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Machine LearningData & AITop 20查看分类页
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Machine Learning
1987 个技能
榜单规模
20
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所属领域
Data & AI
63 已收录分类
前三聚焦

Machine Learning

Training models and neural networks.

按 Star 排序
#1
machine-learning
150.4K

continuous-learning

Claude Codeセッションから再利用可能なパターンを自動的に抽出し、将来の使用のために学習済みスキルとして保存します。

affaan-m
affaan-m
data-ai
open
#2
machine-learning
150.4K

continuous-learning-v2

フックを介してセッションを観察し、信頼度スコアリング付きのアトミックなインスティンクトを作成し、スキル/コマンド/エージェントに進化させるインスティンクトベースの学習システム。

affaan-m
affaan-m
data-ai
open
#3
machine-learning
150.4K

continuous-learning-v2

훅을 통해 세션을 관찰하고, 신뢰도 점수가 있는 원자적 본능을 생성하며, 이를 스킬/명령어/에이전트로 진화시키는 본능 기반 학습 시스템. v2.1에서는 프로젝트 간 오염을 방지하기 위한 프로젝트 범위 본능이 추가되었습니다.

affaan-m
affaan-m
data-ai
open
完整榜单

Machine Learning

榜单基于当前分类内的 GitHub Star 数进行排序。

1987 个技能星标
04
machine-learning

continuous-learning-v2

Hook'lar aracılığıyla oturumları gözlemleyen, güven skorlaması ile atomik instinct'ler oluşturan ve bunları skill/command/agent'lara evriltiren instinct tabanlı öğrenme sistemi. v2.1 çapraz proje kontaminasyonunu önlemek için proje kapsamlı instinct'ler ekler.

affaan-m
affaan-m
data-ai
星标
150.4K
查看技能
05
machine-learning

continuous-learning

Automatically extract reusable patterns from Claude Code sessions and save them as learned skills for future use.

affaan-m
affaan-m
data-ai
星标
150.4K
查看技能
06
machine-learning

continuous-learning-v2

Instinct-based learning system that observes sessions via hooks, creates atomic instincts with confidence scoring, and evolves them into skills/commands/agents. v2.1 adds project-scoped instincts to prevent cross-project contamination.

affaan-m
affaan-m
data-ai
星标
150.4K
查看技能
07
machine-learning

pytorch-patterns

PyTorch deep learning patterns and best practices for building robust, efficient, and reproducible training pipelines, model architectures, and data loading.

affaan-m
affaan-m
data-ai
星标
150.4K
查看技能
08
machine-learning

obliteratus

Remove refusal behaviors from open-weight LLMs using OBLITERATUS — mechanistic interpretability techniques (diff-in-means, SVD, whitened SVD, LEACE, SAE decomposition, etc.) to excise guardrails while preserving reasoning. 9 CLI methods, 28 analysis modules, 116 model presets across 5 compute tiers, tournament evaluation, and telemetry-driven recommendations. Use when a user wants to uncensor, abliterate, or remove refusal from an LLM.

NousResearch
NousResearch
data-ai
星标
54.3K
查看技能
09
machine-learning

axolotl

Expert guidance for fine-tuning LLMs with Axolotl - YAML configs, 100+ models, LoRA/QLoRA, DPO/KTO/ORPO/GRPO, multimodal support

NousResearch
NousResearch
data-ai
星标
54.3K
查看技能
10
machine-learning

grpo-rl-training

Expert guidance for GRPO/RL fine-tuning with TRL for reasoning and task-specific model training

NousResearch
NousResearch
data-ai
星标
54.3K
查看技能
11
machine-learning

peft-fine-tuning

Parameter-efficient fine-tuning for LLMs using LoRA, QLoRA, and 25+ methods. Use when fine-tuning large models (7B-70B) with limited GPU memory, when you need to train <1% of parameters with minimal accuracy loss, or for multi-adapter serving. HuggingFace's official library integrated with transformers ecosystem.

NousResearch
NousResearch
data-ai
星标
54.3K
查看技能
12
machine-learning

pytorch-fsdp

Expert guidance for Fully Sharded Data Parallel training with PyTorch FSDP - parameter sharding, mixed precision, CPU offloading, FSDP2

NousResearch
NousResearch
data-ai
星标
54.3K
查看技能
13
machine-learning

fine-tuning-with-trl

Fine-tune LLMs using reinforcement learning with TRL - SFT for instruction tuning, DPO for preference alignment, PPO/GRPO for reward optimization, and reward model training. Use when need RLHF, align model with preferences, or train from human feedback. Works with HuggingFace Transformers.

NousResearch
NousResearch
data-ai
星标
54.3K
查看技能
14
machine-learning

unsloth

Expert guidance for fast fine-tuning with Unsloth - 2-5x faster training, 50-80% less memory, LoRA/QLoRA optimization

NousResearch
NousResearch
data-ai
星标
54.3K
查看技能
15
machine-learning

filters-and-postfx

Use this skill when applying visual filters or post-processing effects in Phaser 4. Covers bloom, blur, glow, color matrix, barrel distortion, displacement, custom shaders, and the filter pipeline. Triggers on: filter, post-processing, shader, bloom, blur, glow, color effects.

phaserjs
phaserjs
data-ai
星标
39.3K
查看技能
16
machine-learning

geometry-and-math

Use this skill when using Phaser 4 math and geometry utilities. Covers vectors, rectangles, circles, triangles, polygons, random number generation, angles, distance, interpolation, and snapping. Triggers on: Vector2, Rectangle, Circle, math, distance, angle, random, lerp.

phaserjs
phaserjs
data-ai
星标
39.3K
查看技能
17
machine-learning

tweens

Use this skill when animating properties over time in Phaser 4. Covers tweens, tween chains, easing functions, stagger, yoyo, repeat, callbacks, number tweens, and the TweenManager. Triggers on: tween, ease, animate, this.tweens.add, tween chain, stagger.

phaserjs
phaserjs
data-ai
星标
39.3K
查看技能
18
machine-learning

v4-new-features

Use this skill when learning about new features, game objects, components, and rendering capabilities added in Phaser 4. Covers Filters, RenderNodes, CaptureFrame, Gradient, Noise, SpriteGPULayer, TilemapGPULayer, Lighting component, RenderSteps, and new tint modes. Triggers on: new in v4, Phaser 4 features, RenderNode, SpriteGPULayer, CaptureFrame, Gradient game object, Noise game object, new tint modes. For migrating v3 code to v4, see the v3-to-v4-migration skill instead.

phaserjs
phaserjs
data-ai
星标
39.3K
查看技能
19
machine-learning

memory

Two-layer memory system with Dream-managed knowledge files.

HKUDS
HKUDS
data-ai
星标
39K
查看技能
20
machine-learning

hugging-face-trackio

Track and visualize ML training experiments with Trackio. Use when logging metrics during training (Python API) or retrieving/analyzing logged metrics (CLI). Supports real-time dashboard visualization, HF Space syncing, and JSON output for automation.

patchy631
patchy631
data-ai
星标
33.4K
查看技能