image-to-video

作成者: agentspace-so

We need to translate the given text from English to Japanese, preserving the name "image-to-video" and other technical terms. The text describes a skill that animates still images on RunComfy, acting as a smart router to select appropriate i2v models. It mentions specific models: HappyHorse 1.0 I2V, Wan 2.7, Seedance 2.0 Pro. Also includes terms like "native audio", "identity preservation", "audio_url", "lip-sync", "multi-modal animation", "reference video", "reference audio", "prompting patterns". The translation should be natural Japanese, keeping all proper nouns and technical terms as is. No extra commentary or labels. Just the translation. Let's translate sentence by sentence. "Animate any still image on RunComfy — this skill is a smart router that matches the user's intent to the right i2v model in the RunComfy catalog." → "RunComfy上で任意の静止画像をアニメーション化します。このスキルは、

npx skills add https://github.com/agentspace-so/runcomfy-agent-skills --skill image-to-video

Image-to-Video — Pro Pack on RunComfy

runcomfy.com · HappyHorse I2V · Wan 2.7 · Seedance 2.0 Pro · GitHub

Image-to-video, intent-routed. This skill doesn't lock you to one model — it picks the right i2v model in the RunComfy catalog based on what the user actually wants: portrait animation, custom-voiceover lip-sync, or multi-modal composition.

npx skills add agentspace-so/runcomfy-skills --skill image-to-video -g

Pick the right model for the user's intent

User intentModelWhy
Animate a portrait — keep identity stableHappyHorse 1.0 I2V#1 on Artificial Analysis Arena (Elo 1392); strong facial fidelity
Product reveal / 360 / macro motionHappyHorse 1.0 I2VGeometry preservation + smooth camera moves
Native synchronized ambient audio in one passHappyHorse 1.0 I2VIn-pass audio synthesis
Animate and lip-sync to a custom voiceover trackWan 2.7 + audio_urlAccepts your own MP3/WAV (3–30s, ≤15MB) and drives lip-sync to it
Multi-language dub variants (same image, different audio per call)Wan 2.7 + audio_urlSame shot, swap audio_url per language
Multi-modal — image + reference video + reference audio togetherSeedance 2.0 ProUp to 9 image refs, 3 video refs (2–15s each), 3 audio refs
Brand-consistent narrative with character ref + scene ref + voice refSeedance 2.0 ProImage holds identity, video holds scene, audio holds voice
Default if unspecifiedHappyHorse 1.0 I2VBest all-round quality + native audio

The agent reads this table, classifies the user's intent, and picks the matching subsection below.

Prerequisites

  1. RunComfy CLInpm i -g @runcomfy/cli
  2. RunComfy accountruncomfy login opens a browser device-code flow.
  3. CI / containers — set RUNCOMFY_TOKEN=<token>.
  4. A source image URL — JPEG/PNG/WebP, min 300px, ≤10MB; aspect 1:2.5 to 2.5:1 (HappyHorse) — other models have similar specs.

Route 1: HappyHorse 1.0 I2V — default for portrait / product / general animation

Model: happyhorse/happyhorse-1-0/image-to-video · Arena rank: #1 (Elo 1392)

Schema

FieldTypeRequiredDefaultNotes
image_urlstringyesJPEG/JPG/PNG/WEBP. Min 300px. Aspect 1:2.5–2.5:1. ≤10MB.
promptstringyes≤5000 non-CJK or 2500 CJK chars. Motion / camera / lighting description.
resolutionenumno1080P720P or 1080P.
durationintno53–15 seconds.
seedintno0Reuse for variant comparisons.
watermarkboolnotrueProvider watermark toggle.

Output aspect = input aspect. No independent reframing.

Invoke

runcomfy run happyhorse/happyhorse-1-0/image-to-video \
  --input '{
    "image_url": "https://.../portrait.jpg",
    "prompt": "Gentle camera drift around the subject'\''s face, subtle breathing motion, identity-stable features, soft natural light."
  }' \
  --output-dir <absolute/path>

Prompting tips

  • Lead with motion verbs: "drift", "dolly in", "orbit", "tilt up", "reveal", "blink", "breathe". Front-load what's MOVING.
  • Don't restate the image — the model sees it. Focus tokens on what changes.
  • Preservation goals explicit: "identity-stable features", "packaging unchanged", "background geometry stable".
  • Lighting evolution: "rim light intensifying", "shadows shortening as camera rises".
  • One beat per clip — single primary motion (orbit OR dolly OR tilt OR character action).

Route 2: Wan 2.7 + audio_url — when the user has a custom voiceover

Model: wan-ai/wan-2-7/text-to-video (NOT /image-to-video — Wan 2.7's t2v endpoint accepts an audio_url that drives lip-sync)

Note on i2v with Wan 2.7: Wan 2.7's primary i2v animation isn't on a dedicated endpoint here. For pure i2v (image animated by motion prompt only), prefer HappyHorse i2v. Use Wan 2.7 specifically when the user has a custom audio track they want lip-synced to a generated talking-head clip.

Schema (Wan 2.7 t2v with audio)

FieldTypeRequiredDefaultNotes
promptstringyesUp to ~5000 chars. Describe the talking-head shot: framing, lighting, motion.
audio_urlstringyes (for lip-sync)WAV/MP3, 3–30s, ≤15MB. Drives lip-sync.
aspect_ratioenumno16:916:9, 9:16, 1:1, 4:3, 3:4.
resolutionenumno1080p720p or 1080p.
durationenumno52–15 (whole seconds). Match your audio length.
negative_promptstringnoConcrete issues to avoid (e.g. "no subtitles, no flicker").
seedintnoReproducibility.

