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feature/ra
| Author | SHA1 | Date | |
|---|---|---|---|
| e183a5d878 |
@@ -15,6 +15,7 @@ Logging = "56ddb016-857b-54e1-b83d-db4d58db5568"
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MathOptInterface = "b8f27783-ece8-5eb3-8dc8-9495eed66fee"
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MathOptInterface = "b8f27783-ece8-5eb3-8dc8-9495eed66fee"
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PackageCompiler = "9b87118b-4619-50d2-8e1e-99f35a4d4d9d"
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PackageCompiler = "9b87118b-4619-50d2-8e1e-99f35a4d4d9d"
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Printf = "de0858da-6303-5e67-8744-51eddeeeb8d7"
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Printf = "de0858da-6303-5e67-8744-51eddeeeb8d7"
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|
Random = "9a3f8284-a2c9-5f02-9a11-845980a1fd5c"
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SparseArrays = "2f01184e-e22b-5df5-ae63-d93ebab69eaf"
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SparseArrays = "2f01184e-e22b-5df5-ae63-d93ebab69eaf"
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|
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[compat]
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[compat]
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@@ -30,8 +31,8 @@ julia = "1"
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[extras]
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[extras]
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Cbc = "9961bab8-2fa3-5c5a-9d89-47fab24efd76"
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Cbc = "9961bab8-2fa3-5c5a-9d89-47fab24efd76"
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Test = "8dfed614-e22c-5e08-85e1-65c5234f0b40"
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Gurobi = "2e9cd046-0924-5485-92f1-d5272153d98b"
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Gurobi = "2e9cd046-0924-5485-92f1-d5272153d98b"
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|
Test = "8dfed614-e22c-5e08-85e1-65c5234f0b40"
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[targets]
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[targets]
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test = ["Cbc", "Test", "Gurobi"]
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test = ["Cbc", "Test", "Gurobi"]
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@@ -48,7 +48,7 @@ include("solution/warmstart.jl")
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include("solution/write.jl")
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include("solution/write.jl")
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include("transform/initcond.jl")
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include("transform/initcond.jl")
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include("transform/slice.jl")
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include("transform/slice.jl")
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include("transform/randomize.jl")
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include("transform/randomize/XavQiuAhm2021.jl")
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include("utils/log.jl")
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include("utils/log.jl")
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include("validation/repair.jl")
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include("validation/repair.jl")
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include("validation/validate.jl")
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include("validation/validate.jl")
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@@ -1,53 +0,0 @@
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# UnitCommitment.jl: Optimization Package for Security-Constrained Unit Commitment
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# Copyright (C) 2020-2021, UChicago Argonne, LLC. All rights reserved.
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# Released under the modified BSD license. See COPYING.md for more details.
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using Distributions
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function randomize_unit_costs!(
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instance::UnitCommitmentInstance;
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distribution = Uniform(0.95, 1.05),
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)::Nothing
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for unit in instance.units
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α = rand(distribution)
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unit.min_power_cost *= α
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for k in unit.cost_segments
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k.cost *= α
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end
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for s in unit.startup_categories
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s.cost *= α
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end
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end
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return
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end
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function randomize_load_distribution!(
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instance::UnitCommitmentInstance;
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distribution = Uniform(0.90, 1.10),
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)::Nothing
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α = rand(distribution, length(instance.buses))
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for t in 1:instance.time
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total = sum(bus.load[t] for bus in instance.buses)
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den = sum(
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bus.load[t] / total * α[i] for
|
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(i, bus) in enumerate(instance.buses)
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)
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for (i, bus) in enumerate(instance.buses)
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bus.load[t] *= α[i] / den
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end
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end
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return
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end
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function randomize_peak_load!(
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instance::UnitCommitmentInstance;
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distribution = Uniform(0.925, 1.075),
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)::Nothing
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α = rand(distribution)
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for bus in instance.buses
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bus.load *= α
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end
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return
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end
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export randomize_unit_costs!, randomize_load_distribution!, randomize_peak_load!
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209
src/transform/randomize/XavQiuAhm2021.jl
Normal file
209
src/transform/randomize/XavQiuAhm2021.jl
Normal file
@@ -0,0 +1,209 @@
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|
# UnitCommitment.jl: Optimization Package for Security-Constrained Unit Commitment
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# Copyright (C) 2020-2021, UChicago Argonne, LLC. All rights reserved.
