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ImHex/plugins/builtin/source/content/providers/intel_hex_provider.cpp

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#include "content/providers/intel_hex_provider.hpp"
#include <cstring>
#include <hex/api/localization_manager.hpp>
#include <hex/helpers/utils.hpp>
#include <hex/helpers/fmt.hpp>
#include <nlohmann/json.hpp>
#include <wolv/io/file.hpp>
#include <wolv/utils/expected.hpp>
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#include <wolv/utils/string.hpp>
namespace hex::plugin::builtin {
namespace intel_hex {
u8 parseHexDigit(char c) {
if (c >= '0' && c <= '9')
return c - '0';
else if (c >= 'A' && c <= 'F')
return c - 'A' + 10;
else if (c >= 'a' && c <= 'f')
return c - 'a' + 10;
else
throw std::runtime_error("Failed to parse hex digit");
}
wolv::util::Expected<std::map<u64, std::vector<u8>>, std::string> parseIntelHex(const std::string &string) {
std::map<u64, std::vector<u8>> result;
u8 checksum = 0x00;
u64 offset = 0x00;
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u8 byteCount = 0x00;
u32 segmentAddress = 0x0000'0000;
u32 extendedLinearAddress = 0x0000'0000;
u16 address = 0x0000;
std::vector<u8> data;
enum class RecordType {
Data = 0x00,
EndOfFile = 0x01,
ExtendedSegmentAddress = 0x02,
StartSegmentAddress = 0x03,
ExtendedLinearAddress = 0x04,
StartLinearAddress = 0x05
} recordType;
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auto c = [&] {
while (offset < string.length() && std::isspace(string[offset]))
offset++;
if (offset >= string.length())
throw std::runtime_error("Unexpected end of file");
return string[offset++];
};
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auto parseValue = [&](u8 count) {
u64 value = 0x00;
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for (u8 i = 0; i < count; i++) {
u8 byte = (parseHexDigit(c()) << 4) | parseHexDigit(c());
value <<= 8;
value |= byte;
checksum += byte;
}
return value;
};
bool endOfFile = false;
try {
while (offset < string.length()) {
// Parse start code
if (c() != ':')
return { };
checksum = 0x00;
if (endOfFile)
throw std::runtime_error("Unexpected end of file");
// Parse byte count
byteCount = parseValue(1);
// Parse address
address = parseValue(2);
// Parse record type
recordType = static_cast<RecordType>(parseValue(1));
data.clear();
for (u32 i = 0; i < byteCount; i++) {
data.push_back(parseValue(1));
}
parseValue(1);
if (!data.empty() && checksum != 0x00)
throw std::runtime_error("Checksum mismatch");
while (std::isspace(string[offset]) && offset < string.length())
offset++;
// Construct region
switch (recordType) {
case RecordType::Data: {
result[extendedLinearAddress | (segmentAddress + address)] = data;
break;
}
case RecordType::EndOfFile: {
endOfFile = true;
break;
}
case RecordType::ExtendedSegmentAddress: {
if (byteCount != 2)
throw std::runtime_error("Unexpected byte count");
segmentAddress = (data[0] << 8 | data[1]) * 16;
break;
}
case RecordType::StartSegmentAddress: {
if (byteCount != 4)
throw std::runtime_error("Unexpected byte count");
// Can be safely ignored
break;
}
case RecordType::ExtendedLinearAddress: {
if (byteCount != 2)
throw std::runtime_error("Unexpected byte count");
extendedLinearAddress = (data[0] << 8 | data[1]) << 16;
break;
}
case RecordType::StartLinearAddress: {
if (byteCount != 4)
throw std::runtime_error("Unexpected byte count");
// Can be safely ignored
break;
}
}
while (std::isspace(string[offset]) && offset < string.length())
offset++;
}
} catch (const std::runtime_error &e) {
return wolv::util::Unexpected<std::string>(e.what());
}
return result;
}
}
void IntelHexProvider::setBaseAddress(u64 address) {
auto oldBase = this->getBaseAddress();
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auto regions = m_data.overlapping({ oldBase, oldBase + this->getActualSize() });
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decltype(m_data) newIntervals;
for (auto &[interval, data] : regions) {
newIntervals.insert({ interval.start - oldBase + address, interval.end - oldBase + address }, *data);
}
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m_data = newIntervals;
Provider::setBaseAddress(address);
