mirror of
https://github.com/keymanapp/keyman.git
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1251 lines
46 KiB
C++
Executable file
1251 lines
46 KiB
C++
Executable file
/*
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Name: mcompile
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Copyright: Copyright (C) SIL International.
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Documentation:
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Description:
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Create Date: 24 Apr 2014
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Modified Date: 8 Apr 2015
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Authors: mcdurdin
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Related Files:
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Dependencies:
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Bugs:
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Todo:
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Notes:
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History: 24 Apr 2014 - mcdurdin - I4174 - V9 - mcompile logs should be stored in diag folder
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16 Jun 2014 - mcdurdin - I4273 - V9.0 - Convert keyboards to Unicode before installing
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23 Jun 2014 - mcdurdin - I4279 - V9.0 - mcompile fails to start when converting keyboard to Unicode
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03 Aug 2014 - mcdurdin - I4353 - V9.0 - mnemonic layout recompiler mixes up deadkey rules
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03 Aug 2014 - mcdurdin - I4327 - V9.0 - Mnemonic layout compiler follow-up
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31 Dec 2014 - mcdurdin - I4549 - V9.0 - Mnemonic layout recompiler does not translate Lctrl Ralt for deadkeys correctly
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06 Feb 2015 - mcdurdin - I4552 - V9.0 - Add mnemonic recompile option to ignore deadkeys
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08 Apr 2015 - mcdurdin - I4651 - V9.0 - Mnemonic layout recompiler maps AltGr+VK_BKSLASH rather than VK_OEM_102
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*/
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//_S2
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// in /Projects/keyman/keyman/linux/mcompile/keymap/build_mcompile
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// run with:
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//./mcompile -d in.kmx bla.dll 0407 out.kmx
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//./mcompile -d /Projects/keyman/keyman/linux/mcompile/keymap/anii.kmx bla.dll 0407 /Projects/keyman/keyman/linux/mcompile/keymap/anii_out.kmx
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//./mcompile -d /Projects/keyman/keyman/linux/mcompile/keymap/sil_ipa_o.kmx bla.dll 0407 /Projects/keyman/keyman/linux/mcompile/keymap/sil_ipa_o_out2.kmx
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//./mcompile -d /Projects/keyman/keyman/linux/mcompile/keymap/mcompile_test.kmx bla.dll 0407 /Projects/keyman/keyman/linux/mcompile/keymap/mcompile_test_out.kmx
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#include "mcompile.h"
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//------------------------------------------------------------------------------------------------
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//------------------------------------------------------------------------------------------------
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//------------------------------------------------------------------------------------------------
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KMX_BOOL KMX_DoConvert(LPKMX_KEYBOARD kbd, PKMX_WCHAR kbid, KMX_BOOL bDeadkeyConversion, gint argc, gchar *argv[]);
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bool KMX_ImportRules(KMX_WCHAR *kbid, LPKMX_KEYBOARD kp,v_dw_3D &All_Vector, GdkKeymap **keymap,std::vector<KMX_DeadkeyMapping> *KMX_FDeadkeys, KMX_BOOL bDeadkeyConversion); // I4353 // I4327
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//bool KMX_Lin_ImportRules_Lin(KMX_WCHAR *kbid, LPKMX_KEYBOARD kp,v_dw_3D &All_Vector, GdkKeymap **keymap,std::vector<KMX_DeadkeyMapping> *KMX_FDeadkeys, KMX_BOOL bDeadkeyConversion); // I4353 // I4327
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std::vector<KMX_DeadkeyMapping> KMX_FDeadkeys; // I4353
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void KMX_TranslateKey(LPKMX_KEY key, KMX_WORD vk, KMX_UINT shift, KMX_WCHAR ch);
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void KMX_TranslateGroup(LPKMX_GROUP group, KMX_WORD vk, KMX_UINT shift, KMX_WCHAR ch);
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void KMX_TranslateKeyboard(LPKMX_KEYBOARD kbd, KMX_WORD vk, KMX_UINT shift, KMX_WCHAR ch);
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void KMX_ReportUnconvertedKeyRule(LPKMX_KEY key);
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void KMX_ReportUnconvertedGroupRules(LPKMX_GROUP group);
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void KMX_ReportUnconvertedKeyboardRules(LPKMX_KEYBOARD kbd);
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void KMX_TranslateDeadkeyKeyboard(LPKMX_KEYBOARD kbd, KMX_WCHAR deadkey, KMX_WORD vk, UINT shift, KMX_WORD ch);
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void KMX_TranslateDeadkeyGroup(LPKMX_GROUP group,KMX_WCHAR deadkey, KMX_WORD vk, UINT shift, KMX_WORD ch);
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void KMX_TranslateDeadkeyKey(LPKMX_KEY key, KMX_WCHAR deadkey, KMX_WORD vk, UINT shift, KMX_WORD ch);
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int KMX_GetDeadkeys(KMX_WORD DeadKey, KMX_WORD *OutputPairs) ;
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int KMX_GetDeadkeys_NT(KMX_WORD DeadKey, KMX_WORD *OutputPairs); // returns array of [USVK, ch] pairs
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int KMX_GetDeadkeys_NT_x64(KMX_WORD DeadKey, KMX_WORD *OutputPairs); // returns array of [USVK, ch] pairs
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void KMX_AddDeadkeyRule(LPKMX_KEYBOARD kbd, KMX_WCHAR deadkey, KMX_WORD vk, UINT shift);
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KMX_WORD KMX_VKUSToVKUnderlyingLayout_S2(KMX_WORD VKey);
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KMX_WORD KMX_VKUnderlyingLayoutToVKUS_S2(KMX_WORD VKey);
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KMX_UINT KMX_VKUSToSCUnderlyingLayout(KMX_DWORD VirtualKeyUS);
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KMX_WCHAR KMX_CharFromSC(GdkKeymap *keymap, KMX_UINT VKShiftState, UINT SC_OTHER, KMX_WCHAR* DeadKey);
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#if defined(_WIN32) || defined(_WIN64)
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int wmain(int argc, wchar_t* argv[]) {
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std::vector<std::u16string> str_argv_16 = convert_argvW_to_Vector_u16str( argc, argv);
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run(argc, str_argv_16);
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#else // LINUX
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int main(int argc, char* argv[]) {
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std::vector<std::u16string> str_argv_16 = convert_argv_to_Vector_u16str(argc, argv);
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run(argc, str_argv_16, argv);
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#endif
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}
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int run(int argc, std::vector<std::u16string> str_argv, char* argv_ch[] = NULL){
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// convert std::vector<std::u16string> to std::vector<const char16_t*>
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std::vector<const char16_t*> argv;
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for (int i = 0; i < argc; i++) {
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const char16_t* cmdl_par = str_argv[i].c_str();
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argv.push_back(cmdl_par);
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}
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if(argc < 3 || (argc < 5 && u16cmp(argv[1], u"-u") != 0)) { // I4273// I4273
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wprintf(
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L"Usage: mcompile -u infile.kmx outfile.kmx\n (not available for Linux)"
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L" mcompile [-d] infile.kmx kbdfile.dll kbid outfile.kmx\n"
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L" With -u parameter, converts keyboard from ANSI to Unicode\n"
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L" Otherwise, mcompile converts a Keyman mnemonic layout to a\n"
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L" positional one based on the Windows keyboard\n"
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L" layout file given by kbdfile.dll\n\n"
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L" kbid should be a hexadecimal number e.g. 409 for US English\n"
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L" -d convert deadkeys to plain keys\n"); // I4552
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return 1;
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}
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// -u option was removed for Linux
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int bDeadkeyConversion = u16cmp(argv[1], u"-d") == 0; // I4552
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int n = (bDeadkeyConversion ? 2 : 1);
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char16_t* infile = (char16_t*) argv[n], *indll = (char16_t*) argv[n+1], *kbid = (char16_t*) argv[n+2], *outfile = (char16_t*) argv[n+3];
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wprintf(L"mcompile%ls \"%ls\" \"%ls\" \"%ls\" \"%ls\"\n", bDeadkeyConversion ? L" -d" : L"", u16fmt((const char16_t*) infile).c_str(), u16fmt((const char16_t*) indll).c_str(), u16fmt((const char16_t*) kbid).c_str(), u16fmt((const char16_t*) outfile).c_str() ); // I4174
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// 1. Load the keyman keyboard file
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// 2. For each key on the system layout, determine its output character and perform a
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// 1-1 replacement on the keyman keyboard of that character with the base VK + shift
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// state. This fixup will transform the char to a vk, which will avoid any issues
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// with the key.