Invoke

runcomfy run wan-ai/wan-2-7/text-to-video \
  --input '{
    "prompt": "Medium close-up of a confident spokesperson in a softly-lit recording booth, leaning slightly toward the camera, locked tripod, shallow DOF, warm key light from camera-left.",
    "audio_url": "https://.../voiceover-en.mp3",
    "duration": 12,
    "aspect_ratio": "9:16"
  }' \
  --output-dir <absolute/path>

Prompting tips

  • Describe the talking-head shot — framing, lighting, lens feel. The audio drives the lip-sync; the prompt builds the visual frame around it.
  • Match duration to audio length — clip will be silent past the audio if too long.
  • Use negative_prompt for issues: "no subtitles, no flicker, no distorted hands".
  • For multi-language dubs — same prompt, swap audio_url per call. Lock seed for visual consistency across languages.

Route 3: Seedance 2.0 Pro — multi-modal animation (image + ref video + ref audio)

Model: bytedance/seedance-v2/pro

Use when the user wants a single clip that combines: a subject image + scene from a reference video + voice tone from a reference audio.

Schema (Seedance 2.0 Pro, i2v-relevant fields)

FieldTypeRequiredDefaultNotes
promptstringyesCN ≤500 chars OR EN ≤1000 words.
image_urlarrayyes (for i2v)[]0–9 images. First is the primary subject.
video_urlarrayno[]0–3 reference clips (MP4/MOV), 2–15s each.
audio_urlarrayno[]0–3 reference audio (WAV/MP3), 2–15s, < 15MB each.
aspect_ratioenumnoadaptiveadaptive, 16:9, 9:16, 4:3, 3:4, 1:1, 21:9.
durationintno54–15 (whole seconds).
resolutionenumno720p480p or 720p.
generate_audioboolnotrueIn-pass synchronized speech / SFX / music.
seedintnoReproducibility.

Invoke

runcomfy run bytedance/seedance-v2/pro \
  --input '{
    "prompt": "Subject from image 1 walks through the café in video 1, voice tone matches audio 1. Medium close-up, slow push-in, warm light, gentle ambience.",
    "image_url": ["https://.../subject.jpg"],
    "video_url": ["https://.../cafe-locked-shot.mp4"],
    "audio_url": ["https://.../voice-tone.mp3"],
    "duration": 8
  }' \
  --output-dir <absolute/path>

Prompting tips

  • Image vs text division — use image_url for what must stay stable (face, costume, brand); use prompt for what should evolve (action, mood, lighting).
  • Number the refs in the prompt: "subject from image 1, lighting from video 1, voice from audio 1". Seedance routes cues correctly.
  • Reference media specs — videos / audio must be 2–15s; audio < 15MB.
  • Don't mix radically different aesthetics — if image 1 is a watercolor and video 1 is photoreal, output drifts.

Limitations

  • Each route inherits its model's limits. HappyHorse: 15s cap, output aspect = input aspect. Wan 2.7: 15s cap, audio 3–30s/15MB. Seedance: 720p ceiling on this template, 15s cap.
  • No multi-route blending. This skill picks one model per call. If the user wants HappyHorse animation + Wan-style lip-sync in the same clip, that's two calls + a stitch (out of scope here).
  • Brand-specific overrides — if the user named a specific model variant not listed (e.g. Wan 2.6, Seedance 1.5), route to the corresponding brand skill (wan-2-7, seedance-v2) instead of forcing it through here.

Exit codes

codemeaning
0success
64bad CLI args
65bad input JSON / schema mismatch
69upstream 5xx
75retryable: timeout / 429
77not signed in or token rejected

Full reference: docs.runcomfy.com/cli/troubleshooting.

How it works

The skill picks one of HappyHorse 1.0 I2V / Wan 2.7 t2v+audio / Seedance 2.0 Pro based on user intent and invokes runcomfy run <model_id> with the matching JSON body. The CLI POSTs to the Model API, polls the request, fetches the result, and downloads any .runcomfy.net/.runcomfy.com URL into --output-dir. Ctrl-C cancels the remote request before exit.

Security & Privacy

  • Token storage: runcomfy login writes the API token to ~/.config/runcomfy/token.json with mode 0600 (owner-only read/write). Set RUNCOMFY_TOKEN env var to bypass the file entirely in CI / containers.
  • Input boundary: the user prompt is passed as a JSON string to the CLI via --input. The CLI does NOT shell-expand the prompt; it transmits the JSON body directly to the Model API over HTTPS. No shell injection surface from prompt content.
  • Third-party content: image / mask / video URLs you pass are fetched by the RunComfy model server, not by the CLI on your machine. Treat external URLs as untrusted; image-based prompt injection is a known risk for any image-edit / video-edit model.
  • Outbound endpoints: only model-api.runcomfy.net (request submission) and *.runcomfy.net / *.runcomfy.com (download whitelist for generated outputs). No telemetry, no callbacks.
  • Generated-file size cap: the CLI aborts any single download > 2 GiB to prevent disk-fill from a malicious or runaway model output.

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