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// SPDX-License-Identifier: BSD-3-Clause
// Copyright (c) 2026, The OpenROAD Authors
// Structural conformance: for every netlist in the corpus, prove that the
// emitted netlist has the same *structure* as the input netlist -- the same
// modules, the same port lists in the same order, the same declared nets, the
// same instances bound to the same masters, and no illegal or invented names.
//
// This complements TestHierConformance.cpp, which proves logical equivalence
// with a LEC. Equivalence is blind to structural fidelity: a netlist whose top
// port list has been reordered, whose modules have been cloned per instance,
// whose dangling nets have been erased, or which declares one name twice, is
// still provably equivalent to its input. Every one of those breaks a
// downstream flow (positional instantiation, SDC/UPF/DFT name matching,
// third-party readers) and no LEC will ever say so.
//
// Both suites compare against the *input* netlist, never flat_out vs hier_out:
// a reader bug upstream of the hierarchy split corrupts both outputs
// identically, and the input is the only ground truth available.
//
// This suite runs a superset of the LEC suite's corpus: it also loads
// hier_cases/structural/, the cases parked out of the LEC suite because a LEC
// cannot adjudicate them (the netlist is refused outright, or the defect is a
// naming or shape property that leaves the logic equivalent). See the corpus
// section below.
//
// METHOD, and a deliberate deviation from the original plan
// ---------------------------------------------------------
// The plan was to re-link the emitted netlist into a second odb and diff the
// two databases module by module. That is implemented here only as the
// round-trip check (the emitted netlist must read and link again). The
// structural comparison itself is done on the *text* of the two netlists, with
// a Verilog scanner in this file, because an odb-vs-odb diff is provably blind
// to three of the defects this suite exists to catch:
//
// * Module cloning. dbLinkDesign -hier calls dbModule::makeUniqueDbModule,
// so the clones (`sub`, `sub_u2`) already exist in the database built from
// the INPUT. Both sides of an odb diff show them and the diff is green
// while the emitted netlist has twice the modules of the input.
// * Top port order. Verilog2db::makeDbNets creates dbBTerms while walking
// nets, not while walking the port list, so the input database's bterm
// order is not the input's declaration order. Neither side of an odb diff
// knows what order the ports were declared in.
// * Erased dead objects. VerilogReader::makeModuleInstBody creates no net
// for a `wire n;` that nothing references, so a dropped dangling net is
// absent from the input database too.
//
// A second reason: comparing two databases built by the same reader hides
// every reader-side normalization, which is exactly where the escaping and
// bus-shape bugs live. Comparing the two files instead means the check sees
// what a downstream tool sees. The cost is a hand-written scanner (below); it
// is deliberately a scanner and not a parser -- it understands module headers,
// declarations, instantiations and continuous assigns, which is all this
// corpus contains, and it reports what it could not make sense of instead of
// guessing.
//
// CANONICALIZATION (deliberate weakenings, so the suite does not cry wolf)
// -----------------------------------------------------------------------
// * Escaped vs plain identifiers are the same name: `\a$b ` == `a$b`. The
// writer re-escapes every identifier containing '$'; that is a lexical
// form change, not a rename, and is not reported.
// * Connection expression shape is not compared at all. The hier writer
// bit-blasts every vector port connection (`.a(x)` becomes
// `.a({x[3],x[2],x[1],x[0]})`) and explodes vector assigns into per-bit
// assigns. Both are equivalence- and connectivity-preserving, so this
// suite ignores them: assigns are compared by the *base names* they drive,
// which per-bit explosion does not change.
// * Added declarations are only reported when the added name appears nowhere
// in the input netlist. Declaring a net the input left implicit is not a
// defect; inventing `_NC3` or `\u1/n ` is.
// * A name that is a '/'-join of input identifiers is accepted wherever the
// writer legitimately has to synthesize hierarchical names: everywhere in a
// flat netlist, and in the top module of a hier netlist, where the boundary
// policy materializes a child-side name as <path>/<net> when the parent has
// no alias for it. Inside a hier submodule such a name is still reported --
// that is the module-local-net renaming defect.
//
// KNOWN LIMITATIONS
// -----------------
// * Canonicalizing escapes makes the escaped scalar `\x[3] ` and the bus bit
// `x[3]` the same string. They are different objects, so a defect that
// turned one into the other inside a single module would be missed. It
// cannot produce a false positive.
// * The scanner reads declarations, instantiations and continuous assigns.
// Connection expressions are skipped, so per-bit boundary connectivity is
// not compared here -- that is what the LEC suite proves.
// * `wire dead;` that nothing references is compared as text, so its loss is
// caught; a dead *implicit* net cannot be, because nothing in either file
// names it.
#include <algorithm>
#include <cctype>
#include <cstddef>
#include <cstdlib>
#include <exception>
#include <filesystem>
#include <fstream>
#include <map>
#include <optional>
#include <ostream>
#include <set>
#include <sstream>
#include <string>
#include <tuple>
#include <utility>
#include <vector>
#include "gtest/gtest.h"
#include "tst/db_fixture.h"
#include "tst/loaded_design.h"
namespace tst {
namespace {
enum class Path
{
kHier,
kFlat,
};
const char* toString(Path path)
{
return path == Path::kHier ? "hier" : "flat";
}
// One structural aspect. Failures are keyed on (netlist, path, check) so that a
// systemic defect in one aspect -- top port order is currently reordered in
// nearly every case -- does not mask the other aspects of the same netlist.
enum class Check
{
kRoundTrip,
kModuleSet,
kTopPorts,
kSubmodulePorts,
kDeclaredNets,
kInstances,
kNameIdentity,
kCellCensus,
kAssigns,
kNamespace,
};
const char* toString(Check check)
{
switch (check) {
case Check::kRoundTrip:
return "round_trip";
case Check::kModuleSet:
return "module_set";
case Check::kTopPorts:
return "top_ports";
case Check::kSubmodulePorts:
return "submodule_ports";
case Check::kDeclaredNets:
return "declared_nets";
case Check::kInstances:
return "instances";
case Check::kNameIdentity:
return "name_identity";
case Check::kCellCensus:
return "cell_census";
case Check::kAssigns:
return "assigns";
case Check::kNamespace:
return "namespace";
}
return "unknown";
}
////////////////////////////////////////////////////////////////////////////
// Verilog structural scanner
////////////////////////////////////////////////////////////////////////////
struct Token
{
enum class Kind
{
kIdent,
kNumber,
kPunct,
kEof,
};
Kind kind{Kind::kEof};
// Identifiers are stored canonically: an escaped identifier keeps its
// payload without the leading '\' or the terminating space, so `\a$b ` and
// `a$b` compare equal. `escaped` is retained only so that `\wire ` is not
// mistaken for the keyword.
std::string text;
bool escaped{false};
};
// ASCII-only character classification. The <cctype> functions are
// locale-dependent, and Verilog identifiers are ASCII by definition, so under
// a locale that classifies a byte differently a netlist would tokenize
// differently -- a difference that would show up as a corpus case mysteriously
// changing verdict on one machine.
bool isAsciiDigit(char c)
{
return c >= '0' && c <= '9';
}
bool isAsciiAlpha(char c)
{
return (c >= 'a' && c <= 'z') || (c >= 'A' && c <= 'Z');
}
bool isAsciiAlnum(char c)
{
return isAsciiAlpha(c) || isAsciiDigit(c);
}
bool isIdentStart(char c)
{
return isAsciiAlpha(c) || c == '_' || c == '$';
}
bool isIdentChar(char c)
{
return isAsciiAlnum(c) || c == '_' || c == '$';
}
std::vector<Token> tokenize(const std::string& src)
{
std::vector<Token> tokens;
const std::size_t n = src.size();
std::size_t i = 0;
while (i < n) {
const char c = src[i];
if (std::isspace(static_cast<unsigned char>(c)) != 0) {
++i;
continue;
}
if (c == '/' && i + 1 < n && src[i + 1] == '/') {
while (i < n && src[i] != '\n') {
++i;
}
continue;
}
if (c == '/' && i + 1 < n && src[i + 1] == '*') {
i += 2;
while (i + 1 < n && !(src[i] == '*' && src[i + 1] == '/')) {
++i;
}
i = std::min(n, i + 2);
continue;
}
if (c == '`') {
// Compiler directive. No corpus case uses one; skipping the line is
// better than mis-tokenizing it.
while (i < n && src[i] != '\n') {
++i;
}
continue;
}
if (c == '(') {
// An attribute instance `(* dont_touch = 1 *)`. Without this the
// attribute's name lexes as an identifier at the head of a statement and
// is counted as an instantiation of a cell called `dont_touch`.
std::size_t at = i + 1;
while (at < n && std::isspace(static_cast<unsigned char>(src[at])) != 0) {
++at;
}
if (at < n && src[at] == '*') {
i = at + 1;
while (i + 1 < n && !(src[i] == '*' && src[i + 1] == ')')) {
++i;
}
i = std::min(n, i + 2);
continue;
}
}
if (c == '\\') {
// An escaped identifier runs from the backslash to the next whitespace.
// This is the one lexical rule a naive regex-based checker gets wrong:
// `\li/y[1] [0]` is a bit select of the escaped identifier `li/y[1]`,
// not an identifier ending in `[0]`.
const std::size_t begin = ++i;
while (i < n && std::isspace(static_cast<unsigned char>(src[i])) == 0) {
++i;
}
tokens.push_back({Token::Kind::kIdent,
src.substr(begin, i - begin),
/*escaped=*/true});
continue;
}
if (isIdentStart(c)) {
const std::size_t begin = i;
while (i < n && isIdentChar(src[i])) {
++i;
}
tokens.push_back({Token::Kind::kIdent, src.substr(begin, i - begin)});
continue;
}
if (isAsciiDigit(c) || c == '\'') {
const std::size_t begin = i;
++i;
while (i < n
&& (isAsciiAlnum(src[i]) || src[i] == '_' || src[i] == '\'')) {
++i;
}
tokens.push_back({Token::Kind::kNumber, src.substr(begin, i - begin)});
continue;
}
tokens.push_back({Token::Kind::kPunct, std::string(1, c)});
++i;
}
return tokens;
}
// A declared object: a port or a net. `range` is the declared bus range as
// written (normalized to "[msb:lsb]"), empty for a scalar. Ranges are compared
// textually rather than as bit sets so that a bus re-emitted as exploded
// scalars, or with renormalized bounds, is a difference.
struct Decl
{
std::string name;
std::string range;
bool operator<(const Decl& other) const
{
return std::tie(name, range) < std::tie(other.name, other.range);
}
bool operator==(const Decl& other) const
{
return name == other.name && range == other.range;
}
};
struct PortDecl
{
std::string name;
std::string dir;
std::string range;
bool operator==(const PortDecl& other) const
{
return name == other.name && dir == other.dir && range == other.range;
}
};
std::string toString(const PortDecl& port)
{
std::string out = port.dir.empty() ? "<no-dcl>" : port.dir;
if (!port.range.empty()) {
out += port.range;
}
out += " ";
out += port.name;
return out;
}
using InstBinding = std::pair<std::string, std::string>; // (instance, master)
struct ModuleView
{
std::string name;
// Ports in header declaration order, with the direction and range picked up
// from the matching declaration.
