ecadbe1477
ci / build-test (push) Successful in 1m14s
A meter's flow value is now its throughput — consumption OR generation output —
so a generation meter (solar) acts as a source that can feed downstream meters.
Setting a load meter's upstream to {grid, solar} now splits its consumption
across both proportionally, and the remainder under the sources (grid + solar −
load) surfaces as "Other" = export + battery/inverter losses. Negative values
(savings/balance virtuals) are clamped to 0 (a ribbon can't be negative). The
per-type KPI is relabelled "Top-level throughput" since it now spans generation.
Test: Generation_meter_counts_as_source (grid 75 + solar-gen 30 → house 40 →
28.57/11.43 split, 65 remainder). 69 Core + 48 Integration = 117 green.
Live-verified: electricity flow now shows Solar 1/2 as source nodes.
Claude-Session: https://claude.ai/code/session_01Lz2RqAsnQhetqWNoCDfexK
144 lines
6.0 KiB
C#
144 lines
6.0 KiB
C#
using MeterVault.Core.Domain;
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using MeterVault.Infrastructure.Dashboard;
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using MeterVault.Infrastructure.Persistence;
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using Microsoft.EntityFrameworkCore;
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namespace MeterVault.Integration.Tests;
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/// <summary>
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/// The per-energy-type flow graph (Sankey): a single-parent chain attributes the child's full
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/// consumption to its parent and shows the remainder as "Other"; a two-parent merge splits the
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/// child's consumption proportionally to the parents' own consumption.
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/// </summary>
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[Collection("Timescale")]
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public sealed class FlowServiceTests(TimescaleFixture fx)
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{
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[Fact]
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public async Task Single_parent_chain_makes_other_remainder()
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{
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await using var db = fx.CreateContext();
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try
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{
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var type = await SeedTypeAsync(db, "flow_elec_a");
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var main = await AddMeterAsync(db, "Main", type);
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var car = await AddMeterAsync(db, "Car", type);
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db.MeterLinks.Add(new MeterLink { FromMeterId = main.Id, ToMeterId = car.Id });
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await db.SaveChangesAsync();
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await AddConsumptionAsync(db, main.Id, 100);
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await AddConsumptionAsync(db, car.Id, 30);
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var graph = await new FlowService(fx).GetFlowAsync(type, new DateOnly(2024, 1, 1), new DateOnly(2024, 12, 31));
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Assert.Equal(100, graph.Total, 1);
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var link = Assert.Single(graph.Links, l => l.To == $"m{car.Id}");
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Assert.Equal(30, link.Value, 1); // full child consumption flows from its single parent
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var other = Assert.Single(graph.Nodes, n => n.IsOther);
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Assert.Equal(70, other.Value, 1); // 100 − 30
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}
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finally
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{
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await ClearAsync(db);
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}
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}
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[Fact]
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public async Task Two_parents_split_child_proportionally()
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{
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await using var db = fx.CreateContext();
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try
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{
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var type = await SeedTypeAsync(db, "flow_elec_b");
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var grid = await AddMeterAsync(db, "Grid", type);
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var solar = await AddMeterAsync(db, "Solar draw", type);
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var house = await AddMeterAsync(db, "House", type);
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db.MeterLinks.Add(new MeterLink { FromMeterId = grid.Id, ToMeterId = house.Id });
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db.MeterLinks.Add(new MeterLink { FromMeterId = solar.Id, ToMeterId = house.Id });
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await db.SaveChangesAsync();
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await AddConsumptionAsync(db, grid.Id, 75);
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await AddConsumptionAsync(db, solar.Id, 25);
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await AddConsumptionAsync(db, house.Id, 40);
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var graph = await new FlowService(fx).GetFlowAsync(type, new DateOnly(2024, 1, 1), new DateOnly(2024, 12, 31));
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// House (40) splits 75:25 → 30 from grid, 10 from solar.
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Assert.Equal(30, graph.Links.Single(l => l.From == $"m{grid.Id}" && l.To == $"m{house.Id}").Value, 1);
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Assert.Equal(10, graph.Links.Single(l => l.From == $"m{solar.Id}" && l.To == $"m{house.Id}").Value, 1);
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}
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finally
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{
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await ClearAsync(db);
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}
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}
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[Fact]
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public async Task Generation_meter_counts_as_source()
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{
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await using var db = fx.CreateContext();
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try
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{
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var type = await SeedTypeAsync(db, "flow_elec_c");
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var grid = await AddMeterAsync(db, "Grid", type);
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var solar = await AddMeterAsync(db, "Solar", type);
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var house = await AddMeterAsync(db, "House", type);
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db.MeterLinks.Add(new MeterLink { FromMeterId = grid.Id, ToMeterId = house.Id });
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db.MeterLinks.Add(new MeterLink { FromMeterId = solar.Id, ToMeterId = house.Id });
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await db.SaveChangesAsync();
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await AddConsumptionAsync(db, grid.Id, 75); // grid import
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await AddConsumptionAsync(db, solar.Id, 30, ConsumptionKind.Generation); // solar generation
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await AddConsumptionAsync(db, house.Id, 40); // house load
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var graph = await new FlowService(fx).GetFlowAsync(type, new DateOnly(2024, 1, 1), new DateOnly(2024, 12, 31));
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// Solar's generation makes it a real source: House (40) splits 75:30 across grid+solar.
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Assert.Equal(40.0 * 75 / 105, graph.Links.Single(l => l.From == $"m{grid.Id}" && l.To == $"m{house.Id}").Value, 1);
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Assert.Equal(40.0 * 30 / 105, graph.Links.Single(l => l.From == $"m{solar.Id}" && l.To == $"m{house.Id}").Value, 1);
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// Remainder across grid+solar = (75+30) − 40 = 65 (export + battery/inverter losses).
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Assert.Equal(65, graph.Nodes.Where(n => n.IsOther).Sum(n => n.Value), 1);
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}
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finally
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{
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await ClearAsync(db);
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}
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}
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private static async Task<short> SeedTypeAsync(MeterVaultDbContext db, string key)
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{
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var type = new EnergyType { Key = key, DisplayName = key, BaseUnit = "kWh", DefaultMode = MeterMode.CumulativeCounter };
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db.EnergyTypes.Add(type);
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await db.SaveChangesAsync();
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return type.Id;
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}
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private static async Task<Meter> AddMeterAsync(MeterVaultDbContext db, string name, short type)
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{
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var meter = new Meter { Name = name, EnergyTypeId = type, Mode = MeterMode.DirectDelta, Unit = "kWh" };
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db.Meters.Add(meter);
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await db.SaveChangesAsync();
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return meter;
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}
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private static async Task AddConsumptionAsync(MeterVaultDbContext db, int meterId, double amount, ConsumptionKind kind = ConsumptionKind.Consumption)
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{
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db.Consumption.Add(new Consumption
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{
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MeterId = meterId,
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Time = new DateTimeOffset(2024, 6, 15, 0, 0, 0, TimeSpan.Zero),
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Amount = amount,
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Kind = kind,
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Quality = ReadingQuality.Manual,
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});
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await db.SaveChangesAsync();
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}
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private static async Task ClearAsync(MeterVaultDbContext db)
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{
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await db.MeterLinks.ExecuteDeleteAsync();
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await db.Consumption.ExecuteDeleteAsync();
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await db.Meters.ExecuteDeleteAsync();
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await db.EnergyTypes.Where(t => t.Key.StartsWith("flow_elec_")).ExecuteDeleteAsync();
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}
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}
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