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With Anthropic’s context editing capabilities, you can automatically manage your context size.
When your context grows larger, previous tool results and thinking blocks will be removed.
This is useful to reduce costs, improve performance, and reduce the chances of hitting context limits.
Working example
anthropic_context_management.py
from agno.agent import Agent
from agno.models.anthropic import Claude
from agno.tools.hackernews import HackerNewsTools
agent = Agent(
model=Claude(
id="claude-sonnet-4-5",
# Activate and configure the context management feature
betas=["context-management-2025-06-27"],
context_management={
"edits": [
{
"type": "clear_tool_uses_20250919",
"trigger": {"type": "tool_uses", "value": 2},
"keep": {"type": "tool_uses", "value": 1},
}
]
},
),
instructions="You are a helpful assistant with access to the web.",
tools=[HackerNewsTools()],
session_id="context-editing",
add_history_to_context=True,
markdown=True,
)
agent.print_response(
"Search for AI regulation in US. Make multiple searches to find the latest information."
)
# Display context management metrics
print("\n" + "=" * 60)
print("CONTEXT MANAGEMENT SUMMARY")
print("=" * 60)
response = agent.get_last_run_output()
if response and response.metrics:
print(f"\nInput tokens: {response.metrics.input_tokens:,}")
# Print context management stats from the last message
if response and response.messages:
for message in reversed(response.messages):
if message.provider_data and "context_management" in message.provider_data:
edits = message.provider_data["context_management"].get("applied_edits", [])
if edits:
print(
f"\n✅ Saved: {edits[-1].get('cleared_input_tokens', 0):,} tokens"
)
print(f" Cleared: {edits[-1].get('cleared_tool_uses', 0)} tool uses")
break
print("\n" + "=" * 60)
Usage
Set up your virtual environment
uv venv --python 3.12
source .venv/bin/activate
Set your API key
export ANTHROPIC_API_KEY=xxx
Install dependencies
uv pip install -U anthropic agno
Run Agent
python anthropic_context_management.py