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WAN 2.2 Image-to-Video

Create short generative video with WAN 2.2 Image-to-Video on LLM.API, with resolution-aware pricing and a unified developer workflow.

What is WAN 2.2 Image-to-Video?

WAN 2.2 Image-to-Video is a generative video model available through LLM.API as `wan2.2-i2v`. Video generation model by Muapi. Expect text, image prompts and video outputs, with pricing often tied to seconds and resolution.


Providers

LLM.API routes WAN 2.2 Image-to-Video to the providers below, with discounted effective rates versus list price.

List price by provider ($ / 1M tokens)

InputOutput
muapi$0 in
$0 out

Provider list prices; the LLM.API discount applies on top.

ProviderPricingContextCapabilities
muapi30% offin —; out $0.06 per second of video

Prices and availability from the LLMAPI catalogue, updated nightly. Last updated 21 Sept 2026.

Try this model

Test WAN 2.2 Image-to-Video right here — free to start.

WAN 2.2 Image-to-Video
Hi! Want to test the model?

Suggestions for your first prompt

Code snippet

Call WAN 2.2 Image-to-Video through the OpenAI-compatible API — Video generation via LLM.API (see docs for media endpoints).

python
from openai import OpenAI

client = OpenAI(
    api_key="YOUR_LLMAP_KEY",
    base_url="https://api.llmapi.ai/v1",
)

resp = client.chat.completions.create(
    model="wan2.2-i2v",
    messages=[
        {"role": "system", "content": "You are a precise product assistant."},
        {"role": "user", "content": "Give me three crisp launch checklist items."},
    ],
)
print(resp.choices[0].message.content)
{
  "model": "wan2.2-i2v",
  "messages": [
    {"role": "system", "content": "You are a precise product assistant."},
    {"role": "user", "content": "Give me three crisp launch checklist items."}
  ]
}

5 Core Capabilities

  • Product visualization

    Helps visualize products and environments before shoot or 3D work. Tuned to how teams typically call WAN 2.2 Image-to-Video.

  • Short-form content

    Fits vertical and horizontal short-form marketing formats. Grounded in the model's video role rather than generic chat claims.

  • Storyboard acceleration

    Turns written beats into moving drafts for rapid review.

  • Iterative creatives

    Enables prompt-based A/B exploration of motion concepts. Relevant for `wan2.2-i2v` workloads on LLM.API.

  • Text-to-video generation

    Synthesizes short video clips from prompts for ads, explainers, and social. Grounded in the model's video role rather than generic chat claims.

6 Most Valuable Use Cases

  • Internal pitch videos for stakeholders with WAN 2.2 Image-to-Video
  • Explainer openers before live-action shoots
  • Social-first product teaser generation with WAN 2.2 Image-to-Video
  • Short promotional clips from written briefs
  • Creative exploration for campaign storyboards with WAN 2.2 Image-to-Video
  • Localized motion variants of the same concept

Why Build on LLM.API?

One unified API. Every major model. Built-in reliability, cost control, and observability.

  • Intelligent AI Routing

    Automatically route each request to the best model across providers based on latency, cost, and quality—without changing your integration or redeploying code.

    One endpoint, every model.
  • Cost-Aware Execution

    Control spend with per-request cost estimation, smart model selection, and centralized quotas so teams can experiment fast without runaway bills or manual tracking.

    More performance, less spend.
  • Resilient Fallback Flows

    Define automatic, provider-agnostic fallbacks to keep your app up during outages, rate limits, or timeouts—no brittle failover logic scattered through your codebase.

    Never go dark on users.
  • Deep LLM Observability

    Trace every call across providers with logs, metrics, and request replay so you can debug, tune prompts, and optimize model choices from one unified dashboard.

    See every token, everywhere.
  • Task-Level Orchestration

    Describe tasks, not models. LLM.API maps them to the right tools, models, and prompts so you ship complex AI workflows with minimal glue code.

