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Caffe: a Fast framework for deep learning. Custom version with built-in sparse inputs, segmentation, object detection, class weights, and custom layers
This is a slightly modified version of Caffe as used by the Deep Learning API & server Deepdetect. The repository is kept up to date with the original Caffe master branch.
Improvements and new features include:
Switch from LOG(FATAL) error to CaffeErrorException thrown on every recoverable errors. This allows the safe use of Caffe as a C++ library from external applications, and in production
Various fixes, including ability to run the exact same job in parallel
Makefile fixes with default build supporting all NVIDIA architectures
Sparse inputs and CPU/GPU computations
Support for class weights applied to Softmax loss, useful for training over imbalanced datasets
SSD: Single Shot MultiBox Detector for object detection in images
While this is intended to be used with DeepDetect, this is a great alternative to the original Caffe if you'd like to avoid uncaptured errors, train from text or sparse data, need built-in image detection.
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Caffe: a Fast framework for deep learning. Custom version with built-in sparse inputs, segmentation, object detection, class weights, and custom layers