// SPDX-License-Identifier: BSD-3-Clause // Copyright (c) 2026, The OpenROAD Authors #include "gtest/gtest.h" #include "odb/db.h" #include "odb/dbWireCodec.h" #include "odb/wOrder.h" #include "tst/fixture.h" namespace odb { class TestOrderWires : public tst::Fixture { protected: struct InputBumpNet { dbNet* net; dbITerm* receiver_iterm; dbITerm* bump_iterm; int receiver_x; int receiver_y; int bump_x; int bump_y; }; void SetUp() override { loadTechAndLib( "tech", "Nangate45.lef", "_main/test/Nangate45/Nangate45.lef"); dbChip* chip = dbChip::create(db_.get(), db_->getTech()); block_ = dbBlock::create(chip, "top"); } InputBumpNet buildInputBumpNet() { InputBumpNet bump_net; dbInst* bump = makeInst(block_, db_->findMaster("INV_X1"), "bump", {.location = {50000, 10000}, .status = dbPlacementStatus::PLACED, .iterms = {{"net", "A"}}}); // Note that here we could use any type of logical cell. dbInst* receiver = makeInst(block_, db_->findMaster("INV_X1"), "receiver", {.location = {10000, 10000}, .status = dbPlacementStatus::PLACED, .iterms = {{"net", "A"}}}); // The bterm associated to the bump has no geometry. dbBTerm* bterm = makeBTerm(block_, "net", {.io_type = dbIoType::INPUT, .bpins = {}}); bump_net.net = block_->findNet("net"); bump_net.receiver_iterm = receiver->findITerm("A"); bump_net.bump_iterm = bump->findITerm("A"); dbChipRegion* chip_region = dbChipRegion::create( db_->getChip(), "R1", dbChipRegion::Side::FRONT, nullptr); dbChipBump* chip_bump = dbChipBump::create(chip_region, bump); chip_bump->setNet(bump_net.net); chip_bump->setBTerm(bterm); bump_net.receiver_iterm->getAvgXY(&bump_net.receiver_x, &bump_net.receiver_y); bump_net.bump_iterm->getAvgXY(&bump_net.bump_x, &bump_net.bump_y); return bump_net; } dbBlock* block_; }; TEST_F(TestOrderWires, InputBumpNetWithPatchAtTheBeginning) { const InputBumpNet bump_net = buildInputBumpNet(); dbTechLayer* metal1 = db_->getTech()->findLayer("metal1"); dbWire* wire = dbWire::create(bump_net.net); dbWireEncoder encoder; encoder.begin(wire); // First path: a lone patch RECT, making a wire point without edges. encoder.newPath(metal1, dbWireType::ROUTED); encoder.addPoint(bump_net.bump_x, bump_net.bump_y); encoder.addRect(-70, -70, 70, 70); // Second path: a real segment from the receiver pin to the bump pad. encoder.newPath(metal1, dbWireType::ROUTED); encoder.addPoint(bump_net.receiver_x, bump_net.receiver_y); encoder.addPoint(bump_net.bump_x, bump_net.bump_y); encoder.end(); orderWires(&logger_, block_); EXPECT_TRUE(bump_net.net->isWireOrdered()); dbWireDecoder decoder; decoder.begin(bump_net.net->getWire()); EXPECT_EQ(decoder.next(), dbWireDecoder::PATH); // Operation codes of the bump pin. EXPECT_EQ(decoder.next(), dbWireDecoder::POINT); int x, y; decoder.getPoint(x, y); EXPECT_EQ(x, bump_net.bump_x); EXPECT_EQ(y, bump_net.bump_y); EXPECT_EQ(decoder.next(), dbWireDecoder::ITERM); EXPECT_EQ(decoder.getITerm(), bump_net.bump_iterm); // Operation codes of the receiver. EXPECT_EQ(decoder.next(), dbWireDecoder::POINT); decoder.getPoint(x, y); EXPECT_EQ(x, bump_net.receiver_x); EXPECT_EQ(y, bump_net.receiver_y); EXPECT_EQ(decoder.next(), dbWireDecoder::ITERM); EXPECT_EQ(decoder.getITerm(), bump_net.receiver_iterm); EXPECT_EQ(decoder.next(), dbWireDecoder::END_DECODE); } } // namespace odb