mirror of
https://github.com/ksherlock/wdc-utils.git
synced 2024-12-11 11:49:28 +00:00
546 lines
12 KiB
C++
546 lines
12 KiB
C++
#include "omf.h"
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#include <vector>
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#include <string>
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#include <algorithm>
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#include <array>
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#include <unistd.h>
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#include <fcntl.h>
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#include <err.h>
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#include <sysexits.h>
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#include <assert.h>
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#include "optional.h"
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#ifndef O_BINARY
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#define O_BINARY 0
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#endif
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#pragma pack(push, 1)
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struct omf_header {
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uint32_t bytecount = 0;
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uint32_t reserved_space = 0;
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uint32_t length = 0;
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uint8_t unused1 = 0;
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uint8_t lablen = 0;
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uint8_t numlen = 4;
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uint8_t version = 2;
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uint32_t banksize = 0;
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uint16_t kind = 0;
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uint16_t unused2 = 0;
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uint32_t org = 0;
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uint32_t alignment = 0;
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uint8_t numsex = 0;
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uint8_t unused3 = 0;
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uint16_t segnum = 0;
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uint32_t entry = 0;
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uint16_t dispname = 0;
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uint16_t dispdata = 0;
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};
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struct omf_express_header {
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uint32_t lconst_mark;
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uint32_t lconst_size;
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uint32_t reloc_mark;
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uint32_t reloc_size;
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uint8_t unused1 = 0;
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uint8_t lablen = 0;
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uint8_t numlen = 4;
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uint8_t version = 2;
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uint32_t banksize = 0;
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uint16_t kind = 0;
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uint16_t unused2 = 0;
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uint32_t org = 0;
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uint32_t alignment = 0;
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uint8_t numsex = 0;
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uint8_t unused3 = 0;
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uint16_t segnum = 0;
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uint32_t entry = 0;
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uint16_t dispname = 0;
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uint16_t dispdata = 0;
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};
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#pragma pack(pop)
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void push(std::vector<uint8_t> &v, uint8_t x) {
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v.push_back(x);
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}
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void push(std::vector<uint8_t> &v, uint16_t x) {
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v.push_back(x & 0xff);
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x >>= 8;
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v.push_back(x & 0xff);
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}
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void push(std::vector<uint8_t> &v, uint32_t x) {
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v.push_back(x & 0xff);
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x >>= 8;
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v.push_back(x & 0xff);
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x >>= 8;
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v.push_back(x & 0xff);
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x >>= 8;
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v.push_back(x & 0xff);
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}
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void push(std::vector<uint8_t> &v, const std::string &s) {
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uint8_t count = std::min((int)s.size(), 255);
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push(v, count);
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v.insert(v.end(), s.begin(), s.end());
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}
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class super_helper {
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std::vector<uint8_t> _data;
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uint32_t _page = 0;
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int _count = 0;
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public:
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super_helper() = default;
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void append(uint32_t pc) {
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unsigned offset = pc & 0xff;
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unsigned page = pc >> 8;
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assert(page >= _page);
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if (page != _page) {
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unsigned skip = page - _page;
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if (skip > 1) {
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while (skip >= 0x80) {
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_data.push_back(0xff);
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skip -= 0x7f;
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}
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if (skip)
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_data.push_back(0x80 | skip);
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}
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_page = page;
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_count = 0;
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}
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if (!_count) {
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_data.push_back(0); // count-1 place holder.