}
void IntelHexProvider::readRaw(u64 offset, void *buffer, size_t size) {
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auto intervals = m_data.overlapping({ offset, (offset + size) - 1 });
std::memset(buffer, 0x00, size);
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auto bytes = static_cast<u8*>(buffer);
for (const auto &[interval, data] : intervals) {
for (u32 i = std::max(interval.start, offset); i <= interval.end && (i - offset) < size; i++) {
bytes[i - offset] = (*data)[i - interval.start];
}
}
}
void IntelHexProvider::writeRaw(u64 offset, const void *buffer, size_t size) {
hex::unused(offset, buffer, size);
}
u64 IntelHexProvider::getActualSize() const {
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return m_dataSize;
}
bool IntelHexProvider::open() {
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auto file = wolv::io::File(m_sourceFilePath, wolv::io::File::Mode::Read);
if (!file.isValid()) {
this->setErrorMessage(hex::format("hex.builtin.provider.file.error.open"_lang, m_sourceFilePath.string(), ::strerror(errno)));
return false;
}
auto data = intel_hex::parseIntelHex(file.readString());
if (!data.has_value()) {
this->setErrorMessage(data.error());
return false;
}
u64 maxAddress = 0x00;
for (auto &[address, bytes] : data.value()) {
auto endAddress = (address + bytes.size()) - 1;
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m_data.emplace({ address, endAddress }, std::move(bytes));
if (endAddress > maxAddress)
maxAddress = endAddress;
}
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m_dataSize = maxAddress + 1;
m_dataValid = true;
return true;
}
void IntelHexProvider::close() {
}
[[nodiscard]] std::string IntelHexProvider::getName() const {
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return hex::format("hex.builtin.provider.intel_hex.name"_lang, wolv::util::toUTF8String(m_sourceFilePath.filename()));
}
[[nodiscard]] std::vector<IntelHexProvider::Description> IntelHexProvider::getDataDescription() const {
std::vector<Description> result;
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result.emplace_back("hex.builtin.provider.file.path"_lang, wolv::util::toUTF8String(m_sourceFilePath));
result.emplace_back("hex.builtin.provider.file.size"_lang, hex::toByteString(this->getActualSize()));
return result;
}
bool IntelHexProvider::handleFilePicker() {
auto picked = fs::openFileBrowser(fs::DialogMode::Open, {
{ "Intel Hex File", "hex" },
{ "Intel Hex File", "h86" },
{ "Intel Hex File", "hxl" },
{ "Intel Hex File", "hxh" },
{ "Intel Hex File", "obl" },
{ "Intel Hex File", "obh" },
{ "Intel Hex File", "mcs" },
{ "Intel Hex File", "ihex" },
{ "Intel Hex File", "ihe" },
{ "Intel Hex File", "ihx" },
{ "Intel Hex File", "a43" },
{ "Intel Hex File", "a90" }
}, [this](const std::fs::path &path) {
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m_sourceFilePath = path;
}
);
if (!picked)
return false;
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if (!wolv::io::fs::isRegularFile(m_sourceFilePath))
return false;
return true;
}
std::pair<Region, bool> IntelHexProvider::getRegionValidity(u64 address) const {
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auto intervals = m_data.overlapping({ address, address });
if (intervals.empty()) {
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return Provider::getRegionValidity(address);
}
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decltype(m_data)::Interval closestInterval = { 0, 0 };
for (const auto &[interval, data] : intervals) {
if (interval.start <= closestInterval.end)
closestInterval = interval;
}
return { Region { closestInterval.start, (closestInterval.end - closestInterval.start) + 1}, true };
}
void IntelHexProvider::loadSettings(const nlohmann::json &settings) {
Provider::loadSettings(settings);
auto path = settings.at("path").get<std::string>();
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m_sourceFilePath = std::u8string(path.begin(), path.end());
}
nlohmann::json IntelHexProvider::storeSettings(nlohmann::json settings) const {
settings["path"] = wolv::io::fs::toNormalizedPathString(m_sourceFilePath);
return Provider::storeSettings(settings);
}
}