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ScadaBridge/tests/ZB.MOM.WW.ScadaBridge.DataConnectionLayer.Tests/Adapters/BatchSeamPrimitiveTests.cs
T

205 lines
6.8 KiB
C#

using ZB.MOM.WW.ScadaBridge.DataConnectionLayer.Actors;
using ZB.MOM.WW.ScadaBridge.DataConnectionLayer.Adapters;
namespace ZB.MOM.WW.ScadaBridge.DataConnectionLayer.Tests.Adapters;
/// <summary>
/// WP2.1b — the primitives the batch seam is built from, tested in isolation because the
/// OPC Foundation Session/Subscription types they drive cannot be faked without a live
/// server: monitored-item shard placement, the apply-serialization gate, the bounded
/// pipeline behind the MxGateway supervisory advise, the alarm-stream union prefix, and
/// the tag-resolution backoff step.
/// </summary>
public class BatchSeamPrimitiveTests
{
// ── Shard placement ──
[Fact]
public void Sharding_SplitsItemsAtTheBudget()
{
// 12,001 items at the 5,000 default → 3 shards (memo §2 sizing example).
Assert.Equal(3, MonitoredItemShardPlanner.ShardCountFor(12_001, 5_000));
// 37,500 tags → 8 shards.
Assert.Equal(8, MonitoredItemShardPlanner.ShardCountFor(37_500, 5_000));
var placement = MonitoredItemShardPlanner.Plan([], 5_000, 12_001);
Assert.Equal(12_001, placement.Count);
Assert.Equal(0, placement[0]);
Assert.Equal(0, placement[4_999]);
Assert.Equal(1, placement[5_000]);
Assert.Equal(2, placement[10_000]);
Assert.Equal(2, placement[12_000]);
}
[Fact]
public void Sharding_FillsTheFirstShardWithFreeCapacityBeforeCreatingOne()
{
// Shard 0 full, shard 1 has one free slot: the next two items fill shard 1 then
// open shard 2 — the "first shard with free capacity, else a new shard" policy,
// which is also what makes an emptied-and-deleted shard's capacity reusable.
var placement = MonitoredItemShardPlanner.Plan([5_000, 4_999], 5_000, 2);
Assert.Equal([1, 2], placement);
}
[Fact]
public void Sharding_NonPositiveBudgetDegradesToOneItemPerShard()
{
Assert.Equal([0, 1, 2], MonitoredItemShardPlanner.Plan([], 0, 3));
}
// ── Apply serialization ──
[Fact]
public async Task ApplyGate_NeverRunsTwoSectionsConcurrently()
{
var gate = new AsyncSerialGate();
var inFlight = 0;
var maxObserved = 0;
var tasks = Enumerable.Range(0, 32).Select(_ => gate.RunAsync(async () =>
{
var now = Interlocked.Increment(ref inFlight);
InterlockedMax(ref maxObserved, now);
await Task.Delay(5);
Interlocked.Decrement(ref inFlight);
})).ToArray();
await Task.WhenAll(tasks);
Assert.Equal(1, maxObserved);
}
[Fact]
public async Task ApplyGate_ReleasesWhenASectionThrows()
{
var gate = new AsyncSerialGate();
await Assert.ThrowsAsync<InvalidOperationException>(() =>
gate.RunAsync(() => throw new InvalidOperationException("apply failed")));
// The gate must still admit the next caller — a faulted ApplyChanges must not
// wedge every later subscribe/unsubscribe on this client.
var ran = false;
await gate.RunAsync(() =>
{
ran = true;
return Task.CompletedTask;
});
Assert.True(ran);
}
// ── Bounded pipeline (MxGateway supervisory advise) ──
[Fact]
public async Task BulkPipeline_KeepsInFlightCountWithinTheWindow()
{
const int parallelism = 16;
var inFlight = 0;
var maxObserved = 0;
var items = Enumerable.Range(0, 200).ToList();
var results = await BulkPipeline.RunAsync(
items,
parallelism,
async (item, _) =>
{
var now = Interlocked.Increment(ref inFlight);
InterlockedMax(ref maxObserved, now);
await Task.Delay(2);
Interlocked.Decrement(ref inFlight);
return item * 2;
},
(item, _) => -item);
Assert.Equal(items.Count, results.Length);
Assert.Equal(items.Select(i => i * 2), results);
Assert.InRange(maxObserved, 1, parallelism);
}
[Fact]
public async Task BulkPipeline_CapturesPerItemFaultsWithoutAbortingTheBatch()
{
var results = await BulkPipeline.RunAsync(
[1, 2, 3],
4,
(item, _) => item == 2
? throw new InvalidOperationException("advise failed")
: Task.FromResult(item),
(item, _) => -item);
Assert.Equal([1, -2, 3], results);
}
// ── Alarm-stream union prefix ──
[Theory]
[InlineData(new[] { "Area1.Tank1", "Area1.Tank2" }, "Area1.Tank")]
[InlineData(new[] { "Area1.Tank1" }, "Area1.Tank1")]
[InlineData(new[] { "Area1.Tank1", "Area2.Tank1" }, "Area")]
[InlineData(new[] { "Plant.A", "Zone.B" }, "")]
[InlineData(new[] { "Area1.Tank1", "" }, "")]
[InlineData(new string[0], "")]
public void AlarmPrefix_IsTheLongestCommonPrefix(string[] sources, string expected)
{
Assert.Equal(expected, AlarmFilterPrefix.LongestCommonPrefix(sources));
}
[Fact]
public void AlarmPrefix_CoversOnlySourcesUnderTheLivePrefix()
{
Assert.True(AlarmFilterPrefix.Covers("Area1.", "Area1.Tank1"));
Assert.False(AlarmFilterPrefix.Covers("Area1.", "Area2.Tank1"));
// A gateway-wide stream covers everything.
Assert.True(AlarmFilterPrefix.Covers("", "Anything.At.All"));
}
// ── Tag-resolution backoff ──
[Fact]
public void Backoff_DoublesPerFailedRoundAndCapsAtTheMaximum()
{
var floor = TimeSpan.FromSeconds(10);
var max = TimeSpan.FromMinutes(5);
var sequence = new List<TimeSpan>();
var current = floor;
for (var round = 0; round < 8; round++)
{
current = DataConnectionActor.NextTagResolutionInterval(current, floor, max);
sequence.Add(current);
}
Assert.Equal(
[
TimeSpan.FromSeconds(20),
TimeSpan.FromSeconds(40),
TimeSpan.FromSeconds(80),
TimeSpan.FromSeconds(160),
TimeSpan.FromSeconds(300),
TimeSpan.FromSeconds(300),
TimeSpan.FromSeconds(300),
TimeSpan.FromSeconds(300),
], sequence);
}
[Fact]
public void Backoff_MisconfiguredCeilingBelowFloorDegradesToAFixedInterval()
{
var floor = TimeSpan.FromSeconds(10);
var next = DataConnectionActor.NextTagResolutionInterval(floor, floor, TimeSpan.FromSeconds(1));
Assert.Equal(floor, next);
}
private static void InterlockedMax(ref int target, int value)
{
int seen;
do
{
seen = Volatile.Read(ref target);
if (value <= seen)
return;
}
while (Interlocked.CompareExchange(ref target, value, seen) != seen);
}
}