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IliaLarchenko
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·
403487b
1
Parent(s):
8d9f6bc
Improved UI
Browse files- app.py +3 -13
- ui/coding.py +120 -79
app.py
CHANGED
@@ -24,20 +24,10 @@ def initialize_services():
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def create_interface(llm, tts, stt, audio_params):
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"""Create and configure the Gradio interface."""
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with gr.Blocks(title="AI Interviewer") as demo:
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audio_output = gr.Audio(label="Play audio", autoplay=True, visible=os.environ.get("DEBUG", False), streaming=tts.streaming)
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get_problem_solving_ui(llm, tts, stt, audio_params, audio_output, name="Coding", interview_type="coding"),
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get_problem_solving_ui(llm, tts, stt, audio_params, audio_output, name="ML Design (Beta)", interview_type="ml_design"),
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get_problem_solving_ui(llm, tts, stt, audio_params, audio_output, name="ML Theory (Beta)", interview_type="ml_theory"),
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get_problem_solving_ui(llm, tts, stt, audio_params, audio_output, name="System Design (Beta)", interview_type="system_design"),
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get_problem_solving_ui(llm, tts, stt, audio_params, audio_output, name="Math (Beta)", interview_type="math"),
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get_problem_solving_ui(llm, tts, stt, audio_params, audio_output, name="SQL (Beta)", interview_type="sql"),
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]
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for tab in tabs:
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tab.render()
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return demo
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def create_interface(llm, tts, stt, audio_params):
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"""Create and configure the Gradio interface."""
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with gr.Blocks(title="AI Interviewer", theme=gr.themes.Default()) as demo:
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audio_output = gr.Audio(label="Play audio", autoplay=True, visible=os.environ.get("DEBUG", False), streaming=tts.streaming)
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get_problem_solving_ui(llm, tts, stt, audio_params, audio_output).render()
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get_instructions_ui(llm, tts, stt, audio_params).render()
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return demo
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ui/coding.py
CHANGED
@@ -1,80 +1,106 @@
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import gradio as gr
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import numpy as np
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from resources.data import fixed_messages, topic_lists
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from utils.ui import add_candidate_message, add_interviewer_message
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def
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chat_history = gr.State([])
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previous_code = gr.State("")
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)
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with gr.Accordion("Problem statement", open=True) as problem_acc:
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description = gr.Markdown(elem_id=f"
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with gr.Accordion("Solution", open=False) as solution_acc:
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with gr.Row() as content:
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with gr.Column(scale=2):
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code
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)
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elif interview_type == "sql":
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code = gr.Code(
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label="Please write your query here.",
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language="sql",
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lines=46,
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elem_id=f"{interview_type}_code",
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)
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else:
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code = gr.Code(
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label="Please write any notes for your solution here.",
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language=None,
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lines=46,
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elem_id=f"{interview_type}_code",
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)
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with gr.Column(scale=1):
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end_btn = gr.Button("Finish the interview", interactive=False, variant="stop", elem_id=f"
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chat = gr.Chatbot(label="Chat", show_label=False, show_share_button=False, elem_id=f"
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message = gr.Textbox(
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label="Message",
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show_label=False,
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@@ -82,31 +108,41 @@ def get_problem_solving_ui(llm, tts, stt, default_audio_params, audio_output, na
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max_lines=3,
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interactive=True,
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container=False,
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elem_id=f"
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)
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send_btn = gr.Button("Send", interactive=False, elem_id=f"
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audio_input = gr.Audio(interactive=False, **default_audio_params, elem_id=f"
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audio_buffer = gr.State(np.array([], dtype=np.int16))
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transcript = gr.State({"words": [], "not_confirmed": 0, "last_cutoff": 0, "text": ""})
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with gr.Accordion("Feedback", open=True) as feedback_acc:
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feedback = gr.Markdown(elem_id=f"
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# Start button click action chain
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start_btn.click(fn=add_interviewer_message(fixed_messages["start"]), inputs=[chat], outputs=[chat]).success(
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fn=
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).success(
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fn=lambda: (
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).success(
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fn=llm.get_problem,
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inputs=[requirements, difficulty_select, topic_select,
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outputs=[description],
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scroll_to_output=True,
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).success(
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fn=llm.init_bot, inputs=[description,
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).success(
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fn=lambda: (gr.update(
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outputs=[solution_acc, end_btn, audio_input, send_btn],
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)
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@@ -124,7 +160,10 @@ def get_problem_solving_ui(llm, tts, stt, default_audio_params, audio_output, na
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),
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outputs=[solution_acc, end_btn, problem_acc, audio_input, send_btn],
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).success(
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fn=
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)
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send_btn.click(fn=add_candidate_message, inputs=[message, chat], outputs=[chat]).success(
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@@ -154,9 +193,11 @@ def get_problem_solving_ui(llm, tts, stt, default_audio_params, audio_output, na
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fn=lambda: gr.update(interactive=True), outputs=[send_btn]
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).success(fn=lambda: None, outputs=[audio_input])
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return problem_tab
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import gradio as gr
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import numpy as np
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import os
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from resources.data import fixed_messages, topic_lists
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from utils.ui import add_candidate_message, add_interviewer_message
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def change_code_area(interview_type):
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if interview_type == "coding":
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return gr.update(
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label="Please write your code here. You can use any language, but only Python syntax highlighting is available.",
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language="python",
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)
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elif interview_type == "sql":
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return gr.update(
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label="Please write your query here.",
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language="sql",
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)
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else:
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return gr.update(
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label="Please write any notes for your solution here.",
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language=None,
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)
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def get_problem_solving_ui(llm, tts, stt, default_audio_params, audio_output):
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with gr.Tab("Interview", render=False, elem_id=f"tab") as problem_tab:
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chat_history = gr.State([])
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previous_code = gr.State("")
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hi_markdown = gr.Markdown(
