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import torch |
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from flask import Flask, render_template, request, jsonify |
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import os |
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from transformers import pipeline |
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from gtts import gTTS |
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from pydub import AudioSegment |
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from pydub.silence import detect_nonsilent |
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from salesforce import get_salesforce_connection |
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import re |
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from waitress import serve |
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from dotenv import load_dotenv |
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app = Flask(__name__) |
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device = "cuda" if torch.cuda.is_available() else "cpu" |
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asr_model = pipeline("automatic-speech-recognition", model="openai/whisper-small", device=0 if device == "cuda" else -1) |
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def generate_audio_prompt(text, filename): |
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tts = gTTS(text=text, lang="en") |
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tts.save(os.path.join("static", filename)) |
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prompts = { |
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"welcome": "Welcome to Biryani Hub.", |
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"ask_name": "Tell me your name.", |
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"ask_email": "Please provide your email address.", |
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"thank_you": "Thank you for registration." |
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} |
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for key, text in prompts.items(): |
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generate_audio_prompt(text, f"{key}.mp3") |
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SYMBOL_MAPPING = { |
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"at the rate": "@", |
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"at": "@", |
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"dot": ".", |
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"underscore": "_", |
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"hash": "#", |
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"plus": "+", |
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"dash": "-", |
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"comma": ",", |
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"space": " " |
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} |
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def convert_to_wav(input_path, output_path): |
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try: |
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audio = AudioSegment.from_file(input_path) |
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audio = audio.set_frame_rate(16000).set_channels(1) |
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audio.export(output_path, format="wav") |
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except Exception as e: |
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raise Exception(f"Audio conversion failed: {str(e)}") |
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def is_silent_audio(audio_path): |
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audio = AudioSegment.from_wav(audio_path) |
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nonsilent_parts = detect_nonsilent(audio, min_silence_len=500, silence_thresh=audio.dBFS-16) |
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return len(nonsilent_parts) == 0 |
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def extract_name_email_phone(text): |
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email = re.search(r'\S+@\S+', text) |
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phone = re.search(r'\+?\d{10,15}', text) |
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name = text.split(' ')[0] |
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email = email.group(0) if email else "[email protected]" |
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phone = phone.group(0) if phone else "0000000000" |
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return name, email, phone |
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sf = get_salesforce_connection() |
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load_dotenv() |
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def get_salesforce_connection(): |
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sf_username = os.getenv('SF_USERNAME') |
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sf_password = os.getenv('SF_PASSWORD') |
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sf_token = os.getenv('SF_SECURITY_TOKEN') |
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if not sf_username or not sf_password or not sf_token: |
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raise ValueError("Salesforce credentials are missing from environment variables.") |
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sf = Salesforce(username=sf_username, password=sf_password, security_token=sf_token) |
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print("Connected to Salesforce successfully!") |
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return sf |
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def create_salesforce_record(name, email, phone_number): |
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try: |
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customer_login = sf.Customer_Login__c.create({ |
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'Name': name, |
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'Email__c': email, |
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'Phone_Number__c': phone_number |
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}) |
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if customer_login.get('id'): |
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print(f"Record created successfully with ID: {customer_login['id']}") |
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return customer_login |
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else: |
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print("Record creation failed: No ID returned") |
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return {"error": "Record creation failed: No ID returned"} |
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except Exception as e: |
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print(f"Error creating Salesforce record: {str(e)}") |
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return {"error": f"Failed to create record in Salesforce: {str(e)}"} |
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@app.route("/") |
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def index(): |
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return render_template("index.html") |
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@app.route("/transcribe", methods=["POST"]) |
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def transcribe(): |
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if "audio" not in request.files: |
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return jsonify({"error": "No audio file provided"}), 400 |
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audio_file = request.files["audio"] |
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input_audio_path = os.path.join("static", "temp_input.wav") |
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output_audio_path = os.path.join("static", "temp.wav") |
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audio_file.save(input_audio_path) |
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try: |
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convert_to_wav(input_audio_path, output_audio_path) |
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if is_silent_audio(output_audio_path): |
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return jsonify({"error": "No speech detected. Please try again."}), 400 |
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result = asr_model(output_audio_path, generate_kwargs={"language": "en"}) |
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transcribed_text = result["text"].strip().capitalize() |
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name, email, phone_number = extract_name_email_phone(transcribed_text) |
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salesforce_response = create_salesforce_record(name, email, phone_number) |
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if "error" in salesforce_response: |
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print(f"Error creating record in Salesforce: {salesforce_response['error']}") |
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return jsonify(salesforce_response), 500 |
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print(f"Salesforce Response: {salesforce_response}") |
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return jsonify({"text": transcribed_text, "salesforce_record": salesforce_response}) |
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except Exception as e: |
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print(f"Error in transcribing or processing: {str(e)}") |
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return jsonify({"error": f"Speech recognition error: {str(e)}"}), 500 |
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if __name__ == "__main__": |
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serve(app, host="0.0.0.0", port=7860) |
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