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//
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// --> deadkeys we will attack after the POC
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//
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// For each deadkey, we need to determine its possible outputs. Then we generate a VK
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// rule for that deadkey, e.g. [K_LBRKT] > dk(c101)
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//
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// Next, update each rule that references the output from that deadkey to add an extra
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// context deadkey at the end of the context match, e.g. 'a' dk(c101) + [K_SPACE] > 'b'.
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// This will require a memory layout change for the .kmx file, plus fixups on the
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// context+output index offsets
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//
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// --> virtual character keys
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//
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// [CTRL ' '] : we look at the character, and replace it in the same way, but merely
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// switch the shift state from the VIRTUALCHARKEY to VIRTUALKEY, without changing any
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// other properties of the key.
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//
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// 3. Write the new keyman keyboard file
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LPKMX_KEYBOARD kmxfile;
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if(!KMX_LoadKeyboard(infile, &kmxfile)) {
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KMX_LogError(L"Failed to load keyboard (%d)\n", errno );
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return 3;
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}
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#if defined(_WIN32) || defined(_WIN64)
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// _S2 DoConvert for windows needs to be done later ( can it be copied from engine/mcompile ?)
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/*if(DoConvert(kmxfile, kbid, bDeadkeyConversion)) { // I4552F
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KMX_SaveKeyboard(kmxfile, outfile);
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}*/
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#else // LINUX
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// _S2 ToDo :do I need all parameters?-no
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if(KMX_DoConvert( kmxfile, kbid, bDeadkeyConversion, argc, (gchar**) argv_ch)) { // I4552F
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KMX_SaveKeyboard(kmxfile, outfile);
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}
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#endif
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//DeleteReallocatedPointers(kmxfile); :TODO // _S2 not my ToDo :-)
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delete kmxfile;
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wprintf(L"\nmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmmm end\n");
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return 0;
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}
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// _S2 TODO which version of VKShiftStates do we use ?
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// comment from win-version
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// Map of all shift states that we will work with
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//const UINT VKShiftState[] = {0, K_SHIFTFLAG, LCTRLFLAG|RALTFLAG, K_SHIFTFLAG|LCTRLFLAG|RALTFLAG, 0xFFFF};
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const UINT VKShiftState[] = {0, K_SHIFTFLAG, 0xFFFF};
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// my comment for Lin version
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// Ubuntu: Each of the 4 columns specifies a different modifier: unmodified, shift, right alt (altgr), shift+right alt(altgr)
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// some hold up to 8 what are those ???
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// we have assigned these to columns 1-4 ( column o holds the keycode)
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//const UINT VKShiftState[] = {0, 1, 2, 3, 0xFFFF};
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//
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// TranslateKey
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//
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// For each key rule on the keyboard, remap its key to the
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// correct shift state and key. Adjust the LCTRL+RALT -> RALT if necessary
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//
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void KMX_TranslateKey(LPKMX_KEY key, KMX_WORD vk, KMX_UINT shift, KMX_WCHAR ch) {
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// _S2 ToDos here?
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// The weird LCTRL+RALT is Windows' way of mapping the AltGr key.
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// We store that as just RALT, and use the option "Simulate RAlt with Ctrl+Alt"
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// to provide an alternate..
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if((shift & (LCTRLFLAG|RALTFLAG)) == (LCTRLFLAG|RALTFLAG))
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shift &= ~LCTRLFLAG;
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if(key->ShiftFlags == 0 && key->Key == ch) {
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// Key is a mnemonic key with no shift state defined.
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// Remap the key according to the character on the key cap.
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//LogError(L"Converted mnemonic rule on line %d, + '%c' TO + [%x K_%d]", key->Line, key->Key, shift, vk);
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key->ShiftFlags = ISVIRTUALKEY | shift;
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key->Key = vk;
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//wprintf(L"ISVIRTUALKEY: %i , shift: %i, key->ShiftFlags for mnemonic= %i\n", ISVIRTUALKEY,shift, key->ShiftFlags);
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//wprintf(L" 1 and changed, %i (%c) %i (%c) ", ch,ch, vk,vk);
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} else if(key->ShiftFlags & VIRTUALCHARKEY && key->Key == ch) {
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// Key is a virtual character key with a hard-coded shift state.
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// Do not remap the shift state, just move the key.
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// This will not result in 100% wonderful mappings as there could
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// be overlap, depending on how keys are arranged on the target layout.
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// But that is up to the designer.
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//LogError(L"Converted mnemonic virtual char key rule on line %d, + [%x '%c'] TO + [%x K_%d]", key->Line, key->ShiftFlags, key->Key, key->ShiftFlags & ~VIRTUALCHARKEY, vk);
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key->ShiftFlags &= ~VIRTUALCHARKEY;
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//wprintf(L" i am processing vk%i (%c) char %i (%c) \n", vk,vk, ch,ch);
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key->Key = vk;
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//wprintf(L"key->ShiftFlags for VIRTUALCHARKEY= %i", key->ShiftFlags);
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//wprintf(L" 2 and changed, vk: %i (%c) ---> %i (%c) ", vk,vk, ch,ch);
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}
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}
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void KMX_TranslateGroup(LPKMX_GROUP group, KMX_WORD vk, KMX_UINT shift, KMX_WCHAR ch) {
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for(unsigned int i = 0; i < group->cxKeyArray; i++) {
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KMX_TranslateKey(&group->dpKeyArray[i], vk, shift, ch);
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}
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}
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void KMX_TranslateKeyboard(LPKMX_KEYBOARD kbd, KMX_WORD vk, KMX_UINT shift, KMX_WCHAR ch) {
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for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
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if(kbd->dpGroupArray[i].fUsingKeys) {
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KMX_TranslateGroup(&kbd->dpGroupArray[i], vk, shift, ch);
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}
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}
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}
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void KMX_ReportUnconvertedKeyRule(LPKMX_KEY key) {
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if(key->ShiftFlags == 0) {
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//KMX_LogError(L"Did not find a match for mnemonic rule on line %d, + '%c' > ...", key->Line, key->Key);
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wprintf(L" _S2 Did not find a match for mnemonic rule on line %d, + '%c' > ...\n", key->Line, key->Key);
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} else if(key->ShiftFlags & VIRTUALCHARKEY) {
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//KMX_LogError(L"Did not find a match for mnemonic virtual character key rule on line %d, + [%x '%c'] > ...", key->Line, key->ShiftFlags, key->Key);
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wprintf(L"_S2 Did not find a match for mnemonic virtual character key rule on line %d, + [%x '%c'] > ...\n", key->Line, key->ShiftFlags, key->Key);
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}
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}
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void KMX_ReportUnconvertedGroupRules(LPKMX_GROUP group) {
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for(unsigned int i = 0; i < group->cxKeyArray; i++) {
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KMX_ReportUnconvertedKeyRule(&group->dpKeyArray[i]);
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}
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}
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void KMX_ReportUnconvertedKeyboardRules(LPKMX_KEYBOARD kbd) {
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for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
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if(kbd->dpGroupArray[i].fUsingKeys) {
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KMX_ReportUnconvertedGroupRules(&kbd->dpGroupArray[i]);
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}
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}
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}
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void KMX_TranslateDeadkeyKey(LPKMX_KEY key, KMX_WCHAR deadkey, KMX_WORD vk, UINT shift, KMX_WORD ch) {
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if((key->ShiftFlags == 0 || key->ShiftFlags & VIRTUALCHARKEY) && key->Key == ch) {
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// The weird LCTRL+RALT is Windows' way of mapping the AltGr key.
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// We store that as just RALT, and use the option "Simulate RAlt with Ctrl+Alt"
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// to provide an alternate..
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if((shift & (LCTRLFLAG|RALTFLAG)) == (LCTRLFLAG|RALTFLAG)) // I4327
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shift &= ~LCTRLFLAG;
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if(key->ShiftFlags == 0) {
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//LogError("Converted mnemonic rule on line %d, + '%c' TO dk(%d) + [%x K_%d]", key->Line, key->Key, deadkey, shift, vk);
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key->ShiftFlags = ISVIRTUALKEY | shift;
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} else {
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//LogError("Converted mnemonic virtual char key rule on line %d, + [%x '%c'] TO dk(%d) + [%x K_%d]", key->Line, key->ShiftFlags, key->Key, deadkey, key->ShiftFlags & ~VIRTUALCHARKEY, vk);
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key->ShiftFlags &= ~VIRTUALCHARKEY;
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}
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int len = u16len(key->dpContext);
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//PWSTR
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PKMX_WCHAR context = new KMX_WCHAR[len + 4];
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memcpy(context, key->dpContext, len * sizeof(KMX_WCHAR));
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context[len] = UC_SENTINEL;
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context[len+1] = CODE_DEADKEY;
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context[len+2] = deadkey;
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context[len+3] = 0;
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key->dpContext = context;
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key->Key = vk;
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}
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}
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void KMX_TranslateDeadkeyGroup(LPKMX_GROUP group,KMX_WCHAR deadkey, KMX_WORD vk, UINT shift, KMX_WORD ch) {
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for(unsigned int i = 0; i < group->cxKeyArray; i++) {
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KMX_TranslateDeadkeyKey(&group->dpKeyArray[i], deadkey, vk, shift, ch);
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}
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}
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void KMX_TranslateDeadkeyKeyboard(LPKMX_KEYBOARD kbd, KMX_WCHAR deadkey, KMX_WORD vk, UINT shift, KMX_WORD ch) {
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for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
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if(kbd->dpGroupArray[i].fUsingKeys) {
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KMX_TranslateDeadkeyGroup(&kbd->dpGroupArray[i], deadkey, vk, shift, ch);
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}
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}
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}
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void KMX_AddDeadkeyRule(LPKMX_KEYBOARD kbd, KMX_WCHAR deadkey, KMX_WORD vk, UINT shift) {
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// The weird LCTRL+RALT is Windows' way of mapping the AltGr key.
