/* * File: HVAC_model_private.h * * Code generated for Simulink model 'HVAC_model'. * * Model version : 1.1397 * Simulink Coder version : 24.1 (R2024a) 19-Nov-2023 * C/C++ source code generated on : Fri Jul 17 14:49:32 2026 * * Target selection: ert.tlc * Embedded hardware selection: ARM Compatible->ARM Cortex-M * Emulation hardware selection: * Differs from embedded hardware (MATLAB Host) * Code generation objectives: Unspecified * Validation result: Not run */ #ifndef HVAC_model_private_h_ #define HVAC_model_private_h_ #include #include #include "HVAC_model.h" #include "HVAC_model_types.h" /* Includes for objects with custom storage classes */ #include "Rs_Cal_Base.h" #ifndef UCHAR_MAX #include #endif #if ( UCHAR_MAX != (0xFFU) ) || ( SCHAR_MAX != (0x7F) ) #error Code was generated for compiler with different sized uchar/char. \ Consider adjusting Test hardware word size settings on the \ Hardware Implementation pane to match your compiler word sizes as \ defined in limits.h of the compiler. Alternatively, you can \ select the Test hardware is the same as production hardware option and \ select the Enable portable word sizes option on the Code Generation > \ Verification pane for ERT based targets, which will disable the \ preprocessor word size checks. #endif #if ( USHRT_MAX != (0xFFFFU) ) || ( SHRT_MAX != (0x7FFF) ) #error Code was generated for compiler with different sized ushort/short. \ Consider adjusting Test hardware word size settings on the \ Hardware Implementation pane to match your compiler word sizes as \ defined in limits.h of the compiler. Alternatively, you can \ select the Test hardware is the same as production hardware option and \ select the Enable portable word sizes option on the Code Generation > \ Verification pane for ERT based targets, which will disable the \ preprocessor word size checks. #endif #if ( UINT_MAX != (0xFFFFFFFFU) ) || ( INT_MAX != (0x7FFFFFFF) ) #error Code was generated for compiler with different sized uint/int. \ Consider adjusting Test hardware word size settings on the \ Hardware Implementation pane to match your compiler word sizes as \ defined in limits.h of the compiler. Alternatively, you can \ select the Test hardware is the same as production hardware option and \ select the Enable portable word sizes option on the Code Generation > \ Verification pane for ERT based targets, which will disable the \ preprocessor word size checks. #endif #if ( ULONG_MAX != (0xFFFFFFFFU) ) || ( LONG_MAX != (0x7FFFFFFF) ) #error Code was generated for compiler with different sized ulong/long. \ Consider adjusting Test hardware word size settings on the \ Hardware Implementation pane to match your compiler word sizes as \ defined in limits.h of the compiler. Alternatively, you can \ select the Test hardware is the same as production hardware option and \ select the Enable portable word sizes option on the Code Generation > \ Verification pane for ERT based targets, which will disable the \ preprocessor word size checks. #endif /* Skipping ulong_long/long_long check: insufficient preprocessor integer range. */ extern double rt_roundd(double u_0); extern int8_t look1_iu8lu64n56ts8Ds16_binlcs(uint8_t u0, const uint8_t bp0[], const