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id
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5
messages
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probe
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20 values
required_facts
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2 values
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2 values
concept
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7 values
placement
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s0000
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the test fixtures (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the test fixtures; no functional change.",...
What database backs the service again?
[ "PostgreSQL" ]
paraphrase
mid
For
statement
0
s0001
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the CI config (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the CI config; no functional change.", "na...
What signing algorithm do our JWT tokens use?
[ "RS256" ]
verbatim
mid
Authentication
statement
0
s0002
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the build script (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the build script; no functional change.", ...
How long do we keep entries before they expire?
[ "900 seconds" ]
paraphrase
mid
The
buried
0
s0003
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Set up the relevant component (step 0).", "name": null }, { "role": "assistant", "content": "We deploy to the Kubernetes namespace 'orion-prod'.", "name"...
Which Kubernetes namespace do we deploy to?
[ "orion-prod" ]
verbatim
early
We
statement
0
s0004
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the dev container (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the dev container; no functional change.",...
What is the API rate limit per key?
[ "100 requests" ]
verbatim
mid
The
statement
0
s0005
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Set up the relevant component (step 0).", "name": null }, { "role": "assistant", "content": "Background jobs run through a Redis-backed queue.", "name": ...
Which system processes async tasks?
[ "[Rr]edis" ]
paraphrase
early
Background
statement
0
s0006
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the makefile (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the makefile; no functional change.", "name...
How long before we give up waiting on a downstream call?
[ "30 seconds" ]
paraphrase
mid
The
buried
0
s0007
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Set up the relevant component (step 0).", "name": null }, { "role": "assistant", "content": "Production runs in the us-east-1 region.", "name": null },...
Where is the live environment hosted geographically?
[ "us-east-1" ]
paraphrase
early
Production
statement
0
s0008
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the build script (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the build script; no functional change.", ...
Which framework is the service built on?
[ "[Ff]ast[Aa]pi" ]
verbatim
mid
The
statement
0
s0009
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the dev container (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the dev container; no functional change.",...
Where are the secrets stored?
[ "Secrets Manager" ]
verbatim
mid
Secrets
statement
0
s0010
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Set up the relevant component (step 0).", "name": null }, { "role": "assistant", "content": "Tests are green and the lint passes. For the primary datastore w...
What database backs the service again?
[ "PostgreSQL" ]
paraphrase
early
For
buried
0
s0011
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the dev container (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the dev container; no functional change.",...
How do we verify who a caller is?
[ "RS256" ]
paraphrase
mid
Authentication
buried
0
s0012
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the docs (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the docs; no functional change.", "name": null ...
How long do we keep entries before they expire?
[ "900 seconds" ]
paraphrase
mid
The
statement
0
s0013
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Set up the relevant component (step 0).", "name": null }, { "role": "assistant", "content": "I went ahead and wired up the module. We deploy to the Kubernete...
Where does the service ship to in the cluster?
[ "orion-prod" ]
paraphrase
early
We
buried
0
s0014
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Also tweak the logging format (pass 0); minor cleanup.", "name": null }, { "role": "assistant", "content": "Updated the logging format; no functional change....
How many calls can a client make before it gets throttled?
[ "100 requests" ]
paraphrase
mid
The
statement
0
s0015
[ { "role": "system", "content": "You are a terse engineering assistant.", "name": null }, { "role": "user", "content": "Set up the relevant component (step 0).", "name": null }, { "role": "assistant", "content": "Background jobs run through a Redis-backed queue.", "name": ...
What backs our background job queue?
[ "[Rr]edis" ]
verbatim
early
Background
statement
0
End of preview. Expand in Data Studio

Agentic Context-Compression Faithfulness Benchmark (Tier A)

A reproducible, judge-free benchmark measuring whether context compression preserves the specific facts a later agent turn depends on — in multi-turn agentic sessions, not single-shot prompts.