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// We store that as just RALT, and use the option "Simulate RAlt with Ctrl+Alt"
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// to provide an alternate..
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if((shift & (LCTRLFLAG|RALTFLAG)) == (LCTRLFLAG|RALTFLAG)) // I4549
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shift &= ~LCTRLFLAG;
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// If the first group is not a matching-keys group, then we need to add into
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// each subgroup, otherwise just the match group
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for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
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if(kbd->dpGroupArray[i].fUsingKeys) {
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LPKMX_KEY keys = new KMX_KEY[kbd->dpGroupArray[i].cxKeyArray + 1];
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memcpy(keys+1, kbd->dpGroupArray[i].dpKeyArray, kbd->dpGroupArray[i].cxKeyArray * sizeof(KMX_KEY));
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keys[0].dpContext = new KMX_WCHAR[1];
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keys[0].dpContext[0] = 0;
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keys[0].dpOutput = new KMX_WCHAR[4]; // UC_SENTINEL, CODE_DEADKEY, deadkey_value, 0
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keys[0].dpOutput[0] = UC_SENTINEL;
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keys[0].dpOutput[1] = CODE_DEADKEY;
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keys[0].dpOutput[2] = deadkey; // TODO: translate to unique index
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keys[0].dpOutput[3] = 0;
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keys[0].Key = vk;
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keys[0].Line = 0;
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keys[0].ShiftFlags = shift | ISVIRTUALKEY;
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kbd->dpGroupArray[i].dpKeyArray = keys;
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kbd->dpGroupArray[i].cxKeyArray++;
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//LogError("Add deadkey rule: + [%d K_%d] > dk(%d)", shift, vk, deadkey);
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if(i == kbd->StartGroup[1]) break; // If this is the initial group, that's all we need to do.
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}
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}
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}
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// Note: max is not a standard c api function or macro
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#ifndef max
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#define max(a,b) (((a) > (b)) ? (a) : (b))
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#endif
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KMX_WCHAR KMX_ScanXStringForMaxDeadkeyID(PKMX_WCHAR str) {
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KMX_WCHAR dkid = 0;
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while(str && *str) {
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if(*str == UC_SENTINEL) {
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switch(*(str+1)) {
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case CODE_DEADKEY:
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dkid = max(dkid, *(str+2));
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}
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}
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str = KMX_incxstr(str);
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}
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return dkid;
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}
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struct KMX_dkidmap {
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KMX_WCHAR src_deadkey, dst_deadkey;
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};
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KMX_WCHAR KMX_GetUniqueDeadkeyID(LPKMX_KEYBOARD kbd, KMX_WCHAR deadkey) {
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KMX_WCHAR noneS2;
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LPKMX_GROUP gp;
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LPKMX_KEY kp;
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LPKMX_STORE sp;
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UINT i, j;
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KMX_WCHAR dkid = 0;
|
|
static KMX_WCHAR s_next_dkid = 0;
|
|
static KMX_dkidmap *s_dkids = NULL;
|
|
static int s_ndkids = 0;
|
|
|
|
if(!kbd) {
|
|
if(s_dkids) {
|
|
delete s_dkids;
|
|
}
|
|
s_dkids = NULL;
|
|
s_ndkids = 0;
|
|
s_next_dkid = 0;
|
|
return 0;
|
|
}
|
|
|
|
for(int i = 0; i < s_ndkids; i++) {
|
|
if(s_dkids[i].src_deadkey == deadkey) {
|
|
return s_dkids[i].dst_deadkey;
|
|
}
|
|
}
|
|
|
|
if(s_next_dkid != 0) {
|
|
s_dkids = (KMX_dkidmap*) realloc(s_dkids, sizeof(KMX_dkidmap) * (s_ndkids+1));
|
|
s_dkids[s_ndkids].src_deadkey = deadkey;
|
|
return s_dkids[s_ndkids++].dst_deadkey = ++s_next_dkid;
|
|
}
|
|
|
|
for(i = 0, gp = kbd->dpGroupArray; i < kbd->cxGroupArray; i++, gp++) {
|
|
for(j = 0, kp = gp->dpKeyArray; j < gp->cxKeyArray; j++, kp++) {
|
|
dkid = max(dkid, KMX_ScanXStringForMaxDeadkeyID(kp->dpContext));
|
|
dkid = max(dkid, KMX_ScanXStringForMaxDeadkeyID(kp->dpOutput));
|
|
}
|
|
dkid = max(dkid, KMX_ScanXStringForMaxDeadkeyID(gp->dpMatch));
|
|
dkid = max(dkid, KMX_ScanXStringForMaxDeadkeyID(gp->dpNoMatch));
|
|
}
|
|
|
|
for(i = 0, sp = kbd->dpStoreArray; i < kbd->cxStoreArray; i++, sp++) {
|
|
dkid = max(dkid, KMX_ScanXStringForMaxDeadkeyID(sp->dpString));
|
|
}
|
|
|
|
s_dkids = (KMX_dkidmap*) realloc(s_dkids, sizeof(KMX_dkidmap) * (s_ndkids+1));
|
|
s_dkids[s_ndkids].src_deadkey = deadkey;
|
|
return s_dkids[s_ndkids++].dst_deadkey = s_next_dkid = ++dkid;
|
|
}
|
|
|
|
void KMX_ConvertDeadkey(LPKMX_KEYBOARD kbd, KMX_WORD vk, UINT shift, KMX_WCHAR deadkey) {
|
|
KMX_WORD deadkeys[512], *pdk;
|
|
|
|
// Lookup the deadkey table for the deadkey in the physical keyboard
|
|
// Then for each character, go through and map it through
|
|
|
|
KMX_WCHAR dkid = KMX_GetUniqueDeadkeyID(kbd, deadkey); // _S2 OK Conversion easy - should work right away
|
|
|
|
// Add the deadkey to the mapping table for use in the import rules phase
|
|
KMX_DeadkeyMapping KMX_deadkeyMapping = { deadkey, dkid, shift, vk }; // I4353
|
|
KMX_FDeadkeys.push_back(KMX_deadkeyMapping); //dkid, vk, shift); // I4353
|
|
|
|
KMX_AddDeadkeyRule(kbd, dkid, vk, shift); // _S2 OK Conversion easy - should work right away
|
|
KMX_GetDeadkeys(deadkey, pdk = deadkeys); // returns array of [usvk, ch_out] pairs // _S2 Conversion hard but similar to keys remove _NT86,...
|
|
|
|
while(*pdk) {
|
|
// Look up the ch
|
|
// _S2 the new function returns KMX_DWORD
|
|
UINT vkUnderlying = KMX_VKUnderlyingLayoutToVKUS_S2(*pdk); // _S2 Conversion medium use my gdk-funct
|
|
KMX_TranslateDeadkeyKeyboard(kbd, dkid, vkUnderlying, *(pdk+1), *(pdk+2)); // _S2 OK Conversion easy - should work right away
|
|
pdk+=3;
|
|
}
|
|
}
|
|
|
|
KMX_BOOL KMX_SetKeyboardToPositional(LPKMX_KEYBOARD kbd) {
|
|
LPKMX_STORE sp;
|
|
KMX_UINT i;
|
|
for(i = 0, sp = kbd->dpStoreArray; i < kbd->cxStoreArray; i++, sp++) {
|
|
if(sp->dwSystemID == TSS_MNEMONIC) {
|
|
if(!sp->dpString) {
|
|
KMX_LogError(L"Invalid &mnemoniclayout system store");
|
|
return FALSE;
|
|
}
|
|
if(u16cmp((const KMX_WCHAR*)sp->dpString, u"1") != 0) {
|
|
KMX_LogError(L"Keyboard is not a mnemonic layout keyboard");
|
|
return FALSE;
|
|
}
|
|
*sp->dpString = '0';
|
|
return TRUE;
|
|
}
|
|
}
|
|
|
|
KMX_LogError(L"Keyboard is not a mnemonic layout keyboard");
|
|
return FALSE;
|
|
}
|
|
|
|
KMX_BOOL KMX_DoConvert(LPKMX_KEYBOARD kbd, PKMX_WCHAR kbid, KMX_BOOL bDeadkeyConversion, gint argc, gchar *argv[]) {
|
|
|
|
KMX_WCHAR DeadKey;
|
|
|
|
if(!KMX_SetKeyboardToPositional(kbd)) return FALSE;
|
|
|
|
// Go through each of the shift states - base, shift, ctrl+alt, ctrl+alt+shift, [caps vs ncaps?]