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|
# Released under the modified BSD license. See COPYING.md for more details.
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|
"""
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|
Methods described in:
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|
Xavier, Álinson S., Feng Qiu, and Shabbir Ahmed. "Learning to solve
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|
large-scale security-constrained unit commitment problems." INFORMS
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|
Journal on Computing 33.2 (2021): 739-756. DOI: 10.1287/ijoc.2020.0976
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|
"""
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|
module XavQiuAhm2021
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using Distributions
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import ..UnitCommitmentInstance
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"""
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struct Randomization
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cost = Uniform(0.95, 1.05)
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load_profile_mu = [...]
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load_profile_sigma = [...]
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load_share = Uniform(0.90, 1.10)
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peak_load = Uniform(0.6 * 0.925, 0.6 * 1.075)
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randomize_costs = true
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randomize_load_profile = true
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randomize_load_share = true
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end
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Randomization method that changes: (1) production and startup costs, (2)
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share of load coming from each bus, (3) peak system load, and (4) temporal
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load profile, as follows:
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1. **Production and startup costs:**
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For each unit `u`, the vectors `u.min_power_cost` and `u.cost_segments`
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are multiplied by a constant `α[u]` sampled from the provided `cost`
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distribution. If `randomize_costs` is false, skips this step.
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2. **Load share:**
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|
For each bus `b` and time `t`, the value `b.load[t]` is multiplied by
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`(β[b] * b.load[t]) / sum(β[b2] * b2.load[t] for b2 in buses)`, where
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`β[b]` is sampled from the provided `load_share` distribution. If
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`randomize_load_share` is false, skips this step.
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3. **Peak system load and temporal load profile:**
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Sets the peak load to `ρ * C`, where `ρ` is sampled from `peak_load` and `C`
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is the maximum system capacity, at any time. Also scales the loads of all
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buses, so that `system_load[t+1]` becomes equal to `system_load[t] * γ[t]`,
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where `γ[t]` is sampled from `Normal(load_profile_mu[t], load_profile_sigma[t])`.
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The system load for the first time period is set so that the peak load
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matches `ρ * C`. If `load_profile_sigma` and `load_profile_mu` have fewer
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|
elements than `instance.time`, wraps around. If `randomize_load_profile`
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|
is false, skips this step.
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|
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The default parameters were obtained based on an analysis of publicly available
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bid and hourly data from PJM, corresponding to the month of January, 2017. For
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|
more details, see Section 4.2 of the paper.
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"""
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Base.@kwdef struct Randomization
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cost = Uniform(0.95, 1.05)
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load_profile_mu::Vector{Float64} = [
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1.0,
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|
0.978,
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|
0.98,
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|
1.004,
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|
1.02,
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|
1.078,
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|
1.132,
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|
1.018,
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|
0.999,
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|
1.006,
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|
0.999,
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|
0.987,
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|
0.975,
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|
0.984,
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|
0.995,
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|
1.005,
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|
1.045,
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|
1.106,
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|
0.981,
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|
0.981,
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0.978,
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|
0.948,
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|
0.928,
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|
0.953,
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|
]
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|
load_profile_sigma::Vector{Float64} = [
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|
0.0,
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|
0.011,
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|
0.015,
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|
0.01,
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|
0.012,
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|
0.029,
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|
0.055,
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|
0.027,
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|
0.026,
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|
0.023,
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|
0.013,
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|
0.012,
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|
0.014,
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|
0.011,
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|
0.008,
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|
0.008,
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|
0.02,
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|
0.02,
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|
0.016,
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|
0.012,
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|
0.014,
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|
0.015,
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|
0.017,
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|
0.024,
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|
]
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load_share = Uniform(0.90, 1.10)
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peak_load = Uniform(0.6 * 0.925, 0.6 * 1.075)
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randomize_load_profile::Bool = true
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randomize_costs::Bool = true
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|
randomize_load_share::Bool = true
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|
end
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|
function _randomize_costs(
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|
instance::UnitCommitmentInstance,
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|
distribution,
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|
)::Nothing
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|
for unit in instance.units
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|
α = rand(distribution)
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|
unit.min_power_cost *= α
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|
for k in unit.cost_segments
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|
k.cost *= α
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|
end
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|
for s in unit.startup_categories
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|
s.cost *= α
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|
end
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|
end
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|
return
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|
end
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|
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|
function _randomize_load_share(
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|
instance::UnitCommitmentInstance,
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|
distribution,
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|
)::Nothing
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|
α = rand(distribution, length(instance.buses))
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|
for t in 1:instance.time
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|
total = sum(bus.load[t] for bus in instance.buses)
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|
den = sum(
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|
bus.load[t] / total * α[i] for
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|
(i, bus) in enumerate(instance.buses)
|
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|
)
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|
for (i, bus) in enumerate(instance.buses)
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|
bus.load[t] *= α[i] / den
|
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|
end
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|
end
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|
return
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|
end
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|
|
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|
function _randomize_load_profile(
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|
instance::UnitCommitmentInstance,
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|
params::Randomization,
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|
)::Nothing
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|
# Generate new system load
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|
system_load = [1.0]
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|
for t in 2:instance.time
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|
idx = (t - 1) % length(params.load_profile_mu) + 1
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|
gamma = rand(
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|
Normal(params.load_profile_mu[idx], params.load_profile_sigma[idx]),
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|
)
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|
push!(system_load, system_load[t-1] * gamma)
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|
end
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|
capacity = sum(maximum(u.max_power) for u in instance.units)
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|
peak_load = rand(params.peak_load) * capacity
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|
system_load = system_load ./ maximum(system_load) .* peak_load
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|
|
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|
# Scale bus loads to match the new system load
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|
prev_system_load = sum(b.load for b in instance.buses)
|
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|
for b in instance.buses
|
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|
for t in 1:instance.time
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|
b.load[t] *= system_load[t] / prev_system_load[t]
|
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|
end
|
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|
end
|
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|
|
||||||
|
return
|
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|
end
|
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|
|
||||||
|
end
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|
|
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|
"""
|
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|
function randomize!(
|
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|
instance::UnitCommitment.UnitCommitmentInstance,
|
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|
method::XavQiuAhm2021.Randomization,
|
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|
)::Nothing
|
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|
|
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|
Randomize costs and loads based on the method described in XavQiuAhm2021.
