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Added empircal_sinkhorn_divergence function (#13)
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Co-authored-by: David Widmann <[email protected]>
Co-authored-by: David Widmann <[email protected]>
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3 people authored Jun 3, 2021
1 parent af649a0 commit c7d0f05
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2 changes: 1 addition & 1 deletion Project.toml
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@@ -1,7 +1,7 @@
name = "PythonOT"
uuid = "3c485715-4278-42b2-9b5f-8f00e43c12ef"
authors = ["David Widmann"]
version = "0.1.3"
version = "0.1.4"

[deps]
PyCall = "438e738f-606a-5dbb-bf0a-cddfbfd45ab0"
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1 change: 1 addition & 0 deletions docs/src/api.md
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Expand Up @@ -14,6 +14,7 @@ emd2_1d
```@docs
sinkhorn
sinkhorn2
empirical_sinkhorn_divergence
barycenter
```

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3 changes: 2 additions & 1 deletion src/PythonOT.jl
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Expand Up @@ -11,7 +11,8 @@ export emd,
barycenter,
barycenter_unbalanced,
sinkhorn_unbalanced,
sinkhorn_unbalanced2
sinkhorn_unbalanced2,
empirical_sinkhorn_divergence

const pot = PyCall.PyNULL()

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37 changes: 37 additions & 0 deletions src/lib.jl
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Expand Up @@ -244,6 +244,43 @@ function sinkhorn2(μ, ν, C, ε; kwargs...)
return pot.sinkhorn2(μ, ν, PyCall.PyReverseDims(permutedims(C)), ε; kwargs...)
end

"""
empirical_sinkhorn_divergence(xsource, xtarget, ε; kwargs...)
Compute the Sinkhorn divergence from empirical data, where `xsource` and `xtarget` are
arrays representing samples in the source domain and target domain, respectively, and `ε`
is the regularization term.
This function is a wrapper of the function
[`ot.bregman.empirical_sinkhorn_divergence`](https://pythonot.github.io/gen_modules/ot.bregman.html#ot.bregman.empirical_sinkhorn_divergence)
in the Python Optimal Transport package. Keyword arguments are listed in the documentation of the Python function.
# Examples
```jldoctest
julia> xsource = [1];
julia> xtarget = [2, 3];
julia> ε = 0.01;
julia> empirical_sinkhorn_divergence(xsource, xtarget, ε) ≈
sinkhorn2([1], [0.5, 0.5], [1 4], ε) -
(
sinkhorn2([1], [1], zeros(1, 1), ε) +
sinkhorn2([0.5, 0.5], [0.5, 0.5], [0 1; 1 0], ε)
) / 2
true
```
See also: [`sinkhorn2`](@ref)
"""
function empirical_sinkhorn_divergence(xsource, xtarget, ε; kwargs...)
return pot.bregman.empirical_sinkhorn_divergence(
reshape(xsource, Val(2)), reshape(xtarget, Val(2)), ε; kwargs...
)
end

"""
sinkhorn_unbalanced(μ, ν, C, ε, λ; kwargs...)
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Registration pull request created: JuliaRegistries/General/38079

After the above pull request is merged, it is recommended that a tag is created on this repository for the registered package version.

This will be done automatically if the Julia TagBot GitHub Action is installed, or can be done manually through the github interface, or via:

git tag -a v0.1.4 -m "<description of version>" c7d0f05e417afd9414a52a4134eafcb7a8ee7303
git push origin v0.1.4

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