|
|
// Currently, we go in this order so the 102nd key works. But this is not ideal for keyboards without 102nd key: // I4651
|
|
// it catches only the first key that matches a given rule, but multiple keys may match that rule. This is particularly
|
|
// evident for the 102nd key on UK, for example, where \ can be generated with VK_OEM_102 or AltGr+VK_QUOTE.
|
|
// For now, we get the least shifted version, which is hopefully adequate.
|
|
|
|
// _S2 TODO first version with GTK - change later to XklGetGroupNames und XklGetCurrentState as Eberhard suggested
|
|
//_ init gdk
|
|
GdkKeymap *keymap;
|
|
if(InitializeGDK(&keymap , argc, argv)) {
|
|
wprintf(L"ERROR: can't Initialize GDK\n");
|
|
return FALSE;
|
|
}
|
|
|
|
// create vector
|
|
v_dw_3D All_Vector;
|
|
if(createOneVectorFromBothKeyboards(All_Vector, keymap)){
|
|
wprintf(L"ERROR: can't create one vector from both keyboards\n");
|
|
return FALSE;
|
|
}
|
|
|
|
// create dk_createDK_ComposeTable
|
|
v_dw_2D dk_ComposeTable;
|
|
if(createDK_ComposeTable(dk_ComposeTable)){
|
|
wprintf(L"ERROR: can't create dk_ComposeTable\n");
|
|
return FALSE;
|
|
}
|
|
|
|
for (int j = 0; VKShiftState[j] != 0xFFFF; j++) { // I4651
|
|
wprintf(L"\n");
|
|
|
|
// Loop through each possible key on the keyboard
|
|
for (int i = 0;KMX_VKMap[i]; i++) { // I4651
|
|
|
|
// win goes via VK, Lin goes vie SC
|
|
/*KMX_DWORD vkUnderlying = KMX_VKUSToVKUnderlyingLayout(All_Vector,(int) KMX_VKMap[i] );
|
|
KMX_WCHAR ch = KMX_CharFromVK(All_Vector,vkUnderlying, VKShiftState[j], &DeadKey);*/
|
|
|
|
UINT scUnderlying = KMX_VKUSToSCUnderlyingLayout(KMX_VKMap[i]);
|
|
KMX_WCHAR ch = KMX_CharFromSC(keymap, VKShiftState[j], scUnderlying, &DeadKey);
|
|
|
|
//wprintf(L" DoConvert-read i: %i \t(KMX_VKMap): %i (%c) \t---> vkUnderlying: %i (%c) \tshiftstate[%i]: ( %i ) \t---- > ch: %i (%c) \t%ls \t%ls\n" , i,(int) KMX_VKMap[i],(int)KMX_VKMap[i], vkUnderlying,vkUnderlying, j, VKShiftState[j] , ch ,ch , ((int) vkUnderlying != (int) KMX_VKMap[i] ) ? L" *** ": L"", ERROR);
|
|
//LogError("--- VK_%d -> VK_%d [%c] dk=%d", VKMap[i], vkUnderlying, ch == 0 ? 32 : ch, DeadKey);
|
|
|
|
if(bDeadkeyConversion) { // I4552
|
|
if(ch == 0xFFFF) {
|
|
ch = DeadKey;
|
|
}
|
|
}
|
|
|
|
//wprintf(L" switch with ch: %i (%c)......\n" , ch,ch);
|
|
switch(ch) {
|
|
case 0x0000: break;
|
|
case 0xFFFF: KMX_ConvertDeadkey(kbd, KMX_VKMap[i], VKShiftState[j], DeadKey); break;
|
|
default: KMX_TranslateKeyboard(kbd, KMX_VKMap[i], VKShiftState[j], ch);
|
|
}
|
|
}
|
|
}
|
|
|
|
KMX_ReportUnconvertedKeyboardRules(kbd);
|
|
|
|
//if(!KMX_Lin_ImportRules_Lin(kbid, kbd, All_Vector, &keymap, &KMX_FDeadkeys, bDeadkeyConversion)) { // I4353 // I4552
|
|
if(!KMX_ImportRules(kbid, kbd, All_Vector, &keymap, &KMX_FDeadkeys, bDeadkeyConversion)) { // I4353 // I4552
|
|
return FALSE;
|
|
}
|
|
return TRUE;
|
|
}
|
|
|
|
// _S2 TODO
|
|
void KMX_LogError(const KMX_WCHART* m1,int m2) {
|
|
wprintf((PWSTR)m1, m2);
|
|
}
|
|
/*
|
|
void KMX_LogError(const KMX_WCHART* m1,int m2, LPKMX_KEY key) {
|
|
wprintf((PWSTR)m1, m2);
|
|
}
|
|
*/
|
|
|
|
// takes SC of US keyboard and returns SC of OTHER keyboard
|
|
UINT KMX_VKUSToSCUnderlyingLayout(KMX_DWORD VirtualKeyUS) {
|
|
UINT SC_US = 8 + USVirtualKeyToScanCode[VirtualKeyUS];
|
|
UINT SC_OTHER = SC_US; // not neccessary but to understand what we do
|
|
return SC_OTHER;
|
|
}
|
|
// takes capital letter of US returns cpital character of Other keyboard
|
|
KMX_DWORD KMX_VKUSToVKUnderlyingLayout(v_dw_3D &All_Vector,KMX_DWORD inUS) {
|
|
// loop and find char in US; then return char of Other
|
|
for( int i=0; i< (int)All_Vector[0].size();i++) {
|
|
for( int j=1; j< (int)All_Vector[0][0].size();j++) {
|
|
if((inUS == All_Vector[0][i][j] )) {
|
|
return All_Vector[1][i][2];
|
|
}
|
|
}
|
|
}
|
|
return inUS;
|
|
}
|
|
// takes capital letter of Other returns cpital character of US keyboard
|
|
KMX_WORD KMX_VKUnderlyingLayoutToVKUS(v_dw_3D &All_Vector,KMX_DWORD inOther) {
|
|
// loop and find char in Other; then return char of US
|
|
for( int i=0; i< (int)All_Vector[1].size();i++) {
|
|
for( int j=1; j< (int)All_Vector[1][0].size();j++) {
|
|
if((inOther == All_Vector[1][i][j] )) {
|
|
return All_Vector[0][i][2];
|
|
}
|
|
}
|
|
}
|
|
return inOther;
|
|
}
|
|
// _S2 sure KMX_WCHART ??? not KMX_WCHAR ??
|
|
KMX_WCHART KMX_VKUnderlyingLayoutToVKUS_GDK(GdkKeymap* keymap,KMX_DWORD VK_US) {
|
|
|
|
KMX_WORD VK_DE = ( KMX_WORD ) map_Ikey_DE(VK_US);
|
|
if(VK_DE!= VK_US)
|
|
return VK_DE;
|
|
else
|
|
return VK_US;
|
|
}
|
|
// takes VK of Other keyboard and returns character of Other keyboard with shiftstate VKShiftState[j]
|
|
KMX_DWORD KMX_CharFromVK(v_dw_3D &All_Vector,KMX_DWORD vkUnderlying, KMX_UINT VKShiftState, KMX_WCHAR* DeadKey){
|
|
|
|
KMX_UINT VKShiftState_lin;
|
|
|
|
/* 0000 0000 */
|
|
if (VKShiftState == 0 ) VKShiftState_lin = 0;
|
|
/* 0001 0000 */
|
|
if (VKShiftState == 16) VKShiftState_lin = 1;
|
|
/* 0000 1001 */
|
|
if (VKShiftState == 9 ) VKShiftState_lin = 2;
|
|
/* 0001 1001 */
|
|
if (VKShiftState == 25) VKShiftState_lin = 3;
|
|
|
|
// loop and find vkUnderlying in Other; then return char with correct shiftstate
|
|
for( int i=0; i< (int)All_Vector[1].size();i++) {
|
|
KMX_DWORD CharOther = All_Vector[1][i][2];
|
|
if( vkUnderlying == CharOther ) {
|
|
return All_Vector[1][i][VKShiftState_lin+1]; // [VKShiftState_lin+1] because we have the name of the key in All_Vector[1][i][0], so we need to get the one after this
|
|
}
|
|
}
|
|
return vkUnderlying;
|
|
}
|
|
// takes SC of Other keyboard and returns character of Other keyboard with shiftstate VKShiftState[j]
|
|
KMX_WCHAR KMX_CharFromSC(GdkKeymap *keymap, KMX_UINT VKShiftState, UINT SC_OTHER, KMX_WCHAR* DeadKey) {
|
|
|
|
int VKShiftState_lin = map_VKShiftState_to_Lin(VKShiftState);
|
|
KMX_DWORD KeyvalOther = getKeyvalsFromKeyCode(keymap,SC_OTHER, VKShiftState_lin);
|
|
|
|
// _S2 how to detect deadkeys ? KeyvalOther >deadkeyThreshold KeyvalOther > 255? KeyvalOther > 65000 ? or what else?