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"<h2 style='text-align: center;'> Hi! I'm here to guide you through a practice session for your technical interview. Choose the interview settings to begin.</h2>\n"
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)
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with gr.Row() as init_acc:
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with gr.Column(scale=3):
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interview_type_select = gr.Dropdown(
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show_label=False,
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info="Type of the interview.",
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choices=["coding", "ml_design", "ml_theory", "system_design", "math", "sql"],
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value="coding",
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container=True,
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allow_custom_value=False,
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elem_id=f"interview_type_select",
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scale=2,
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)
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difficulty_select = gr.Dropdown(
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show_label=False,
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info="Difficulty of the problem.",
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choices=["Easy", "Medium", "Hard"],
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value="Medium",
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container=True,
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allow_custom_value=True,
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elem_id=f"difficulty_select",
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scale=2,
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)
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topic_select = gr.Dropdown(
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show_label=False,
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info="Topic (you can type any value).",
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choices=topic_lists[interview_type_select.value],
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value=np.random.choice(topic_lists[interview_type_select.value]),
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container=True,
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allow_custom_value=True,
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elem_id=f"topic_select",
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scale=2,
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)
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with gr.Column(scale=4):
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requirements = gr.Textbox(
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label="Requirements",
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show_label=False,
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placeholder="Specify additional requirements if any.",
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container=False,
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lines=5,
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elem_id=f"requirements",
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)
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with gr.Row():
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terms_checkbox = gr.Checkbox(
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label="",
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container=False,
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value=not os.getenv("IS_DEMO", False),
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interactive=True,
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elem_id=f"terms_checkbox",
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min_width=20,
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)
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with gr.Column(scale=100):
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gr.Markdown(
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"#### I agree to the [terms and conditions](https://github.com/IliaLarchenko/Interviewer?tab=readme-ov-file#important-legal-and-compliance-information)"
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)
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start_btn = gr.Button("Generate a problem", elem_id=f"start_btn", interactive=not os.getenv("IS_DEMO", False))
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with gr.Accordion("Problem statement", open=True, visible=False) as problem_acc:
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description = gr.Markdown(elem_id=f"problem_description", line_breaks=True)
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with gr.Accordion("Solution", open=True, visible=False) as solution_acc:
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with gr.Row() as content:
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with gr.Column(scale=2):
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code = gr.Code(
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label="Please write your code here.",
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language="python",
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lines=46,
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elem_id=f"code",
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)
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with gr.Column(scale=1):
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end_btn = gr.Button("Finish the interview", interactive=False, variant="stop", elem_id=f"end_btn")
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chat = gr.Chatbot(label="Chat", show_label=False, show_share_button=False, elem_id=f"chat")
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message = gr.Textbox(
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label="Message",
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show_label=False,
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max_lines=3,
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interactive=True,
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container=False,
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elem_id=f"message",
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)
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send_btn = gr.Button("Send", interactive=False, elem_id=f"send_btn")
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audio_input = gr.Audio(interactive=False, **default_audio_params, elem_id=f"audio_input")
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audio_buffer = gr.State(np.array([], dtype=np.int16))
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transcript = gr.State({"words": [], "not_confirmed": 0, "last_cutoff": 0, "text": ""})
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with gr.Accordion("Feedback", open=True, visible=False) as feedback_acc:
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feedback = gr.Markdown(elem_id=f"feedback", line_breaks=True)
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# Start button click action chain
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start_btn.click(fn=add_interviewer_message(fixed_messages["start"]), inputs=[chat], outputs=[chat]).success(
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fn=tts.read_last_message, inputs=[chat], outputs=[audio_output]
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).success(
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fn=lambda: (
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gr.update(visible=False),
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gr.update(interactive=False),
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gr.update(interactive=False),
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gr.update(interactive=False),
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gr.update(visible=False),
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),
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outputs=[init_acc, start_btn, terms_checkbox, interview_type_select, hi_markdown],
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).success(
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fn=lambda: (gr.update(visible=True)),
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outputs=[problem_acc],
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).success(
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fn=llm.get_problem,
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inputs=[requirements, difficulty_select, topic_select, interview_type_select],
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outputs=[description],
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scroll_to_output=True,
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).success(
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fn=llm.init_bot, inputs=[description, interview_type_select], outputs=[chat_history]
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).success(
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fn=lambda: (gr.update(visible=True), gr.update(interactive=True), gr.update(interactive=True), gr.update(interactive=True)),
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outputs=[solution_acc, end_btn, audio_input, send_btn],
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)
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),
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outputs=[solution_acc, end_btn, problem_acc, audio_input, send_btn],
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).success(
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fn=lambda: (gr.update(visible=True)),
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outputs=[feedback_acc],
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).success(
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fn=llm.end_interview, inputs=[description, chat_history, interview_type_select], outputs=[feedback]
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)
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send_btn.click(fn=add_candidate_message, inputs=[message, chat], outputs=[chat]).success(
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fn=lambda: gr.update(interactive=True), outputs=[send_btn]
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).success(fn=lambda: None, outputs=[audio_input])
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interview_type_select.change(
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fn=lambda x: gr.update(choices=topic_lists[x], value=np.random.choice(topic_lists[x])),
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inputs=[interview_type_select],
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outputs=[topic_select],
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).success(fn=change_code_area, inputs=[interview_type_select], outputs=[code])
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terms_checkbox.change(fn=lambda x: gr.update(interactive=x), inputs=[terms_checkbox], outputs=[start_btn])
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return problem_tab
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