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Introduction to Large-Scale
DeepLearning with
DeepLearning4J and
ApacheSpark
@romeokienzler
Swiss Data Science Conference 16 - ZHAW - Winterthur
–Assembler vs. Python?
“High-level programming”
Components
• DeepLearning4J

Enterprise Grade DeepLearning Library
• DataVec

CSV/Audio/Video/Image/… => Vector
• ND4J / ND4S (NumPy for the JVM)
ND4J
• Tensor support (Linear Buffer + Stride)
• Multiple implementations, one interface
• vectorized c++ code (JavaCPP), off-heap data
storage, BLAS (OpenBLAS, Intel MKL, cuBLAS)
• GPU (CUDA 7.5)
turn on GPU
DL4J parallelisation
• TensorFlow on ApacheSpark =>
• Scoring
• Multi-model hyper-parameter tuning
• Parallel training since V r0.8
• DeepLearning4J =>
• Scoring, Multi-model hyper-parameter tuning
• Parallel training

“Jeff Dean style parameter averaging”
“Code local vs spark”
vs.
Demo
IoT / Industry / Predictive Maintenance Use Case
data
https://github.com/romeokienzler/pmqsimulator
https://ibm.biz/joinIBMCloud
•Outperformed traditional
methods, such as
•cumulative sum (CUSUM)
•exponentially weighted moving
average (EWMA)
•Hidden Markov Models (HMM)
•Learned what “Normal” is
•Raised error if time series pattern
haven't been seen before
Intro to DeepLearning4J on ApacheSpark SDS DL Workshop 16
Intro to DeepLearning4J on ApacheSpark SDS DL Workshop 16

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