|
|
//if (KeyvalOther > deadkeyThreshold) {
|
|
if (KeyvalOther > 255) {
|
|
std::string ws((const char*) gdk_keyval_name (KeyvalOther));
|
|
*DeadKey = convertNamesToIntegerValue( wstring_from_string(ws));
|
|
return 0xFFFF;
|
|
}
|
|
|
|
return (KMX_WCHAR) KeyvalOther;
|
|
}
|
|
|
|
bool InitializeGDK(GdkKeymap **keymap,int argc, gchar *argv[]){
|
|
// get keymap of keyboard layout in use
|
|
|
|
gdk_init(&argc, &argv);
|
|
GdkDisplay *display = gdk_display_get_default();
|
|
if (!display) {
|
|
wprintf(L"ERROR: can't get display\n");
|
|
return 1;
|
|
}
|
|
|
|
*keymap = gdk_keymap_get_for_display(display);
|
|
if (!keymap) {
|
|
wprintf(L"ERROR: Can't get keymap\n");
|
|
gdk_display_close(display);
|
|
return 2;
|
|
}
|
|
|
|
return 0;
|
|
}
|
|
|
|
int createOneVectorFromBothKeyboards(v_dw_3D &All_Vector,GdkKeymap *keymap){
|
|
|
|
std::string US_language = "us";
|
|
const char* text_us = "xkb_symbols \"basic\"";
|
|
//const char* text_us = "xkb_symbols \"intl\"";
|
|
|
|
if(write_US_ToVector(All_Vector,US_language, text_us)) {
|
|
wprintf(L"ERROR: can't write US to Vector \n");
|
|
return 1;
|
|
}
|
|
|
|
// add contents of other keyboard to All_Vector
|
|
if( append_other_ToVector(All_Vector,keymap)) {
|
|
wprintf(L"ERROR: can't append Other ToVector \n");
|
|
return 2;
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
KMX_WORD KMX_VKUSToVKUnderlyingLayout_S2(KMX_WORD VKey) {
|
|
/*if(IsWow64()) {
|
|
return VKUSToVKUnderlyingLayout_NT_x64(VKey);
|
|
} else {
|
|
return VKUSToVKUnderlyingLayout_NT(VKey);
|
|
}*/
|
|
KMX_WORD retu ;
|
|
return retu;
|
|
}
|
|
|
|
KMX_WORD KMX_VKUnderlyingLayoutToVKUS_S2(KMX_WORD VKey) {
|
|
/* if(IsWow64()) {
|
|
return VKUnderlyingLayoutToVKUS_NT_x64(VKey);
|
|
} else {
|
|
return VKUnderlyingLayoutToVKUS_NT(VKey);
|
|
}*/
|
|
KMX_WORD retu ;
|
|
return retu;
|
|
}
|
|
|
|
int KMX_GetDeadkeys(KMX_WORD DeadKey, KMX_WORD *OutputPairs) {
|
|
int asdfghjk=0;
|
|
/*if(IsWow64()) {
|
|
return KMX_GetDeadkeys_NT_x64(DeadKey, OutputPairs);
|
|
} else {
|
|
return KMX_GetDeadkeys_NT(DeadKey, OutputPairs);
|
|
}*/
|
|
}
|
|
|
|
int KMX_GetDeadkeys_NT_x64(KMX_WORD DeadKey, KMX_WORD *OutputPairs) {
|
|
/*WORD *p = OutputPairs, shift;
|
|
for(int i = 0; KbdTables_x64->pDeadKey[i].dwBoth; i++) {
|
|
if(HIWORD(KbdTables_x64->pDeadKey[i].dwBoth) == DeadKey) {
|
|
WORD vk = CharToUSVK_NT_x64(LOWORD(KbdTables_x64->pDeadKey[i].dwBoth), &shift);
|
|
if(vk != 0) {
|
|
*p++ = vk;
|
|
*p++ = shift;
|
|
*p++ = KbdTables_x64->pDeadKey[i].wchComposed;
|
|
} else {
|
|
LogError(L"Warning: complex deadkey not supported.");
|
|
}
|
|
}
|
|
}
|
|
*p = 0;
|
|
return (INT_PTR)(p-OutputPairs);*/
|
|
}
|
|
|
|
int KMX_GetDeadkeys_NT(KMX_WORD DeadKey, KMX_WORD *OutputPairs) {
|
|
/*WORD *p = OutputPairs, shift;
|
|
for(int i = 0; KbdTables->pDeadKey[i].dwBoth; i++) {
|
|
if(HIWORD(KbdTables->pDeadKey[i].dwBoth) == DeadKey) {
|
|
WORD vk = CharToUSVK_NT(LOWORD(KbdTables->pDeadKey[i].dwBoth), &shift);
|
|
if(vk != 0) {
|
|
*p++ = vk;
|
|
*p++ = shift;
|
|
*p++ = KbdTables->pDeadKey[i].wchComposed;
|
|
} else {
|
|
LogError(L"Warning: complex deadkey not supported.");
|
|
}
|
|
}
|
|
}
|
|
*p = 0;
|
|
return (INT_PTR)(p-OutputPairs);*/
|
|
return 999;
|
|
}
|
|
|
|
|
|
// ---- old copy code from here ----------------------------------------------------------
|
|
|
|
/*
|
|
BOOL ConvertKeyboardToUnicode(LPKEYBOARD kbd); // I4273
|
|
|
|
|
|
#define KEYMAN_SENTRY_LOGGER_DESKTOP_ENGINE_MCOMPILE KEYMAN_SENTRY_LOGGER_DESKTOP_ENGINE ".mcompile"
|
|
|
|
//
|
|
// Map of all shift states that we will work with
|
|
//
|
|
const UINT VKShiftState[] = {0, K_SHIFTFLAG, LCTRLFLAG|RALTFLAG, K_SHIFTFLAG|LCTRLFLAG|RALTFLAG, 0xFFFF};
|
|
|
|
|
|
void ReportUnconvertedKeyRule(LPKEY key) {
|
|
if(key->ShiftFlags == 0) {
|
|
LogError(L"Did not find a match for mnemonic rule on line %d, + '%c' > ...", key->Line, key->Key);
|
|
} else if(key->ShiftFlags & VIRTUALCHARKEY) {
|
|
LogError(L"Did not find a match for mnemonic virtual character key rule on line %d, + [%x '%c'] > ...", key->Line, key->ShiftFlags, key->Key);
|
|
}
|
|
}
|
|
|
|
void ReportUnconvertedGroupRules(LPGROUP group) {
|
|
for(unsigned int i = 0; i < group->cxKeyArray; i++) {
|
|
ReportUnconvertedKeyRule(&group->dpKeyArray[i]);
|
|
}
|
|
}
|
|
|
|
void ReportUnconvertedKeyboardRules(LPKEYBOARD kbd) {
|
|
for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
|
|
if(kbd->dpGroupArray[i].fUsingKeys) {
|
|
ReportUnconvertedGroupRules(&kbd->dpGroupArray[i]);
|
|
}
|
|
}
|
|
}
|
|
|
|
void TranslateDeadkeyKey(LPKEY key, WCHAR deadkey, WORD vk, UINT shift, WORD ch) {
|
|
if((key->ShiftFlags == 0 || key->ShiftFlags & VIRTUALCHARKEY) && key->Key == ch) {
|
|
|
|
// The weird LCTRL+RALT is Windows' way of mapping the AltGr key.
