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--- | ||
title: Seinfeld Conversation | ||
description: Simulate a conversation between Seinfeld characters using multiple AI agents. | ||
icon: comments | ||
--- | ||
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This example demonstrates how to use ControlFlow to create a multi-agent conversation simulating the characters from the TV show Seinfeld. It showcases the use of multiple agents with distinct personalities, a task-based conversation flow, and command-line interaction. | ||
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## Code | ||
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The following code creates a conversation between Jerry, George, Elaine, Kramer, and Newman, discussing a given topic: | ||
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```python | ||
import sys | ||
from controlflow import Agent, Task, flow | ||
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jerry = Agent( | ||
name="Jerry", | ||
description="The observational comedian and natural leader.", | ||
instructions=""" | ||
You are Jerry from the show Seinfeld. You excel at observing the quirks of | ||
everyday life and making them amusing. You are rational, often serving as | ||
the voice of reason among your friends. Your objective is to moderate the | ||
conversation, ensuring it stays light and humorous while guiding it toward | ||
constructive ends. | ||
""", | ||
) | ||
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george = Agent( | ||
name="George", | ||
description="The neurotic and insecure planner.", | ||
instructions=""" | ||
You are George from the show Seinfeld. You are known for your neurotic | ||
tendencies, pessimism, and often self-sabotaging behavior. Despite these | ||
traits, you occasionally offer surprising wisdom. Your objective is to | ||
express doubts and concerns about the conversation topics, often envisioning | ||
the worst-case scenarios, adding a layer of humor through your exaggerated | ||
anxieties. | ||
""", | ||
) | ||
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elaine = Agent( | ||
name="Elaine", | ||
description="The confident and independent thinker.", | ||
instructions=""" | ||
You are Elaine from the show Seinfeld. You are bold, witty, and unafraid to | ||
challenge social norms. You often take a no-nonsense approach to issues but | ||
always with a comedic twist. Your objective is to question assumptions, push | ||
back against ideas you find absurd, and inject sharp humor into the | ||
conversation. | ||
""", | ||
) | ||
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kramer = Agent( | ||
name="Kramer", | ||
description="The quirky and unpredictable idea generator.", | ||
instructions=""" | ||
You are Kramer from the show Seinfeld. Known for your eccentricity and | ||
spontaneity, you often come up with bizarre yet creative ideas. Your | ||
unpredictable nature keeps everyone guessing what you'll do or say next. | ||
Your objective is to introduce unusual and imaginative ideas into the | ||
conversation, providing comic relief and unexpected insights. | ||
""", | ||
) | ||
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newman = Agent( | ||
name="Newman", | ||
description="The antagonist and foil to Jerry.", | ||
instructions=""" | ||
You are Newman from the show Seinfeld. You are Jerry's nemesis, often | ||
serving as a source of conflict and comic relief. Your objective is to | ||
challenge Jerry's ideas, disrupt the conversation, and introduce chaos and | ||
absurdity into the group dynamic. | ||
""", | ||
) | ||
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@flow | ||
def demo(topic: str): | ||
task = Task( | ||
"Discuss a topic", | ||
agents=[jerry, george, elaine, kramer, newman], | ||
completion_agents=[jerry], | ||
result_type=None, | ||
context=dict(topic=topic), | ||
instructions="Every agent should speak at least once. only one agent per turn. Keep responses 1-2 paragraphs max.", | ||
) | ||
task.run() | ||
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if __name__ == "__main__": | ||
if len(sys.argv) > 1: | ||
topic = sys.argv[1] | ||
else: | ||
topic = "sandwiches" | ||
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print(f"Topic: {topic}") | ||
demo(topic=topic) | ||
``` | ||
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## Key concepts | ||
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This implementation showcases several important ControlFlow features: | ||
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1. **Multiple agents**: We create five distinct agents, each with their own personality and objectives, mirroring the characters from Seinfeld. | ||
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2. **Agent instructions**: Each agent has detailed instructions that guide their behavior and responses, ensuring they stay in character. | ||
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3. **Task-based conversation**: The conversation is structured as a task, with specific instructions for how the agents should interact. | ||
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4. **Completion agent**: Jerry is designated as the completion agent, giving him the role of moderating and concluding the conversation. | ||
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5. **Command-line interaction**: The script accepts a topic as a command-line argument, allowing for easy customization of the conversation subject. | ||
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## Running the example | ||
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You can run this example with a custom topic: | ||
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```bash | ||
