// SPDX-License-Identifier: BSD-3-Clause // Copyright (c) 2026, The OpenROAD Authors #include "syn/ir/Graph.h" #include #include #include #include #include #include "gtest/gtest.h" #include "syn/ir/Bundle.h" #include "syn/ir/Const.h" #include "syn/ir/ControlNet.h" #include "syn/ir/Instance.h" #include "syn/ir/Net.h" #include "syn/ir/NetTableEntry.h" // ABC (pulled in transitively via //src/syn/src/ir → TritModel) ships its // own main() that wins over gtest_main. Provide our own to force the gtest // entry point. int main(int argc, char** argv) { testing::InitGoogleTest(&argc, argv); return RUN_ALL_TESTS(); } namespace syn { struct GraphTestAccess { static size_t tableSize(const Graph& g) { return g.tableSize(); } static Net netFromId(NetTableId id) { return Net(id); } }; TEST(GraphTest, AddNotFineDispatch) { Graph g; Bundle a = g.add("a", 1); Bundle na = g.add(a); EXPECT_EQ(na.width(), 1u); EXPECT_EQ(g.findOne()->outputWidth(), 1u); } TEST(GraphTest, AddNotWideDispatch) { Graph g; Bundle a = g.add("a", 4); Bundle na = g.add(a); EXPECT_EQ(na.width(), 4u); EXPECT_EQ(g.findOne()->outputWidth(), 4u); } TEST(GraphTest, AddAndFineDispatch) { Graph g; Bundle a = g.add("a", 1); Bundle b = g.add("b", 1); Bundle c = g.add(a, b); EXPECT_EQ(c.width(), 1u); EXPECT_EQ(g.findOne()->outputWidth(), 1u); } TEST(GraphTest, AddAndWideDispatch) { Graph g; Bundle a = g.add("a", 4); Bundle b = g.add("b", 4); Bundle c = g.add(a, b); EXPECT_EQ(c.width(), 4u); EXPECT_EQ(g.findOne()->outputWidth(), 4u); } TEST(GraphTest, AddAdcWide) { Graph g; Bundle a = g.add("a", 8); Bundle b = g.add("b", 8); Bundle sum = g.add(a, b, Net::zero()); EXPECT_EQ(sum.width(), 9u); EXPECT_EQ(g.findOne()->outputWidth(), 9u); } TEST(GraphTest, AddOutput) { Graph g; Bundle a = g.add("a", 4); Bundle na = g.add(a); Bundle out = g.add("out", na); EXPECT_EQ(out.width(), 1u); EXPECT_EQ(g.findOne()->name(), "out"); } TEST(GraphTest, EqSingleBitOutput) { Graph g; Bundle a = g.add("a", 4); Bundle b = g.add("b", 4); Bundle eq = g.add(a, b); EXPECT_EQ(eq.width(), 1u); EXPECT_EQ(g.findOne()->outputWidth(), 1u); } TEST(GraphTest, MuxFineDispatch) { Graph g; Bundle a = g.add("a", 1); Bundle b = g.add("b", 1); Bundle sel = g.add("sel", 1); Bundle m = g.add(sel[0], a, b); EXPECT_EQ(m.width(), 1u); EXPECT_EQ(g.findOne()->outputWidth(), 1u); } TEST(GraphTest, BufferFineAccessor) { Graph g; Bundle a = g.add("a", 1); Bundle buf = g.add(a); auto [inst, offset] = g.resolve(buf[0]); EXPECT_EQ(offset, 0u); auto& buffer = *static_cast(inst); BundleView va = buffer.a(); EXPECT_EQ(va.width(), 1u); EXPECT_EQ(va[0], a[0]); } TEST(GraphTest, BufferWideAccessor) { Graph g; Bundle a = g.add("a", 4); Bundle buf = g.add(a); auto [inst, offset] = g.resolve(buf[0]); EXPECT_EQ(offset, 0u); auto& buffer = *static_cast(inst); BundleView va = buffer.a(); EXPECT_EQ(va.width(), 4u); for (uint32_t i = 0; i < 4; ++i) { EXPECT_EQ(va[i], a[i]); } } TEST(GraphTest, AndBaseAccessors) { Graph g; Bundle a = g.add("a", 1); Bundle b = g.add("b", 1); Bundle c = g.add(a, b); auto [inst, offset] = g.resolve(c[0]); auto& and_inst = *static_cast(inst); EXPECT_EQ(and_inst.a().width(), 1u); EXPECT_EQ(and_inst.a()[0], a[0]); EXPECT_EQ(and_inst.b().width(), 1u); EXPECT_EQ(and_inst.b()[0], b[0]); } TEST(GraphTest, AndWideBaseAccessors) { Graph g; Bundle a = g.add("a", 4); Bundle b = g.add("b", 4); Bundle c = g.add(a, b); auto [inst, offset] = g.resolve(c[0]); EXPECT_EQ(offset, 0u); auto& and_inst = *static_cast(inst); EXPECT_EQ(and_inst.a().width(), 