|
|
// We store that as just RALT, and use the option "Simulate RAlt with Ctrl+Alt"
|
|
// to provide an alternate..
|
|
if((shift & (LCTRLFLAG|RALTFLAG)) == (LCTRLFLAG|RALTFLAG)) // I4327
|
|
shift &= ~LCTRLFLAG;
|
|
|
|
if(key->ShiftFlags == 0) {
|
|
//LogError("Converted mnemonic rule on line %d, + '%c' TO dk(%d) + [%x K_%d]", key->Line, key->Key, deadkey, shift, vk);
|
|
key->ShiftFlags = ISVIRTUALKEY | shift;
|
|
} else {
|
|
//LogError("Converted mnemonic virtual char key rule on line %d, + [%x '%c'] TO dk(%d) + [%x K_%d]", key->Line, key->ShiftFlags, key->Key, deadkey, key->ShiftFlags & ~VIRTUALCHARKEY, vk);
|
|
key->ShiftFlags &= ~VIRTUALCHARKEY;
|
|
}
|
|
|
|
int len = wcslen(key->dpContext);
|
|
PWSTR context = new WCHAR[len + 4];
|
|
memcpy(context, key->dpContext, len * sizeof(WCHAR));
|
|
context[len] = UC_SENTINEL;
|
|
context[len+1] = CODE_DEADKEY;
|
|
context[len+2] = deadkey;
|
|
context[len+3] = 0;
|
|
key->dpContext = context;
|
|
key->Key = vk;
|
|
}
|
|
}
|
|
|
|
void TranslateDeadkeyGroup(LPGROUP group, WCHAR deadkey, WORD vk, UINT shift, WORD ch) {
|
|
for(unsigned int i = 0; i < group->cxKeyArray; i++) {
|
|
TranslateDeadkeyKey(&group->dpKeyArray[i], deadkey, vk, shift, ch);
|
|
}
|
|
}
|
|
|
|
void TranslateDeadkeyKeyboard(LPKEYBOARD kbd, WCHAR deadkey, WORD vk, UINT shift, WORD ch) {
|
|
for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
|
|
if(kbd->dpGroupArray[i].fUsingKeys) {
|
|
TranslateDeadkeyGroup(&kbd->dpGroupArray[i], deadkey, vk, shift, ch);
|
|
}
|
|
}
|
|
}
|
|
|
|
|
|
*/
|
|
|
|
|
|
|
|
//---------old- - original code------------------------------------------
|
|
/*#include "pch.h"
|
|
#include <vector>
|
|
|
|
#include <stdio.h>
|
|
#include <stdarg.h>
|
|
#include <varargs.h>
|
|
|
|
BOOL DoConvert(LPKEYBOARD kbd, PWSTR kbid, BOOL bDeadkeyConversion);
|
|
BOOL SaveKeyboard(LPKEYBOARD kbd, PWSTR filename);
|
|
bool ImportRules(WCHAR *kbid, LPKEYBOARD kp, std::vector<DeadkeyMapping> *FDeadkeys, BOOL bDeadkeyConversion); // I4353 // I4327
|
|
BOOL ConvertKeyboardToUnicode(LPKEYBOARD kbd); // I4273
|
|
int run(int argc, wchar_t * argv[]);
|
|
|
|
std::vector<DeadkeyMapping> FDeadkeys; // I4353
|
|
|
|
#define KEYMAN_SENTRY_LOGGER_DESKTOP_ENGINE_MCOMPILE KEYMAN_SENTRY_LOGGER_DESKTOP_ENGINE ".mcompile"
|
|
|
|
int wmain(int argc, wchar_t * argv[])
|
|
{
|
|
return keyman_sentry_wmain(false, KEYMAN_SENTRY_LOGGER_DESKTOP_ENGINE_MCOMPILE, argc, argv, run);
|
|
}
|
|
|
|
int run(int argc, wchar_t * argv[])
|
|
{
|
|
if(argc < 3 || (argc < 5 && wcscmp(argv[1], L"-u") != 0)) { // I4273
|
|
printf(
|
|
"Usage: mcompile -u infile.kmx outfile.kmx\n"
|
|
" mcompile [-d] infile.kmx kbdfile.dll kbid outfile.kmx\n"
|
|
" With -u parameter, converts keyboard from ANSI to Unicode\n"
|
|
" Otherwise, mcompile converts a Keyman mnemonic layout to a\n"
|
|
" positional one based on the Windows keyboard\n"
|
|
" layout file given by kbdfile.dll\n\n"
|
|
" kbid should be a hexadecimal number e.g. 409 for US English\n"
|
|
" -d convert deadkeys to plain keys\n"); // I4552
|
|
|
|
return 1;
|
|
}
|
|
|
|
if(wcscmp(argv[1], L"-u") == 0) { // I4273
|
|
wchar_t *infile = argv[2], *outfile = argv[3];
|
|
|
|
LPKEYBOARD kmxfile;
|
|
|
|
if(!LoadKeyboard(infile, &kmxfile)) {
|
|
LogError(L"Failed to load keyboard (%d)", GetLastError());
|
|
return 3;
|
|
}
|
|
|
|
if(ConvertKeyboardToUnicode(kmxfile)) {
|
|
SaveKeyboard(kmxfile, outfile);
|
|
}
|
|
|
|
//DeleteReallocatedPointers(kmxfile); :TODO
|
|
delete[] kmxfile;
|
|
|
|
return 0; // I4279
|
|
}
|
|
|
|
int bDeadkeyConversion = wcscmp(argv[1], L"-d") == 0; // I4552
|
|
int n = (bDeadkeyConversion ? 2 : 1);
|
|
|
|
wchar_t *infile = argv[n], *indll = argv[n+1], *kbid = argv[n+2], *outfile = argv[n+3];
|
|
|
|
wprintf(L"mcompile%ls \"%ls\" \"%ls\" \"%ls\" \"%ls\"\n", bDeadkeyConversion ? L" -d":L"", infile, indll, kbid, outfile); // I4174
|
|
|
|
// 1. Load the keyman keyboard file
|
|
|
|
// 2. For each key on the system layout, determine its output character and perform a
|
|
// 1-1 replacement on the keyman keyboard of that character with the base VK + shift
|
|
// state. This fixup will transform the char to a vk, which will avoid any issues
|
|
// with the key.
|
|
//
|
|
// --> deadkeys we will attack after the POC
|
|
//
|
|
// For each deadkey, we need to determine its possible outputs. Then we generate a VK
|
|
// rule for that deadkey, e.g. [K_LBRKT] > dk(c101)
|
|
//
|
|
// Next, update each rule that references the output from that deadkey to add an extra
|
|
// context deadkey at the end of the context match, e.g. 'a' dk(c101) + [K_SPACE] > 'b'.
|
|
// This will require a memory layout change for the .kmx file, plus fixups on the
|
|
// context+output index offsets
|
|
//
|
|
// --> virtual character keys
|
|
//
|
|
// [CTRL ' '] : we look at the character, and replace it in the same way, but merely
|
|
// switch the shift state from the VIRTUALCHARKEY to VIRTUALKEY, without changing any
|
|
// other properties of the key.
|
|
//
|
|
|
|
// 3. Write the new keyman keyboard file
|
|
|
|
if(!LoadNewLibrary(indll)) {
|
|
LogError(L"Failed to load keyboard DLL (%d)", GetLastError());
|
|
return 2;
|
|
}
|
|
|
|
LPKEYBOARD kmxfile;
|
|
|
|
if(!LoadKeyboard(infile, &kmxfile)) {
|
|
LogError(L"Failed to load keyboard (%d)", GetLastError());
|
|
return 3;
|
|
}
|
|
|
|
if(DoConvert(kmxfile, kbid, bDeadkeyConversion)) { // I4552
|
|
SaveKeyboard(kmxfile, outfile);
|
|
}
|
|
|
|
//DeleteReallocatedPointers(kmxfile); :TODO
|
|
delete kmxfile;
|
|
|
|
return 0;
|
|
}
|
|
|
|
|
|
//
|
|
// Map of all US English virtual key codes that we can translate
|
|
//
|
|
const WORD VKMap[] = {
|
|
'A', 'B', 'C', 'D', 'E', 'F', 'G', 'H', 'I', 'J', 'K', 'L', 'M', 'N', 'O', 'P', 'Q', 'R', 'S', 'T', 'U', 'V', 'W', 'X', 'Y', 'Z',
|
|
'0', '1', '2', '3', '4', '5', '6', '7', '8', '9',
|
|
VK_SPACE,
|
|
VK_ACCENT, VK_HYPHEN, VK_EQUAL,
|
|
VK_LBRKT, VK_RBRKT, VK_BKSLASH,
|
|
VK_COLON, VK_QUOTE,
|
|
VK_COMMA, VK_PERIOD, VK_SLASH,
|
|
VK_xDF, VK_OEM_102,
|
|
0
|
|
};
|
|
|
|
|
|
//
|
|
// Map of all shift states that we will work with
|
|
//
|
|
const UINT VKShiftState[] = {0, K_SHIFTFLAG, LCTRLFLAG|RALTFLAG, K_SHIFTFLAG|LCTRLFLAG|RALTFLAG, 0xFFFF};
|
|
|
|
//
|
|
// TranslateKey
|
|
//
|
|
// For each key rule on the keyboard, remap its key to the
|
|
// correct shift state and key. Adjust the LCTRL+RALT -> RALT if necessary
|
|
//
|
|
void TranslateKey(LPKEY key, WORD vk, UINT shift, WCHAR ch) {
|
|
|
|
// The weird LCTRL+RALT is Windows' way of mapping the AltGr key.