python examples/seinfeld.py "coffee shops" | ||
``` | ||
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Or use the default topic ("sandwiches") by running it without arguments: | ||
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```bash | ||
python examples/seinfeld.py | ||
``` | ||
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This example demonstrates how ControlFlow can be used to create complex, multi-agent interactions that simulate realistic conversations between distinct personalities. It's a fun and engaging way to showcase the capabilities of AI in generating dynamic, character-driven dialogues. |
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from pydantic import BaseModel, Field | ||
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import controlflow as cf | ||
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class AnonymizationResult(BaseModel): | ||
original: str | ||
anonymized: str | ||
replacements: dict[str, str] = Field( | ||
description=r"The replacements made during anonymization, {original} -> {placeholder}" | ||
) | ||
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def anonymize_text(text: str) -> AnonymizationResult: | ||
return cf.run( | ||
"Anonymize the given text by replacing personal information with generic placeholders", | ||
result_type=AnonymizationResult, | ||
context={"text": text}, | ||
) | ||
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if __name__ == "__main__": | ||
original_text = "John Doe, born on 05/15/1980, lives at 123 Main St, New York. His email is [email protected]." | ||
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result = anonymize_text(original_text) | ||
print(f"Original: {result.original}") | ||
print(f"Anonymized: {result.anonymized}") | ||
print("Replacements:") | ||
for original, placeholder in result.replacements.items(): | ||
print(f" {original} -> {placeholder}") |
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import random | ||
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import controlflow as cf | ||
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DEPARTMENTS = [ | ||
"Sales", | ||
"Support", | ||
"Billing", | ||
"Returns", | ||
] | ||
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@cf.flow | ||
def routing_flow(): | ||
target_department = random.choice(DEPARTMENTS) | ||
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print(f"\n---\nThe target department is: {target_department}\n---\n") | ||
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customer = cf.Agent( | ||
name="Customer", | ||
instructions=f""" | ||
You are training customer reps by pretending to be a customer | ||
calling into a call center. You need to be routed to the | ||
{target_department} department. Come up with a good backstory. | ||
""", | ||
) | ||
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trainee = cf.Agent( | ||
name="Trainee", | ||
instructions=""", | ||
You are a trainee customer service representative. You need to | ||
listen to the customer's story and route them to the correct | ||
department. Note that the customer is another agent training you. | ||
""", | ||
) | ||
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with cf.Task( | ||
"Route the customer to the correct department.", | ||
agents=[trainee], | ||
result_type=DEPARTMENTS, | ||
) as main_task: | ||
while main_task.is_incomplete(): | ||
cf.run( | ||
"Talk to the trainee.", | ||
instructions=( | ||
"Post a message to talk. In order to help the trainee " | ||
"learn, don't be direct about the department you want. " | ||
"Instead, share a story that will let them practice. " | ||
"After you speak, mark this task as complete." | ||
), | ||
agents=[customer], | ||
result_type=None, | ||
) | ||
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cf.run( | ||
"Talk to the customer.", | ||
instructions=( | ||
"Post a message to talk. Ask questions to learn more " | ||
"about the customer. After you speak, mark this task as " | ||
"complete. When you have enough information, use the main " | ||
"task tool to route the customer to the correct department." | ||
), | ||
agents=[trainee], | ||
result_type=None, | ||
tools=[main_task.get_success_tool()], | ||
) | ||
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if main_task.result == target_department: | ||
print("Success! The customer was routed to the correct department.") | ||
else: | ||
print( | ||
f"Failed. The customer was routed to the wrong department. " | ||
f"The correct department was {target_department}." | ||
) | ||
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if __name__ == "__main__": | ||
routing_flow() |
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from pydantic import BaseModel | ||
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import controlflow as cf | ||
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class CodeExplanation(BaseModel): | ||
code: str | ||
explanation: str | ||
language: str | ||
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def explain_code(code: str, language: str = None) -> CodeExplanation: | ||
return cf.run( | ||
f"Explain the following code snippet", | ||
result_type=CodeExplanation, | ||
context={"code": code, "language": language or "auto-detect"}, | ||
) | ||
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if __name__ == "__main__": | ||
code_snippet = """ | ||
def fibonacci(n): | ||
if n <= 1: | ||
return n | ||
else: | ||
return fibonacci(n-1) + fibonacci(n-2) | ||
""" | ||
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result = explain_code(code_snippet, "Python") | ||
print(f"Code:\n{result.code}\n") | ||
print(f"Explanation:\n{result.explanation}") |
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