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|
"""
|
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|
function randomize!(
|
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|
instance::UnitCommitment.UnitCommitmentInstance,
|
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|
method::XavQiuAhm2021.Randomization,
|
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|
)::Nothing
|
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|
if method.randomize_costs
|
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|
XavQiuAhm2021._randomize_costs(instance, method.cost)
|
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|
end
|
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|
if method.randomize_load_share
|
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|
XavQiuAhm2021._randomize_load_share(instance, method.load_share)
|
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|
end
|
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|
if method.randomize_load_profile
|
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|
XavQiuAhm2021._randomize_load_profile(instance, method)
|
||||||
|
end
|
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|
return
|
||||||
|
end
|
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|
|
||||||
|
export randomize!
|
||||||
@@ -28,7 +28,9 @@ const ENABLE_LARGE_TESTS = ("UCJL_LARGE_TESTS" in keys(ENV))
|
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@testset "transform" begin
|
@testset "transform" begin
|
||||||
include("transform/initcond_test.jl")
|
include("transform/initcond_test.jl")
|
||||||
include("transform/slice_test.jl")
|
include("transform/slice_test.jl")
|
||||||
include("transform/randomize_test.jl")
|
@testset "randomize" begin
|
||||||
|
include("transform/randomize/XavQiuAhm2021_test.jl")
|
||||||
|
end
|
||||||
end
|
end
|
||||||
@testset "validation" begin
|
@testset "validation" begin
|
||||||
include("validation/repair_test.jl")
|
include("validation/repair_test.jl")
