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Scholar-s-tea

Scholar-s-tea에는 photonics-dhl에서 수집한 skills 122개가 있으며, 저장소 수준 직업 범위와 사이트 내 skill 상세 페이지를 제공합니다.

수집된 skills
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업데이트
2026-06-03
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직업 카테고리 16개 · 100% 분류됨
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이 저장소의 skills

academic-paper-review
기타 중등 후 교사

多视角模拟学术论文评审 — 模拟国际期刊同行评审流程。支持 quick(EIC 单人快审)、methodology(方法论专项)、full(5视角完整评审)三种模式。从方法论严谨性、领域专业度、创新性、论证逻辑、期刊适配度五个非重叠视角独立审查,最终合成编辑决定和修订路线图。适用于:投稿前自检、论文质量评估、模拟审稿。

2026-06-03
academic-reviewer-finder
기타 중등 후 교사

根据论文摘要/内容检索国内审稿人候选 — 按研究方向匹配学者,验证职称(副教授/教授),输出分级推荐名单。

2026-06-03
academic-revision-coach
기타 중등 후 교사

审稿意见结构化解析与修订路线图生成。输入任意格式的审稿意见,输出逐条分类、优先级排序、章节映射的修订路线图。支持多审稿人合并处理、承诺追踪、Response Letter 模板生成。TRIGGER: 收到审稿意见、parse reviews、revision roadmap、help me with my revision、回复审稿人、如何修改论文。

2026-06-03
scholars-tea-db-query
소프트웨어 개발자

直接查询 Scholar's Tea PostgreSQL 数据库(绕过浏览器/API 故障),用于获取用户、帖子、课题组等社区数据。

2026-06-03
research-paper-writing
기술 작가

End-to-end academic paper writing skill covering proposal, structure, writing, formatting, and quality review. Targets Nature, Science, IEEE, NeurIPS, ICML, ICLR, AAAI, ACL, COLM. Emphasizes narrative-driven writing, citation discipline, and iterative refinement.

2026-05-21
document-skills
소프트웨어 개발자

文档处理技能集。用于处理 Word (docx)、PDF、PowerPoint (pptx)、Excel (xlsx) 等办公文档。 当用户需要创建、编辑、分析文档时触发。

2026-05-21
frontend-design
그래픽 디자이너

前端界面设计技能。创建独特、有辨识度的生产级前端界面。 当用户要求设计网页、创建 UI 组件、进行前端开发时触发。 强调大胆的美学方向、独特的排版选择、精细的视觉细节和动效。

2026-05-07
last30days
시장조사 분석가·마케팅 전문가

热门讨论聚合技能。研究任意话题在 Reddit、X、YouTube、HN、Polymarket、GitHub 等平台上的讨论, 并按真实互动数据(点赞、评论、Polymarket 赔率)合成摘要。 当用户询问"最近的趋势"、"热门讨论"、"某话题的舆论"时触发。

2026-05-07
project-memory
소프트웨어 개발자

项目错误记录与经验积累技能。当遇到项目错误、需要修复问题、或进行配置修改时,自动记录错误原因和解决方案到项目专属记忆文件,而非根目录 memory。触发场景:项目报错、配置失败、部署问题、SDK集成问题、环境问题。

2026-05-07
superpowers-karpathy
소프트웨어 개발자

每次对话和任务开始前必须首先阅读此技能。融合 superpowers 工作流框架与 Karpathy 编码准则,确保在采取任何行动之前正确调用相关技能并遵循高质量编码原则。

2026-05-07
blackbox
소프트웨어 개발자

Delegate coding tasks to Blackbox AI CLI agent. Multi-model agent with built-in judge that runs tasks through multiple LLMs and picks the best result. Requires the blackbox CLI and a Blackbox AI API key.

2026-05-07
honcho
소프트웨어 개발자

Configure and use Honcho memory with Hermes -- cross-session user modeling, multi-profile peer isolation, observation config, dialectic reasoning, session summaries, and context budget enforcement. Use when setting up Honcho, troubleshooting memory, managing profiles with Honcho peers, or tuning observation, recall, and dialectic settings.

2026-05-07
base
소프트웨어 개발자

Query Base (Ethereum L2) blockchain data with USD pricing — wallet balances, token info, transaction details, gas analysis, contract inspection, whale detection, and live network stats. Uses Base RPC + CoinGecko. No API key required.