std::vector<PortDecl> ports;
std::set<std::string> port_names;
// Every declared port and net, deduplicated.
std::set<Decl> objects;
std::multiset<InstBinding> insts;
// Base names driven by a continuous assign. Base names, not full
// expressions, so exploding `assign z[1:0] = a[1:0];` into two per-bit
// assigns is not a difference.
std::set<std::string> assign_lhs;
// Names declared twice in the same namespace. Verilog puts nets, ports and
// instances in one module namespace, so any of these is illegal.
std::vector<std::string> duplicate_ports;
std::vector<std::string> duplicate_nets;
std::vector<std::string> inst_name_collisions;
// Names in a declaration or instance-name position that are not legal
// unescaped Verilog identifiers -- in practice, a name starting with a digit
// written without its escape, which the writer emits and no reader can read
// back.
std::vector<std::string> illegal_names;
};
struct FileView
{
std::map<std::string, ModuleView> modules;
// Every identifier appearing anywhere in the file. Used to tell an invented
// name from a name the input already knew.
std::set<std::string> identifiers;
std::vector<std::string> duplicate_modules;
std::string error;
};
const std::set<std::string>& dirKeywords()
{
static const std::set<std::string> kSet{"input", "output", "inout"};
return kSet;
}
const std::set<std::string>& netKeywords()
{
static const std::set<std::string> kSet{"wire",
"tri",
"tri0",
"tri1",
"triand",
"trior",
"trireg",
"wand",
"wor",
"reg",
"logic",
"supply0",
"supply1"};
return kSet;
}
const std::set<std::string>& declModifiers()
{
static const std::set<std::string> kSet{
"signed", "unsigned", "scalared", "vectored", "small", "medium", "large"};
return kSet;
}
class Scanner
{
public:
explicit Scanner(std::vector<Token> tokens) : tokens_(std::move(tokens)) {}
FileView scan()
{
FileView view;
for (const Token& token : tokens_) {
if (token.kind == Token::Kind::kIdent) {
view.identifiers.insert(token.text);
}
}
while (!atEnd()) {
if (isKeyword("module") || isKeyword("macromodule")) {
advance();
parseModule(view);
continue;
}
advance();
}
return view;
}
private:
bool atEnd() const { return index_ >= tokens_.size(); }
const Token& peek(std::size_t ahead = 0) const
{
static const Token kEof;
const std::size_t at = index_ + ahead;
return at < tokens_.size() ? tokens_[at] : kEof;
}
void advance(std::size_t count = 1) { index_ += count; }
bool isKeyword(const char* text, std::size_t ahead = 0) const
{
const Token& token = peek(ahead);
return token.kind == Token::Kind::kIdent && !token.escaped
&& token.text == text;
}
bool isPunct(char c, std::size_t ahead = 0) const
{
const Token& token = peek(ahead);
return token.kind == Token::Kind::kPunct && token.text[0] == c;
}
bool isIdentToken(std::size_t ahead = 0) const
{
return peek(ahead).kind == Token::Kind::kIdent;
}
// True for an identifier that is a declaration keyword rather than a name.
bool isDeclKeyword() const
{
const Token& token = peek();
if (token.kind != Token::Kind::kIdent || token.escaped) {
return false;
}
return dirKeywords().count(token.text) != 0
|| netKeywords().count(token.text) != 0
|| declModifiers().count(token.text) != 0;
}
void skipBalanced(char open, char close)
{
if (!isPunct(open)) {
return;
}
int depth = 0;
while (!atEnd()) {
if (isPunct(open)) {
++depth;
} else if (isPunct(close)) {
--depth;
if (depth == 0) {
advance();
return;
}
}
advance();
}
}
void skipToSemi()
{
while (!atEnd()) {
const bool semi = isPunct(';');
advance();
if (semi) {
return;
}
}
}
// Consumes "[ msb : lsb ]" (or "[ index ]") and returns it normalized.
// Bounds are kept as text so negative and non-literal bounds survive.
std::string parseRange()
{
std::string out;
int depth = 0;
while (!atEnd()) {
const Token& token = peek();
if (token.kind == Token::Kind::kPunct && token.text == "[") {
++depth;
} else if (token.kind == Token::Kind::kPunct && token.text == "]") {
--depth;
}
out += token.text;
advance();
if (depth == 0) {
break;
}
}
return out;
}
void parseModule(FileView& view)
{
if (!isIdentToken()) {
view.error = "expected a module name";
return;
}
ModuleView module;
module.name = peek().text;
advance();
if (isPunct('#')) {
advance();
skipBalanced('(', ')');
}
// Header port list. Non-ANSI headers name the ports only; ANSI headers
// carry the direction and range too, so both are picked up here and the
// body declarations below refine them.
std::vector<std::string> header_order;
std::map<std::string, PortDecl> header_decls;
if (isPunct('(')) {
advance();
int depth = 1;
std::string dir;
std::string range;
while (!atEnd() && depth > 0) {
if (isPunct('[')) {
range = parseRange();
continue;
}
if (isPunct('(')) {
++depth;
advance();
continue;
}
if (isPunct(')')) {
--depth;
advance();
continue;
}
if (isDeclKeyword()) {
if (dirKeywords().count(peek().text) != 0) {
dir = peek().text;
}
// A new direction or net keyword starts a new declaration, so the
// previous one's range stops applying: in
// `(input [7:0] bus, input scalar)` only `bus` is a vector, while in
// `(input [7:0] a, b)` both are.
if (dirKeywords().count(peek().text) != 0
|| netKeywords().count(peek().text) != 0) {
range.clear();
}
advance();
continue;
}
if (isIdentToken()) {
header_order.push_back(peek().text);
if (!dir.empty() || !range.empty()) {
header_decls[peek().text] = PortDecl{peek().text, dir, range};
}
advance();
continue;
}
advance();
}
}
if (isPunct(';')) {
advance();
}
std::map<std::string, PortDecl> port_decls;
std::vector<std::string> port_decl_order;
parseBody(module, port_decls, port_decl_order);
// Assemble the ordered port list. The header order is authoritative; a
// port declared but absent from the header (or the other way round) is
// reported by appending it, so the difference shows up rather than being
// silently dropped.
for (const std::string& name : header_order) {
auto found = port_decls.find(name);
if (found != port_decls.end()) {
module.ports.push_back(found->second);
} else {
auto in_header = header_decls.find(name);
module.ports.push_back(in_header != header_decls.end()
? in_header->second
: PortDecl{name, "", ""});
}
module.port_names.insert(name);
}
for (const std::string& name : port_decl_order) {
if (module.port_names.count(name) == 0) {
module.ports.push_back(port_decls[name]);
module.port_names.insert(name);
}
}
// Verilog puts nets, ports and instances in one module namespace, so an
// instance sharing a name with a declared object is illegal however legal
// each half looks on its own.
for (const InstBinding& inst : module.insts) {
if (module.port_names.count(inst.first) != 0
|| std::any_of(
module.objects.begin(),
module.objects.end(),
[&](const Decl& decl) { return decl.name == inst.first; })) {
module.inst_name_collisions.push_back(inst.first);
}
}
std::sort(module.inst_name_collisions.begin(),
module.inst_name_collisions.end());
module.inst_name_collisions.erase(
std::unique(module.inst_name_collisions.begin(),
module.inst_name_collisions.end()),
module.inst_name_collisions.end());
if (view.modules.count(module.name) != 0) {
view.duplicate_modules.push_back(module.name);
}
view.modules[module.name] = std::move(module);
}
void parseBody(ModuleView& module,
std::map<std::string, PortDecl>& port_decls,
std::vector<std::string>& port_decl_order)
{
std::set<std::string> seen_ports;
std::set<std::string> seen_nets;
while (!atEnd()) {
if (isKeyword("endmodule")) {
advance();
return;
}
if (peek().kind != Token::Kind::kIdent) {
advance();
continue;
}
if (isDeclKeyword()) {
parseDecl(module, port_decls, port_decl_order, seen_ports, seen_nets);
continue;
}
if (isKeyword("assign")) {
parseAssign(module);
continue;
}
if (isKeyword("defparam") || isKeyword("parameter")
|| isKeyword("localparam") || isKeyword("genvar")) {
skipToSemi();
continue;
}
parseInstance(module);
}
}
void parseDecl(ModuleView& module,
std::map<std::string, PortDecl>& port_decls,
std::vector<std::string>& port_decl_order,
std::set<std::string>& seen_ports,
std::set<std::string>& seen_nets)
{
std::string dir;
std::string last_keyword;
bool is_net = false;
while (isDeclKeyword()) {
if (dirKeywords().count(peek().text) != 0) {
dir = peek().text;
} else if (netKeywords().count(peek().text) != 0) {
is_net = true;
}
last_keyword = peek().text;
advance();
}
std::string range;
if (isPunct('[')) {
range = parseRange();
}
int names = 0;
while (!atEnd()) {
if (isPunct(';')) {
if (names == 0) {
// `output output;` or `wire logic;`: a name that is a keyword was
// emitted without the escape that made it a name in the input, so the
// declaration has no name left in it.
module.illegal_names.push_back(last_keyword);
}
advance();
return;
}
if (isPunct(',')) {
advance();
continue;
}
if (peek().kind == Token::Kind::kNumber) {
// A declared name that lexes as a number is a name that needed an
// escape and did not get one: `wire 1n;` is not readable Verilog.
module.illegal_names.push_back(peek().text);
} else if (!isIdentToken()) {
advance();
continue;
}
const std::string name = peek().text;
advance();
// `wire x = expr;` declares and drives in one statement.
if (isPunct('=')) {
module.assign_lhs.insert(name);
int depth = 0;
while (!atEnd()) {
if (isPunct('(') || isPunct('{') || isPunct('[')) {
++depth;
} else if (isPunct(')') || isPunct('}') || isPunct(']')) {
--depth;
} else if (depth == 0 && (isPunct(',') || isPunct(';'))) {
break;
}
advance();
}
}
module.objects.insert(Decl{name, range});
++names;
if (!dir.empty()) {
if (!seen_ports.insert(name).second) {
module.duplicate_ports.push_back(name);
}
if (port_decls.count(name) == 0) {
port_decl_order.push_back(name);
}
port_decls[name] = PortDecl{name, dir, range};
} else if (is_net) {
// A port may legally be redeclared as a net; two net declarations of
// the same name may not.