int8_t table[], uint32_t maxIndex); extern int16_t look1_iu8lu64n48ts16Ds32_binlcs(uint8_t u0, const uint8_t bp0[], const int16_t table[], uint32_t maxIndex); extern int16_t look1_is16lu64n32Ds32_binlcs(int16_t u0, const int16_t bp0[], const int16_t table[], uint32_t maxIndex); extern int16_t look1_is16lu64n32tu8Ds16Is16_binlcs(int16_t u0, const int16_t bp0[], const uint8_t table[], uint32_t maxIndex); extern int16_t look1_is16lu64n32Ds32_binlcn(int16_t u0, const int16_t bp0[], const int16_t table[], uint32_t maxIndex); extern int16_t look1_bs16ts16Dd_binlc(double u0, const int16_t bp0[], const int16_t table[], uint32_t maxIndex); extern uint8_t look2_iu8bu8s16lu64n32_binlcse(uint8_t u0, uint8_t u1, const uint8_t bp0[], const int16_t bp1[], const uint8_t table[], const uint32_t maxIndex[], uint32_t stride); extern uint8_t look1_iu16lu64n48tu8_binlcse(uint16_t u0, const uint16_t bp0[], const uint8_t table[], uint32_t maxIndex); extern int16_t look1_iu16tdIs16_binlcs(uint16_t u0, const uint16_t bp0[], const double table[], uint32_t maxIndex); extern int16_t look1_iu16lu64n48ts16Ds32_binlcs(uint16_t u0, const uint16_t bp0[], const int16_t table[], uint32_t maxIndex); extern int16_t look1_iu16bs16lu64n32ts16Ds32_binlcs(uint16_t u0, const int16_t bp0[], const int16_t table[], uint32_t maxIndex); extern double look1_bs16ts16DdId_binlc(double u0, const int16_t bp0[], const int16_t table[], uint32_t maxIndex); extern double look1_iu16td_binlc(uint16_t u0, const uint16_t bp0[], const double table[], uint32_t maxIndex); extern uint32_t plook_u32s16_bincka(int16_t u_2, const int16_t bp[], uint32_t maxIndex); extern uint32_t binsearch_u32s16(int16_t u_3, const int16_t bp[], uint32_t startIndex, uint32_t maxIndex); extern int32_t div_nzp_s32_round(int32_t numerator, int32_t denominator); extern void get_tg_FLL_for_LVL(uint8_t rtu_ambient_Lvl, uint8_t rtu_set_tmp, int16_t *rty_vals); extern void get_tg_FLL_for_LVL_j(uint8_t rtu_ambient_Lvl, uint8_t rtu_set_tmp, int16_t *rty_vals); extern void g_assFLOW_BI_AMB_TGT_n(uint8_t rtu_LVL, int16_t *rty_c_g_assFLOW_BI_AMB_TGT); extern void Bilevel(int16_t rtu_Amb_Fb, uint8_t rtu_LVL, uint16_t rty_Out1[9], uint8_t rtu_setTempFL, uint8_t rtu_setTempFR); extern void g_assFLOW_BI_AMB_TGT_e(uint8_t rtu_LVL, int16_t *rty_c_g_assFLOW_BI2_AMB_TGT); extern void Bilevel2(int16_t rtu_Amb_Fb, uint8_t rtu_LVL, uint16_t rty_Out1[9], uint8_t rtu_setTempFL, uint8_t rtu_setTempFR); extern void g_aucFLOW_AF_FOOT_VALVE_MAX_e(uint8_t rtu_LVL, uint8_t *rty_c_g_aucFLOW_AF_FOOT_VALVE_MAX); extern void g_assFLOW_AF_AMB_TGT_g(uint8_t rtu_LVL, int16_t *rty_c_g_assFLOW_AF_AMB_TGT); extern void Afoot(int16_t rtu_Amb_Fb, uint8_t rtu_LVL, uint16_t rty_Out1[9], uint8_t rtu_setTempFL, uint8_t rtu_setTempFR); extern void g_aucFLOW_AFSM_FOOT_VALVE_MAX_f(uint8_t rtu_LVL, uint8_t *rty_c_g_aucFLOW_AFSM_FOOT_VALVE_MAX); extern void Afoot_Summer(int16_t rtu_Amb_Fb, uint8_t rtu_LVL, uint16_t rty_Out1 [9], uint8_t rtu_setTempFL, uint8_t rtu_setTempFR); extern void left(uint8_t rtu_idx, uint16_t rty_vals[9]); extern void IfActionSubsystem(uint8_t rtu_In1, int8_t *rty_Out1, int16_t *rty_Out2); extern void IfActionSubsystem1(int8_t *rty_Out1, int16_t *rty_Out2); extern void