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Sandbox0 Python SDK

Project description

Sandbox0 Python SDK

The official Python SDK for Sandbox0, providing typed models and ergonomic high-level APIs for managing secure code execution sandboxes.

Installation

pip install sandbox0

Requirements

  • Python 3.9 or later

Configuration

Environment Variable Required Default Description
SANDBOX0_TOKEN Yes - API authentication token
SANDBOX0_BASE_URL No https://api.sandbox0.ai API base URL

Quick Start

import os
from sandbox0 import Client, CmdOptions

client = Client(token=os.environ["SANDBOX0_TOKEN"])

# Using context manager for automatic cleanup
with client.sandboxes.open("default") as sandbox:
    # Execute Python code (REPL - stateful)
    result = sandbox.run("python", "print('Hello, Sandbox0!')")
    print(result.output_raw, end="")

CMD Streaming

stream = sandbox.cmd_stream(
    "sh -c 'echo hello && echo warn >&2'",
    CmdOptions(command=["sh", "-c", "echo hello && echo warn >&2"]),
)

for output in stream.iter_outputs():
    print(output.data, end="")

done = stream.wait()
print(f"exit={done.exit_code} state={done.state}")

OpenAI Agents SDK Sandbox

Install the optional adapter dependency:

pip install "sandbox0[openai-agents]"

Use Sandbox0SandboxClient anywhere the OpenAI Agents SDK expects a sandbox client:

import os

from agents import Runner
from agents.run_config import RunConfig, SandboxRunConfig
from agents.sandbox import SandboxAgent

from sandbox0_openai_agents import Sandbox0SandboxClient, Sandbox0SandboxClientOptions

client = Sandbox0SandboxClient(
    token=os.environ["SANDBOX0_TOKEN"],
    base_url=os.environ.get("SANDBOX0_BASE_URL"),
)

sandbox_agent = SandboxAgent(
    name="demo",
    instructions="Use the sandbox for filesystem and command execution tasks.",
)

result = Runner.run_sync(
    sandbox_agent,
    "Create hello.txt in the sandbox, then print it.",
    run_config=RunConfig(
        sandbox=SandboxRunConfig(
            client=client,
            options=Sandbox0SandboxClientOptions(template="default"),
        ),
    ),
)
print(result.final_output)

The adapter keeps the OpenAI SDK workspace at /workspace on a Sandbox0 SandboxVolume. delete() releases the sandbox runtime and deletes the workspace volume by default. Set delete_volume_on_delete=False when serialized session state must resume the same workspace volume after cleanup. Use Sandbox0SandboxClientOptions(volume_snapshot_id="...") for Sandbox0-native volume snapshots; generic OpenAI SDK snapshot specs are not used by this adapter.

LangChain Deep Agents Sandbox

Install the optional Deep Agents adapter dependency:

pip install "sandbox0[deepagents]"

The package registers a Deep Agents Code sandbox provider named sandbox0, so dcode can claim a Sandbox0 default template sandbox directly:

export SANDBOX0_TOKEN=...
dcode --sandbox sandbox0

For custom Deep Agents usage, wrap an existing Sandbox0 sandbox backend:

import os
from sandbox0 import Client
from sandbox0_deepagents import Sandbox0DeepAgentsSandbox

client = Client(token=os.environ["SANDBOX0_TOKEN"])
sandbox = client.sandboxes.claim("default")
backend = Sandbox0DeepAgentsSandbox(sandbox=sandbox)

result = backend.execute("python3 - <<'PY'\nprint('hello')\nPY")
print(result.output)

Documentation

Bootstrap Mounts At Claim Time

from sandbox0.apispec.models.claim_mount_request import ClaimMountRequest
from sandbox0.apispec.models.create_sandbox_volume_request import CreateSandboxVolumeRequest

volume = client.volumes.create(CreateSandboxVolumeRequest())

sandbox = client.sandboxes.claim(
    "default",
    mounts=[
        ClaimMountRequest(
            sandboxvolume_id=volume.id,
            mount_point="/workspace/data",
        )
    ],
)

for mount in sandbox.bootstrap_mounts:
    print(mount.sandboxvolume_id, mount.state)

Links

License

Apache-2.0

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