if (!seen_nets.insert(name).second) {
module.duplicate_nets.push_back(name);
}
}
}
}
void parseAssign(ModuleView& module)
{
advance(); // assign
bool collecting_lhs = true;
int depth = 0;
while (!atEnd()) {
const Token& token = peek();
if (token.kind == Token::Kind::kPunct) {
const char c = token.text[0];
if (c == '(' || c == '{' || c == '[') {
++depth;
} else if (c == ')' || c == '}' || c == ']') {
--depth;
} else if (c == '=' && depth == 0) {
collecting_lhs = false;
} else if (c == ',' && depth == 0 && !collecting_lhs) {
collecting_lhs = true;
} else if (c == ';') {
advance();
return;
}
advance();
continue;
}
if (token.kind == Token::Kind::kIdent && collecting_lhs && depth <= 1) {
module.assign_lhs.insert(token.text);
}
advance();
}
}
void parseInstance(ModuleView& module)
{
const std::string master = peek().text;
advance();
if (isPunct('#')) {
advance();
skipBalanced('(', ')');
}
while (!atEnd()) {
if (isPunct(';')) {
advance();
return;
}
if (isPunct(',')) {
advance();
continue;
}
if (isIdentToken() || peek().kind == Token::Kind::kNumber) {
if (peek().kind == Token::Kind::kNumber) {
module.illegal_names.push_back(peek().text);
}
const std::string inst_name = peek().text;
advance();
if (isPunct('[')) {
parseRange();
}
skipBalanced('(', ')');
module.insts.emplace(inst_name, master);
continue;
}
if (isPunct('(')) {
// Gate primitive with no instance name: `buf (o, i);`
skipBalanced('(', ')');
module.insts.emplace("", master);
continue;
}
advance();
}
}
std::vector<Token> tokens_;
std::size_t index_{0};
};
FileView scanVerilogFile(const std::string& path)
{
FileView view;
std::ifstream in(path);
if (!in) {
view.error = "could not open " + path;
return view;
}
std::ostringstream buffer;
buffer << in.rdbuf();
Scanner scanner(tokenize(buffer.str()));
FileView scanned = scanner.scan();
if (scanned.modules.empty() && scanned.error.empty()) {
scanned.error = "no module definition found in " + path;
}
return scanned;
}
// Elaborated leaf-cell census: every leaf instance reachable from the top,
// counted with multiplicity. A module instantiated twice contributes its gates
// twice, which is what flattening produces, so this one census is comparable
// between an input netlist, its hierarchical output and its flat output.
void censusOf(const FileView& view,
const std::string& module_name,
std::map<std::string, int>& census,
std::set<std::string>& on_stack,
int depth)
{
if (depth > 64 || !on_stack.insert(module_name).second) {
return; // malformed input: recursive instantiation
}
const auto found = view.modules.find(module_name);
if (found != view.modules.end()) {
for (const InstBinding& inst : found->second.insts) {
if (view.modules.count(inst.second) != 0) {
censusOf(view, inst.second, census, on_stack, depth + 1);
} else {
++census[inst.second];
}
}
}
on_stack.erase(module_name);
}
std::map<std::string, int> cellCensus(const FileView& view,
const std::string& top)
{
std::map<std::string, int> census;
std::set<std::string> on_stack;
censusOf(view, top, census, on_stack, 0);
return census;
}
////////////////////////////////////////////////////////////////////////////
// Corpus
//
// Three folders, all scanned:
// * hier_cases/*.v and hier_cases/inherited/*.v -- the corpus
// TestHierConformance.cpp also runs. inherited/ holds symlinks to fixtures
// owned by other suites, so membership is a folder listing rather than a
// manifest, and a case's top module comes from HIER_TOP_OVERRIDES in
// src/dbSta/test/BUILD when it is not the default "top".
// * hier_cases/structural/*.v -- cases the LEC suite deliberately does not
// load, because a LEC cannot adjudicate them: the netlist is rejected
// outright, or the defect is a naming/shape property that leaves the
// logic equivalent. This suite is the tool that can, so it loads them.
// Their names carry the `structural/` prefix, which keeps the manifest key
// and the gtest name unambiguous and makes the origin visible in a failure
// message.
//
// hier_cases/crash/ is deliberately NOT scanned by either suite: those five
// netlists kill the process, so loading them would take a whole shard down
// instead of reporting a failure.
////////////////////////////////////////////////////////////////////////////
struct CorpusEntry
{
std::string path;
// Corpus-relative name: "case.v", or "structural/case.v" for a case from the
// structural-only subdirectory. This is the XFAIL manifest key.
std::string name;
std::string top;
Technology tech{Technology::kNangate45};
std::string load_error;
};
void PrintTo(const CorpusEntry& entry, std::ostream* os)
{
if (!entry.load_error.empty()) {
*os << "<corpus load error: " << entry.load_error << ">";
return;
}
*os << entry.name << " (top " << entry.top << ")";
}
std::string entryName(const ::testing::TestParamInfo<CorpusEntry>& info)
{
std::string name = info.param.name;
for (char& c : name) {
if (!isAsciiAlnum(c)) {
c = '_';
}
}
return name;
}
std::filesystem::path workDir()
{
const char* tmp = std::getenv("TEST_TMPDIR");
return tmp != nullptr ? tmp : ".";
}
// A file name derived from a corpus name. The corpus name of a subdirectory
// case contains a '/', and the emitted netlist must not be written into a
// directory that does not exist.
std::string fileStem(const std::string& name)
{
std::string stem = name;
for (char& c : stem) {
if (!isAsciiAlnum(c) && c != '.' && c != '-' && c != '_') {
c = '_';
}
}
return stem;
}
const char* kCasesDir = "_main/src/dbSta/test/cpp/hier_cases/";
// The corpus subdirectory holding the cases only this suite runs.
const char* kStructuralSubdir = "structural";
std::vector<std::string> splitFields(const std::string& line)
{
std::vector<std::string> fields;
std::istringstream in(line);
std::string field;
while (std::getline(in, field, ':')) {
const std::string::size_type begin = field.find_first_not_of(" \t\r");
const std::string::size_type end = field.find_last_not_of(" \t\r");
fields.push_back(begin == std::string::npos
? std::string()
: field.substr(begin, end - begin + 1));
}
return fields;
}
bool isComment(const std::string& line)
{
const std::string::size_type first = line.find_first_not_of(" \t\r");
return first == std::string::npos || line[first] == '#';
}
std::vector<CorpusEntry> corpusLoadError(const std::string& message)
{
CorpusEntry entry;
entry.name = "corpus_load_error";
entry.load_error = message;
return {entry};
}
// The netlists whose top module is not "top", as `<file>=<top>,...`. The build
// rule supplies it (HIER_TOP_OVERRIDES in src/dbSta/test/BUILD), keeping the
// corpus metadata with the build rules instead of inside each netlist.
std::map<std::string, std::string> topOverrides()
{
std::map<std::string, std::string> overrides;
const char* env = std::getenv("HIER_TOP_OVERRIDES");
if (env == nullptr) {
return overrides;
}
std::istringstream entries(env);
std::string entry;
while (std::getline(entries, entry, ',')) {
const std::string::size_type eq = entry.find('=');
if (eq != std::string::npos) {
overrides.emplace(entry.substr(0, eq), entry.substr(eq + 1));
}
}
return overrides;
}
// Appends every .v file directly in `dir`, naming each `name_prefix` + its file
// name. Top defaults to "top" unless the build rule names an exception;
// Nangate45 is the only technology the corpus uses. Returns the number
// appended, so a directory that silently came back empty -- a broken data
// dependency -- can be reported rather than losing coverage. Not recursive:
// hier_cases/crash/ must never be loaded.
std::size_t scanCaseDirectory(const std::filesystem::path& dir,
const std::string& name_prefix,
const std::map<std::string, std::string>& tops,
std::vector<CorpusEntry>& corpus)
{
if (!std::filesystem::is_directory(dir)) {
return 0;
}
std::size_t found = 0;
for (const auto& item : std::filesystem::directory_iterator(dir)) {
if (item.path().extension() != ".v") {
continue;
}
CorpusEntry entry;
entry.path = item.path().string();
entry.name = name_prefix + item.path().filename().string();
entry.top = "top";
entry.tech = Technology::kNangate45;
if (const auto it = tops.find(item.path().filename().string());
it != tops.end()) {
entry.top = it->second;
}
corpus.push_back(entry);
++found;
}
return found;
}
// The corpus named explicitly, as corpus-relative names ("case.v",
// "inherited/case.v", "structural/case.v"). A per-case test target names its
// one case here and carries only that netlist in its runfiles, so bazel caches
// and invalidates the corpus one case at a time; the whole-corpus target sets
// nothing and gets the directory scan below.
std::vector<CorpusEntry> corpusFromNames(
const std::string& names,
const std::map<std::string, std::string>& tops)
{
std::vector<CorpusEntry> corpus;
std::istringstream fields(names);
std::string name;
while (std::getline(fields, name, ',')) {
if (name.empty()) {
continue;
}
CorpusEntry entry;
entry.name = name;
entry.path = getRunfilePath(std::string(kCasesDir) + name);
entry.top = "top";
entry.tech = Technology::kNangate45;
// Keyed on the file name, as the directory scan is: an override names a
// netlist, not the subdirectory it happens to sit in.
const std::string file_name
= std::filesystem::path(name).filename().string();
if (const auto it = tops.find(file_name); it != tops.end()) {
entry.top = it->second;
}
corpus.push_back(entry);
}
return corpus;
}
std::vector<CorpusEntry> loadCorpus()
{
std::vector<CorpusEntry> corpus;
try {
if (const char* names = std::getenv("HIER_CASES"); names != nullptr) {
corpus = corpusFromNames(names, topOverrides());
if (corpus.empty()) {
return corpusLoadError("HIER_CASES is set but names no cases");
}
return corpus;
}
// Located through the XFAIL manifest, the one file in hier_cases/ this
// suite is guaranteed to have a runfile for. It is generated rather than
// checked in, but runfiles merge a rule's outputs with the package's source
// files, so its parent is the directory holding the netlists.
const std::filesystem::path cases_dir
= std::filesystem::path(
getRunfilePath(std::string(kCasesDir)
+ "structural_expected_fail.txt"))
.parent_path();
const std::map<std::string, std::string> tops = topOverrides();
scanCaseDirectory(cases_dir, "", tops, corpus);
// Fixtures owned by other suites, symlinked in so the corpus is a set of
// folders rather than a manifest.
