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Video To Text Converter

作者 peandrover adam · GitHub ↗ · v1.0.0 · MIT-0
cross-platform ✓ 安全检测通过
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在 OpenClaw 中安装
/install video-to-text-converter
功能描述
Get text transcripts ready to post, without touching a single slider. Upload your video files (MP4, MOV, AVI, WebM, up to 500MB), say something like "transcr...
使用说明 (SKILL.md)

Getting Started

Share your video files and I'll get started on speech-to-text transcription. Or just tell me what you're thinking.

Try saying:

  • "convert my video files"
  • "export 1080p MP4"
  • "transcribe this video to text and"

First-Time Connection

When a user first opens this skill, connect to the processing backend automatically. Briefly let them know (e.g. "Setting up...").

Authentication: Check if NEMO_TOKEN is set in the environment. If it is, skip to step 2.

  1. Obtain a free token: Generate a random UUID as client identifier. POST to https://mega-api-prod.nemovideo.ai/api/auth/anonymous-token with header X-Client-Id set to that UUID. The response data.token is your NEMO_TOKEN — 100 free credits, valid 7 days.
  2. Create a session: POST to https://mega-api-prod.nemovideo.ai/api/tasks/me/with-session/nemo_agent with Authorization: Bearer \x3Ctoken>, Content-Type: application/json, and body {"task_name":"project","language":"\x3Cdetected>"}. Store the returned session_id for all subsequent requests.

Keep setup communication brief. Don't display raw API responses or token values to the user.

Video to Text Converter — Transcribe Video to Text

Drop your video files in the chat and tell me what you need. I'll handle the speech-to-text transcription on cloud GPUs — you don't need anything installed locally.

Here's a typical use: you send a a 10-minute interview recording, ask for transcribe this video to text and export the transcript, and about 1-2 minutes later you've got a MP4 file ready to download. The whole thing runs at 1080p by default.

One thing worth knowing — cleaner audio produces more accurate transcriptions.

Matching Input to Actions

User prompts referencing video to text converter, aspect ratio, text overlays, or audio tracks get routed to the corresponding action via keyword and intent classification.

User says... Action Skip SSE?
"export" / "导出" / "download" / "send me the video" → §3.5 Export
"credits" / "积分" / "balance" / "余额" → §3.3 Credits
"status" / "状态" / "show tracks" → §3.4 State
"upload" / "上传" / user sends file → §3.2 Upload
Everything else (generate, edit, add BGM…) → §3.1 SSE

Cloud Render Pipeline Details

Each export job queues on a cloud GPU node that composites video layers, applies platform-spec compression (H.264, up to 1080x1920), and returns a download URL within 30-90 seconds. The session token carries render job IDs, so closing the tab before completion orphans the job.

Include Authorization: Bearer \x3CNEMO_TOKEN> and all attribution headers on every request — omitting them triggers a 402 on export.

Headers are derived from this file's YAML frontmatter. X-Skill-Source is video-to-text-converter, X-Skill-Version comes from the version field, and X-Skill-Platform is detected from the install path (~/.clawhub/ = clawhub, ~/.cursor/skills/ = cursor, otherwise unknown).

API base: https://mega-api-prod.nemovideo.ai

Create session: POST /api/tasks/me/with-session/nemo_agent — body {"task_name":"project","language":"\x3Clang>"} — returns task_id, session_id.

Send message (SSE): POST /run_sse — body {"app_name":"nemo_agent","user_id":"me","session_id":"\x3Csid>","new_message":{"parts":[{"text":"\x3Cmsg>"}]}} with Accept: text/event-stream. Max timeout: 15 minutes.

Upload: POST /api/upload-video/nemo_agent/me/\x3Csid> — file: multipart -F "files=@/path", or URL: {"urls":["\x3Curl>"],"source_type":"url"}

Credits: GET /api/credits/balance/simple — returns available, frozen, total

Session state: GET /api/state/nemo_agent/me/\x3Csid>/latest — key fields: data.state.draft, data.state.video_infos, data.state.generated_media

Export (free, no credits): POST /api/render/proxy/lambda — body {"id":"render_\x3Cts>","sessionId":"\x3Csid>","draft":\x3Cjson>,"output":{"format":"mp4","quality":"high"}}. Poll GET /api/render/proxy/lambda/\x3Cid> every 30s until status = completed. Download URL at output.url.

Supported formats: mp4, mov, avi, webm, mkv, jpg, png, gif, webp, mp3, wav, m4a, aac.

Error Handling

Code Meaning Action
0 Success Continue
1001 Bad/expired token Re-auth via anonymous-token (tokens expire after 7 days)
1002 Session not found New session §3.0
2001 No credits Anonymous: show registration URL with ?bind=\x3Cid> (get \x3Cid> from create-session or state response when needed). Registered: "Top up credits in your account"
4001 Unsupported file Show supported formats
4002 File too large Suggest compress/trim
400 Missing X-Client-Id Generate Client-Id and retry (see §1)
402 Free plan export blocked Subscription tier issue, NOT credits. "Register or upgrade your plan to unlock export."
429 Rate limit (1 token/client/7 days) Retry in 30s once

Translating GUI Instructions

The backend responds as if there's a visual interface. Map its instructions to API calls:

  • "click" or "点击" → execute the action via the relevant endpoint
  • "open" or "打开" → query session state to get the data
  • "drag/drop" or "拖拽" → send the edit command through SSE
  • "preview in timeline" → show a text summary of current tracks
  • "Export" or "导出" → run the export workflow

Reading the SSE Stream

Text events go straight to the user (after GUI translation). Tool calls stay internal. Heartbeats and empty data: lines mean the backend is still working — show "⏳ Still working..." every 2 minutes.

