swarms docs

Former-commit-id: 9b4b61f9fede31c809b81ad4e27e5a46aaac4369
clean-history
Kye 1 year ago
parent 8903f356d0
commit b9d2aa3129

@ -93,10 +93,11 @@ out = flow.run("Generate a 10,000 word blog on health and wellness.")
- Integrate Flow's with various LLMs and Multi-Modality Models
```python
from swarms.models import OpenAIChat
from swarms.models import OpenAIChat, BioGPT, Anthropic
from swarms.structs import Flow
from swarms.structs.sequential_workflow import SequentialWorkflow
# Example usage
api_key = (
"" # Your actual API key here
@ -109,13 +110,21 @@ llm = OpenAIChat(
max_tokens=3000,
)
# Initialize the Flow with the language flow
biochat = BioGPT()
# Use Anthropic
anthropic = Anthropic()
# Initialize the agent with the language flow
agent1 = Flow(llm=llm, max_loops=1, dashboard=False)
# Create another Flow for a different task
# Create another agent for a different task
agent2 = Flow(llm=llm, max_loops=1, dashboard=False)
agent3 = Flow(llm=llm, max_loops=1, dashboard=False)
# Create another agent for a different task
agent3 = Flow(llm=biochat, max_loops=1, dashboard=False)
# agent4 = Flow(llm=anthropic, max_loops="auto")
# Create the workflow
workflow = SequentialWorkflow(max_loops=1)

@ -1,22 +1,7 @@
# Swarms
<div align="center">
Swarms is a modular framework that enables reliable and useful multi-agent collaboration at scale to automate real-world tasks.
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<!-- [![Swarm Fest](images/swarmfest.png)](https://github.com/users/kyegomez/projects/1) -->
## Vision
At Swarms, we're transforming the landscape of AI from siloed AI agents to a unified 'swarm' of intelligence. Through relentless iteration and the power of collective insight from our 1500+ Agora researchers, we're developing a groundbreaking framework for AI collaboration. Our mission is to catalyze a paradigm shift, advancing Humanity with the power of unified autonomous AI agent swarms.

@ -1,9 +1,12 @@
from swarms.models import OpenAIChat
from swarms.models import OpenAIChat, BioGPT, Anthropic
from swarms.structs import Flow
from swarms.structs.sequential_workflow import SequentialWorkflow
# Example usage
api_key = ""
api_key = (
"" # Your actual API key here
)
# Initialize the language flow
llm = OpenAIChat(
@ -12,24 +15,36 @@ llm = OpenAIChat(
max_tokens=3000,
)
# Initialize the Flow with the language flow
flow1 = Flow(llm=llm, max_loops=1, dashboard=False)
biochat = BioGPT()
# Use Anthropic
anthropic = Anthropic()
# Initialize the agent with the language flow
agent1 = Flow(llm=llm, max_loops=1, dashboard=False)
# Create another Flow for a different task
flow2 = Flow(llm=llm, max_loops=1, dashboard=False)
# Create another agent for a different task
agent2 = Flow(llm=llm, max_loops=1, dashboard=False)
# Create another agent for a different task
agent3 = Flow(llm=biochat, max_loops=1, dashboard=False)
# agent4 = Flow(llm=anthropic, max_loops="auto")
# Create the workflow
workflow = SequentialWorkflow(max_loops=1)
# Add tasks to the workflow
workflow.add("Generate a 10,000 word blog on health and wellness.", flow1)
workflow.add("Generate a 10,000 word blog on health and wellness.", agent1)
# Suppose the next task takes the output of the first task as input
workflow.add("Summarize the generated blog", flow2)
workflow.add("Summarize the generated blog", agent2)
workflow.add("Create a references sheet of materials for the curriculm", agent3)
# Run the workflow
workflow.run()
# Output the results
for task in workflow.tasks:
print(f"Task: {task.description}, Result: {task.result}")
print(f"Task: {task.description}, Result: {task.result}")
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