// Missing or empty means the data dependency broke -- which is exactly
// how these cases went unrun once already, since nothing else in the
// suite notices a directory that simply is not there.
if (scanCaseDirectory(cases_dir / "inherited", "inherited/", tops, corpus)
== 0) {
return corpusLoadError(
"no .v cases found in the inherited corpus subdirectory "
+ (cases_dir / "inherited").string()
+ "; check the cpp/hier_cases/inherited/*.v data dependency");
}
// The structural-only subdirectory. Missing or empty means the data
// dependency broke, which would silently drop 80 cases, so it is an error
// rather than a quiet zero.
const std::filesystem::path structural_dir = cases_dir / kStructuralSubdir;
if (scanCaseDirectory(
structural_dir, std::string(kStructuralSubdir) + "/", tops, corpus)
== 0) {
return corpusLoadError(
"no .v cases found in the structural corpus subdirectory "
+ structural_dir.string()
+ "; check the cpp/hier_cases/structural/*.v data dependency");
}
} catch (const std::exception& e) {
return corpusLoadError(std::string("loading corpus: ") + e.what());
}
if (corpus.empty()) {
return corpusLoadError("corpus is empty");
}
std::sort(corpus.begin(),
corpus.end(),
[](const CorpusEntry& a, const CorpusEntry& b) {
return a.name < b.name;
});
return corpus;
}
const std::vector<CorpusEntry>& corpus()
{
static const std::vector<CorpusEntry> loaded = loadCorpus();
return loaded;
}
////////////////////////////////////////////////////////////////////////////
// XFAIL manifest
////////////////////////////////////////////////////////////////////////////
struct ExpectedFailure
{
std::string netlist;
Path path;
std::string check;
// The OpenROAD issue, when one has been filed. Empty otherwise -- see
// hier_expected_fail.bzl for why that is allowed to be empty rather than
// carrying a placeholder.
std::optional<std::string> issue;
std::string symptom;
// The entry as authored, which is what a message must name for the reader to
// find it: one entry can name a run of netlists with a '*', and the row above
// holds the netlist it expanded to, not the text in the .bzl file.
std::string as_authored;
};
// "issue 1234, " when one is recorded, "" otherwise, so a message about an
// unfiled defect does not read as a formatting bug.
std::string issuePrefix(const std::optional<std::string>& issue)
{
return !issue.has_value() ? std::string() : "issue " + *issue + ", ";
}
// Parses the XFAIL manifest, which the build rule generates from
// STRUCTURAL_EXPECTED_FAIL in src/dbSta/test/hier_expected_fail.bzl -- that is
// where entries are edited. Grouping the netlists under one entry per failure
// mode keeps 1100 rows readable as the ~50 defects they actually are, and
// Starlark rejects an unknown check or path when the package loads instead of
// leaving a typo to be silently dropped here.
const std::vector<ExpectedFailure>& expectedFailures()
{
static const std::vector<ExpectedFailure> all = []() {
std::vector<ExpectedFailure> parsed;
// A per-case target is handed its own rows in HIER_EXPECTED_FAIL, so it
// depends on the netlist it runs and not on every other case's XFAIL
// entries. The corpus-wide target leaves it unset and reads the manifest,
// which is the whole list -- including any row naming no case at all.
const char* inline_rows = std::getenv("HIER_EXPECTED_FAIL");
std::ifstream file;
std::istringstream rows;
if (inline_rows != nullptr) {
rows.str(inline_rows);
} else {
file.open(getRunfilePath(std::string(kCasesDir)
+ "structural_expected_fail.txt"));
}
std::istream& in
= inline_rows != nullptr ? static_cast<std::istream&>(rows) : file;
std::string line;
while (std::getline(in, line)) {
if (isComment(line)) {
continue;
}
const std::vector<std::string> f = splitFields(line);
if (f.size() < 4) {
continue;
}
parsed.push_back(
ExpectedFailure{f[0],
f[1] == "hier" ? Path::kHier : Path::kFlat,
f[2],
f[3],
f.size() > 4 ? f[4] : "",
f.size() > 5 ? f[5] : f[0]});
}
return parsed;
}();
return all;
}
// Rows name one netlist exactly: hier_expected_fail.bzl expands a '*' entry
// against the corpus when the package loads, so there is no pattern left here.
const ExpectedFailure* expectedFailure(const std::string& netlist,
Path path,
Check check)
{
for (const ExpectedFailure& failure : expectedFailures()) {
if (failure.path == path && failure.check == toString(check)
&& failure.netlist == netlist) {
return &failure;
}
}
return nullptr;
}
// Inverts the expectation for a known failure, so an accidental fix turns the
// suite red with an actionable message rather than silently losing coverage.
void expectOrXfail(const CorpusEntry& entry,
Path path,
Check check,
const std::vector<std::string>& problems)
{
const ExpectedFailure* failure = expectedFailure(entry.name, path, check);
if (failure != nullptr) {
EXPECT_FALSE(problems.empty())
<< entry.name << " [" << toString(path) << "/" << toString(check)
<< "] is a known failure (" << issuePrefix(failure->issue)
<< failure->symptom << "). It now PASSES -- delete '"
<< failure->as_authored
<< "' from STRUCTURAL_EXPECTED_FAIL in "
"src/dbSta/test/hier_expected_fail.bzl.";
return;
}
std::string detail;
for (const std::string& problem : problems) {
detail += "\n " + problem;
}
EXPECT_TRUE(problems.empty()) << entry.name << " [" << toString(path) << "/"
<< toString(check) << "]" << detail;
}
////////////////////////////////////////////////////////////////////////////
// The checks
////////////////////////////////////////////////////////////////////////////
std::string join(const std::vector<std::string>& items)
{
std::string out;
for (const std::string& item : items) {
if (!out.empty()) {
out += ", ";
}
out += item;
}
return out;
}
std::string formatPorts(const std::vector<PortDecl>& ports)
{
std::vector<std::string> items;
items.reserve(ports.size());
for (const PortDecl& port : ports) {
items.push_back(toString(port));
}
return "(" + join(items) + ")";
}
std::string formatDecls(const std::vector<Decl>& decls)
{
std::vector<std::string> items;
items.reserve(decls.size());
for (const Decl& decl : decls) {
items.push_back(decl.name + decl.range);
}
return join(items);
}
std::vector<std::string> checkModuleSet(const FileView& in,
const FileView& out,
Path path,
const std::string& top)
{
std::vector<std::string> problems;
for (const std::string& name : out.duplicate_modules) {
problems.push_back("module '" + name
+ "' is defined more than once in the output");
}
if (path == Path::kFlat) {
// Flattening is allowed to collapse the hierarchy, but it must produce
// exactly the top module and nothing else.
for (const auto& [name, module] : out.modules) {
if (name != top) {
problems.push_back("flat output defines an extra module '" + name
+ "'");
}
}
if (out.modules.count(top) == 0) {
problems.push_back("flat output does not define the top module '" + top
+ "'");
}
return problems;
}
std::vector<std::string> dropped;
std::vector<std::string> added;
for (const auto& [name, module] : in.modules) {
if (out.modules.count(name) == 0) {
dropped.push_back(name);
}
}
for (const auto& [name, module] : out.modules) {
if (in.modules.count(name) == 0) {
added.push_back(name);
}
}
if (!dropped.empty()) {
problems.push_back("modules defined in the input but not in the output: "
+ join(dropped));
}
if (!added.empty()) {
problems.push_back("modules defined in the output but not in the input: "
+ join(added));
}
return problems;
}
std::vector<std::string> checkPortList(const FileView& in,
const FileView& out,
const std::string& module_name)
{
std::vector<std::string> problems;
const auto in_module = in.modules.find(module_name);
const auto out_module = out.modules.find(module_name);
if (in_module == in.modules.end() || out_module == out.modules.end()) {
return problems; // module set differences are checkModuleSet's business
}
if (in_module->second.ports != out_module->second.ports) {
problems.push_back("module '" + module_name
+ "' port list changed:\n in "
+ formatPorts(in_module->second.ports) + "\n out "
+ formatPorts(out_module->second.ports));
}
return problems;
}
// True if `name` is a '/'-join of identifiers the input netlist uses, i.e. a
// hierarchical path the writer legitimately synthesized while flattening. The
// split is searched for rather than assumed, because an input identifier may
// itself contain '/' (an escaped name like `\net/with/slash `), so
// `u/inst/net/with/slash` has to be recognized as `u/inst` + `net/with/slash`.
bool isSynthesizedPath(const std::string& name,
const std::set<std::string>& identifiers)
{
if (name.find('/') == std::string::npos) {
return false;
}
std::vector<bool> reachable(name.size() + 1, false);
reachable[0] = true;
for (std::size_t begin = 0; begin < name.size(); ++begin) {
if (!reachable[begin]) {
continue;
}
for (std::size_t end = begin + 1; end <= name.size(); ++end) {
const bool at_separator = end == name.size() || name[end] == '/';
if (at_separator
&& identifiers.count(name.substr(begin, end - begin)) != 0) {
reachable[std::min(name.size(), end + 1)] = true;
}
}
}
return reachable[name.size()];
}
std::vector<std::string> checkDeclaredNets(
const FileView& in,
const FileView& out,
const std::vector<std::string>& module_names,
// Modules whose contents the writer is allowed to name after instance
// paths: every module in the flat output (flattening has to synthesize
// names), and the top module of a hier output (the documented boundary-net
// policy materializes a child-side name as <path>/<net> when the parent has
// no alias for it). Inside a hier submodule a path name is the
// module-local-net renaming defect and stays reportable.
const std::set<std::string>& paths_allowed_in)
{
std::vector<std::string> problems;
for (const std::string& name : module_names) {
const ModuleView& in_module = in.modules.at(name);
const ModuleView& out_module = out.modules.at(name);
const bool paths_allowed = paths_allowed_in.count(name) != 0;
std::vector<Decl> dropped;
std::vector<Decl> invented;
for (const Decl& decl : in_module.objects) {
if (out_module.objects.count(decl) == 0) {
dropped.push_back(decl);
}
}
for (const Decl& decl : out_module.objects) {
if (in_module.objects.count(decl) == 0
// Declaring a net the input left implicit is not a defect; only a
// name the input never mentions at all is invented.
&& in.identifiers.count(decl.name) == 0
&& !(paths_allowed && isSynthesizedPath(decl.name, in.identifiers))) {
invented.push_back(decl);
}
}
if (!dropped.empty()) {
problems.push_back("module '" + name
+ "': declared in the input, missing from the output: "
+ formatDecls(dropped));
}
if (!invented.empty()) {
problems.push_back("module '" + name
+ "': output declares names the input never uses: "
+ formatDecls(invented));
}
}
return problems;
}
std::vector<std::string> checkInstances(
const FileView& in,
const FileView& out,
const std::vector<std::string>& module_names)
{
std::vector<std::string> problems;
for (const std::string& name : module_names) {
const std::multiset<InstBinding>& in_insts = in.modules.at(name).insts;
const std::multiset<InstBinding>& out_insts = out.modules.at(name).insts;
std::vector<InstBinding> dropped;
std::vector<InstBinding> added;
std::set_difference(in_insts.begin(),
in_insts.end(),
out_insts.begin(),
out_insts.end(),
std::back_inserter(dropped));
std::set_difference(out_insts.begin(),
out_insts.end(),
in_insts.begin(),
in_insts.end(),
std::back_inserter(added));
auto format = [](const std::vector<InstBinding>& insts) {
std::vector<std::string> items;
items.reserve(insts.size());
for (const InstBinding& inst : insts) {
items.push_back(inst.second + " " + inst.first);
}
return join(items);
};
if (!dropped.empty()) {
problems.push_back("module '" + name + "': instances in the input but not"
" in the output: " + format(dropped));
}
if (!added.empty()) {
problems.push_back("module '" + name + "': instances in the output but"
" not in the input: " + format(added));
}
}
return problems;
}
// Resolves every module in the emitted netlist to the input module it is a copy
// of, using STRUCTURE alone and never the name: an emitted module is reached
// through some instance, and that same instance in the input named its master.