IfActionSubsystem2(uint8_t rtu_In1, int8_t *rty_Out1, int16_t *rty_Out2); extern void IfActionSubsystem_b(uint8_t rtu_In1, int8_t *rty_Out1, int16_t *rty_Out2); extern void IfActionSubsystem2_o(uint8_t rtu_In1, int8_t *rty_Out1, int16_t *rty_Out2); extern void IfActionSubsystem_n(uint8_t rtu_In1, int8_t *rty_Out1, int16_t *rty_Out2); extern void IfActionSubsystem2_c(uint8_t rtu_In1, int8_t *rty_Out1, int16_t *rty_Out2); extern void correctionrate(int16_t rtu_SET, uint8_t rtu_LVL, int16_t *rty_y); extern void is_ending_with_5(uint16_t rtu_SET, bool *rty_is_ending_with_5); extern void u(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_FALLING_F); extern void u_j(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_FALLING_DIFF_F); extern void u_c(int16_t rtu_temp_raw, uint8_t rtu_lvl, uint16_t *rty_out, double *rtd_KEEP_FALLING_FL_UNTIL_LIMIT, const double *rtd_Temp_FL_store); extern void u_l(int16_t rtu_temp_raw, uint8_t rtu_lvl, uint16_t *rty_riseperminute, double *rtd_KEEP_FALLING_FL_UNTIL_LIMIT, const double *rtd_Temp_FL_store); extern void u_h(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_RISING_F); extern void u_k(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_RISING_DIFF_F); extern void u_lz(uint8_t rtu_lvl, uint16_t *rty_out); extern void g_ausINCARRATE_RISING_DIFF_F8(uint16_t *rty_f_g_ausINCARRATE_RISING_DIFF_F); extern void INCARRATE_RISING_DIFF_F7(uint16_t *rty_f_g_ausINCARRATE_RISING_DIFF_F); extern void u_f(uint8_t rtu_lvl, uint16_t *rty_out); extern void RL(int16_t rtu_temp_in, double *rty_temp_out); extern void AMBRATE_RISING_DIFF8(uint16_t *rty_f_g_ausINCARRATE_FALLING_DIFF_R); extern void u_kk(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_FALLING_R); extern void u_b(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_FALLING_DIFF_R); extern void u_hr(uint8_t rtu_lvl, uint16_t *rty_out); extern void AMBRATE_FALLING_DIFF7(uint16_t *rty_f_g_ausINCARRATE_FALLING_DIFF_R); extern void u_g(uint8_t rtu_lvl, uint16_t *rty_out); extern void u_m(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_RISING_R); extern void u_o(uint8_t rtu_lvl, uint16_t *rty_f_g_ausINCARRATE_RISING_DIFF_R); extern void u_gq(uint8_t rtu_lvl, uint16_t *rty_out); extern void g_ausINCARRATE_RISING_DIFF_R8(uint16_t *rty_f_g_ausINCARRATE_RISING_DIFF_R); extern void INCARRATE_RISING_DIFF_R7(uint16_t *rty_f_g_ausINCARRATE_RISING_DIFF_R); extern void u_b3(uint8_t rtu_lvl, uint16_t *rty_out); extern void Zone_Climate_Logic_Auto_FL1_Init(uint8_t *rty_out_def, uint8_t *rty_out_face, uint8_t *rty_out_foot, uint8_t *rty_out_auto, double *rty_out_ac, DW_Zone_Climate_Logic_Auto_FL1 *localDW); extern void Zone_Climate_Logic_Auto_FL1(uint8_t rtu_btn_def, uint8_t rtu_btn_face, uint8_t rtu_btn_foot, uint8_t rtu_btn_auto, uint8_t rtu_btn_ac, uint8_t *rty_out_def, uint8_t *rty_out_face, uint8_t *rty_out_foot, uint8_t *rty_out_auto, double *rty_out_ac, DW_Zone_Climate_Logic_Auto_FL1 *localDW); extern void Zone_Climate_Logic_Auto_FL2_Init(uint8_t *rty_out_def, uint8_t *rty_out_face, uint8_t *rty_out_foot, uint8_t *rty_out_auto, double *rty_out_ac, DW_Zone_Climate_Logic_Auto_FL2 *localDW); extern void Zone_Climate_Logic_Auto_FL2(double rtu_btn_def, uint8_t rtu_btn_face, uint8_t