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statecli-mcp-server
Advanced tools
Memory and self-awareness layer for AI agents - MCP server for state tracking, replay, and undo
Give AI agents the ability to remember, replay, and undo their actions.
Agent Infrastructure | Memory Layer | Self-Awareness | Undo Capability
StateCLI is the memory and self-awareness layer for AI coding agents.
It gives agents three critical capabilities they lack:
🧠 Memory - Remember what they did (log, replay)
⏮️ Undo - Fix mistakes instantly (checkpoint, rollback)
👁️ Self-Awareness - See their impact (track changes)
This isn't a dev tool. It's agent infrastructure.
AI agents are powerful but blind. They:
StateCLI fixes this:
Agent Thought: "I changed something but don't know what"
→ statecli_replay(entity) → See exact changes
Agent Thought: "I broke something and need to undo"
→ statecli_undo(entity) → Rollback instantly
Agent Thought: "I want to try something risky"
→ statecli_checkpoint(entity) → Save first, rollback if needed
Agent Thought: "I need to understand my past behavior"
→ statecli_log(entity) → View complete history
Start watching your project:
statecli watch start --auto-checkpoint
Now StateCLI automatically:
See what changed:
statecli diff --time 5m
Undo mistakes:
statecli undo
5 core tools for agent memory & self-awareness:
statecli_replay - Show what the agent just didstatecli_undo - Rollback mistakesstatecli_checkpoint - Save state before risky opsstatecli_log - View complete historystatecli_track - Track important state changesMCP Setup:
{
"mcpServers": {
"statecli": {
"command": "npx",
"args": ["-y", "statecli-mcp-server"]
}
}
}
# Global install
npm install -g statecli-mcp-server
# Start auto-tracking
cd your-project
statecli watch start --auto-checkpoint
statecli_replayDescription: Replay state changes for an entity. Shows step-by-step what happened.
Use when: Debugging, understanding past behavior, finding errors
Input:
{
"entity": "order:7421",
"actor": "ai-agent"
}
Output: JSON array of state changes with timestamps
statecli_undoDescription: Undo state changes. Rollback when something went wrong.
Use when: Made a mistake, need to retry, want to revert
Input:
{
"entity": "order:7421",
"steps": 3
}
Output: Confirmation of undo with restored state
statecli_checkpointDescription: Create named checkpoint before making changes.
Use when: About to do something risky, want rollback point
Input:
{
"entity": "order:7421",
"name": "before-refund"
}
Output: Checkpoint ID for later reference
statecli_logDescription: View state change history for an entity.
Use when: Need to see past actions, audit trail, understanding behavior
Input:
{
"entity": "order:7421",
"since": "1h ago",
"actor": "ai-agent"
}
Output: JSON array of all state changes
statecli_trackDescription: Explicitly track a state change.
Use when: Making important state modifications
Input:
{
"entity_type": "order",
"entity_id": "7421",
"state": { "status": "paid", "amount": 49.99 }
}
Output: Confirmation of tracked change
Add to ~/Library/Application Support/Claude/claude_desktop_config.json:
{
"mcpServers": {
"statecli": {
"command": "npx",
"args": ["-y", "statecli-mcp-server"]
}
}
}
Ctrl + Shift + P → type Open MCP Config{
"mcpServers": {
"statecli": {
"command": "npx",
"args": ["-y", "statecli-mcp-server"]
}
}
}
Ctrl + Shift + P → Reload Window)Add to your MCP configuration:
{
"mcpServers": {
"statecli": {
"command": "npx",
"args": ["-y", "statecli-mcp-server"]
}
}
}
Minimal working example for autonomous agents:
// Agent debug loop with StateCLI
try {
await agent.run(task);
} catch (error) {
// Get replay of what just happened
const replay = await mcp.call("statecli_replay", {
entity: `task:${task.id}`,
actor: "ai-agent"
});
// Analyze what went wrong
const analysis = await llm.analyze({
replay: replay.result,
error: error.message,
prompt: "What went wrong in this sequence?"
});
// Undo if fixable
if (analysis.canRetry) {
await mcp.call("statecli_undo", {
entity: `task:${task.id}`,
steps: 1
});
// Retry with fix
await agent.runWithFix(task, analysis.fix);
}
}
All MCP tool outputs are JSON-stable and safe for autonomous agents.
Example statecli_replay output:
{
"entity": "order:7421",
"changes": [
{
"timestamp": "2025-01-07T10:23:45Z",
"step": 1,
"before": { "status": null },
"after": { "status": "pending" },
"actor": "ai-agent"
}
],
"summary": "2 state changes found",
"suggested_next_actions": ["investigate step 2", "check for errors"]
}
const replay = await statecli_replay({ entity: "task:123" });
await statecli_checkpoint({ entity: "order:7421", name: "before-refund" });
await agent.processRefund(order);
const history = await statecli_log({
entity: "order:*",
actor: "ai-agent",
since: "24h ago"
});
await statecli_track({ entity: "task:123", state: {...} });
const log = await statecli_log({ entity: "task:123" });
npx -y statecli-mcp-server
npm install -g statecli-mcp-server
# Track a state change
statecli track order 7421 '{"status": "pending"}'
# Replay changes
statecli replay order:7421
# View log
statecli log order:7421
# Create checkpoint
statecli checkpoint order:7421 before-refund
# Undo last change
statecli undo order:7421
MIT - Free for all use including commercial AI agents
StateCLI - Self-awareness for AI agents
When agents can see what they did, undo mistakes, and learn from history, they become truly autonomous.
state-management, state-replay, time-travel-debugging, undo, rollback, checkpoint, agent-memory, agent-introspection, self-debugging, ai-agent-tools, mcp-server, model-context-protocol, autonomous-agents, agent-observability, state-tracking, langchain-tools, autogpt-plugins, crewai-tools
FAQs
Memory and self-awareness layer for AI agents - MCP server for state tracking, replay, and undo
The npm package statecli-mcp-server receives a total of 65 weekly downloads. As such, statecli-mcp-server popularity was classified as not popular.
We found that statecli-mcp-server demonstrated a healthy version release cadence and project activity because the last version was released less than a year ago. It has 1 open source maintainer collaborating on the project.

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