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} else {
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_data[_data.size() - _count - 1] = _count; // count is count - 1 at this point,
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}
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_data.push_back(offset);
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++_count;
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}
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void reset() {
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_data.clear();
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_page = 0;
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_count = 0;
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}
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const std::vector<uint8_t> &data() {
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return _data;
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}
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};
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enum {
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SUPER_RELOC2,
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SUPER_RELOC3,
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SUPER_INTERSEG1,
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SUPER_INTERSEG2,
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SUPER_INTERSEG3,
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SUPER_INTERSEG4,
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SUPER_INTERSEG5,
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SUPER_INTERSEG6,
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SUPER_INTERSEG7,
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SUPER_INTERSEG8,
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SUPER_INTERSEG9,
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SUPER_INTERSEG10,
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SUPER_INTERSEG11,
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SUPER_INTERSEG12,
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SUPER_INTERSEG13,
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SUPER_INTERSEG14,
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SUPER_INTERSEG15,
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SUPER_INTERSEG16,
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SUPER_INTERSEG17,
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SUPER_INTERSEG18,
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SUPER_INTERSEG19,
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SUPER_INTERSEG20,
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SUPER_INTERSEG21,
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SUPER_INTERSEG22,
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SUPER_INTERSEG23,
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SUPER_INTERSEG24,
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SUPER_INTERSEG25,
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SUPER_INTERSEG26,
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SUPER_INTERSEG27,
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SUPER_INTERSEG28,
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SUPER_INTERSEG29,
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SUPER_INTERSEG30,
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SUPER_INTERSEG31,
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SUPER_INTERSEG32,
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SUPER_INTERSEG33,
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SUPER_INTERSEG34,
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SUPER_INTERSEG35,
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SUPER_INTERSEG36,
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};
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uint32_t add_relocs(std::vector<uint8_t> &data, size_t data_offset, omf::segment &seg, bool compress) {
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std::array< optional<super_helper>, 38 > ss;
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uint32_t reloc_size = 0;
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for (auto &r : seg.relocs) {
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if (r.can_compress()) {
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if (compress) {
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if (r.shift == 0 && r.size == 2) {
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constexpr int n = SUPER_RELOC2;
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auto &sr = ss[n];
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if (!sr) sr.emplace();
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uint32_t value = r.value;
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sr->append(r.offset);
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for (int i = 0; i < 2; ++i, value >>= 8)
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data[data_offset + r.offset + i] = value;
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continue;
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}
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// sreloc 3 is for 3 bytes. however 4 bytes is also ok since
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// it's 24-bit address space.
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if (r.shift == 0 && (r.size == 2 || r.size == 3))
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{
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constexpr int n = SUPER_RELOC3;
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auto &sr = ss[n];
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if (!sr) sr.emplace();
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uint32_t value = r.value;
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sr->append(r.offset);
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for (int i = 0; i < 3; ++i, value >>= 8)
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data[data_offset + r.offset + i] = value;
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continue;
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}
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// if size == 2 && shift == -16, -> SUPER INTERSEG
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if (seg.segnum <= 12 && r.shift == 0xf0 && r.size == 2) {
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int n = SUPER_INTERSEG24 + seg.segnum;
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auto &sr = ss[n];
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if (!sr) sr.emplace();
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uint32_t value = r.value;
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sr->append(r.offset);
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for (int i = 0; i < 2; ++i, value >>= 8)
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data[data_offset + r.offset + i] = value;
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continue;
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}
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}
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push(data, (uint8_t)omf::cRELOC);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint16_t)r.offset);
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push(data, (uint16_t)r.value);
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reloc_size += 7;
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} else {
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push(data, (uint8_t)omf::RELOC);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint32_t)r.offset);
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push(data, (uint32_t)r.value);
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reloc_size += 11;
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}
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}
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for (const auto &r : seg.intersegs) {
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if (r.can_compress()) {
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if (compress) {
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if (r.shift == 0 && r.size == 3) {
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constexpr int n = SUPER_INTERSEG1;
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auto &sr = ss[n];
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if (!sr) sr.emplace();
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uint32_t value = r.segment_offset;
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data[data_offset + r.offset + 0] = value; value >>= 8;
