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ClaudeWave

a tool that reduces token usage and request waste in coding-agent workflows by selecting, compressing, caching, and budgeting repository context

SubagentsRegistry oficial8 estrellas0 forksPythonNOASSERTIONActualizado today
Install as a Claude Code subagent
Method: Clone
Terminal
git clone https://github.com/natiixnt/redcon && cp redcon/*.md ~/.claude/agents/
1. Clone the repository and copy the agent .md definitions into ~/.claude/agents (or .claude/agents inside a project).
2. Start a new Claude Code session to load the agents.
3. Delegate work to them with the Task/Agent tool or by name.
Casos de uso

Resumen de Subagents

<div align="center">

# Redcon

**Deterministic context budgeting for AI coding agents**

Stop sending agents 200k tokens of irrelevant code. Redcon scores, compresses, and packs repo context so your agent gets what it actually needs.

[![PyPI](https://img.shields.io/pypi/v/redcon)](https://pypi.org/project/redcon/)
[![Tests](https://github.com/natiixnt/redcon/actions/workflows/test.yml/badge.svg)](https://github.com/natiixnt/redcon/actions/workflows/test.yml)
[![Python 3.10+](https://img.shields.io/badge/python-3.10%2B-blue.svg)](https://www.python.org/downloads/)
[![VS Code Extension](https://img.shields.io/visual-studio-marketplace/v/redcon.redcon?label=VS%20Code)](https://marketplace.visualstudio.com/items?itemName=redcon.redcon)
[![License: FSL-1.1-MIT](https://img.shields.io/badge/license-FSL--1.1--MIT-blue.svg)](LICENSE)

[Install](#install) - [Quick Start](#quick-start) - [How It Works](#how-it-works) - [Docs](docs/)

</div>

---

## The Problem

AI coding agents burn tokens on irrelevant context. You either:
- Dump the whole repo and pay for 200k input tokens per request, or
- Let the agent grep blindly and waste tool calls figuring out where to look

Redcon solves both. It ranks files by task relevance, compresses them with language-aware strategies (full, snippet, symbol extraction, summary), and packs the result under your token budget. Deterministic, local-first, no embeddings. One MCP server covers Claude Code, Cursor, Windsurf, Cline and Zed; a plain CLI covers CI. Measured on this repository it cuts input tokens by more than 83% at the same task coverage ([methodology](docs/methodology.md)).

## Punch above your plan

On a flat subscription - Claude Pro/Max, Cursor, GitHub Copilot - the token bill isn't what stings, the **usage limit** is. Redcon cuts the tokens each task needs, so the same plan covers far more work before you hit the weekly wall. Same subscription, more runway.

It stretches the budget you already pay for, and reports exactly how much it saved.

## Install

### Option 1: VS Code Extension (easiest)

1. Install [Redcon - Context Budget](https://marketplace.visualstudio.com/items?itemName=redcon.redcon) from the marketplace
2. Open the Redcon sidebar, click **Install & Set Up**
3. Reload window. Done.

The extension installs the CLI via pip, registers the MCP server for Claude Code, Cursor, and Windsurf, and gives you a sidebar with budget analytics, file rankings, and compression dashboards.

### Option 2: CLI + MCP Server

```bash
pip install "redcon[mcp]"
redcon init                      # creates redcon.toml + registers MCP
```

The `init` command auto-configures MCP for Claude Code, Cursor and Windsurf, plus VS Code, Codex CLI and Gemini CLI when they are detected, so your AI agent can call `redcon_rank`, `redcon_search`, `redcon_compress`, and `redcon_budget` as native tools. It also writes a short `AGENTS.md` section that tells agents to prefer these tools for context selection.

### Option 3: CLI only

```bash
pip install redcon
redcon init --no-mcp
```


## Quick Start

```bash
# Rank files relevant to a task
redcon plan "add rate limiting to auth API" --repo .

# Pack context under a token budget
redcon pack "refactor payment flow" --repo . --max-tokens 30000

# Compare compression strategies
redcon benchmark "add caching" --repo .

# Audit a PR for context growth
redcon pr-audit --repo . --base origin/main --head HEAD
```

Output goes to `run.json` (machine-readable) and `run.md` (human-readable). Use them in CI, or feed the compressed context directly into your agent.