//
// The answer is a set on purpose. If one emitted module name resolves to two
// different input modules, that single name has been made to denote two
// modules, and that is the finding rather than an inconvenience.
class SourceResolver
{
public:
SourceResolver(const FileView& in, const FileView& out, std::string top)
: in_(in), out_(out), top_(std::move(top))
{
for (const auto& [parent, module] : out_.modules) {
for (const InstBinding& inst : module.insts) {
if (out_.modules.count(inst.second) != 0) {
sites_[inst.second].emplace_back(parent, inst.first);
}
}
}
}
const std::set<std::string>& sourcesOf(const std::string& module_name)
{
const auto memo = memo_.find(module_name);
if (memo != memo_.end()) {
return memo->second;
}
// Inserted before recursing, so a recursive instantiation terminates with
// an empty answer instead of running away. std::map nodes are stable, so
// this reference survives the nested inserts below.
std::set<std::string>& result = memo_[module_name];
if (module_name == top_ && in_.modules.count(top_) != 0) {
result.insert(top_); // the top module is the one thing never cloned
}
const auto sites = sites_.find(module_name);
if (sites == sites_.end()) {
return result;
}
for (const auto& [parent, inst_name] : sites->second) {
const std::set<std::string> parent_sources = sourcesOf(parent);
for (const std::string& parent_source : parent_sources) {
const auto in_parent = in_.modules.find(parent_source);
if (in_parent == in_.modules.end()) {
continue;
}
for (const InstBinding& in_inst : in_parent->second.insts) {
if (in_inst.first == inst_name
&& in_.modules.count(in_inst.second) != 0) {
result.insert(in_inst.second);
}
}
}
}
return result;
}
private:
const FileView& in_;
const FileView& out_;
std::string top_;
// Emitted module name -> the (parent module, instance name) sites that
// instantiate it.
std::map<std::string, std::vector<std::pair<std::string, std::string>>>
sites_;
std::map<std::string, std::set<std::string>> memo_;
};
// True if `emitted` is a name dbModule::makeUniqueDbModule could have produced
// for `module_name` cloned at instance `inst_name`: <module>_<inst>, optionally
// with the numeric suffix it appends when even that name is taken.
bool decodesToClone(const std::string& emitted,
const std::string& module_name,
const std::string& inst_name)
{
const std::string base = module_name + "_" + inst_name;
if (emitted == base) {
return true;
}
if (emitted.size() <= base.size() + 1
|| emitted.compare(0, base.size(), base) != 0
|| emitted[base.size()] != '_') {
return false;
}
const std::string suffix = emitted.substr(base.size() + 1);
return std::all_of(
suffix.begin(), suffix.end(), [](char c) { return isAsciiDigit(c); });
}
// Name identity: every module name in the emitted netlist must map back to the
// module it came from, and to exactly one.
//
// This is the assertion the generic module_set and instances rows cannot make.
// Those two fire on *any* uniquification, so they fire identically on a benign
// clone (`sub` instantiated twice becomes `sub`, `sub_i2`) and on a netlist
// where uniquification has actually destroyed the mapping from name to module.
// A manifest row keyed on them therefore proves nothing about the two defects
// below, which is why this check exists:
//
// * Clone-name ambiguity. `<module>_<inst>` is not injective: module `a_b`
// instantiated as `c` and module `a` instantiated as `b_c` both request
// `a_b_c`. Whichever wins, the emitted name no longer says which module was
// cloned, and the loser is renamed by a numeric suffix that says even less.
// * A clone name implying the wrong source. When the requested name is
// already a real module's, the clone takes it and the real module is pushed
// onto a suffixed name, so a module named `sub_i2` is a copy of `sub` while
// the input's own `sub_i2` -- a different module -- is emitted as
// `sub_i2_u3`. Every reference is rewritten consistently, so no LEC and no
// count-based check sees it, but every name-driven downstream flow
// (SDC/UPF paths, DFT, `-hier` re-reads, library caches) now resolves the
// name to the wrong module.
//
// Hier only: the flat writer emits one module, and its internals are
// legitimately renamed to instance paths.
std::vector<std::string> checkNameIdentity(const FileView& in,
const FileView& out,
const std::string& top)
{
std::vector<std::string> problems;
// The (module, instance name) pairs the input actually contains. These are
// the only pairs uniquification can ever be called with, so they are also the
// only decodings of a clone name that a reader of the two netlists could
// reasonably make.
std::set<std::pair<std::string, std::string>> clone_pairs;
for (const auto& [parent, module] : in.modules) {
for (const InstBinding& inst : module.insts) {
if (in.modules.count(inst.second) != 0) {
clone_pairs.emplace(inst.second, inst.first);
}
}
}
SourceResolver resolver(in, out, top);
for (const auto& [name, module] : out.modules) {
const std::set<std::string> sources = resolver.sourcesOf(name);
if (sources.size() > 1) {
problems.push_back(
"emitted module name '" + name
+ "' denotes more than one input module: "
+ join(std::vector<std::string>(sources.begin(), sources.end())));
continue;
}
if (in.modules.count(name) != 0) {
// A name the input already defines must still be that module.
if (sources.size() == 1 && *sources.begin() != name) {
problems.push_back("emitted module '" + name
+ "' is a copy of input module '" + *sources.begin()
+ "', not of the input module of that name");
}
continue;
}
// A synthesized name. It must decode to exactly one source module, and to
// the one it is actually a copy of.
std::vector<std::string> decodings;
std::set<std::string> decoded_sources;
for (const auto& [module_name, inst_name] : clone_pairs) {
if (decodesToClone(name, module_name, inst_name)) {
decodings.push_back("module '" + module_name + "' instantiated as '"
+ inst_name + "'");
decoded_sources.insert(module_name);
}
}
if (decodings.empty()) {
problems.push_back(
"emitted module name '" + name
+ "' decodes to no <input module>_<instance name> pair, so nothing in"
" it identifies the module it was cloned from");
continue;
}
if (decoded_sources.size() > 1) {
problems.push_back("emitted module name '" + name
+ "' is the uniquification name of " + join(decodings)
+ " at once, so it does not identify which module was"
" cloned");
continue;
}
if (sources.size() == 1 && *decoded_sources.begin() != *sources.begin()) {
problems.push_back("emitted module '" + name
+ "' is a copy of input module '" + *sources.begin()
+ "' but its name implies it was cloned from '"
+ *decoded_sources.begin() + "'");
}
}
return problems;
}
std::vector<std::string> checkCellCensus(const FileView& in,
const FileView& out,
const std::string& top)
{
std::vector<std::string> problems;
const std::map<std::string, int> in_census = cellCensus(in, top);
const std::map<std::string, int> out_census = cellCensus(out, top);
std::set<std::string> masters;
for (const auto& [master, count] : in_census) {
masters.insert(master);
}
for (const auto& [master, count] : out_census) {
masters.insert(master);
}
for (const std::string& master : masters) {
const int in_count
= in_census.count(master) != 0 ? in_census.at(master) : 0;
const int out_count
= out_census.count(master) != 0 ? out_census.at(master) : 0;
if (in_count != out_count) {
problems.push_back("elaborated instance count of '" + master
+ "' changed: " + std::to_string(in_count) + " -> "
+ std::to_string(out_count));
}
}
return problems;
}
std::vector<std::string> checkAssigns(
const FileView& in,
const FileView& out,
Path path,
const std::vector<std::string>& module_names)
{
std::vector<std::string> problems;
for (const std::string& name : module_names) {
const ModuleView& in_module = in.modules.at(name);
const ModuleView& out_module = out.modules.at(name);
std::vector<std::string> dropped;
std::vector<std::string> added;
for (const std::string& lhs : in_module.assign_lhs) {
if (out_module.assign_lhs.count(lhs) == 0) {
dropped.push_back(lhs);
}
}
for (const std::string& lhs : out_module.assign_lhs) {
if (in_module.assign_lhs.count(lhs) == 0) {
added.push_back(lhs);
}
}
if (!dropped.empty()) {
problems.push_back("module '" + name
+ "': names driven by an assign in the input but not"
" in the output: "
+ join(dropped));
}
// Flattening legitimately rewrites alias chains, moving assigns between
// scopes, so a new assign in the flat top is not reportable there.
if (!added.empty() && path == Path::kHier) {
problems.push_back("module '" + name
+ "': names driven by an assign in the output but not"
" in the input: "
+ join(added));
}
}
return problems;
}
std::vector<std::string> checkNamespace(const FileView& out)
{
std::vector<std::string> problems;
for (const auto& [name, module] : out.modules) {
if (!module.duplicate_ports.empty()) {
problems.push_back("module '" + name + "' declares a port twice: "
+ join(module.duplicate_ports));
}
if (!module.duplicate_nets.empty()) {
problems.push_back("module '" + name + "' declares a net twice: "
+ join(module.duplicate_nets));
}
if (!module.inst_name_collisions.empty()) {
problems.push_back(
"module '" + name
+ "' uses one name for both an instance and a net or port: "
+ join(module.inst_name_collisions));
}
if (!module.illegal_names.empty()) {
problems.push_back("module '" + name
+ "' names an object with something that is not a"
" legal unescaped identifier: "
+ join(module.illegal_names));
}
}
return problems;
}
////////////////////////////////////////////////////////////////////////////
// Test body
////////////////////////////////////////////////////////////////////////////
void checkStructure(const CorpusEntry& entry, Path path)
{
ASSERT_TRUE(entry.load_error.empty()) << entry.load_error;
const bool hierarchy = path == Path::kHier;
const std::filesystem::path out_v
= workDir() / (fileStem(entry.name) + "." + toString(path) + ".struct.v");
// Only one design is kept live at a time: LoadedDesign owns a dbSta, and
// sta::Sta keeps a global pointer to the first one constructed.