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data[data_offset + r.offset + 1] = value; value >>= 8;
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data[data_offset + r.offset + 2] = r.segment;
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continue;
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}
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if (r.shift == 0 && r.size == 2 && r.segment <= 12) {
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int n = SUPER_INTERSEG12 + r.segment;
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auto &sr = ss[n];
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if (!sr) sr.emplace();
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uint32_t value = r.segment_offset;
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sr->append(r.offset);
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for (int i = 0; i < 2; ++i, value >>= 8)
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data[data_offset + r.offset + i] = value;
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continue;
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}
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if (r.shift == 0xf0 && r.size == 2 && r.segment <= 12) {
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int n = SUPER_INTERSEG24 + r.segment;
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auto &sr = ss[n];
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if (!sr) sr.emplace();
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uint32_t value = r.segment_offset;
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sr->append(r.offset);
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for (int i = 0; i < 2; ++i, value >>= 8)
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data[data_offset + r.offset + i] = value;
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continue;
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}
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}
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push(data, (uint8_t)omf::cINTERSEG);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint16_t)r.offset);
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push(data, (uint8_t)r.segment);
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push(data, (uint16_t)r.segment_offset);
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reloc_size += 8;
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} else {
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push(data, (uint8_t)omf::INTERSEG);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint32_t)r.offset);
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push(data, (uint16_t)r.file);
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push(data, (uint16_t)r.segment);
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push(data, (uint32_t)r.segment_offset);
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reloc_size += 15;
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}
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}
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for (int i = 0; i < ss.size(); ++i) {
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auto &s = ss[i];
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if (!s) continue;
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auto tmp = s->data();
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if (tmp.empty()) continue;
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reloc_size += tmp.size() + 6;
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data.push_back(omf::SUPER);
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push(data, ((uint32_t)tmp.size() + 1));
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data.push_back(i);
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data.insert(data.end(), tmp.begin(), tmp.end());
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}
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return reloc_size;
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}
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void save_omf(const std::string &path, std::vector<omf::segment> &segments, bool compress, bool expressload) {
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// expressload doesn't support links to other files.
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// fortunately, we don't either.
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std::vector<uint8_t> expr_headers;
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std::vector<unsigned> expr_offsets;
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int fd;
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fd = open(path.c_str(), O_WRONLY | O_CREAT | O_TRUNC | O_BINARY, 0666);
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if (fd < 0) {
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err(EX_CANTCREAT, "Unable to open %s", path.c_str());
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}
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uint32_t offset = 0;
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if (expressload) {
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for (auto &s : segments) {
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s.segnum++;
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for (auto &r : s.intersegs) r.segment++;
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}
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// calculate express load segment size.
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// sizeof includes the trailing 0, so no need to add in byte size.
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offset = sizeof(omf_header) + 10 + sizeof("~ExpressLoad");
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offset += 6; // lconst + end
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offset += 6; // header.
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for (auto &s : segments) {
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offset += 8 + 2;
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offset += sizeof(omf_express_header) + 10;
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offset += s.segname.length() + 1;
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}
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lseek(fd, offset, SEEK_SET);
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}
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for (auto &s : segments) {
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omf_header h;
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h.length = s.data.size();
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h.kind = s.kind;
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h.banksize = s.data.size() > 0xffff ? 0x0000 : 0x010000;
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h.segnum = s.segnum;
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std::vector<uint8_t> data;
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// push segname and load name onto data.
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data.insert(data.end(), 10, ' ');
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push(data, s.segname);
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h.dispname = sizeof(omf_header);
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h.dispdata = sizeof(omf_header) + data.size();
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uint32_t lconst_offset = offset + sizeof(omf_header) + data.size() + 5;
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uint32_t lconst_size = h.length;
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//lconst record
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push(data, (uint8_t)omf::LCONST);
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push(data, (uint32_t)h.length);
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size_t data_offset = data.size();
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data.insert(data.end(), s.data.begin(), s.data.end());
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uint32_t reloc_offset = offset + sizeof(omf_header) + data.size();
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uint32_t reloc_size = 0;
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reloc_size = add_relocs(data, data_offset, s, compress);
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#if 0
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// should interseg/reloc records be sorted?
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// todo -- compress into super records.