    Think tasks, not models.
  • High-Throughput Batch APIs

    Process millions of inferences efficiently with optimized batch pipelines, concurrency controls, and retry logic—all behind the same simple interface you use for single calls.

    Scale from 1 to millions.

Why run WAN 2.2 Image-to-Video on LLM.API?

  • Unified AI Routing

    Reach WAN 2.2 Image-to-Video and sibling models through one OpenAI-compatible endpoint.

  • Cost Control

    Compare provider price points and keep spend visible as you scale WAN 2.2 Image-to-Video.

  • Reliability Layer

    Retry and route across configured providers when a single upstream blips.

  • Observability

    Trace prompts, tokens, and errors for WAN 2.2 Image-to-Video alongside the rest of your stack.

  • Drop-in SDKs

    Keep using familiar OpenAI client patterns with base URL https://api.llmapi.ai/v1.

  • Model Breadth

    Practical: Swap WAN 2.2 Image-to-Video for chat, media, or embedding alternatives without rewriting auth.

When to Use — When NOT to Use

Use it if...

  • You can tolerate longer generation times than chat (WAN 2.2 Image-to-Video)
  • You are building short-form generative video features (WAN 2.2 Image-to-Video)
  • You need resolution-tiered pricing for motion content (WAN 2.2 Image-to-Video)

Avoid if...

  • You require sub-second interactive generation
  • You need broadcast-length films or guaranteed cinema-grade continuity
  • You only need still images or chat text

What creators say about AI video models

Summarised from publicly published developer and community reviews of this model family. Opinions are the sources’, not LLM.API’s, and may not be specific to WAN 2.2 Image-to-Video.

  • Creator reviews of the latest Kling releases praise multi-shot consistency, native audio and genuine 4K output.
  • Comparisons with Sora and Runway focus on prompt adherence and motion stability rather than raw resolution.
  • The common workflow advice: generate many short takes cheaply, then upscale or extend the ones that land.

Frequently Asked Questions

  • What is the context length for WAN 2.2 Image-to-Video?

    Reported context for WAN 2.2 Image-to-Video is See provider specs. Always verify the active provider row if multiple providers are listed.

  • What are limitations of WAN 2.2 Image-to-Video?

    Like other API models, WAN 2.2 Image-to-Video can be wrong, incomplete, or uneven on edge cases. Validate outputs for high-stakes use. Media/OCR/STT models additionally depend on input quality.

  • What modalities does WAN 2.2 Image-to-Video support?

    WAN 2.2 Image-to-Video accepts text, image and produces video according to its architecture metadata on LLM.API.

  • Which providers serve WAN 2.2 Image-to-Video?

    LLM.API currently lists: muapi. Availability can vary by region and account.

  • When should I choose WAN 2.2 Image-to-Video?

    You can tolerate longer generation times than chat — especially when you specifically need WAN 2.2 Image-to-Video.

  • How long do WAN 2.2 Image-to-Video jobs take?

    Video generation typically takes longer than chat; latency scales with duration and resolution and may vary by queue.

  • Does WAN 2.2 Image-to-Video support streaming?

    Streaming depends on the active provider; check the providers table on this page for flags.

  • Can I use tools or structured outputs with WAN 2.2 Image-to-Video?

    Tooling support varies; for pure video models, prefer the modalities listed rather than assuming chat tools.

  • Where is the canonical page for WAN 2.2 Image-to-Video?

    https://llmapi.ai/models/wan2-2-i2v/

  • Is WAN 2.2 Image-to-Video a chat model?

    No—WAN 2.2 Image-to-Video is categorized as a video model. Use the matching API surface rather than assuming chat completions.

  • How is WAN 2.2 Image-to-Video priced on LLM.API?

    Listed pricing metadata shows: $0.06/sec. Confirm live rates in the LLM.API dashboard or docs before production budgeting.

  • How do I call WAN 2.2 Image-to-Video via API?

    Send OpenAI-compatible requests to https://api.llmapi.ai/v1 with model "wan2.2-i2v" and your LLM.API key. See the code snippet on this page.

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