//
// A netlist the reader refuses is a finding, not a reason to stop: several
// corpus cases exist precisely because OpenROAD cannot link them. It is
// reported as a round_trip problem and routed through the XFAIL manifest like
// any other, and the remaining checks are skipped rather than reported as
// passing. utl::Logger::error throws, so a refusal arrives here as an
// exception; the catch-all is for the ones that throw something else.
std::vector<std::string> round_trip;
bool wrote_output = false;
{
std::optional<LoadedDesign> design;
try {
design.emplace(entry.tech, entry.path, entry.top.c_str(), hierarchy);
} catch (const std::exception& e) {
round_trip.push_back(std::string("read_verilog/link_design")
+ (hierarchy ? " -hier" : "")
+ " rejected the input netlist: " + e.what());
} catch (...) {
round_trip.push_back(std::string("read_verilog/link_design")
+ (hierarchy ? " -hier" : "")
+ " rejected the input netlist by throwing a"
" non-std::exception");
}
if (design.has_value()) {
try {
design->writeVerilog(out_v);
wrote_output = true;
} catch (const std::exception& e) {
round_trip.push_back(std::string("write_verilog threw: ") + e.what());
} catch (...) {
round_trip.emplace_back("write_verilog threw a non-std::exception");
}
}
}
if (wrote_output) {
// The emitted netlist must be readable and linkable again. This is the
// only part of the original odb-vs-odb plan that survives: see the header
// comment for why the comparison itself is done on the netlists.
try {
LoadedDesign relinked(entry.tech, out_v, entry.top.c_str(), hierarchy);
} catch (const std::exception& e) {
round_trip.push_back(std::string("the emitted netlist could not be"
" re-linked")
+ (hierarchy ? " -hier" : "") + ": " + e.what());
} catch (...) {
round_trip.push_back(std::string("the emitted netlist could not be"
" re-linked")
+ (hierarchy ? " -hier" : "")
+ ": a non-std::exception was thrown");
}
}
FileView in_view;
FileView out_view;
if (wrote_output) {
in_view = scanVerilogFile(entry.path);
out_view = scanVerilogFile(out_v);
if (!in_view.error.empty()) {
round_trip.push_back("could not scan the input netlist: "
+ in_view.error);
}
if (!out_view.error.empty()) {
round_trip.push_back("could not scan the emitted netlist: "
+ out_view.error);
}
}
expectOrXfail(entry, path, Check::kRoundTrip, round_trip);
if (!wrote_output || !in_view.error.empty() || !out_view.error.empty()) {
// Nothing to compare. Every other check is skipped rather than reported as
// passing.
return;
}
// Modules to compare per-module aspects over. In flat mode only the top
// survives, and its internals are legitimately renamed to instance paths, so
// the per-module aspects are compared for the top module alone.
std::vector<std::string> common_modules;
for (const auto& [name, module] : in_view.modules) {
if (out_view.modules.count(name) == 0) {
continue;
}
if (path == Path::kFlat && name != entry.top) {
continue;
}
common_modules.push_back(name);
}
std::vector<std::string> submodules;
for (const std::string& name : common_modules) {
if (name != entry.top) {
submodules.push_back(name);
}
}
expectOrXfail(entry,
path,
Check::kModuleSet,
checkModuleSet(in_view, out_view, path, entry.top));
expectOrXfail(entry,
path,
Check::kTopPorts,
checkPortList(in_view, out_view, entry.top));
std::vector<std::string> submodule_ports;
for (const std::string& name : submodules) {
const std::vector<std::string> problems
= checkPortList(in_view, out_view, name);
submodule_ports.insert(
submodule_ports.end(), problems.begin(), problems.end());
}
expectOrXfail(entry, path, Check::kSubmodulePorts, submodule_ports);
std::set<std::string> paths_allowed_in;
if (path == Path::kFlat) {
paths_allowed_in.insert(common_modules.begin(), common_modules.end());
} else {
paths_allowed_in.insert(entry.top);
}
expectOrXfail(
entry,
path,
Check::kDeclaredNets,
checkDeclaredNets(in_view, out_view, common_modules, paths_allowed_in));
// Instance names in the flat output are synthesized hierarchical paths, so
// the per-module binding multiset is a hier-mode aspect; kCellCensus covers
// the flat path.
expectOrXfail(entry,
path,
Check::kInstances,
path == Path::kHier
? checkInstances(in_view, out_view, common_modules)
: std::vector<std::string>{});
// Name identity is a hier-mode aspect: the flat writer emits one module.
expectOrXfail(entry,
path,
Check::kNameIdentity,
path == Path::kHier
? checkNameIdentity(in_view, out_view, entry.top)
: std::vector<std::string>{});
expectOrXfail(entry,
path,
Check::kCellCensus,
checkCellCensus(in_view, out_view, entry.top));
expectOrXfail(entry,
path,
Check::kAssigns,
checkAssigns(in_view, out_view, path, common_modules));
expectOrXfail(entry, path, Check::kNamespace, checkNamespace(out_view));
}
class TestStructuralHier : public ::testing::TestWithParam<CorpusEntry>
{
};
class TestStructuralFlat : public ::testing::TestWithParam<CorpusEntry>
{
};
TEST_P(TestStructuralHier, MatchesInput)
{
checkStructure(GetParam(), Path::kHier);
}
TEST_P(TestStructuralFlat, MatchesInput)
{
checkStructure(GetParam(), Path::kFlat);
}
INSTANTIATE_TEST_SUITE_P(HierCases,
TestStructuralHier,
::testing::ValuesIn(corpus()),
entryName);
INSTANTIATE_TEST_SUITE_P(HierCases,
TestStructuralFlat,
::testing::ValuesIn(corpus()),
entryName);
// Guards against the failure mode this whole suite exists to avoid: a corpus
// that loaded as zero cases would make both suites above vacuously green.
TEST(TestHierStructuralCorpus, IsLoaded)
{
ASSERT_FALSE(corpus().empty());
for (const CorpusEntry& entry : corpus()) {
ASSERT_TRUE(entry.load_error.empty()) << entry.load_error;
}
EXPECT_GT(corpus().size(), 1U)
<< "only one corpus case resolved; the manifest is probably not being "
"read";
for (const CorpusEntry& entry : corpus()) {
EXPECT_TRUE(std::filesystem::exists(entry.path))
<< entry.name << " listed in the manifest does not exist at "
<< entry.path;
}
// The structural-only subdirectory is this suite's alone, so nothing else
// would notice if its data dependency stopped resolving.
const std::string prefix = std::string(kStructuralSubdir) + "/";
std::size_t structural_cases = 0;
for (const CorpusEntry& entry : corpus()) {
if (entry.name.rfind(prefix, 0) == 0) {
++structural_cases;
}
}
EXPECT_GT(structural_cases, 1U)
<< "the hier_cases/" << kStructuralSubdir
<< " corpus subdirectory contributed " << structural_cases
<< " cases; only this suite loads it, so a broken data dependency there "
"is invisible everywhere else";
}
// The scanner is the measuring instrument: if it silently fails to understand a
// netlist, every check on that netlist is vacuous. Every corpus netlist must
// scan, must define its declared top module, and that module must have at
// least one instance -- an empty top would mean the body was skipped.
TEST(TestHierStructuralCorpus, ScannerUnderstandsEveryNetlist)
{
for (const CorpusEntry& entry : corpus()) {
if (!entry.load_error.empty()) {
continue;
}
const FileView view = scanVerilogFile(entry.path);
EXPECT_TRUE(view.error.empty()) << entry.name << ": " << view.error;
EXPECT_EQ(view.modules.count(entry.top), 1U)
<< entry.name << ": scanner did not find the top module '" << entry.top
<< "'; it found: " << [&]() {
std::vector<std::string> names;
for (const auto& [name, module] : view.modules) {
names.push_back(name);
}
return join(names);
}();
}
}
// The scanner's lexical rules, on the two forms this corpus is full of: an
// escaped identifier that contains a '/' or a bracket, and a bit select
// applied to one.
TEST(TestHierStructuralScanner, HandlesEscapedIdentifiers)
{
const std::string src = R"(
module top (a, \b/c[1] );
input a;
output [3:0] \b/c[1] ;
wire \net[3] ;
\mod/slash \u/inst (.i(a), .o(\net[3] ));
BUF_X1 g0 (.A(\net[3] ), .Z(\b/c[1] [0]));
assign \b/c[1] [1] = a;
endmodule
)";
Scanner scanner(tokenize(src));
const FileView view = scanner.scan();
ASSERT_EQ(view.modules.count("top"), 1U);
const ModuleView& top = view.modules.at("top");
ASSERT_EQ(top.ports.size(), 2U);
EXPECT_EQ(top.ports[0].name, "a");
EXPECT_EQ(top.ports[0].dir, "input");
EXPECT_EQ(top.ports[1].name, "b/c[1]");
EXPECT_EQ(top.ports[1].dir, "output");
EXPECT_EQ(top.ports[1].range, "[3:0]");
EXPECT_EQ(top.objects.count(Decl{"net[3]", ""}), 1U);
EXPECT_EQ(top.insts.count(InstBinding{"u/inst", "mod/slash"}), 1U);
EXPECT_EQ(top.insts.count(InstBinding{"g0", "BUF_X1"}), 1U);
EXPECT_EQ(top.assign_lhs.count("b/c[1]"), 1U);
EXPECT_TRUE(top.duplicate_nets.empty());
}
// An escaped identifier and the plain identifier it escapes are the same name.
TEST(TestHierStructuralScanner, CanonicalizesEscapedForm)
{
const std::string escaped = R"(
module top (a);
input a;
wire \n$1 ;
endmodule
)";
const std::string plain = R"(
module top (a);
input a;
wire n$1;
endmodule
)";
Scanner escaped_scanner(tokenize(escaped));
Scanner plain_scanner(tokenize(plain));
const FileView escaped_view = escaped_scanner.scan();
const FileView plain_view = plain_scanner.scan();
EXPECT_EQ(escaped_view.modules.at("top").objects,
plain_view.modules.at("top").objects);
}
// Duplicate declarations and a name used for both an instance and a net are
// illegal in one module namespace, and are what the writer's synthesized flat
// names collide into.
TEST(TestHierStructuralScanner, FindsNamespaceCollisions)
{
const std::string src = R"(
module top (a, y);
input a;
output y;
wire dup;
wire dup;
wire shared;
BUF_X1 shared (.A(a), .Z(y));
endmodule
)";
Scanner scanner(tokenize(src));
const FileView view = scanner.scan();
const ModuleView& top = view.modules.at("top");
EXPECT_EQ(top.duplicate_nets, std::vector<std::string>{"dup"});
EXPECT_EQ(top.inst_name_collisions, std::vector<std::string>{"shared"});
}
// The elaborated census must count a twice-instantiated module's gates twice,
// or a flat netlist could never be compared with its hierarchical input.
TEST(TestHierStructuralScanner, CountsElaboratedCells)
{
const std::string src = R"(
module top (a, y0, y1);
input a;
output y0, y1;
sub u0 (.i(a), .o(y0));
sub u1 (.i(a), .o(y1));
endmodule
module sub (i, o);
input i;
output o;
BUF_X1 b0 (.A(i), .Z(o));
INV_X1 v0 (.A(i), .ZN(o));
endmodule
)";
Scanner scanner(tokenize(src));
const FileView view = scanner.scan();
const std::map<std::string, int> census = cellCensus(view, "top");
EXPECT_EQ(census.size(), 2U);
EXPECT_EQ(census.at("BUF_X1"), 2);
EXPECT_EQ(census.at("INV_X1"), 2);
}
// A non-ANSI header takes its ranges from the body declarations; an ANSI header
// carries them itself, and there a new direction keyword ends the previous
// declaration's range while a comma continues it.