## How It Works

```
task: "add rate limiting to auth"
       |
       v
  [1] scan    - incremental scan of repo files (cached)
       |
       v
  [2] rank    - score each file: keyword match, imports, file role, git history
       |
       v
  [3] compress - per-file strategy: full / snippet / symbol extraction / summary
       |
       v
  [4] pack    - fit top-N compressed files under token budget, drop the rest
       |
       v
  run.json + run.md + compressed_context ready for your agent
```

Every step is deterministic. Same input, same output. No embeddings, no random chunking.

## Benchmark: context-eval

Selection quality is measured, not claimed. [`context-eval/`](context-eval/)
is an open benchmark for context-selection tools: tasks come from real git
commits, ground truth is the files each commit actually modified, and every
tool packs the same token budget. Current results (33 tasks, 24k budget):

| Tool | Mean coverage | Tokens / coverage point |
|------|--------------:|------------------------:|
| `redcon` | **43.8%** | **306.8** |
| `keyword-topk` (baseline) | 29.8% | 538.9 |
| `aider-repomap` (real aider) | 15.3% | 533.3 |
| `pagerank` (baseline) | 11.4% | 720.0 |

Rerun it on any repo: `python context-eval/run.py --repo /path/to/repo`.
Methodology, limitations, and how to add your own tool:
[context-eval/README.md](context-eval/README.md).

## MCP Integration (Pull Model)

mcp-name: io.github.natiixnt/redcon

Instead of pushing a 30k-token blob to your agent, Redcon exposes 9 MCP tools the agent calls on demand:

| Tool | What it does |
|------|--------------|
| `redcon_rank` | Top-K files with scores and reasons - call this first |
| `redcon_overview` | Lightweight repo map grouped by directory |
| `redcon_repo_map` | Top ranked files plus their code signatures, fitted under a token budget |
| `redcon_compress` | Compressed single-file view for cheap inspection |
| `redcon_search` | Regex search scoped to ranked files or full repo |
| `redcon_structural_search` | ast-grep structural search - patterns match the AST, not text |
| `redcon_budget` | Plan fitting files within a token budget |
| `redcon_run` | Run a shell command, return its output compressed |
| `redcon_quality_check` | Run a command and verify the compressed output against the quality harness |

Typical agent flow uses ~5k tokens for exploration instead of 30k for a blob. The agent itself decides what to read in full.

Config gets written automatically to:
- `.mcp.json` (Claude Code)
- `.cursor/mcp.json` (Cursor)
- `~/.codeium/windsurf/mcp_config.json` (Windsurf)

## Command Output Compression

Source files are only half the bloat. The other half is command output: `git diff`, `pytest`, `cargo test`, `grep`, `ls -R`. Redcon's `redcon_run` MCP tool (and `redcon run` CLI) wraps the call, parses the output, and returns a budget-aware compressed view that preserves every fact the agent actually needs.

Headline reductions on representative inputs:

| Compressor | Fixture | Raw tokens | Compact | Ultra |
|------------|---------|-----------:|---------|-------|
| `git diff` | 12 files, 240 hunks | 8,078 | **97.0%** | 99.5% |
| `pytest` | 30 failures + 200 passes | 2,555 | **73.8%** | 99.2% |
| `grep`/`rg` | 600 matches across 50 files | 7,015 | **76.9%** | 99.9% |
| `find` | 500 paths | 3,398 | **81.3%** | 99.8% |
| `ls -R` | 30 dirs x 15 files | 1,543 | **33.5%** | 99.0% |
| `kubectl events` | 200-row CrashLoopBackOff | ~5,000 | **91.5%** | 99.5% |
| `py-spy collapsed` | 200 stacks | 2,385 | **90.0%** | 99.0% |
| `json-line log` | 200 NDJSON records | 6,038 | **91.1%** | 98.0% |
| `coverage report` | 50-file grid | 738 | **73.2%** | 95.0% |
| `psql EXPLAIN ANALYZE` | 11-node Postgres plan | 435 | **71.3%** | 93.3% |

