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Model Comparison

DeepSeek V4 Flash Vision Exp vs WizardLM-2 8x22BWhich Is Better in 2026?

DeepSeek V4 Flash Vision Exp vs WizardLM-2 8x22B: which should you choose in 2026?

DeepSeek V4 Flash Vision Exp (by DeepSeek) and WizardLM-2 8x22B (by Microsoft) are compared below. Here is how they stack up on benchmarks, price, and capabilities, and which one to pick in 2026.

There are not enough shared, protocol-compatible benchmark results to declare a performance leader.

DeepSeek V4 Flash Vision Exp is about 1.9× cheaper on a blended 3:1 input/output basis ($0.33 vs $0.62 per 1M tokens).

DeepSeek V4 Flash Vision Exp has the larger context window (1,048,576 tokens vs 65,535 tokens).

Choose DeepSeek V4 Flash Vision Exp if…

  • lower blended API cost matters for your workload
  • you work with longer documents, transcripts, or codebases
  • you need a model with explicit reasoning support
  • you need image inputs

Choose WizardLM-2 8x22B if…

  • your own prompt tests favor its output; shared comparable evidence does not identify a unique advantage

The benchmark count includes only results measured with a matching benchmark version and protocol. Arena scores are shown separately. Missing, preliminary, and incompatible data is not treated as a controlled win. Published point-score comparisons are labeled separately when protocol details are incomplete. For text-output models, the verdict also compares token pricing and context windows.

vs

Performance benchmarks

Every value links to its source. A dash means that no reviewed result is available for that exact model and protocol.

DeepSeek V4 Flash Vision Exp and WizardLM-2 8x22B benchmark results
BenchmarkDeepSeek V4 Flash Vision ExpWizardLM-2 8x22B
AutomationBench-AA

A 657-task benchmark of multi-step work across simulated SaaS applications in six business domains. The Artificial Analysis protocol reports a guardrail-aware score and is distinct from both the public Zapier split and the unrelated dynamic AutoBench framework.

Guardrail-aware score

BrowseComp

A benchmark of difficult, verifiable information-seeking questions designed to measure an agent's ability to locate hard-to-find facts through web browsing.

Accuracy

OSWorld-Verified

A verified computer-use benchmark in which multimodal agents operate desktop applications and are graded from the resulting environment state.

Mean task reward

SWE-Bench Verified

A human-validated subset of real GitHub issues used to measure whether a coding agent can produce repository patches that resolve the associated tests.

Resolved

Terminal-Bench 2.1

Version 2.1 of the benchmark for completing realistic tasks in terminal environments. Harness, resource limits, and attempt count are part of the protocol.

Mean task success

AutoBench

A dynamic LLM evaluation framework in which models generate questions, answer them, and participate in reciprocal peer assessment. AutoBench is distinct from Zapier's AutomationBench.

Weighted peer-assessment score

GPQA Diamond

The highest-quality subset of Graduate-Level Google-Proof Q&A, designed to test expert-level scientific reasoning in biology, physics, and chemistry.

Accuracy

Humanity's Last Exam

A 2,500-question expert-level benchmark spanning dozens of academic fields. Tool-assisted and no-tools results are separate protocols and must not be merged.

Accuracy

Benchmark sources

    Reviewed evidence last updated 2026-08-09.

    Pricing, capabilities, and model facts

    DeepSeek V4 Flash Vision Exp and WizardLM-2 8x22B model facts
    FeatureDeepSeek V4 Flash Vision ExpWizardLM-2 8x22B
    Context & model facts
    DeveloperDeepSeekMicrosoft
    API providerDeepSeekWizardLM-2 8x22B
    Input context1,048,576 tokens65,535 tokens
    Maximum output384,000 tokens8,000 tokens
    Released
    Added to WritingmateAug 21, 2026Apr 16, 2024
    LicenseNot availableNot available
    Knowledge cutoff2024-04-30
    Capabilities
    InputsText, ImageText
    OutputsTextText
    Provider endpoint accepts tool parametersYesNo
    ReasoningYesNo
    VisionYesNo
    Image GenerationNoNo
    Video GenerationNoNo
    API pricing
    Input (per 1M tokens)$0.22$0.62
    Output (per 1M tokens)$0.66$0.62
    Blended 3:1 input/output$0.33$0.62
    API performance
    p95 latencyNot measuredNot measured
    Output throughputNot measuredNot measured
    Writingmate shows API performance only when both models have enough observations from the same measurement window, prompt profile, and provider. Third-party latency values are not copied into this table.

    Data sources

    • Writingmate model catalog (pricing, limits, and availability)

    Catalog data last updated Aug 21, 2026.

    Why Pay for Multiple Subscriptions?

    Comparing DeepSeek V4 Flash Vision Exp from DeepSeek with WizardLM-2 8x22B from Microsoft? Instead of managing separate API keys and subscriptions, get both with Writingmate.

    Subscription-plan access for DeepSeek V4 Flash Vision Exp and WizardLM-2 8x22B
    PlanPriceDeepSeek V4 Flash Vision ExpWizardLM-2 8x22BAI ImagesAI Video
    Writingmate Pro
    Most popular
    $20/moIncludedIncludedNano Banana Pro, FLUX.2, DALL-E & moreSora 2, VEO 3.1
    Writingmate Ultimate
    Power users
    $60/moIncludedIncludedNano Banana Pro, FLUX.2, DALL-E & moreSora 2, VEO 3.1

    DeepSeek V4 Flash Vision Exp vs WizardLM-2 8x22B FAQ

    Which is better, DeepSeek V4 Flash Vision Exp or WizardLM-2 8x22B?

    There are not enough shared, protocol-compatible benchmark results to declare a performance leader. DeepSeek V4 Flash Vision Exp is about 1.9× cheaper on a blended 3:1 input/output basis ($0.33 vs $0.62 per 1M tokens). DeepSeek V4 Flash Vision Exp has the larger context window (1,048,576 tokens vs 65,535 tokens).

    Which model is cheaper to use through an API?

    DeepSeek V4 Flash Vision Exp is about 1.9× cheaper on a blended 3:1 input/output basis ($0.33 vs $0.62 per 1M tokens).

    Which model supports more context?

    DeepSeek V4 Flash Vision Exp has the larger context window (1,048,576 tokens vs 65,535 tokens).

    Can I switch between DeepSeek V4 Flash Vision Exp and WizardLM-2 8x22B?

    Yes. Use the model selector on this page to open any current Writingmate model comparison. You can also run the same prompt with both models in Writingmate.