TEST(TestHierStructuralScanner, ScopesAnsiHeaderRanges)
{
const std::string src = R"(
module top (
input [7:0] in_bus,
input in_scalar,
output [1:0] out_a, out_b
);
endmodule
)";
Scanner scanner(tokenize(src));
const FileView view = scanner.scan();
const std::vector<PortDecl>& ports = view.modules.at("top").ports;
ASSERT_EQ(ports.size(), 4U);
EXPECT_EQ(ports[0].range, "[7:0]");
EXPECT_EQ(ports[1].range, "");
EXPECT_EQ(ports[2].range, "[1:0]");
EXPECT_EQ(ports[3].range, "[1:0]");
}
// An attribute instance is not an instantiation of a cell named after the
// attribute.
TEST(TestHierStructuralScanner, SkipsAttributes)
{
const std::string src = R"(
(* my_module_attr = "kept" *)
module top (a, y);
input a;
output y;
(* dont_touch = 1 *)
(* src = "gen.v:12.3-12.9" *)
BUF_X1 g0 (.A(a), .Z(y));
endmodule
)";
Scanner scanner(tokenize(src));
const FileView view = scanner.scan();
ASSERT_EQ(view.modules.count("top"), 1U);
const ModuleView& top = view.modules.at("top");
EXPECT_EQ(top.insts.size(), 1U);
EXPECT_EQ(top.insts.count(InstBinding{"g0", "BUF_X1"}), 1U);
}
// A name that needed an escape and did not get one is not readable Verilog, and
// is what the writer emits for a digit-leading identifier.
TEST(TestHierStructuralScanner, FindsUnescapedIllegalNames)
{
const std::string legal = R"(
module top (a, y);
input a;
output y;
wire \1n ;
BUF_X1 \1g (.A(a), .Z(\1n ));
BUF_X1 g2 (.A(\1n ), .Z(y));
endmodule
)";
const std::string illegal = R"(
module top (a, y);
input a;
output y;
wire 1n;
BUF_X1 1g (.A(1n), .Z(1n));
BUF_X1 g2 (.A(1n), .Z(y));
endmodule
)";
Scanner legal_scanner(tokenize(legal));
Scanner illegal_scanner(tokenize(illegal));
EXPECT_TRUE(checkNamespace(legal_scanner.scan()).empty());
EXPECT_FALSE(checkNamespace(illegal_scanner.scan()).empty());
// An escaped name that happens to be a keyword loses more than its escape:
// `output output;` declares nothing at all.
const std::string keyword = R"(
module top (a, output);
input a;
output output;
INV_X1 g (.A(a), .ZN(output));
endmodule
)";
Scanner keyword_scanner(tokenize(keyword));
EXPECT_FALSE(checkNamespace(keyword_scanner.scan()).empty());
}
////////////////////////////////////////////////////////////////////////////
// The detectors themselves, on synthesized (input, output) pairs. Each of the
// positive cases below is a defect that is known to be present today and that
// no LEC reports; each of the negative cases is a change the writer makes that
// preserves structure and must not be reported. Without these, a checker that
// quietly stopped detecting anything would still look green.
////////////////////////////////////////////////////////////////////////////
FileView viewOf(const std::string& src)
{
Scanner scanner(tokenize(src));
return scanner.scan();
}
TEST(TestHierStructuralDetector, ReportsReorderedTopPorts)
{
const FileView in = viewOf(
"module top (d, ck, q); input d, ck; output q;"
" DFF_X1 r (.D(d), .CK(ck), .Q(q)); endmodule");
const FileView out = viewOf(
"module top (ck, d, q); input ck; input d;"
" output q;"
" DFF_X1 r (.D(d), .CK(ck), .Q(q)); endmodule");
EXPECT_FALSE(checkPortList(in, out, "top").empty());
}
TEST(TestHierStructuralDetector, ReportsPerInstanceModuleClones)
{
const FileView in = viewOf(
"module top (a, y0, y1); input a; output y0, y1;"
" sub u0 (.i(a), .o(y0)); sub u1 (.i(a), .o(y1)); endmodule"
" module sub (i, o); input i; output o;"
" BUF_X1 b (.A(i), .Z(o)); endmodule");
const FileView out = viewOf(
"module top (a, y0, y1); input a; output y0, y1;"
" sub u0 (.i(a), .o(y0)); sub_u1 u1 (.i(a), .o(y1)); endmodule"
" module sub (i, o); input i; output o;"
" BUF_X1 b (.A(i), .Z(o)); endmodule"
" module sub_u1 (i, o); input i; output o;"
" BUF_X1 b (.A(i), .Z(o)); endmodule");
EXPECT_FALSE(checkModuleSet(in, out, Path::kHier, "top").empty());
EXPECT_FALSE(checkInstances(in, out, {"top"}).empty());
}
// The two defects the generic module_set/instances rows cannot distinguish from
// a benign clone. Both of these netlists are shapes the corpus contains
// (bx_collisions_uniq_cross_prefix, bx_collisions_uniq_vs_module_collide), and
// in both the emitted netlist is equivalent to its input.
TEST(TestHierStructuralDetector, ReportsAmbiguousCloneName)
{
// `psub` instantiated as `x_c2` and `psub_x` instantiated as `c2` both
// request the clone name `psub_x_c2`.
const FileView in = viewOf(
"module psub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module psub_x (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module top (i1, i2, i3, i4, o1, o2, o3, o4);"
" input i1, i2, i3, i4; output o1, o2, o3, o4;"
" psub a1 (.a(i1), .z(o1)); psub x_c2 (.a(i2), .z(o2));"
" psub_x c1 (.a(i3), .z(o3)); psub_x c2 (.a(i4), .z(o4)); endmodule");
const FileView out = viewOf(
"module psub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module psub_x (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module psub_x_c2 (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module psub_x_c2_1 (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module top (i1, i2, i3, i4, o1, o2, o3, o4);"
" input i1, i2, i3, i4; output o1, o2, o3, o4;"
" psub a1 (.a(i1), .z(o1)); psub_x_c2 x_c2 (.a(i2), .z(o2));"
" psub_x c1 (.a(i3), .z(o3));"
" psub_x_c2_1 c2 (.a(i4), .z(o4)); endmodule");
const std::vector<std::string> problems = checkNameIdentity(in, out, "top");
EXPECT_FALSE(problems.empty());
EXPECT_NE(join(problems).find("does not identify which module was cloned"),
std::string::npos)
<< join(problems);
}
TEST(TestHierStructuralDetector, ReportsCloneNameImplyingTheWrongSourceModule)
{
// The clone of `sub` for instance `i2` takes the name of the input's own
// module `sub_i2`, which is pushed onto `sub_i2_u3`. Nothing is lost and
// nothing is added -- the name `sub_i2` now just means a different module.
const FileView in = viewOf(
"module sub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module sub_i2 (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module top (i1, i2, i3, o1, o2, o3);"
" input i1, i2, i3; output o1, o2, o3;"
" sub i1 (.a(i1), .z(o1)); sub i2 (.a(i2), .z(o2));"
" sub_i2 u3 (.a(i3), .z(o3)); endmodule");
const FileView out = viewOf(
"module sub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module sub_i2 (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module sub_i2_u3 (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module top (i1, i2, i3, o1, o2, o3);"
" input i1, i2, i3; output o1, o2, o3;"
" sub i1 (.a(i1), .z(o1)); sub_i2 i2 (.a(i2), .z(o2));"
" sub_i2_u3 u3 (.a(i3), .z(o3)); endmodule");
const std::vector<std::string> problems = checkNameIdentity(in, out, "top");
EXPECT_FALSE(problems.empty());
EXPECT_NE(join(problems).find("not of the input module of that name"),
std::string::npos)
<< join(problems);
// The displaced module is emitted under a name that does decode to it, so it
// is not reported a second time.
EXPECT_EQ(problems.size(), 1U) << join(problems);
}
// Uniquification per se is not a name-identity defect: as long as the clone
// name decodes to exactly one module, and to the module it is a copy of, the
// mapping from name to module survives. Prefix-related module names (psub /
// psub_x) are the interesting negative: they are only ambiguous when an
// instance name lines up with the prefix difference, which here it does not.
TEST(TestHierStructuralDetector, AcceptsUnambiguousClones)
{
const FileView in = viewOf(
"module sub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module top (i1, i2, o1, o2); input i1, i2; output o1, o2;"
" sub i1 (.a(i1), .z(o1)); sub i2 (.a(i2), .z(o2)); endmodule");
const FileView out = viewOf(
"module sub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module sub_i2 (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module top (i1, i2, o1, o2); input i1, i2; output o1, o2;"
" sub i1 (.a(i1), .z(o1)); sub_i2 i2 (.a(i2), .z(o2)); endmodule");
const std::vector<std::string> clone_problems
= checkNameIdentity(in, out, "top");
EXPECT_TRUE(clone_problems.empty()) << join(clone_problems);
const FileView prefix_in = viewOf(
"module psub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module psub_x (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module top (i1, i2, i3, i4, o1, o2, o3, o4);"
" input i1, i2, i3, i4; output o1, o2, o3, o4;"
" psub a1 (.a(i1), .z(o1)); psub a2 (.a(i2), .z(o2));"
" psub_x c1 (.a(i3), .z(o3)); psub_x c2 (.a(i4), .z(o4)); endmodule");
const FileView prefix_out = viewOf(
"module psub (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module psub_a2 (a, z); input a; output z;"
" BUF_X1 u1 (.A(a), .Z(z)); endmodule"
" module psub_x (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module psub_x_c2 (a, z); input a; output z;"
" INV_X1 u1 (.A(a), .ZN(z)); endmodule"
" module top (i1, i2, i3, i4, o1, o2, o3, o4);"
" input i1, i2, i3, i4; output o1, o2, o3, o4;"
" psub a1 (.a(i1), .z(o1)); psub_a2 a2 (.a(i2), .z(o2));"
" psub_x c1 (.a(i3), .z(o3));"
" psub_x_c2 c2 (.a(i4), .z(o4)); endmodule");
const std::vector<std::string> prefix_problems
= checkNameIdentity(prefix_in, prefix_out, "top");
EXPECT_TRUE(prefix_problems.empty()) << join(prefix_problems);
// The clone of a module instantiated under the same name in two parents is
// renamed by uniquification's numeric fallback. That still decodes.