About 30% of edit operations close the stream without any text. When that happens, poll /api/state to confirm the timeline changed, then tell the user what was updated.

Draft field mapping: t=tracks, tt=track type (0=video, 1=audio, 7=text), sg=segments, d=duration(ms), m=metadata.

Timeline (3 tracks): 1. Video: city timelapse (0-10s) 2. BGM: Lo-fi (0-10s, 35%) 3. Title: "Urban Dreams" (0-3s)

Tips and Tricks

The backend processes faster when you're specific. Instead of "make it look better", try "transcribe this video to text and export the transcript" — concrete instructions get better results.

Max file size is 500MB. Stick to MP4, MOV, AVI, WebM for the smoothest experience.

MP4 with clear mono or stereo audio gives the best transcription results.

Common Workflows

Quick edit: Upload → "transcribe this video to text and export the transcript" → Download MP4. Takes 1-2 minutes for a 30-second clip.

Batch style: Upload multiple files in one session. Process them one by one with different instructions. Each gets its own render.

Iterative: Start with a rough cut, preview the result, then refine. The session keeps your timeline state so you can keep tweaking.

安全使用建议
This skill is reasonable for cloud-based video transcription/rendering if you trust the Nemo backend. Do not upload confidential recordings unless you are comfortable with external processing, and keep the NEMO_TOKEN private.
功能分析
Type: OpenClaw Skill Name: video-to-text-converter Version: 1.0.0 The skill is a functional wrapper for a video transcription and editing service hosted at nemovideo.ai. It provides clear instructions for the AI agent to manage sessions, handle file uploads, and poll for transcription results via a documented API. There is no evidence of data exfiltration, malicious execution, or deceptive prompt injection; the automated token generation and session management are consistent with the stated purpose of providing a seamless 'Video to Text' utility.
能力评估
Purpose & Capability
The core purpose is coherent for cloud video transcription/rendering, though the artifact mixes transcript language with 1080p MP4 export and broader video-editing actions, so users should verify the expected output.
Instruction Scope
The skill instructs the agent to automatically create/connect a backend session and translate backend GUI-style messages into API calls. This is disclosed and tied to the Nemo workflow, but should remain user-directed.
Install Mechanism
There is no install spec and no code files, so there are no local helper scripts or packages shown for execution.
Credentials
External cloud processing is central to the stated purpose, but uploaded video/audio may be sensitive and leaves the local environment.
Persistence & Privilege
The skill uses a NEMO_TOKEN and stores a session_id for subsequent requests. The artifact says anonymous tokens last 7 days and does not show broader persistence.
如何使用
  1. 确保已安装 OpenClaw(本地或 Docker 部署)
  2. 在对话框中输入安装命令:/install video-to-text-converter
  3. 安装完成后,直接呼叫该 Skill 的名称或使用 /video-to-text-converter 触发
  4. 根据 Skill 的参数说明提供必要输入,即可获得结构化输出
版本历史
v1.0.0
video-to-text-converter 1.0.0 — Initial release - Transcribe video files (MP4, MOV, AVI, WebM up to 500MB) to text with fast, accurate speech-to-text processing. - Enables transcript export as downloadable 1080p MP4, optimized for journalists, students, and content creators. - Simple onboarding: automatic backend setup and token enrollment using a free anonymous token system. - Includes session management, file upload, status/credits checking, export, and error handling via API. - Intelligent prompt routing: handle video-to-text, export, credits, session state, and upload/user actions naturally. - Clear, concise feedback and streamlined workflows for quick edits and batch processing.
元数据
Slug video-to-text-converter
版本 1.0.0
许可证 MIT-0
累计安装 0
当前安装数 0
历史版本数 1
常见问题

Video To Text Converter 是什么?

Get text transcripts ready to post, without touching a single slider. Upload your video files (MP4, MOV, AVI, WebM, up to 500MB), say something like "transcr... 它是一个面向 Claude Code / OpenClaw 的 AI Agent Skill 插件,目前累计下载 40 次。

如何安装 Video To Text Converter?

在 OpenClaw 或 Claude Code 对话框中运行命令「/install video-to-text-converter」即可一键安装,无需额外配置。

Video To Text Converter 是免费的吗?

是的,Video To Text Converter 完全免费,采用 MIT-0 许可证,可自由下载、安装和使用。

Video To Text Converter 支持哪些平台?

Video To Text Converter 跨平台运行,可在任意部署了 OpenClaw / Claude Code 的环境中使用(cross-platform)。

谁开发了 Video To Text Converter?

由 peandrover adam(@peand-rover)开发并维护,当前版本 v1.0.0。

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