|
||||||
|
|||||||
63
test/transform/randomize/XavQiuAhm2021_test.jl
Normal file
63
test/transform/randomize/XavQiuAhm2021_test.jl
Normal file
@@ -0,0 +1,63 @@
|
|||||||
|
# UnitCommitment.jl: Optimization Package for Security-Constrained Unit Commitment
|
||||||
|
# Copyright (C) 2020, UChicago Argonne, LLC. All rights reserved.
|
||||||
|
# Released under the modified BSD license. See COPYING.md for more details.
|
||||||
|
|
||||||
|
import Random
|
||||||
|
import UnitCommitment: XavQiuAhm2021
|
||||||
|
|
||||||
|
using Distributions
|
||||||
|
using UnitCommitment, Cbc, JuMP
|
||||||
|
|
||||||
|
get_instance() = UnitCommitment.read_benchmark("matpower/case118/2017-02-01")
|
||||||
|
system_load(instance) = sum(b.load for b in instance.buses)
|
||||||
|
test_approx(x, y) = @test isapprox(x, y, atol = 1e-3)
|
||||||
|
|
||||||
|
@testset "XavQiuAhm2021" begin
|
||||||
|
@testset "cost and load share" begin
|
||||||
|
instance = get_instance()
|
||||||
|
|
||||||
|
# Check original costs
|
||||||
|
unit = instance.units[10]
|
||||||
|
test_approx(unit.min_power_cost[1], 825.023)
|
||||||
|
test_approx(unit.cost_segments[1].cost[1], 36.659)
|
||||||
|
test_approx(unit.startup_categories[1].cost[1], 7570.42)
|
||||||
|
|
||||||
|
# Check original load share
|
||||||
|
bus = instance.buses[1]
|
||||||
|
prev_system_load = system_load(instance)
|
||||||
|
test_approx(bus.load[1] / prev_system_load[1], 0.012)
|
||||||
|
|
||||||
|
Random.seed!(42)
|
||||||
|
randomize!(
|
||||||
|
instance,
|
||||||
|
XavQiuAhm2021.Randomization(randomize_load_profile = false),
|
||||||
|
)
|
||||||
|
|
||||||
|
# Check randomized costs
|
||||||
|
test_approx(unit.min_power_cost[1], 831.977)
|
||||||
|
test_approx(unit.cost_segments[1].cost[1], 36.968)
|
||||||
|
test_approx(unit.startup_categories[1].cost[1], 7634.226)
|
||||||
|
|
||||||
|
# Check randomized load share
|
||||||
|
curr_system_load = system_load(instance)
|
||||||
|
test_approx(bus.load[1] / curr_system_load[1], 0.013)
|
||||||
|
|
||||||
|
# System load should not change
|
||||||
|
@test prev_system_load ≈ curr_system_load
|
||||||
|
end
|
||||||
|
|
||||||
|
@testset "load profile" begin
|
||||||
|
instance = get_instance()
|
||||||
|
|
||||||
|
# Check original load profile
|
||||||
|
@test round.(system_load(instance), digits = 1)[1:8] ≈
|
||||||
|
[3059.5, 2983.2, 2937.5, 2953.9, 3073.1, 3356.4, 4068.5, 4018.8]
|
||||||
|
|
||||||
|
Random.seed!(42)
|
||||||
|
randomize!(instance, XavQiuAhm2021.Randomization())
|
||||||
|
|
||||||
|
# Check randomized load profile
|
||||||
|
@test round.(system_load(instance), digits = 1)[1:8] ≈
|
||||||
|
[4854.7, 4849.2, 4732.7, 4848.2, 4948.4, 5231.1, 5874.8, 5934.8]
|
||||||
|
end
|
||||||
|
end
|
||||||
@@ -1,43 +0,0 @@
|
|||||||
# UnitCommitment.jl: Optimization Package for Security-Constrained Unit Commitment
|
|
||||||
# Copyright (C) 2020, UChicago Argonne, LLC. All rights reserved.
|
|
||||||
# Released under the modified BSD license. See COPYING.md for more details.
|
|
||||||
|
|
||||||
using UnitCommitment, Cbc, JuMP
|
|
||||||
|
|
||||||
_get_instance() = UnitCommitment.read_benchmark("matpower/case118/2017-02-01")
|
|
||||||
_total_load(instance) = sum(b.load[1] for b in instance.buses)
|
|
||||||
|
|
||||||
@testset "randomize_unit_costs!" begin
|
|
||||||
instance = _get_instance()
|
|
||||||
unit = instance.units[10]
|
|
||||||
prev_min_power_cost = unit.min_power_cost
|
|
||||||
prev_prod_cost = unit.cost_segments[1].cost
|
|
||||||
prev_startup_cost = unit.startup_categories[1].cost
|
|
||||||
randomize_unit_costs!(instance)
|
|
||||||
@test prev_min_power_cost != unit.min_power_cost
|
|
||||||
@test prev_prod_cost != unit.cost_segments[1].cost
|
|
||||||
@test prev_startup_cost != unit.startup_categories[1].cost
|
|
||||||
end
|
|
||||||
|
|
||||||
@testset "randomize_load_distribution!" begin
|
|
||||||
instance = _get_instance()
|
|
||||||
bus = instance.buses[1]
|
|
||||||
prev_load = instance.buses[1].load[1]
|
|
||||||
prev_total_load = _total_load(instance)
|
|
||||||
randomize_load_distribution!(instance)
|
|
||||||
curr_total_load = _total_load(instance)
|
|
||||||
@test prev_load != instance.buses[1].load[1]
|
|
||||||
@test abs(prev_total_load - curr_total_load) < 1e-3
|
|
||||||
end
|
|
||||||
|
|
||||||
@testset "randomize_peak_load!" begin
|
|
||||||
instance = _get_instance()
|
|
||||||
bus = instance.buses[1]
|
|
||||||
prev_total_load = _total_load(instance)
|
|
||||||
prev_share = bus.load[1] / prev_total_load
|
|
||||||
randomize_peak_load!(instance)
|
|
||||||
curr_total_load = _total_load(instance)
|
|
||||||
curr_share = bus.load[1] / prev_total_load
|
|
||||||
@test curr_total_load != prev_total_load
|
|
||||||
@test abs(curr_share - prev_share) < 1e-3
|
|
||||||
end
|
|
||||||
Reference in New Issue
Block a user