Quality is enforced separately. Every compressor declares `must_preserve_patterns` (file paths in a diff, failing test names in pytest, branch name in `git status`, slowest node operator in EXPLAIN); the M8 quality harness rejects any compressor whose compact output drops a fact present in the raw input. Run it as a CI step:

```bash
redcon cmd-quality   # exits non-zero if any compressor regressed
redcon cmd-bench     # markdown table; --json for CI baselines
redcon run "git diff" --quality-floor compact --max-output-tokens 4000
```

**Twenty compressors** ship today: `git_diff`, `git_status`, `git_log`, `pytest`, `cargo_test`, `npm_test` (vitest+jest), `go_test`, `grep`, `ls`, `tree`, `find`, `lint` (ruff+mypy), `docker`, `pkg_install` (pip+npm+yarn), `kubectl_get`/`kubectl_events`, `profiler` (py-spy+perf), `json_log`, `coverage`, `sql_explain` (Postgres+MySQL TREE), `bundle_stats` (webpack + esbuild metafiles). Full per-schema benchmarks: [`docs/benchmarks/cmd/`](docs/benchmarks/cmd/).

### Cross-call dimension

Beyond per-call compression, four layers compose across an agent session:

- **Path aliases** (V41): repeated paths like `redcon/cmd/pipeline.py` collapse to `f001` on later mentions. Lazy first-use, never net-negative.
- **Content reference ledger** (V43): paragraph-shaped blocks above 6 cl100k tokens get session-stable `{ref:001}` aliases on second-and-later occurrences. Empirically 23% of session output had block-level overlap.
- **Symbol aliases** (V49): CamelCase types / multi-word snake_case identifiers (>=8 chars) collapse to `c001` aliases the same way paths do. Empirically 72% of distinct symbols recur >=2 times per session.
- **Snapshot delta vs prior call** (V47): when the same argv runs twice, ship only the delta. Schema-aware renderers for `pytest` (set-diff over failure names), `git_diff` (file-set with per-file +/- counts), and `coverage` (per-file pp moves) win meaningfully over generic line-diff. Always picks `min(cost_delta, cost_abs)` so non-regressive by construction.
- **Invariant cert** (V93): every COMPACT/VERBOSE output stamps `mp_sha=<16hex>` over the sorted multiset of `(pattern, capture)` extracted from raw. Auditors recompute the cert against the compressed text to detect spurious additions or capture thinning - upgrades the existing must-preserve boolean to set-equality.

Empirical measurement on 5 simulated agent sessions (`benchmarks/measure_sessions.py`): the cross-call layers add **+8.3% session-level saving** on top of the per-call compressors, with **+15% on heavy-overlap sessions** (debugging, search-and-edit) and near-zero on distinct-content sessions. V85 adver
agentai-agentai-agentsai-toolsreducetokentoken-optimization

Lo que la gente pregunta sobre redcon

¿Qué es natiixnt/redcon?

+

natiixnt/redcon es subagents para el ecosistema de Claude AI. a tool that reduces token usage and request waste in coding-agent workflows by selecting, compressing, caching, and budgeting repository context Tiene 8 estrellas en GitHub y se actualizó por última vez today.

¿Cómo se instala redcon?

+

Puedes instalar redcon clonando el repositorio (https://github.com/natiixnt/redcon) o siguiendo las instrucciones del README en GitHub. ClaudeWave también te ofrece bloques de instalación rápida en esta misma página.

¿Es seguro usar natiixnt/redcon?

+

natiixnt/redcon aún no ha sido auditado por nuestro agente de seguridad. Revisa el repositorio original en GitHub antes de usarlo en producción.

¿Quién mantiene natiixnt/redcon?

+

natiixnt/redcon es mantenido por natiixnt. La última actividad registrada en GitHub es de today, con 0 issues abiertos.

¿Hay alternativas a redcon?

+

Sí. En ClaudeWave puedes explorar subagents similares en /categories/agents, ordenados por popularidad o actividad reciente.

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