rtu_btn_foot, uint8_t rtu_btn_auto, uint8_t rtu_btn_ac, uint8_t *rty_out_def, uint8_t *rty_out_face, uint8_t *rty_out_foot, uint8_t *rty_out_auto, double *rty_out_ac, DW_Zone_Climate_Logic_Auto_FL2 *localDW); extern void AFforBiLevel(uint8_t rtu_blower_speed, uint16_t *rty_out); extern void AFforDef(uint8_t rtu_blower_speed, uint16_t *rty_out); extern void AFforFoorDef(uint8_t rtu_blower_speed, uint16_t *rty_out); extern void AFforFoot(uint8_t rtu_blower_speed, uint16_t *rty_out); extern void AFforHi_Level(uint8_t rtu_blower_speed, uint16_t *rty_out); extern void AFforTriLevel(uint8_t rtu_blower_speed, uint16_t *rty_out); extern void AFforVentmode(uint8_t rtu_blower_speed, uint16_t *rty_out); extern void RearLeftAFmanualdirections(bool rtu_Enable, uint8_t rtu_blowerspeed, uint8_t rtu_faceison, uint8_t rtu_footison, uint16_t *rty_AFout); extern void funcg_ascAUTO_STEP_AF_F(int8_t rtu_AF_STEP, int8_t *rty_y); extern void u_m2(int16_t rtu_lvl, uint8_t *rty_f_g_aucAMBRATE_FALLING); extern void u_kb(int16_t rtu_amb_raw, int16_t rtu_lvl, uint8_t *rty_out, const double *rtd_AMB_store, double *rtd_KEEP_FALLING_UNTIL_LIMIT); extern void u_my(int16_t rtu_amb_raw, int16_t rtu_lvl, uint8_t *rty_riseperminute, const double *rtd_AMB_store, double *rtd_KEEP_FALLING_UNTIL_LIMIT); extern void u_h3(int16_t rtu_lvl, uint8_t *rty_f_g_aucAMBRATE_RISING); extern void u_fr(int16_t rtu_lvl, uint8_t *rty_f_g_aucAMBRATE_RISING_DIFF_LVL); extern void u_p(int16_t rtu_amb_raw, int16_t rtu_lvl, uint8_t *rty_out, const double *rtd_AMB_store, double *rtd_KEEP_RISING_UNTIL_LIMIT); extern void u_g2(int16_t rtu_amb_raw, int16_t rtu_lvl, uint8_t *rty_riseperminute, const double *rtd_AMB_store, double *rtd_KEEP_RISING_UNTIL_LIMIT); extern void IfActionSubsystem_h(int8_t *rty_Out1, double *rtd_ErrorHomming_private, double *rtd_Start_timer_n, int8_t *rtd_stepSig_private); extern void MATLABFunction_Init(DW_MATLABFunction *localDW); extern void MATLABFunction(double rtu_cond, uint32_t rtu_t_now, uint32_t *rty_dt, DW_MATLABFunction *localDW); extern void IfActionSubsystem1_h(int8_t *rty_Output, uint8_t *rtd_CCU_ActuatorErrF_Stat_private, uint8_t rtd_COM_private[9], uint8_t rtd_ErrorActuator[9], uint8_t rtd_ErrorCalibration_private[9], const double *rtd_LOGGER_LIN, uint8_t rtd_MODE_private[9], uint8_t rtd_dtc_state_error_model[127]); extern void valvesformode(uint8_t rtu_MODE, uint16_t rty_get_valves[9]); extern void valves_rear_left(uint8_t rtu_MODE, uint16_t rty_get_valves[6]); extern void MODE_for_set_and_lvl(uint8_t rtu_LVL, int16_t rtu_SET, uint8_t *rty_get_mode); extern void increase(int16_t rtu_duct_tg, const uint16_t rtu_mode_array[7], uint16_t *rty_y); extern void decrease(int16_t rtu_duct_tg, const uint16_t rtu_mode_array[7], uint16_t *rty_y); extern void valves_rear_left_d(uint16_t rtu_MODE, uint16_t rty_get_valves[6]); extern void ValvesforBiLevel(uint16_t rty_out[9]); extern void ValvesforFootDef(uint16_t rty_out[9]); extern void ValvesforHi_Level(uint16_t rty_out[9]); extern void ValvesforTriLevel(uint16_t rty_out[9]); extern void AFforBiLevel_a(uint16_t rty_out[6]); extern void valvesforVentmode(uint16_t rty_out[6]); #endif /* HVAC_model_private_h_ */ /* * File trailer for generated code. * * [EOF] */