Unsupervised learning about 4D features of microparticle motion.
Bradley T WolfeO IaroshenkoPinghan ChuG T KenyonT J SchaubA ThresherY WatkinsL ZhaoZhehui WangPublished in: The Review of scientific instruments (2018)
Material clusters of different sizes are known to exist in high-temperature plasmas due to plasma-wall interactions. The facts that these clusters, ranging from sub-microns to above mm in size, can move from one location to another quickly and that there are a lot of them make high-speed imaging and tracking one of the best, effective, and sometimes only diagnostic. An unsupervised machine learning technique based on deconvolutional neural networks is developed to analyze two-camera videos of high-temperature microparticles generated from exploding wires. The neural network utilizes a locally competitive algorithm to infer representations and optimize a dictionary composed of kernels, or basis vectors, for image analysis. Our primary goal is to use this method for feature recognition and prediction of the time-dependent three-dimensional (or "4D") microparticle motion. Features equivalent to local velocity vectors have been identified as the dictionary kernels or "building blocks" of the scene. The dictionary elements from the left and right camera views are found to be strongly correlated and satisfy the projection geometrical constraints. The results show that unsupervised machine learning techniques are promising approaches to process large sets of images for high-temperature plasmas and other scientific experiments. Machine learning techniques can be useful to handle the large amount of data and therefore aid the understanding of plasma-wall interaction.
Keyphrases
- high temperature
- machine learning
- neural network
- high speed
- big data
- atomic force microscopy
- high resolution
- deep learning
- artificial intelligence
- convolutional neural network
- working memory
- optical coherence tomography
- electronic health record
- magnetic resonance imaging
- photodynamic therapy
- magnetic resonance
- image quality