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hypercompress

Query-aware, meaning-first context compression for LLM applications. Same objective as a commercial learned-model compressor — cut input tokens before they hit the model, keep the meaning — with a different set of engineering bets:

hosted commercial compressor hypercompress
Core trained 200KB policy model transparent BM25 + structural boosts
Latency ~60ms claimed ~1ms p50, ~2ms p95 (measured, below)
Cost free 5M tok/mo, then $1/M $0 forever, self-hosted
Privacy context sent to their API (or local pip) never leaves your process
Explainability black box every kept/dropped block carries reasons
Weak-signal behavior unknown declines to compress (risk=high), caller fails open
API hosted /api/v1/compress wire-compatible clone, self-hosted

The honest caveat: a well-trained learned scorer can beat lexical scoring on paraphrase-heavy queries (where the question shares few exact words with the evidence). That is the one axis we don't claim to win — run the included head-to-head harness on your traffic and let the data decide.

Benchmark (reproduce: python benchmarks/run_benchmark.py)

60 synthetic cases, ~50 near-topic distractor paragraphs each, evidence placed at a random position, retention = ALL answer spans present verbatim in the compressed output:

System Evidence retention Tokens saved (mean) p50 latency
hypercompress-adaptive 100% 78.3% 1.05ms
hypercompress-fixed@0.30 100% 54.0% 1.24ms
tail-keep@0.30 (baseline) 35.0% 70.0% ~0ms
random-drop@0.30 (baseline) 28.3% 70.6% ~0ms
head-keep@0.30 (baseline) 21.7% 70.0% ~0ms

Read these numbers for what they are: the questions share topic vocabulary and exact identifiers (codes, names, figures) with their evidence — the realistic case for support/RAG/incident queries, and exactly where lexical scoring shines. Paraphrase-only queries will score lower; the risk signal is designed to catch that (weak coverage → high → caller sends the original context).

vs LLMLingua / LongLLMLingua (measured, reproduce with benchmarks/vs_llmlingua.py)

24 standard + 16 paraphrase cases, all systems local on the same CPU ("safe savings" = savings on cases where every answer span survived):

Suite System Retention Saved Safe savings p50
Standard hypercompress hybrid 100% 75.5% 75.5% 1.6ms
Standard LLMLingua-2 @0.33 20.8% 68.2% 48.3% 2.0s
Standard LongLLMLingua (gpt2) 100% 63.5% 63.5% 8.8s
Paraphrase hypercompress hybrid 100% 73.2% 73.2% 8.5s
Paraphrase LLMLingua-2 @0.33 0% 68.3% 0% 1.7s
Paraphrase LongLLMLingua (gpt2) 100% 63.4% 63.4% 9.2s

The hybrid wins BOTH suites on safe savings with equal-or-better retention: a lexical fast path (~1.6ms) serves confidently-answerable queries, and a false-confidence guard (top-block score spike detection) routes everything else to a LongLLMLingua-style neural stage run at a harder rate (0.25 vs their 0.33) whose over-compression is rescued by a fingerprint sweep — re-adding identifier-bearing paragraphs the neural stage dropped. Credit where due: the fallback uses the llmlingua package itself; the wins come from the routing, the harder rate, and the sweep. Caveats: their backbone here is gpt2 (CPU constraint) — the ACL'24 paper used LLaMA-7B, which would score higher; and these are synthetic suites — validate on your own traffic (benchmarks/my_data_benchmark.py).

from hypercompress import compress_context_hybrid   # pip install ".[neural]"
result = compress_context_hybrid(context, question) # 1ms fast path, neural only on declines

Install

pip install .                 # core: zero dependencies
pip install ".[server]"       # + self-hosted API (FastAPI/uvicorn)
pip install ".[mcp]"          # + MCP server for coding agents
pip install ".[exact-tokens]" # + tiktoken for exact token counts

Library (drop-in for common compression-client conventions)

from hypercompress import compress_context

result = compress_context(context, question)          # adaptive mode
result = compress_context(context, question, 0.3)     # fixed 30% budget

result.compressed_text     # send this to the LLM
result.tokens_saved_pct    # e.g. 78.3
result.compression_risk    # "low" | "medium" | "high" -> fall back if high
result.kept_blocks         # audit trail: every block, score, reasons

Message-list form (system prompt + latest user message always verbatim):

from hypercompress import compress_for_turn
messages = compress_for_turn(messages)

Self-hosted API (hosted-API compatible)

uvicorn hypercompress.server:app --port 8765
# optional auth: export HYPERCOMPRESS_API_KEY=hc_your_key
curl -X POST localhost:8765/api/v1/compress \
  -H 'content-type: application/json' \
  -d '{"context":"...long context...","query":"what failed?"}'

Response schema matches hosted compression services (compressed_text, original_tokens, kept_tokens, tokens_saved_pct, important_kept_pct, compression_risk, kept_blocks, dropped_blocks, policy_name), and the same auth headers (X-API-Key / Authorization: Bearer) are accepted — existing hosted-API client code migrates by changing one URL.

Integrations (full hosted-API parity)

OpenAIhypercompress/wrappers/openai_wrapper.py

from openai import OpenAI
from hypercompress.wrappers.openai_wrapper import HyperCompressOpenAI
client = HyperCompressOpenAI(OpenAI())
client.chat.completions.create(model="gpt-4o-mini", messages=msgs)
client.stats.tokens_saved_pct   # verified savings, not vendor claims

Anthropichypercompress/wrappers/anthropic_wrapper.py

from hypercompress.wrappers.anthropic_wrapper import HyperCompressAnthropic
client = HyperCompressAnthropic(anthropic.Anthropic())

LangChainhypercompress/wrappers/langchain_hook.py

from hypercompress.wrappers.langchain_hook import compress_lc_messages
chain.invoke(compress_lc_messages(messages))

Express / Next.jsjs/src/index.js

const { expressMiddleware } = require("hypercompress");
app.post("/chat", expressMiddleware(), handler);   // compresses req.body.messages

Vercel AI SDK — provider-agnostic

const { wrapGenerateText } = require("hypercompress");
const gen = wrapGenerateText(generateText);
await gen({ model, messages });

MCP (Claude Code / Cursor / Codex / Windsurf)

pip install ".[mcp]"
claude mcp add hypercompress -- python -m hypercompress.mcp_server

Exposes compress_context and compress_file tools so agents can pull query-relevant slices of big files instead of whole files.

Guardrails (identical across every integration)

  1. System prompts and the latest user message are never compressed.
  2. Fail open — errors, timeouts, and compression_risk == "high" all send the original context. Compression must never break an answer.
  3. Elisions are marked with […] so the model knows content was removed.
  4. Savings are measured and logged locally; nothing here asks you to trust a marketing number.

How it works

splitter.py cuts context into structure-aware blocks (code fences atomic, markdown sections, chat turns, log runs with ERROR lines isolated). scoring.py ranks blocks with Okapi BM25 plus exact-identifier boosts (error codes, numbers, dotted names), bigram matches, log severity, and chat recency; headers inherit their best child's score so surviving sections keep their titles. core.py selects adaptively (keep while marginal relevance is meaningful) or under a fixed budget, stitches ±1 neighbor blocks for local coherence, reassembles in original order with […] gap markers, and computes compression_risk from measured query-term coverage.

Tests

python -m pytest tests/   # 14 tests: core behavior, wire compat, wrappers

Author

Built by Natarajan Venkatasubramaniam (Natarajan.Venkatasubramaniam@wissen.com).

License

MIT © 2026 Natarajan Venkatasubramaniam. See LICENSE.

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