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from flask import Flask, request, jsonify
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from transformers import AutoModelForCausalLM, AutoTokenizer
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from agents.front_end_agent import FrontEndAgent
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from agents.back_end_agent import BackEndAgent
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from agents.database_agent import DatabaseAgent
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from agents.devops_agent import DevOpsAgent
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from agents.project_management_agent import ProjectManagementAgent
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from integration.integration_layer import IntegrationLayer
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app = Flask(__name__)
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model_name = "gpt-3"
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tokenizer = AutoTokenizer.from_pretrained(model_name)
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model = AutoModelForCausalLM.from_pretrained(model_name)
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front_end_agent = FrontEndAgent(model, tokenizer)
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back_end_agent = BackEndAgent(model, tokenizer)
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database_agent = DatabaseAgent(model, tokenizer)
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devops_agent = DevOpsAgent(model, tokenizer)
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project_management_agent = ProjectManagementAgent(model, tokenizer)
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integration_layer = IntegrationLayer(front_end_agent, back_end_agent, database_agent, devops_agent, project_management_agent)
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@app.route('/')
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def home():
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return "Welcome to the Mixture of Agents Model API!"
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@app.route('/process', methods=['POST'])
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def process_task():
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data = request.json
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task_type = data.get('task_type')
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task_data = data.get('task_data')
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if not task_type or not task_data:
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return jsonify({"error": "task_type and task_data are required"}), 400
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try:
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result = integration_layer.process_task(task_type, task_data)
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return jsonify({"result": result})
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except ValueError as e:
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return jsonify({"error": str(e)}), 400
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if __name__ == '__main__':
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app.run(debug=True)
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