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cuda

AI-powered CUDA development with 4 specialist agents (General, Optimizer, Debugger, Analyzer) plus an MCP toolset. Use when writing CUDA kernels (.cu/.cuh), optimising GPU code (coalescing, shared memory, occupancy), debugging nvcc compilation or race conditions, or profiling GPU performance with nsys/ncu. NOT for high-level PyTorch training without custom kernels (use pytorch-ml), Rust/C++ systems work without GPU (use rust-development), or CPU-only profiling (use performance-analysis).

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Source facts

Repository
DreamLab-AI/agentbox
Last source activity
August 21, 2026 at 21:16
Detected SKILL.md language
English
Stars
19
Forks
0

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