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Analyzed about 19 hours ago. based on code collected about 23 hours ago.

Project Summary

Lightweight, Portable, Flexible Distributed/Mobile Deep Learning with Dynamic, Mutation-aware Dataflow Dep Scheduler; for Python, R, Julia, Go, and more

MXNet is a deep learning framework designed for both efficiency and flexibility. It allows you to mix the flavours of symbolic programming and imperative programming together to maximize the efficiency and your productivity. In its core, a dynamic dependency scheduler that automatically parallelizes both symbolic and imperative operations on the fly. A graph optimization layer is build on top, which makes symbolic execution fast and memory efficient. The library is portable and lightweight, and is ready scales to multiple GPUs, and multiple machines.

Tags

bigdata cloud_computing cluster cpu CUDA deep_learning deep_neural_networks distributed efficiency flow_graphs framework gpu gpu_computing julia machine_learning multiple_gpu multiple_machines python R symbolic_programming

In a Nutshell, MXNet...

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Project Security

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About Project Security

Languages

C++
51%
Python
38%
CUDA
5%
12 Other
6%

30 Day Summary

May 2 2024 — Jun 1 2024

12 Month Summary

Jun 1 2023 — Jun 1 2024
  • 0 Commits
    Down -55 (100%) from previous 12 months
  • 0 Contributors
    Down -14 (100%) from previous 12 months