|
|
// We store that as just RALT, and use the option "Simulate RAlt with Ctrl+Alt"
|
|
// to provide an alternate..
|
|
if((shift & (LCTRLFLAG|RALTFLAG)) == (LCTRLFLAG|RALTFLAG))
|
|
shift &= ~LCTRLFLAG;
|
|
|
|
if(key->ShiftFlags == 0 && key->Key == ch) {
|
|
// Key is a mnemonic key with no shift state defined.
|
|
// Remap the key according to the character on the key cap.
|
|
//LogError(L"Converted mnemonic rule on line %d, + '%c' TO + [%x K_%d]", key->Line, key->Key, shift, vk);
|
|
key->ShiftFlags = ISVIRTUALKEY | shift;
|
|
key->Key = vk;
|
|
} else if(key->ShiftFlags & VIRTUALCHARKEY && key->Key == ch) {
|
|
// Key is a virtual character key with a hard-coded shift state.
|
|
// Do not remap the shift state, just move the key.
|
|
// This will not result in 100% wonderful mappings as there could
|
|
// be overlap, depending on how keys are arranged on the target layout.
|
|
// But that is up to the designer.
|
|
//LogError(L"Converted mnemonic virtual char key rule on line %d, + [%x '%c'] TO + [%x K_%d]", key->Line, key->ShiftFlags, key->Key, key->ShiftFlags & ~VIRTUALCHARKEY, vk);
|
|
key->ShiftFlags &= ~VIRTUALCHARKEY;
|
|
key->Key = vk;
|
|
}
|
|
}
|
|
|
|
void TranslateGroup(LPGROUP group, WORD vk, UINT shift, WCHAR ch) {
|
|
for(unsigned int i = 0; i < group->cxKeyArray; i++) {
|
|
TranslateKey(&group->dpKeyArray[i], vk, shift, ch);
|
|
}
|
|
}
|
|
|
|
void TranslateKeyboard(LPKEYBOARD kbd, WORD vk, UINT shift, WCHAR ch) {
|
|
for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
|
|
if(kbd->dpGroupArray[i].fUsingKeys) {
|
|
TranslateGroup(&kbd->dpGroupArray[i], vk, shift, ch);
|
|
}
|
|
}
|
|
}
|
|
|
|
void ReportUnconvertedKeyRule(LPKEY key) {
|
|
if(key->ShiftFlags == 0) {
|
|
LogError(L"Did not find a match for mnemonic rule on line %d, + '%c' > ...", key->Line, key->Key);
|
|
} else if(key->ShiftFlags & VIRTUALCHARKEY) {
|
|
LogError(L"Did not find a match for mnemonic virtual character key rule on line %d, + [%x '%c'] > ...", key->Line, key->ShiftFlags, key->Key);
|
|
}
|
|
}
|
|
|
|
void ReportUnconvertedGroupRules(LPGROUP group) {
|
|
for(unsigned int i = 0; i < group->cxKeyArray; i++) {
|
|
ReportUnconvertedKeyRule(&group->dpKeyArray[i]);
|
|
}
|
|
}
|
|
|
|
void ReportUnconvertedKeyboardRules(LPKEYBOARD kbd) {
|
|
for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
|
|
if(kbd->dpGroupArray[i].fUsingKeys) {
|
|
ReportUnconvertedGroupRules(&kbd->dpGroupArray[i]);
|
|
}
|
|
}
|
|
}
|
|
|
|
void TranslateDeadkeyKey(LPKEY key, WCHAR deadkey, WORD vk, UINT shift, WORD ch) {
|
|
if((key->ShiftFlags == 0 || key->ShiftFlags & VIRTUALCHARKEY) && key->Key == ch) {
|
|
|
|
// The weird LCTRL+RALT is Windows' way of mapping the AltGr key.
|
|
// We store that as just RALT, and use the option "Simulate RAlt with Ctrl+Alt"
|
|
// to provide an alternate..
|
|
if((shift & (LCTRLFLAG|RALTFLAG)) == (LCTRLFLAG|RALTFLAG)) // I4327
|
|
shift &= ~LCTRLFLAG;
|
|
|
|
if(key->ShiftFlags == 0) {
|
|
//LogError("Converted mnemonic rule on line %d, + '%c' TO dk(%d) + [%x K_%d]", key->Line, key->Key, deadkey, shift, vk);
|
|
key->ShiftFlags = ISVIRTUALKEY | shift;
|
|
} else {
|
|
//LogError("Converted mnemonic virtual char key rule on line %d, + [%x '%c'] TO dk(%d) + [%x K_%d]", key->Line, key->ShiftFlags, key->Key, deadkey, key->ShiftFlags & ~VIRTUALCHARKEY, vk);
|
|
key->ShiftFlags &= ~VIRTUALCHARKEY;
|
|
}
|
|
|
|
int len = wcslen(key->dpContext);
|
|
PWSTR context = new WCHAR[len + 4];
|
|
memcpy(context, key->dpContext, len * sizeof(WCHAR));
|
|
context[len] = UC_SENTINEL;
|
|
context[len+1] = CODE_DEADKEY;
|
|
context[len+2] = deadkey;
|
|
context[len+3] = 0;
|
|
key->dpContext = context;
|
|
key->Key = vk;
|
|
}
|
|
}
|
|
|
|
void TranslateDeadkeyGroup(LPGROUP group, WCHAR deadkey, WORD vk, UINT shift, WORD ch) {
|
|
for(unsigned int i = 0; i < group->cxKeyArray; i++) {
|
|
TranslateDeadkeyKey(&group->dpKeyArray[i], deadkey, vk, shift, ch);
|
|
}
|
|
}
|
|
|
|
void TranslateDeadkeyKeyboard(LPKEYBOARD kbd, WCHAR deadkey, WORD vk, UINT shift, WORD ch) {
|
|
for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
|
|
if(kbd->dpGroupArray[i].fUsingKeys) {
|
|
TranslateDeadkeyGroup(&kbd->dpGroupArray[i], deadkey, vk, shift, ch);
|
|
}
|
|
}
|
|
}
|
|
|
|
void AddDeadkeyRule(LPKEYBOARD kbd, WCHAR deadkey, WORD vk, UINT shift) {
|
|
// The weird LCTRL+RALT is Windows' way of mapping the AltGr key.
|
|
// We store that as just RALT, and use the option "Simulate RAlt with Ctrl+Alt"
|
|
// to provide an alternate..
|
|
if((shift & (LCTRLFLAG|RALTFLAG)) == (LCTRLFLAG|RALTFLAG)) // I4549
|
|
shift &= ~LCTRLFLAG;
|
|
|
|
// If the first group is not a matching-keys group, then we need to add into
|
|
// each subgroup, otherwise just the match group
|
|
for(unsigned int i = 0; i < kbd->cxGroupArray; i++) {
|
|
if(kbd->dpGroupArray[i].fUsingKeys) {
|
|
LPKEY keys = new KEY[kbd->dpGroupArray[i].cxKeyArray + 1];
|
|
memcpy(keys+1, kbd->dpGroupArray[i].dpKeyArray, kbd->dpGroupArray[i].cxKeyArray * sizeof(KEY));
|
|
keys[0].dpContext = new WCHAR[1];
|
|
keys[0].dpContext[0] = 0;
|
|
keys[0].dpOutput = new WCHAR[4]; // UC_SENTINEL, CODE_DEADKEY, deadkey_value, 0
|
|
keys[0].dpOutput[0] = UC_SENTINEL;
|
|
keys[0].dpOutput[1] = CODE_DEADKEY;
|
|
keys[0].dpOutput[2] = deadkey; // TODO: translate to unique index
|
|
keys[0].dpOutput[3] = 0;
|
|
keys[0].Key = vk;
|
|
keys[0].Line = 0;
|
|
keys[0].ShiftFlags = shift | ISVIRTUALKEY;
|
|
kbd->dpGroupArray[i].dpKeyArray = keys;
|
|
kbd->dpGroupArray[i].cxKeyArray++;
|
|
//LogError("Add deadkey rule: + [%d K_%d] > dk(%d)", shift, vk, deadkey);
|
|
if(i == kbd->StartGroup[1]) break; // If this is the initial group, that's all we need to do.
