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DeepLearning.TV's video: Caffe - Ep 20 Deep Learning SIMPLIFIED

@Caffe - Ep. 20 (Deep Learning SIMPLIFIED)
Caffe is a Deep Learning library that is well suited for machine vision and forecasting applications. With Caffe you can build a net with sophisticated configuration options, and you can access premade nets in an online community. Deep Learning TV on Facebook: https://www.facebook.com/DeepLearningTV/ Twitter: https://twitter.com/deeplearningtv Caffe is a C++/CUDA library that was developed by Yangqing Jia of Google. The library was initially designed for machine vision tasks, but recent versions support sequences, speech and text, and reinforcement learning. Since it’s built on top of CUDA, Caffe supports the use of GPUs. Caffe allows the user to configure the hyper-parameters of a deep net. The layer configuration options are robust and sophisticated – individual layers can be set up as vision layers, loss layers, activation layers, and many others. Caffe’s community website allows users to contribute premade deep nets along with other useful resources. Vectorization is achieved through specialized arrays called “blobs”, which help optimize the computational costs of various operations. Have you ever used the Caffe library in one of your Deep Net projects? Please comment and share your experiences. Credits Nickey Pickorita (YouTube art) - https://www.upwork.com/freelancers/~0147b8991909b20fca Isabel Descutner (Voice) - https://www.youtube.com/user/IsabelDescutner Dan Partynski (Copy Editing) - https://www.linkedin.com/in/danielpartynski Marek Scibior (Prezi creator, Illustrator) - http://brawuroweprezentacje.pl/ Jagannath Rajagopal (Creator, Producer and Director) - https://ca.linkedin.com/in/jagannathrajagopal

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This video was published on 2016-01-19 00:36:02 GMT by @DeepLearning.TV on Youtube. DeepLearning.TV has total 81.1K subscribers on Youtube and has a total of 31 video.This video has received 390 Likes which are lower than the average likes that DeepLearning.TV gets . @DeepLearning.TV receives an average views of 128K per video on Youtube.This video has received 63 comments which are lower than the average comments that DeepLearning.TV gets . Overall the views for this video was lower than the average for the profile.

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