Earth Mover's Distance (EMD) when applied for domain

Computer Networking: A Top-Down Approach (7th Edition)
7th Edition
ISBN:9780133594140
Author:James Kurose, Keith Ross
Publisher:James Kurose, Keith Ross
Chapter1: Computer Networks And The Internet
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Which of the following statements is/are true about Earth Mover's Distance (EMD) when applied for domain
adaptation
O EMD assumes the source and target data belong to Gaussian distributions and determines the difference
between the parameters of the Gaussian distributions.
O EMD is a non-parametric technique, i.e., the EMD technique does not need the parameters of the source and
target data distributions (for e.g. mean and covariance as in a Gaussian distribution) in order to estimate the
distribution difference.
EMD can be used as part of an objective function to train a neural network to align the features of the source
and target datasets in domain adaptation.
EMD is estimated by projecting the source and target data to a high-dimensional (infinite dimensional)
space and then determining the distance between the means of the projected data in the high-dimensional
space.
Transcribed Image Text:Which of the following statements is/are true about Earth Mover's Distance (EMD) when applied for domain adaptation O EMD assumes the source and target data belong to Gaussian distributions and determines the difference between the parameters of the Gaussian distributions. O EMD is a non-parametric technique, i.e., the EMD technique does not need the parameters of the source and target data distributions (for e.g. mean and covariance as in a Gaussian distribution) in order to estimate the distribution difference. EMD can be used as part of an objective function to train a neural network to align the features of the source and target datasets in domain adaptation. EMD is estimated by projecting the source and target data to a high-dimensional (infinite dimensional) space and then determining the distance between the means of the projected data in the high-dimensional space.
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