
|
| 80 |
-
rtc_configuration={"iceServers": get_ice_servers()},
|
| 81 |
-
async_processing=True,
|
| 82 |
-
)
|
| 83 |
-
|
| 84 |
-
if not webrtc_ctx.state.playing:
|
| 85 |
-
exit
|
| 86 |
-
|
| 87 |
-
system_one_audio_status.write("Initializing speech")
|
| 88 |
-
|
| 89 |
-
from charles_actor import CharlesActor
|
| 90 |
-
charles_actor = None
|
| 91 |
-
|
| 92 |
-
|
| 93 |
-
try:
|
| 94 |
-
while True:
|
| 95 |
-
if not webrtc_ctx.state.playing:
|
| 96 |
-
system_one_audio_status.write("Stopped.")
|
| 97 |
-
await asyncio.sleep(0.1)
|
| 98 |
-
continue
|
| 99 |
-
if charles_actor is None:
|
| 100 |
-
try:
|
| 101 |
-
charles_actor = ray.get_actor("CharlesActor")
|
| 102 |
-
system_one_audio_status.write("Charles is here.")
|
| 103 |
-
except ValueError as e:
|
| 104 |
-
system_one_audio_status.write("Charles is sleeping.")
|
| 105 |
-
pass
|
| 106 |
-
if charles_actor is not None:
|
| 107 |
-
try:
|
| 108 |
-
audio_history = await charles_actor.get_system_one_audio_history_output.remote()
|
| 109 |
-
system_one_audio_history_output.markdown(audio_history)
|
| 110 |
-
except Exception as e:
|
| 111 |
-
# assume we disconnected
|
| 112 |
-
charles_actor = None
|
| 113 |
-
await asyncio.sleep(0.1)
|
| 114 |
-
|
| 115 |
-
except Exception as e:
|
| 116 |
-
print(f"An error occurred: {e}")
|
| 117 |
-
traceback.print_exc()
|
| 118 |
-
raise e
|
| 119 |
-
|
| 120 |
-
|
| 121 |
-
if __name__ == "__main__":
|
| 122 |
-
try:
|
| 123 |
-
asyncio.run(main())
|
| 124 |
-
except Exception as e:
|
| 125 |
-
if webrtc_ctx is not None:
|
| 126 |
-
del webrtc_ctx
|
| 127 |
-
webrtc_ctx = None
|
| 128 |
-
if "streamlit_av_queue" in st.session_state:
|
| 129 |
-
del st.session_state.streamlit_av_queue
|
| 130 |
-
finally:
|
| 131 |
-
pass
|
|
|
|
|
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