4u); EXPECT_EQ(and_inst.b().width(), 4u); for (uint32_t i = 0; i < 4; ++i) { EXPECT_EQ(and_inst.a()[i], a[i]); EXPECT_EQ(and_inst.b()[i], b[i]); } } TEST(GraphTest, MuxBaseAccessors) { Graph g; Bundle a = g.add("a", 1); Bundle b = g.add("b", 1); Bundle sel = g.add("sel", 1); Bundle m = g.add(sel[0], a, b); auto [inst, offset] = g.resolve(m[0]); auto& mux = *static_cast(inst); EXPECT_EQ(mux.sel(), sel[0]); EXPECT_EQ(mux.a()[0], a[0]); EXPECT_EQ(mux.b()[0], b[0]); } TEST(GraphTest, AdcBaseAccessors) { Graph g; Bundle a = g.add("a", 8); Bundle b = g.add("b", 8); Bundle sum = g.add(a, b, Net::zero()); auto [inst, offset] = g.resolve(sum[0]); EXPECT_EQ(offset, 0u); auto& adc = *static_cast(inst); EXPECT_EQ(adc.a().width(), 8u); EXPECT_EQ(adc.b().width(), 8u); EXPECT_EQ(adc.cin(), Net::zero()); } // ============================================================ // normalize() DCE tests // ============================================================ TEST(GraphTest, NormalizeRemovesUnusedInstance) { Graph g; Bundle a = g.add("a", 4); Bundle b = g.add("b", 4); Bundle unused = g.add(a, b); // not connected to output Bundle na = g.add(a); g.add("out", na); (void) unused; size_t before = GraphTestAccess::tableSize(g); g.normalize(); size_t after = GraphTestAccess::tableSize(g); // The And and input "b" are unreferenced → should shrink the table. EXPECT_LT(after, before); } TEST(GraphTest, NormalizePreservesOutput) { Graph g; Bundle a = g.add("a", 1); Bundle na = g.add(a); g.add("out", na); size_t before = GraphTestAccess::tableSize(g); g.normalize(); // Everything is reachable, so table size should not grow. EXPECT_LE(GraphTestAccess::tableSize(g), before); } TEST(GraphTest, NormalizePreservesDff) { Graph g; Bundle a = g.add("a", 4); Bundle clk = g.add("clk", 1); g.add(a, ControlNet::pos(clk[0]), ControlNet::zero(), ControlNet::zero(), ControlNet::zero(), Const::zero(4), Const::zero(4), Const::zero(4)); // Dff has effects → kept even without Output. size_t before = GraphTestAccess::tableSize(g); g.normalize(); // Nothing is unreachable, so the table shouldn't shrink much. EXPECT_LE(GraphTestAccess::tableSize(g), before); } TEST(GraphTest, NormalizeEmpty) { Graph g; // No instances beyond constants. g.normalize(); // Constants still there. EXPECT_GE(GraphTestAccess::tableSize(g), 3u); } TEST(GraphTest, NormalizePreservesConstants) { Graph g; g.add("out", Bundle::zero(1)); g.normalize(); // Constants are always preserved at fixed indices. EXPECT_TRUE(g.resolve(Net::zero()).first->is()); EXPECT_TRUE(g.resolve(Net::one()).first->is()); EXPECT_TRUE(g.resolve(Net::undef()).first->is()); } TEST(GraphTest, NormalizeTransitiveReachability) { Graph g; Bundle a = g.add("a", 4); Bundle b = g.add("b", 4); Bundle c = g.add(a, b); Bundle d = g.add(c); g.add("out", d); // Unreferenced combinational gate — no path to an effects root, so // normalize should DCE it. (Inputs are preserved as port boundaries // even when unused, so an Input isn't a valid DCE witness.) Bundle unused = g.add(a, b); (void) unused; g.normalize(); bool has_or = false; g.forEachInstance([&](const Instance* inst) { if (inst->is()) { has_or = true; } }); EXPECT_FALSE(has_or); } // ============================================================ // normalize tests // ============================================================ TEST(GraphTest, NormalizePreserveWide) { // Create a combinational loop via forward reference. // Use wide instances (8-bit) with only partial bits used in