2026-05-07
solana
소프트웨어 개발자

Query Solana blockchain data with USD pricing — wallet balances, token portfolios with values, transaction details, NFTs, whale detection, and live network stats. Uses Solana RPC + CoinGecko. No API key required.

2026-05-07
one-three-one-rule
프로젝트 관리 전문가

Structured decision-making framework for technical proposals and trade-off analysis. When the user faces a choice between multiple approaches (architecture decisions, tool selection, refactoring strategies, migration paths), this skill produces a 1-3-1 format: one clear problem statement, three distinct options with pros/cons, and one concrete recommendation with definition of done and implementation plan. Use when the user asks for a "1-3-1", says "give me options", or needs help choosing between competing approaches.

2026-05-07
blender-mcp
소프트웨어 개발자

Control Blender directly from Hermes via socket connection to the blender-mcp addon. Create 3D objects, materials, animations, and run arbitrary Blender Python (bpy) code. Use when user wants to create or modify anything in Blender.

2026-05-07
meme-generation
소프트웨어 개발자

Generate real meme images by picking a template and overlaying text with Pillow. Produces actual .png meme files.

2026-05-07
inference-sh-cli
소프트웨어 개발자

Run 150+ AI apps via inference.sh CLI (infsh) — image generation, video creation, LLMs, search, 3D, social automation. Uses the terminal tool. Triggers: inference.sh, infsh, ai apps, flux, veo, image generation, video generation, seedream, seedance, tavily

2026-05-07
docker-management
네트워크·컴퓨터 시스템 관리자

Manage Docker containers, images, volumes, networks, and Compose stacks — lifecycle ops, debugging, cleanup, and Dockerfile optimization.

2026-05-07
agentmail
소프트웨어 개발자

Give the agent its own dedicated email inbox via AgentMail. Send, receive, and manage email autonomously using agent-owned email addresses (e.g. hermes-agent@agentmail.to).

2026-05-07
fitness-nutrition
소프트웨어 개발자

Gym workout planner and nutrition tracker. Search 690+ exercises by muscle, equipment, or category via wger. Look up macros and calories for 380,000+ foods via USDA FoodData Central. Compute BMI, TDEE, one-rep max, macro splits, and body fat — pure Python, no pip installs. Built for anyone chasing gains, cutting weight, or just trying to eat better.

2026-05-07
neuroskill-bci
소프트웨어 개발자

Connect to a running NeuroSkill instance and incorporate the user's real-time cognitive and emotional state (focus, relaxation, mood, cognitive load, drowsiness, heart rate, HRV, sleep staging, and 40+ derived EXG scores) into responses. Requires a BCI wearable (Muse 2/S or OpenBCI) and the NeuroSkill desktop app running locally.

2026-05-07
fastmcp
소프트웨어 개발자

Build, test, inspect, install, and deploy MCP servers with FastMCP in Python. Use when creating a new MCP server, wrapping an API or database as MCP tools, exposing resources or prompts, or preparing a FastMCP server for Claude Code, Cursor, or HTTP deployment.

2026-05-07
openclaw-migration
소프트웨어 개발자

Migrate a user's OpenClaw customization footprint into Hermes Agent. Imports Hermes-compatible memories, SOUL.md, command allowlists, user skills, and selected workspace assets from ~/.openclaw, then reports exactly what could not be migrated and why.

2026-05-07
huggingface-accelerate
소프트웨어 개발자

Simplest distributed training API. 4 lines to add distributed support to any PyTorch script. Unified API for DeepSpeed/FSDP/Megatron/DDP. Automatic device placement, mixed precision (FP16/BF16/FP8). Interactive config, single launch command. HuggingFace ecosystem standard.

2026-05-07
chroma
소프트웨어 개발자

Open-source embedding database for AI applications. Store embeddings and metadata, perform vector and full-text search, filter by metadata. Simple 4-function API. Scales from notebooks to production clusters. Use for semantic search, RAG applications, or document retrieval. Best for local development and open-source projects.

2026-05-07
faiss
데이터 과학자

Facebook's library for efficient similarity search and clustering of dense vectors. Supports billions of vectors, GPU acceleration, and various index types (Flat, IVF, HNSW). Use for fast k-NN search, large-scale vector retrieval, or when you need pure similarity search without metadata. Best for high-performance applications.

