Qwen3.8 2.4T A95B vs Ternary Bonsai 4B

At a Glance

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Pricing and Limits
Input priceFrom · USD / 1M tokens$2.00Deepinfra · Sep 21, 2026Not reported
Output priceFrom · USD / 1M tokens$6.00Deepinfra · Sep 21, 2026Not reported
Context windowMaximum documented tokens262K33K
Model facts checkedAug 28, 2026View model evidence →Sep 18, 2026View model evidence →

Token prices are the lowest available sourced USD rates; input and output may use different providers. Cost ranking estimates output spend on LiveBench, not a full request bill. Ranking methodology →

Available Benchmarks

All benchmark results →
No Protocol-Matched Benchmark Yet.Results appear here only when both models share the same benchmark version, metric, evaluation protocol, and evidence class.

Side-by-Side Facts

FieldQwen3.8-2.4T-A95BTernary Bonsai 4B
DeveloperQwenPrismML
FamilyQwen3 8 2 4t A95bBonsai 4b
ModelQwen3.8-2.4T-A95BTernary Bonsai 4B
VersionQwen3.8-2.4T-A95BTernary Bonsai 4B
Lifecycleactiveactive
ReleasedUnknown2026-04-18
Knowledge cutoffUnknownUnknown
Input modalitiesTextText
Output modalitiesTextText
Context window262K33K
Total parameters2.4T4B
Active parameters95BUnknown
Licenseotherapache-2.0
Open weightsYesYes
API availableYesNo
Self-hostableYesYes
Provider accessDeepinfra (Standard), Fireworks Ai (Standard), Hugging Face (Standard), Openrouter (Standard), Together Ai (Standard)Unknown
Capabilitieschat, generation, reasoning, toolschat, generation
Effective bit widthUnknown1.58 bits per weight
Weight sizeUnknown1.07 GB
Weight formatUnknownTernary Q2_0

Qwen3.8 2.4T A95B Capabilities

chatgenerationreasoningtools
Serving providers5
Canonical IDQwen/Qwen3.8-2.4T-A95B

Ternary Bonsai 4B Capabilities

chatgeneration
Serving providers0
Canonical IDprism-ml/Ternary-Bonsai-4B

Primary Evidence

Sources and Freshness

Questions

Qwen3.8 2.4T A95B vs Ternary Bonsai 4B FAQs

Is Qwen3.8 2.4T A95B or Ternary Bonsai 4B better for coding?+

This comparison does not currently contain a protocol-matched coding benchmark for both Qwen3.8 2.4T A95B and Ternary Bonsai 4B, so Model Markets cannot name a coding leader from pricing, context size, or capability labels alone.

Which is cheaper, Qwen3.8 2.4T A95B or Ternary Bonsai 4B?+

Only Qwen3.8 2.4T A95B has a directly sourced input price: $2.00 per million tokens. Only Qwen3.8 2.4T A95B has a directly sourced output price: $6.00 per million tokens.

Which has a larger context window, Qwen3.8 2.4T A95B or Ternary Bonsai 4B?+

Qwen3.8 2.4T A95B has the larger sourced context window. Qwen3.8 2.4T A95B supports 262K and Ternary Bonsai 4B supports 33K.

Which performs better in benchmarks, Qwen3.8 2.4T A95B or Ternary Bonsai 4B?+

There is no overall benchmark winner: At least two independently verified, protocol-matched benchmarks are required for an overall winner.

Can Qwen3.8 2.4T A95B or Ternary Bonsai 4B be self-hosted?+

Both models have the same recorded self-hosting status: supported. Qwen3.8 2.4T A95B is open weight; Ternary Bonsai 4B is open weight.

Can Qwen3.8 2.4T A95B and Ternary Bonsai 4B understand images?+

Qwen3.8 2.4T A95B is not documented with image input; Ternary Bonsai 4B is not documented with image input. This reflects supported input modalities, not vision quality.

Which can generate longer answers, Qwen3.8 2.4T A95B or Ternary Bonsai 4B?+

Neither has a larger sourced maximum output. Qwen3.8 2.4T A95B is — and Ternary Bonsai 4B is —.

Do Qwen3.8 2.4T A95B and Ternary Bonsai 4B support reasoning and tool use?+

Qwen3.8 2.4T A95B: reasoning and tool calling. Ternary Bonsai 4B: none of these features are definitively sourced. Feature support does not establish relative quality.

Which is available from more inference providers, Qwen3.8 2.4T A95B or Ternary Bonsai 4B?+

Qwen3.8 2.4T A95B has 5 sourced provider routes; Ternary Bonsai 4B has 0, so Qwen3.8 2.4T A95B has broader tracked availability.

Which offers better value, Qwen3.8 2.4T A95B or Ternary Bonsai 4B?+

There is no universal value winner. Compare the input and output prices above with the matched benchmark result for your workload: cheaper tokens can be offset by different quality, token usage, latency, or provider availability.

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