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GoogleGemma 4 26B A4BVSZ.ai (Zhipu AI)GLM-5.1

Analysis by:the whichllmmodel Editorial Team|Updated: June 2026

Our Take

We recommend Gemma 4 26B A4B for practical local execution on standard developer hardware, or GLM-5.1 if you need peak reasoning and have the VRAM (or a cloud API) to host it. While GLM-5.1 offers frontier capability, its massive parameter size makes it extremely difficult to host locally. Choose Gemma 4 26B A4B for standard local setups, or GLM-5.1 for peak reasoning.
WHY?
Benchmark Calculations & Evidence:
  • Model Size: GLM-5.1 is a massive 754B parameter model requiring heavy GPU infrastructure, while Gemma 4 26B A4B is a 25.2B parameter model.
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    Model Specs

    Gemma 4 26B A4B

    Open Source

    Benchmarks & Scores

    Coding (live-code-bench)
    77.1%

    scripting single-file apps or clearly defined functions

    Reasoning (gpqa-diamond)
    82.3%

    graduate-level science QA

    Cost & Context

    Cost (per 1M tokens)
    Self HostLocal execution (zero API fees)
    Context WindowLarger
    262.14k tokens
    Model Specs

    GLM-5.1

    Open SourceAPI Available

    Benchmarks & Scores

    Coding (swe-bench-pro)
    58.4%

    complex codebases, multi-file repositories, and architectural planning

    Reasoning (gpqa-diamond)Winner (+3.9%)
    86.2%

    graduate-level science QA

    Cost & Context

    Cost (per 1M tokens)
    $2.15Input: $1.40 | Output: $4.40
    Context Window
    202.75k tokens

    Frequently Asked Questions about Gemma 4 26B A4B vs GLM-5.1

    For coding tasks, Gemma 4 26B A4B scores 77.1% on live-code-bench (scripting single-file apps or clearly defined functions), while GLM-5.1 scores 58.4% on swe-bench-pro (complex codebases, multi-file repositories, and architectural planning).

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