2026-05-07
optimizing-attention-flash
데이터 과학자

Optimizes transformer attention with Flash Attention for 2-4x speedup and 10-20x memory reduction. Use when training/running transformers with long sequences (>512 tokens), encountering GPU memory issues with attention, or need faster inference. Supports PyTorch native SDPA, flash-attn library, H100 FP8, and sliding window attention.

2026-05-07
hermes-atropos-environments
소프트웨어 개발자

Build, test, and debug Hermes Agent RL environments for Atropos training. Covers the HermesAgentBaseEnv interface, reward functions, agent loop integration, evaluation with tools, wandb logging, and the three CLI modes (serve/process/evaluate). Use when creating, reviewing, or fixing RL environments in the hermes-agent repo.

2026-05-07
huggingface-tokenizers
데이터 과학자

Fast tokenizers optimized for research and production. Rust-based implementation tokenizes 1GB in <20 seconds. Supports BPE, WordPiece, and Unigram algorithms. Train custom vocabularies, track alignments, handle padding/truncation. Integrates seamlessly with transformers. Use when you need high-performance tokenization or custom tokenizer training.

2026-05-07
instructor
소프트웨어 개발자

Extract structured data from LLM responses with Pydantic validation, retry failed extractions automatically, parse complex JSON with type safety, and stream partial results with Instructor - battle-tested structured output library

2026-05-07
lambda-labs-gpu-cloud
네트워크·컴퓨터 시스템 관리자

Reserved and on-demand GPU cloud instances for ML training and inference. Use when you need dedicated GPU instances with simple SSH access, persistent filesystems, or high-performance multi-node clusters for large-scale training.

2026-05-07
llava
데이터 과학자

Large Language and Vision Assistant. Enables visual instruction tuning and image-based conversations. Combines CLIP vision encoder with Vicuna/LLaMA language models. Supports multi-turn image chat, visual question answering, and instruction following. Use for vision-language chatbots or image understanding tasks. Best for conversational image analysis.

2026-05-07
nemo-curator
소프트웨어 개발자

GPU-accelerated data curation for LLM training. Supports text/image/video/audio. Features fuzzy deduplication (16× faster), quality filtering (30+ heuristics), semantic deduplication, PII redaction, NSFW detection. Scales across GPUs with RAPIDS. Use for preparing high-quality training datasets, cleaning web data, or deduplicating large corpora.

2026-05-07
pinecone
소프트웨어 개발자

Managed vector database for production AI applications. Fully managed, auto-scaling, with hybrid search (dense + sparse), metadata filtering, and namespaces. Low latency (<100ms p95). Use for production RAG, recommendation systems, or semantic search at scale. Best for serverless, managed infrastructure.

2026-05-07
pytorch-lightning
데이터 과학자

High-level PyTorch framework with Trainer class, automatic distributed training (DDP/FSDP/DeepSpeed), callbacks system, and minimal boilerplate. Scales from laptop to supercomputer with same code. Use when you want clean training loops with built-in best practices.

2026-05-07
qdrant-vector-search
데이터 과학자

High-performance vector similarity search engine for RAG and semantic search. Use when building production RAG systems requiring fast nearest neighbor search, hybrid search with filtering, or scalable vector storage with Rust-powered performance.

2026-05-07
sparse-autoencoder-training
소프트웨어 개발자

Provides guidance for training and analyzing Sparse Autoencoders (SAEs) using SAELens to decompose neural network activations into interpretable features. Use when discovering interpretable features, analyzing superposition, or studying monosemantic representations in language models.

2026-05-07
simpo-training
소프트웨어 개발자

Simple Preference Optimization for LLM alignment. Reference-free alternative to DPO with better performance (+6.4 points on AlpacaEval 2.0). No reference model needed, more efficient than DPO. Use for preference alignment when want simpler, faster training than DPO/PPO.

2026-05-07
slime-rl-training
소프트웨어 개발자

Provides guidance for LLM post-training with RL using slime, a Megatron+SGLang framework. Use when training GLM models, implementing custom data generation workflows, or needing tight Megatron-LM integration for RL scaling.

2026-05-07
이 저장소에서 수집된 skills 122개 중 상위 40개를 표시합니다.