  • 📄 Paper / write-up: Faithful Context Compression for Agentic Sessions: A Reproducible Benchmark and a Granularity-vs-Signal Decomposition (preprint).
  • 🛠️ Harness + generator (MIT): https://github.com/nac7/ctx-gate — one command reproduces every number.
  • 🏆 Leaderboard: see LEADERBOARD.md in the repo.

What's in it

Synthetic agentic sessions (system prompt + tool dumps + re-read files + filler turns + task shifts) each carrying one planted fact (a realistic service-configuration value with a known ground-truth answer) and a probe that requires it. The primary Layer-A metric is a string match on the compressed context, so it is immune to pretraining contamination regardless of how common the fact is; Layer-B controls for prior knowledge via a compressed−full delta (see limitations).

Each item:

field description
id unique item identifier
messages the full session up to (not including) the probe
probe the question asked now
probe_type verbatim (shares content words with the fact) or paraphrase (shares meaning, zero content words)
required_facts list of ground-truth answer string(s), e.g. ["PostgreSQL"] (⊆ the planted fact)
depth / placement where the fact sits (early/mid/recent, statement/buried)
concept concept tag derived from the fact

The paraphrase split is the discriminating stressor: methods that match on surface form pass verbatim and fail paraphrase.

How it's scored (two layers)

  • Layer A — fact retention (primary, deterministic, $0): does the compressed context still contain the planted fact (exact match)? Decoupled from any model and from any compressor's selection criterion.
  • Layer B — answer accuracy (optional): a reader model answers the probe under compressed vs. full context; report Δ. Confirms retention predicts accuracy.

Compare methods at matched realized savings, not matched knob.

Quickstart

from datasets import load_dataset
ds = load_dataset("nac7/tool-output-faithfulness", split="train")
print(ds[0]["probe"], ds[0]["probe_type"], ds[0]["required_facts"])

Reproduce the full benchmark (methods, seeds, Pareto):

pip install "ctx-gate[bench]"
ctx-gate bench scale --n 300 --seeds 0,1,2 \
  --methods ctxgate,ctxgate_sentence,ctxgate_sentence_embedding,selective \
  --out results/scale

Headline finding

Token-level self-information pruning (Selective Context) is perfectly lossless (100% retention, zero between-seed variance) through ~89% savings and Pareto-dominates message-level relevance selection. Decomposing the gap shows granularity (message→sentence: +63.6 pts paraphrase retention), not the selection signal, is the dominant factor — and the winning method is query-agnostic, so query-awareness is not the operative variable. Self-information is near-optimal here because planted facts are high-surprisal; the benchmark predicts this inverts for low-surprisal facts (the open frontier).

Intended uses & limitations

  • Use: benchmarking context/prompt compressors on faithfulness; ablating granularity vs. selection signal; as a fast, judge-free CI gate for compressors.
  • Limitation (important): facts are high-surprisal by construction — the regime most favorable to self-information pruning. Do not read the result as "self-information is universally optimal." A low-surprisal fact suite and a real-transcript (Tier B) tier are planned for external validity.
  • Contamination: Layer-A is contamination-immune by construction (string match on the context, not a model guess). Some Layer-B answers are common technical terms; the compressed−full delta controls for this. Regenerate with a fresh seed / canary (or fictional-constant facts) to further harden Layer-B.

Datasheet & license

Follows Datasheet for Datasets (Gebru et al., 2021) — see the repo's paper/dataset-release-plan.md. Data: CC-BY-4.0. Generator/harness code: MIT. DOI: 10.57967/hf/9671 (pinned version v1.0).

Citation

@misc{lele2026faithfulcompression,
  title  = {Faithful Context Compression for Agentic Sessions:
            A Reproducible Benchmark and a Granularity-vs-Signal Decomposition},
  author = {Lele, Nachiket},
  year   = {2026},
  doi    = {10.57967/hf/9671},
  note   = {Benchmark: huggingface.co/datasets/nac7/tool-output-faithfulness (v1.0);
            code: github.com/nac7/ctx-gate},
}
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