const FileView deep_in = viewOf(
"module leaf (a, z); input a; output z;"
" BUF_X1 g (.A(a), .Z(z)); endmodule"
" module mid1 (a, z); input a; output z;"
" leaf u (.a(a), .z(z)); endmodule"
" module mid2 (a, z); input a; output z;"
" leaf u (.a(a), .z(z)); endmodule"
" module mid3 (a, z); input a; output z;"
" leaf u (.a(a), .z(z)); endmodule"
" module top (i1, i2, i3, o1, o2, o3);"
" input i1, i2, i3; output o1, o2, o3;"
" mid1 m1 (.a(i1), .z(o1)); mid2 m2 (.a(i2), .z(o2));"
" mid3 m3 (.a(i3), .z(o3)); endmodule");
const FileView deep_out = viewOf(
"module leaf (a, z); input a; output z;"
" BUF_X1 g (.A(a), .Z(z)); endmodule"
" module leaf_u (a, z); input a; output z;"
" BUF_X1 g (.A(a), .Z(z)); endmodule"
" module leaf_u_1 (a, z); input a; output z;"
" BUF_X1 g (.A(a), .Z(z)); endmodule"
" module mid1 (a, z); input a; output z;"
" leaf u (.a(a), .z(z)); endmodule"
" module mid2 (a, z); input a; output z;"
" leaf_u u (.a(a), .z(z)); endmodule"
" module mid3 (a, z); input a; output z;"
" leaf_u_1 u (.a(a), .z(z)); endmodule"
" module top (i1, i2, i3, o1, o2, o3);"
" input i1, i2, i3; output o1, o2, o3;"
" mid1 m1 (.a(i1), .z(o1)); mid2 m2 (.a(i2), .z(o2));"
" mid3 m3 (.a(i3), .z(o3)); endmodule");
const std::vector<std::string> deep_problems
= checkNameIdentity(deep_in, deep_out, "top");
EXPECT_TRUE(deep_problems.empty()) << join(deep_problems);
}
TEST(TestHierStructuralDetector, ReportsUninstantiatedModuleDropped)
{
const FileView in = viewOf(
"module top (a, y); input a; output y;"
" BUF_X1 b (.A(a), .Z(y)); endmodule"
" module spare (i, o); input i; output o;"
" BUF_X1 b (.A(i), .Z(o)); endmodule");
const FileView out = viewOf(
"module top (a, y); input a; output y;"
" BUF_X1 b (.A(a), .Z(y)); endmodule");
EXPECT_FALSE(checkModuleSet(in, out, Path::kHier, "top").empty());
}
TEST(TestHierStructuralDetector, ReportsErasedDanglingObjects)
{
const FileView in = viewOf(
"module top (a, y); input a; output y;"
" wire dead; wire [3:0] partly_used;"
" assign dead = a;"
" BUF_X1 b (.A(a), .Z(y)); endmodule");
const FileView out = viewOf(
"module top (a, y); input a; output y;"
" BUF_X1 b (.A(a), .Z(y)); endmodule");
EXPECT_FALSE(
checkDeclaredNets(in, out, {"top"}, /*paths_allowed_in=*/{}).empty());
EXPECT_FALSE(checkAssigns(in, out, Path::kHier, {"top"}).empty());
}
TEST(TestHierStructuralDetector, ReportsInventedFillerWires)
{
const FileView in = viewOf(
"module top (a, y); input a; output y;"
" BUF_X1 b (.A(a), .Z(y)); endmodule");
const FileView out = viewOf(
"module top (a, y); input a; output y;"
" wire _NC1; wire _NC2;"
" BUF_X1 b (.A(a), .Z(y)); endmodule");
EXPECT_FALSE(
checkDeclaredNets(in, out, {"top"}, /*paths_allowed_in=*/{}).empty());
// A filler wire invented twice under one name is illegal, not merely ugly.
const FileView collided = viewOf(
"module top (a, y); input a; output y;"
" wire _NC1; wire _NC1;"
" BUF_X1 b (.A(a), .Z(y)); endmodule");
EXPECT_FALSE(checkNamespace(collided).empty());
}
TEST(TestHierStructuralDetector, ReportsModuleLocalNetRenamedToInstancePath)
{
const FileView in = viewOf(
"module top (a, y); input a; output y;"
" sub u1 (.i(a), .o(y)); endmodule"
" module sub (i, o); input i; output o;"
" wire n; BUF_X1 b (.A(i), .Z(n));"
" BUF_X1 c (.A(n), .Z(o)); endmodule");
const FileView out = viewOf(
"module top (a, y); input a; output y;"
" sub u1 (.i(a), .o(y)); endmodule"
" module sub (i, o); input i; output o;"
" wire \\u1/n ; BUF_X1 b (.A(i), .Z(\\u1/n ));"
" BUF_X1 c (.A(\\u1/n ), .Z(o)); endmodule");
// The path is allowed in the top module only; inside `sub` it is the defect.
EXPECT_FALSE(
checkDeclaredNets(in, out, {"top", "sub"}, /*paths_allowed_in=*/{"top"})
.empty());
}
TEST(TestHierStructuralDetector, ReportsDroppedGates)
{
const FileView in = viewOf(
"module top (a, y); input a; output y;"
" wire n; INV_X1 v (.A(a), .ZN(n));"
" INV_X1 w (.A(n), .ZN(y)); endmodule");
const FileView out = viewOf(
"module top (a, y); input a; output y;"
" INV_X1 v (.A(a), .ZN(y)); endmodule");
EXPECT_FALSE(checkCellCensus(in, out, "top").empty());
}
TEST(TestHierStructuralDetector, AcceptsFlattenedPathNames)
{
const FileView in = viewOf(
"module top (a, y); input a; output y;"
" sub u1 (.i(a), .o(y)); endmodule"
" module sub (i, o); input i; output o;"
" wire n; BUF_X1 b (.A(i), .Z(n));"
" BUF_X1 c (.A(n), .Z(o)); endmodule");
const FileView out = viewOf(
"module top (a, y); input a; output y;"
" wire \\u1/n ;"
" BUF_X1 \\u1/b (.A(a), .Z(\\u1/n ));"
" BUF_X1 \\u1/c (.A(\\u1/n ), .Z(y)); endmodule");
EXPECT_TRUE(checkDeclaredNets(in, out, {"top"}, /*paths_allowed_in=*/{"top"})
.empty());
EXPECT_TRUE(checkModuleSet(in, out, Path::kFlat, "top").empty());
EXPECT_TRUE(checkCellCensus(in, out, "top").empty());
}
// An escaped name that already contains '/' must not make the flattened-path
// rule accept an arbitrary invented name.
TEST(TestHierStructuralDetector, AcceptsFlattenedPathsThroughEscapedNames)
{
const FileView in = viewOf(
"module top (a, y); input a; output y;"
" \\u/inst m (.i(a), .o(y)); endmodule"
" module \\u/inst (i, o); input i; output o;"
" wire \\net/with/slash ; BUF_X1 b (.A(i), .Z(\\net/with/slash ));"
" BUF_X1 c (.A(\\net/with/slash ), .Z(o)); endmodule");
const FileView out = viewOf(
"module top (a, y); input a; output y;"
" wire \\m/net/with/slash ;"
" BUF_X1 \\m/b (.A(a), .Z(\\m/net/with/slash ));"
" BUF_X1 \\m/c (.A(\\m/net/with/slash ), .Z(y)); endmodule");
EXPECT_TRUE(checkDeclaredNets(in, out, {"top"}, /*paths_allowed_in=*/{"top"})
.empty());
const FileView invented = viewOf(
"module top (a, y); input a; output y;"
" wire \\m/not_a_name ;"
" BUF_X1 \\m/b (.A(a), .Z(\\m/not_a_name ));"
" BUF_X1 \\m/c (.A(\\m/not_a_name ), .Z(y)); endmodule");
EXPECT_FALSE(
checkDeclaredNets(in, invented, {"top"}, /*paths_allowed_in=*/{"top"})
.empty());
}
TEST(TestHierStructuralDetector, AcceptsReEscapedDollarIdentifiers)
{
const FileView in = viewOf(
"module top (a$b, y); input a$b; output y;"
" wire n$1; BUF_X1 g$0 (.A(a$b), .Z(n$1));"
" BUF_X1 g$1 (.A(n$1), .Z(y)); endmodule");
const FileView out = viewOf(
"module top (\\a$b , y); input \\a$b ; output y;"
" wire \\n$1 ; BUF_X1 \\g$0 (.A(\\a$b ), .Z(\\n$1 ));"
" BUF_X1 \\g$1 (.A(\\n$1 ), .Z(y)); endmodule");
EXPECT_TRUE(checkPortList(in, out, "top").empty());
EXPECT_TRUE(
checkDeclaredNets(in, out, {"top"}, /*paths_allowed_in=*/{}).empty());
EXPECT_TRUE(checkInstances(in, out, {"top"}).empty());
EXPECT_TRUE(checkNamespace(out).empty());
}
// Bit-blasting a vector connection and exploding a vector assign into per-bit
// assigns are equivalence- and connectivity-preserving shape changes. Reporting
// them would bury the real findings.
TEST(TestHierStructuralDetector, AcceptsPerBitExplosion)
{
const FileView in = viewOf(
"module top (i, z); input [1:0] i; output [1:0] z;"
" wire [1:0] n; sub u (.a(i), .y(n)); assign z[1:0] = n[1:0];"
" endmodule"
" module sub (a, y); input [1:0] a; output [1:0] y;"
" BUF_X1 b0 (.A(a[0]), .Z(y[0]));"
" BUF_X1 b1 (.A(a[1]), .Z(y[1])); endmodule");
const FileView out = viewOf(
"module top (i, z); input [1:0] i; output [1:0] z;"
" wire [1:0] n; sub u (.a({i[1],i[0]}), .y({n[1],n[0]}));"
" assign z[0] = n[0]; assign z[1] = n[1]; endmodule"
" module sub (a, y); input [1:0] a; output [1:0] y;"
" BUF_X1 b0 (.A(a[0]), .Z(y[0]));"
" BUF_X1 b1 (.A(a[1]), .Z(y[1])); endmodule");
EXPECT_TRUE(checkPortList(in, out, "top").empty());
EXPECT_TRUE(checkPortList(in, out, "sub").empty());
EXPECT_TRUE(
checkDeclaredNets(in, out, {"top", "sub"}, /*paths_allowed_in=*/{})
.empty());
EXPECT_TRUE(checkInstances(in, out, {"top", "sub"}).empty());
EXPECT_TRUE(checkAssigns(in, out, Path::kHier, {"top", "sub"}).empty());
EXPECT_TRUE(checkCellCensus(in, out, "top").empty());
}
// A bus that comes back with a different declared range, or exploded into
// escaped scalars, is not a shape change the suite tolerates.
TEST(TestHierStructuralDetector, ReportsBusShapeChanges)
{
const FileView in = viewOf(
"module top (i, z); input [3:0] i; output [3:0] z;"
" wire [3:0] n; endmodule");
const FileView narrowed = viewOf(
"module top (i, z); input [3:0] i; output [3:0] z;"
" wire [1:0] n; endmodule");
const FileView exploded = viewOf(
"module top (i, z); input [3:0] i; output [3:0] z;"
" wire \\n[0] ; wire \\n[1] ; wire \\n[2] ; wire \\n[3] ;"
" endmodule");
EXPECT_FALSE(checkDeclaredNets(in, narrowed, {"top"}, /*paths_allowed_in=*/{})
.empty());
EXPECT_FALSE(checkDeclaredNets(in, exploded, {"top"}, /*paths_allowed_in=*/{})
.empty());
}
} // namespace
} // namespace tst