|
|
}
|
|
}
|
|
}
|
|
|
|
WCHAR ScanXStringForMaxDeadkeyID(LPWSTR str) {
|
|
WCHAR dkid = 0;
|
|
while(str && *str) {
|
|
if(*str == UC_SENTINEL) {
|
|
switch(*(str+1)) {
|
|
case CODE_DEADKEY:
|
|
dkid = max(dkid, *(str+2));
|
|
}
|
|
}
|
|
str = incxstr(str);
|
|
}
|
|
return dkid;
|
|
}
|
|
|
|
struct dkidmap {
|
|
WCHAR src_deadkey, dst_deadkey;
|
|
};
|
|
|
|
WCHAR GetUniqueDeadkeyID(LPKEYBOARD kbd, WCHAR deadkey) {
|
|
LPGROUP gp;
|
|
LPKEY kp;
|
|
LPSTORE sp;
|
|
UINT i, j;
|
|
WCHAR dkid = 0;
|
|
static WCHAR s_next_dkid = 0;
|
|
static dkidmap *s_dkids = NULL;
|
|
static int s_ndkids = 0;
|
|
|
|
if(!kbd) {
|
|
if(s_dkids) {
|
|
delete s_dkids;
|
|
}
|
|
s_dkids = NULL;
|
|
s_ndkids = 0;
|
|
s_next_dkid = 0;
|
|
return 0;
|
|
}
|
|
|
|
for(int i = 0; i < s_ndkids; i++) {
|
|
if(s_dkids[i].src_deadkey == deadkey) {
|
|
return s_dkids[i].dst_deadkey;
|
|
}
|
|
}
|
|
|
|
if(s_next_dkid != 0) {
|
|
s_dkids = (dkidmap*) realloc(s_dkids, sizeof(dkidmap) * (s_ndkids+1));
|
|
s_dkids[s_ndkids].src_deadkey = deadkey;
|
|
return s_dkids[s_ndkids++].dst_deadkey = ++s_next_dkid;
|
|
}
|
|
|
|
for(i = 0, gp = kbd->dpGroupArray; i < kbd->cxGroupArray; i++, gp++) {
|
|
for(j = 0, kp = gp->dpKeyArray; j < gp->cxKeyArray; j++, kp++) {
|
|
dkid = max(dkid, ScanXStringForMaxDeadkeyID(kp->dpContext));
|
|
dkid = max(dkid, ScanXStringForMaxDeadkeyID(kp->dpOutput));
|
|
}
|
|
dkid = max(dkid, ScanXStringForMaxDeadkeyID(gp->dpMatch));
|
|
dkid = max(dkid, ScanXStringForMaxDeadkeyID(gp->dpNoMatch));
|
|
}
|
|
|
|
for(i = 0, sp = kbd->dpStoreArray; i < kbd->cxStoreArray; i++, sp++) {
|
|
dkid = max(dkid, ScanXStringForMaxDeadkeyID(sp->dpString));
|
|
}
|
|
|
|
s_dkids = (dkidmap*) realloc(s_dkids, sizeof(dkidmap) * (s_ndkids+1));
|
|
s_dkids[s_ndkids].src_deadkey = deadkey;
|
|
return s_dkids[s_ndkids++].dst_deadkey = s_next_dkid = ++dkid;
|
|
}
|
|
|
|
|
|
void ConvertDeadkey(LPKEYBOARD kbd, WORD vk, UINT shift, WCHAR deadkey) {
|
|
WORD deadkeys[512], *pdk;
|
|
|
|
// Lookup the deadkey table for the deadkey in the physical keyboard
|
|
// Then for each character, go through and map it through
|
|
|
|
WCHAR dkid = GetUniqueDeadkeyID(kbd, deadkey);
|
|
|
|
// Add the deadkey to the mapping table for use in the import rules phase
|
|
DeadkeyMapping deadkeyMapping = { deadkey, dkid, shift, vk }; // I4353
|
|
FDeadkeys.push_back(deadkeyMapping); //dkid, vk, shift); // I4353
|
|
|
|
AddDeadkeyRule(kbd, dkid, vk, shift);
|
|
|
|
GetDeadkeys(deadkey, pdk = deadkeys); // returns array of [usvk, ch_out] pairs
|
|
while(*pdk) {
|
|
// Look up the ch
|
|
UINT vkUnderlying = VKUnderlyingLayoutToVKUS(*pdk);
|
|
TranslateDeadkeyKeyboard(kbd, dkid, vkUnderlying, *(pdk+1), *(pdk+2));
|
|
pdk+=3;
|
|
}
|
|
}
|
|
|
|
BOOL SetKeyboardToPositional(LPKEYBOARD kbd) {
|
|
LPSTORE sp;
|
|
UINT i;
|
|
for(i = 0, sp = kbd->dpStoreArray; i < kbd->cxStoreArray; i++, sp++) {
|
|
if(sp->dwSystemID == TSS_MNEMONIC) {
|
|
if(!sp->dpString) {
|
|
LogError(L"Invalid &mnemoniclayout system store");
|
|
return FALSE;
|
|
}
|
|
if(wcscmp(sp->dpString, L"1") != 0) {
|
|
LogError(L"Keyboard is not a mnemonic layout keyboard");
|
|
return FALSE;
|
|
}
|
|
*sp->dpString = '0';
|
|
return TRUE;
|
|
}
|
|
}
|
|
|
|
LogError(L"Keyboard is not a mnemonic layout keyboard");
|
|
return FALSE;
|
|
}
|
|
|
|
BOOL DoConvert(LPKEYBOARD kbd, LPWSTR kbid, BOOL bDeadkeyConversion) { // I4552
|
|
WCHAR DeadKey;
|
|
|
|
if(!SetKeyboardToPositional(kbd)) return FALSE;
|
|
|
|
// Go through each of the shift states - base, shift, ctrl+alt, ctrl+alt+shift, [caps vs ncaps?]
|
|
// Currently, we go in this order so the 102nd key works. But this is not ideal for keyboards without 102nd key: // I4651
|
|
// it catches only the first key that matches a given rule, but multiple keys may match that rule. This is particularly
|
|
// evident for the 102nd key on UK, for example, where \ can be generated with VK_OEM_102 or AltGr+VK_QUOTE.
|
|
// For now, we get the least shifted version, which is hopefully adequate.
|
|
|
|
for(int j = 0; VKShiftState[j] != 0xFFFF; j++) { // I4651
|
|
// Go through each possible key on the keyboard
|
|
for(int i = 0; VKMap[i]; i++) { // I4651
|
|
UINT vkUnderlying = VKUSToVKUnderlyingLayout(VKMap[i]);
|
|
|
|
WCHAR ch = CharFromVK(vkUnderlying, VKShiftState[j], &DeadKey);
|
|
|
|
//LogError("--- VK_%d -> VK_%d [%c] dk=%d", VKMap[i], vkUnderlying, ch == 0 ? 32 : ch, DeadKey);
|
|
|
|
if(bDeadkeyConversion) { // I4552
|
|
if(ch == 0xFFFF) {
|
|
ch = DeadKey;
|
|
}
|
|
}
|
|
|
|
switch(ch) {
|
|
case 0x0000: break;
|
|
case 0xFFFF: ConvertDeadkey(kbd, VKMap[i], VKShiftState[j], DeadKey); break;
|
|
default: TranslateKeyboard(kbd, VKMap[i], VKShiftState[j], ch);
|
|
}
|
|
|
|
//
|
|
}
|
|
}
|
|
|
|
ReportUnconvertedKeyboardRules(kbd);
|
|
|
|
if(!ImportRules(kbid, kbd, &FDeadkeys, bDeadkeyConversion)) { // I4353 // I4552
|
|
return FALSE;
|
|
}
|
|
|
|
return TRUE;
|
|
}
|
|
|
|
void LogError(PWSTR fmt, ...) {
|
|
WCHAR fmtbuf[256];
|
|
|
|
va_list vars;
|
|
va_start(vars, fmt);
|
|
_vsnwprintf_s(fmtbuf, _countof(fmtbuf), _TRUNCATE, fmt, vars); // I2248 // I3547
|
|
fmtbuf[255] = 0;
|
|
_putws(fmtbuf);
|
|
}
|
|
*/
|