the output // to exercise per-bit liveness and slicing. std::istringstream is( "%3:4 = input \"a\"\n" "%7:4 = not %3:4\n" "%11:0 = output \"out\" %7:4\n"); std::unique_ptr g = Graph::parse(is); g->dump(std::cout); g->normalize(); std::ostringstream os; g->dump(os); EXPECT_EQ(os.str(), R"(%3:4 = input "a" %7:0 = output "out" %8:4 %8:4 = not %3:4 )"); } TEST(GraphTest, NormalizeWithCycle) { // Create a combinational loop via forward reference. // Use wide instances (8-bit) with only partial bits used in the output // to exercise per-bit liveness and slicing. std::istringstream is( "%3:8 = input \"a\"\n" "%11:8 = and %3:8 %19:8\n" "%19:8 = or %11:8 %3:8\n" "%27:0 = output \"out\" %19+0:4\n"); std::unique_ptr g = Graph::parse(is); g->normalize(); std::ostringstream os; g->dump(os); EXPECT_EQ(os.str(), R"(%3:8 = input "a" %11:0 = output "out" [ %23 %20 %17 %14 ] %12:1 = loop_breaker %14 %13:1 = and %3 %12 %14:1 = or %13 %3 %15:1 = loop_breaker %17 %16:1 = and %3+1:1 %15 %17:1 = or %16 %3+1:1 %18:1 = loop_breaker %20 %19:1 = and %3+2:1 %18 %20:1 = or %19 %3+2:1 %21:1 = loop_breaker %23 %22:1 = and %3+3:1 %21 %23:1 = or %22 %3+3:1 )"); } TEST(GraphTest, NormalizeRemovesBuffers) { // buf → not chain: normalize should eliminate the buffer. std::istringstream is( "%3:4 = input \"a\"\n" "%7:4 = buf %3:4\n" "%11:4 = not %7:4\n" "%15:0 = output \"out\" %11:4\n"); std::unique_ptr g = Graph::parse(is); g->normalize(); g->assertNone(); } TEST(GraphTest, NormalizeRemovesLoopBreakers) { // A loop_breaker with no actual cycle should be eliminated. std::istringstream is( "%3:1 = input \"a\"\n" "%4:1 = loop_breaker %3\n" "%5:1 = not %4\n" "%6:0 = output \"out\" %5\n"); std::unique_ptr g = Graph::parse(is); g->normalize(); g->assertNone(); } TEST(GraphTest, NormalizeRemovesUnusedSlices) { // A loop_breaker with no actual cycle should be eliminated. std::istringstream is( R"(%3:8 = input "a" %11:0 = output "out" [ %16+0:2 ] %12:4 = xor %3:4 %3+4:4 %16:2 = not %12:2 )"); std::unique_ptr g = Graph::parse(is); g->normalize(); EXPECT_EQ(g->findOne()->outputWidth(), 2); } // A mapped flop (Other/Target with state) in a feedback loop // should NOT produce a loop_breaker — the flop breaks the loop. TEST(GraphTest, NormalizeNoLoopBreakerForMappedFlop) { // Build: input "d" → Other("DFF") → q → Not → d_next → Other.D // The Other cell has an output Q and an input D forming a feedback // loop through the Not gate. Since Other hasState(), normalize // should treat it like a Dff and not insert a loop_breaker. std::istringstream is(R"( %3:1 = input "clk" %4:1 = other "DFF" { input "D" = %5 input "CLK" = %3 %4:1 = output "Q" } %5:1 = not %4 %6:0 = output "out" %4 )"); std::unique_ptr g = Graph::parse(is); g->normalize(); g->assertNone(); } // ============================================================ // replace() tests // ============================================================ TEST(GraphTest, ReplaceSpanningMultipleInstances) { // Replace a range that spans bits from two different heap instances. std::istringstream is( "%3:8 = input \"a\"\n" "%11:4 = not %3:4\n" "%15:4 = not %3+4:4\n" "%19:4 = not %11:4\n" "%23:4 = not %15:4\n" "%27:0 = output \"out\" [ %23:4 %19:4 ]\n"); std::unique_ptr g = Graph::parse(is); // Replace nets 21-24 (bits 2-3 of %19:4, bits 0-1 of %23:4) // with nets 5-8 (bits 2-5 of input "a"). g->forceReplace(BundleView(GraphTestAccess::netFromId(21), 4), BundleView(GraphTestAccess::netFromId(5), 4)); g->checkConsistency(); } } // namespace syn