Claude Haiku 4.5 vs Gemma 4 E2B

At a Glance

Compare
Gemma 4 E2BGoogle DeepMind
Intelligence, Cost, and Efficiency
IntelligenceHigher is better · MM Intelligence v2.5#43 of 469.0 score · 2/3 sources · provisional · missing LiveBench · full-core range 6.0–39.3UnrankedNot in the 46-model eligible cohort
Pricing and Limits
Input priceFrom · USD / 1M tokens$1.00Anthropic · Sep 3, 2026Not reported
Output priceFrom · USD / 1M tokens$5.00Anthropic · Sep 3, 2026Not reported
Context windowMaximum documented tokens200K131K
Model facts checkedAug 28, 2026View model evidence →Sep 3, 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

FieldClaude Haiku 4.5Gemma 4 E2B
DeveloperAnthropicGoogle DeepMind
FamilyClaude 4 5Gemma 4
ModelClaude Haiku 4.5Gemma 4 E2B
VersionClaude Haiku 4.5Gemma 4 E2B
Lifecycleactiveactive
Released2025-10-152026-03-02
Knowledge cutoffUnknownUnknown
Input modalitiesText, ImageText, Image, Video, Audio
Output modalitiesTextText
Context window200K131K
Total parametersUnknownUnknown
Active parametersUnknownUnknown
LicenseUnknownapache-2.0
Open weightsNoYes
API availableYesYes
Self-hostableNoYes
Provider accessAnthropic (Standard), Deepinfra (Standard)Together Ai (Standard)
Capabilitieschat, generation, reasoning, toolschat, generation, reasoning, structured_outputs, tools

Claude Haiku 4.5 Capabilities

chatgenerationreasoningtools
Serving providers2
Canonical IDanthropic/claude-haiku-4-5

Gemma 4 E2B Capabilities

chatgenerationreasoningstructured outputstools
Serving providers1
Canonical IDgoogle/gemma-4-E2B-it

Primary Evidence

Sources and Freshness

Questions

Claude Haiku 4.5 vs Gemma 4 E2B FAQs

Is Claude Haiku 4.5 or Gemma 4 E2B better for coding?+

This comparison does not currently contain a protocol-matched coding benchmark for both Claude Haiku 4.5 and Gemma 4 E2B, so Model Markets cannot name a coding leader from pricing, context size, or capability labels alone.

Which is cheaper, Claude Haiku 4.5 or Gemma 4 E2B?+

Only Claude Haiku 4.5 has a directly sourced input price: $1.00 per million tokens. Only Claude Haiku 4.5 has a directly sourced output price: $5.00 per million tokens.

Which has a larger context window, Claude Haiku 4.5 or Gemma 4 E2B?+

Claude Haiku 4.5 has the larger sourced context window. Claude Haiku 4.5 supports 200K and Gemma 4 E2B supports 131K.

Which performs better in benchmarks, Claude Haiku 4.5 or Gemma 4 E2B?+

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

Can Claude Haiku 4.5 or Gemma 4 E2B be self-hosted?+

Gemma 4 E2B is the only model in this pair currently marked as self-hostable. Claude Haiku 4.5 is not marked open weight; Gemma 4 E2B is open weight.

Can Claude Haiku 4.5 and Gemma 4 E2B understand images?+

Claude Haiku 4.5 is documented with image input; Gemma 4 E2B is documented with image input. This reflects supported input modalities, not vision quality.

Which can generate longer answers, Claude Haiku 4.5 or Gemma 4 E2B?+

Neither has a larger sourced maximum output. Claude Haiku 4.5 is 64K and Gemma 4 E2B is —.

Do Claude Haiku 4.5 and Gemma 4 E2B support reasoning and tool use?+

Claude Haiku 4.5: reasoning, tool calling, and image input. Gemma 4 E2B: reasoning, tool calling, and image input. Feature support does not establish relative quality.

Which is available from more inference providers, Claude Haiku 4.5 or Gemma 4 E2B?+

Claude Haiku 4.5 has 2 sourced provider routes; Gemma 4 E2B has 1, so Claude Haiku 4.5 has broader tracked availability.

Which offers better value, Claude Haiku 4.5 or Gemma 4 E2B?+

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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