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CHDTevior
GitHub 创作者资料

CHDTevior

按仓库查看 2 个 GitHub 仓库中的 25 个已收集 skills。

已收集 skills
25
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2
更新
2026-04-17
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仓库与代表性 skills

当前展示该仓库 Top 8 / 14 个已收集 skills。
genai-evaluation-metrics
数据科学家

Use when evaluating generative models — choosing metrics (FID, IS, KID, sFID, FDD, FVD, PRDC, LPIPS, SSIM, AuthPct, Vendi), setting up online or offline evaluation, feature extractor selection, distributed computation, memory management during sampling.

2026-04-14
gpu-training-acceleration
数据科学家

Use when optimizing PyTorch training speed or memory on CUDA GPUs — global flags, torch.compile, fused optimizers, mixed precision, gradient checkpointing, kernel fusion, memory layout, or latent-space training. Applies to any PyTorch training workload.

2026-04-14
hf-dataset-management
数据科学家

Use when curating, uploading, or managing HuggingFace datasets for ML training, including offline caching, preflight verification, and data directory conventions.

2026-04-14
hydra-experiment-config
数据科学家

Use when structuring ML experiment configs with Hydra, adding new config groups, or debugging config resolution. Applies to any project using Hydra for hyperparameter management.

2026-04-14
ml-ablation-design
数据科学家

Use when designing ablation studies to compare model components, loss functions, or architectural choices. Covers synthetic data experiments, variant loops, production metrics, and W&B grouping.

2026-04-14
wandb-experiment-tracking
数据科学家

Use when integrating W&B experiment tracking into ML training pipelines, including logging strategy, run configuration, and online/offline mode management.

2026-04-14
webdataset-streaming
数据科学家

Use when streaming large datasets from tar shards with WebDataset, replacing file-based DataLoaders, or precomputing encoder latents into shards.

2026-04-14
slurm-gpu-resource-guard
网络与计算机系统管理员

Manage ts1v23 Slurm GPU availability on Iridis by checking active allocations, deciding whether remaining walltime is sufficient for training/debug, and submitting renewal jobs with gpu-jupyter.sh (H100), gpu-jupyter2.sh (A100), gpu-jupyter_ecs_a100.sh (swarm_a100 A100), gpu-jupyter3.sh (quad_h200 H200), or gpu-jupyter_dualh200.sh (dual_h200 H200). Use when the user asks to check current GPU resources, renew cards due to low remaining time, or run debug commands on allocated compute nodes.

2026-03-09
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