Interact MCP
I

Interact MCP

The Interactive Feedback MCP Server project optimizes the AI assistant's task flow through user feedback, reducing resource consumption and improving performance.
2 points
9.9K

What is Interactive Feedback MCP?

This is a middleware protocol server designed for AI assistants, which optimizes the workflow by requesting user feedback at critical decision points. It changes the traditional mode where AI directly executes operations to an interactive mode of 'suggest - confirm - execute'.

How to use Interactive Feedback MCP?

Simply add specific instructions to the AI assistant's prompt and configure the MCP server connection. The system will automatically pop up an interactive window when confirmation is needed.

Applicable scenarios

It is particularly suitable for development tasks that require precise control, high - risk operations (such as file modification), or multi - step workflows that require manual confirmation.

Main features

Interactive workflow
Pause execution at critical nodes and request user confirmation to avoid incorrect operations.
Cost optimization
Reduce up to 25 unnecessary API calls, significantly reducing usage costs.
Project - aware configuration
Automatically remember the preference settings for each project, including commonly used commands and window layouts.
Advantages
Break down complex operations into manageable interactive steps
Reduce unnecessary API calls by an average of 70%
Cross - platform support (Windows/macOS/Linux)
Visual confirmation avoids misoperations
Limitations
Requires initial configuration to use
May cause interruptions to fully automated processes
Currently only supports the graphical interface of the Qt framework

How to use

Install dependencies
Ensure that Python 3.11+ and the uv package manager are installed on the system.
Get the code
Clone the repository or download the source code.
Configure Cursor
Add the MCP server configuration in the Cursor settings, or modify the mcp.json file.

Usage examples

Code refactoring confirmation
Request confirmation when the AI is about to refactor a critical code file.
Multi - step task decomposition
Break down complex tasks into confirmable steps.

Frequently Asked Questions

Why isn't my configuration saved?
How to verify that the MCP server is running properly?
Which AI assistant platforms are supported?

Related resources

GitHub repository
Project source code and latest version
uv documentation
Usage guide for the Python package manager
Cursor MCP documentation
Official MCP protocol reference

Installation

Copy the following command to your Client for configuration
{
          "mcpServers": {
            "interactive-feedback-mcp": {
              "command": "uv",
              "args": [
                "--directory",
                "/Users/fabioferreira/Dev/scripts/interactive-feedback-mcp",
                "run",
                "server.py"
              ],
              "timeout": 600,
              "autoApprove": [
                "interactive_feedback"
              ]
            }
          }
        }
Note: Your key is sensitive information, do not share it with anyone.

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