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for (const auto &r : s.relocs) {
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if (r.can_compress()) {
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push(data, (uint8_t)0xf5);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint16_t)r.offset);
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push(data, (uint16_t)r.value);
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reloc_size += 7;
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} else {
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push(data, (uint8_t)0xe5);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint32_t)r.offset);
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push(data, (uint32_t)r.value);
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reloc_size += 11;
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}
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}
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for (const auto &r : s.intersegs) {
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if (r.can_compress()) {
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push(data, (uint8_t)0xf6);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint16_t)r.offset);
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push(data, (uint8_t)r.segment);
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push(data, (uint16_t)r.segment_offset);
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reloc_size += 8;
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} else {
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push(data, (uint8_t)0xe3);
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push(data, (uint8_t)r.size);
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push(data, (uint8_t)r.shift);
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push(data, (uint32_t)r.offset);
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push(data, (uint16_t)r.file);
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push(data, (uint16_t)r.segment);
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push(data, (uint32_t)r.segment_offset);
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reloc_size += 15;
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}
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}
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#endif
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// end-of-record
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push(data, (uint8_t)omf::END);
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h.bytecount = data.size() + sizeof(omf_header);
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// todo -- byteswap to little-endian!
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offset += write(fd, &h, sizeof(h));
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offset += write(fd, data.data(), data.size());
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if (expressload) {
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expr_offsets.emplace_back(expr_headers.size());
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if (lconst_size == 0) lconst_offset = 0;
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if (reloc_size == 0) reloc_offset = 0;
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push(expr_headers, (uint32_t)lconst_offset);
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push(expr_headers, (uint32_t)lconst_size);
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push(expr_headers, (uint32_t)reloc_offset);
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push(expr_headers, (uint32_t)reloc_size);
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push(expr_headers, h.unused1);
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push(expr_headers, h.lablen);
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push(expr_headers, h.numlen);
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push(expr_headers, h.version);
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push(expr_headers, h.banksize);
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push(expr_headers, h.kind);
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push(expr_headers, h.unused2);
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push(expr_headers, h.org);
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push(expr_headers, h.alignment);
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push(expr_headers, h.numsex);
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push(expr_headers, h.unused3);
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push(expr_headers, h.segnum);
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push(expr_headers, h.entry);
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push(expr_headers, (uint16_t)(h.dispname-4));
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push(expr_headers, h.dispdata);
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expr_headers.insert(expr_headers.end(), 10, ' ');
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push(expr_headers, s.segname);
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}
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}
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if (expressload) {
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omf_header h;
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h.segnum = 1;
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h.banksize = 0x00010000;
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h.kind = 0x8001;
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h.dispname = 0x2c;
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h.dispdata = 0x43;
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unsigned fudge = 10 * segments.size();
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h.length = 6 + expr_headers.size() + fudge;
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std::vector<uint8_t> data;
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data.insert(data.begin(), 10, ' ');
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push(data, std::string("~ExpressLoad"));
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push(data, (uint8_t)0xf2); // lconst.
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push(data, (uint32_t)h.length);
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push(data, (uint32_t)0); // reserved
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push(data, (uint16_t)(segments.size() - 1)); // seg count - 1
|
|
|
|
|
|
for (auto &offset : expr_offsets) {
|
|
push(data, (uint16_t)(fudge + offset));
|
|
push(data, (uint16_t)0);
|
|
push(data, (uint32_t)0);
|
|
}
|
|
|
|
for (auto &s : segments) {
|
|
push(data, (uint16_t)s.segnum);
|
|
}
|
|
|
|
data.insert(data.end(), expr_headers.begin(), expr_headers.end());
|
|
push(data, (uint8_t)0); // end.
|
|
|
|
h.bytecount = data.size() + sizeof(omf_header);
|
|
|
|
lseek(fd, 0, SEEK_SET);
|
|
write(fd, &h, sizeof(h));
|
|
write(fd, data.data(), data.size());
|
|
|
|
}
|
|
|
|
close(fd);
|
|
} |