My Marlin configs for Fabrikator Mini and CTC i3 Pro B
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serial.h 13KB

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  1. /**
  2. * Marlin 3D Printer Firmware
  3. * Copyright (c) 2020 MarlinFirmware [https://github.com/MarlinFirmware/Marlin]
  4. *
  5. * Based on Sprinter and grbl.
  6. * Copyright (c) 2011 Camiel Gubbels / Erik van der Zalm
  7. *
  8. * This program is free software: you can redistribute it and/or modify
  9. * it under the terms of the GNU General Public License as published by
  10. * the Free Software Foundation, either version 3 of the License, or
  11. * (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * You should have received a copy of the GNU General Public License
  19. * along with this program. If not, see <https://www.gnu.org/licenses/>.
  20. *
  21. */
  22. #pragma once
  23. #include "../inc/MarlinConfig.h"
  24. #include "serial_hook.h"
  25. #if HAS_MEATPACK
  26. #include "../feature/meatpack.h"
  27. #endif
  28. // Commonly-used strings in serial output
  29. extern const char NUL_STR[],
  30. SP_X_STR[], SP_Y_STR[], SP_Z_STR[],
  31. SP_A_STR[], SP_B_STR[], SP_C_STR[], SP_E_STR[],
  32. SP_X_LBL[], SP_Y_LBL[], SP_Z_LBL[], SP_E_LBL[],
  33. SP_I_STR[], SP_J_STR[], SP_K_STR[],
  34. SP_I_LBL[], SP_J_LBL[], SP_K_LBL[],
  35. SP_P_STR[], SP_T_STR[],
  36. X_STR[], Y_STR[], Z_STR[], E_STR[],
  37. X_LBL[], Y_LBL[], Z_LBL[], E_LBL[],
  38. I_LBL[], J_LBL[], K_LBL[];
  39. //
  40. // Debugging flags for use by M111
  41. //
  42. enum MarlinDebugFlags : uint8_t {
  43. MARLIN_DEBUG_NONE = 0,
  44. MARLIN_DEBUG_ECHO = _BV(0), ///< Echo commands in order as they are processed
  45. MARLIN_DEBUG_INFO = _BV(1), ///< Print messages for code that has debug output
  46. MARLIN_DEBUG_ERRORS = _BV(2), ///< Not implemented
  47. MARLIN_DEBUG_DRYRUN = _BV(3), ///< Ignore temperature setting and E movement commands
  48. MARLIN_DEBUG_COMMUNICATION = _BV(4), ///< Not implemented
  49. #if ENABLED(DEBUG_LEVELING_FEATURE)
  50. MARLIN_DEBUG_LEVELING = _BV(5), ///< Print detailed output for homing and leveling
  51. MARLIN_DEBUG_MESH_ADJUST = _BV(6), ///< UBL bed leveling
  52. #else
  53. MARLIN_DEBUG_LEVELING = 0,
  54. MARLIN_DEBUG_MESH_ADJUST = 0,
  55. #endif
  56. MARLIN_DEBUG_ALL = 0xFF
  57. };
  58. extern uint8_t marlin_debug_flags;
  59. #define DEBUGGING(F) (marlin_debug_flags & (MARLIN_DEBUG_## F))
  60. //
  61. // Serial redirection
  62. //
  63. // Step 1: Find out what the first serial leaf is
  64. #if HAS_MULTI_SERIAL && defined(SERIAL_CATCHALL)
  65. #define _SERIAL_LEAF_1 MYSERIAL
  66. #else
  67. #define _SERIAL_LEAF_1 MYSERIAL1
  68. #endif
  69. // Hook Meatpack if it's enabled on the first leaf
  70. #if ENABLED(MEATPACK_ON_SERIAL_PORT_1)
  71. typedef MeatpackSerial<decltype(_SERIAL_LEAF_1)> SerialLeafT1;
  72. extern SerialLeafT1 mpSerial1;
  73. #define SERIAL_LEAF_1 mpSerial1
  74. #else
  75. #define SERIAL_LEAF_1 _SERIAL_LEAF_1
  76. #endif
  77. // Step 2: For multiserial wrap all serial ports in a single
  78. // interface with the ability to output to multiple serial ports.
  79. #if HAS_MULTI_SERIAL
  80. #define _PORT_REDIRECT(n,p) REMEMBER(n,multiSerial.portMask,p)
  81. #define _PORT_RESTORE(n,p) RESTORE(n)
  82. #define SERIAL_ASSERT(P) if(multiSerial.portMask!=(P)){ debugger(); }
  83. // If we have a catchall, use that directly
  84. #ifdef SERIAL_CATCHALL
  85. #define _SERIAL_LEAF_2 SERIAL_CATCHALL
  86. #elif HAS_ETHERNET
  87. typedef ConditionalSerial<decltype(MYSERIAL2)> SerialLeafT2; // We need to create an instance here
  88. extern SerialLeafT2 msSerial2;
  89. #define _SERIAL_LEAF_2 msSerial2
  90. #else
  91. #define _SERIAL_LEAF_2 MYSERIAL2 // Don't create a useless instance here, directly use the existing instance
  92. #endif
  93. // Nothing complicated here
  94. #define _SERIAL_LEAF_3 MYSERIAL3
  95. // Hook Meatpack if it's enabled on the second leaf
  96. #if ENABLED(MEATPACK_ON_SERIAL_PORT_2)
  97. typedef MeatpackSerial<decltype(_SERIAL_LEAF_2)> SerialLeafT2;
  98. extern SerialLeafT2 mpSerial2;
  99. #define SERIAL_LEAF_2 mpSerial2
  100. #else
  101. #define SERIAL_LEAF_2 _SERIAL_LEAF_2
  102. #endif
  103. // Hook Meatpack if it's enabled on the third leaf
  104. #if ENABLED(MEATPACK_ON_SERIAL_PORT_3)
  105. typedef MeatpackSerial<decltype(_SERIAL_LEAF_3)> SerialLeafT3;
  106. extern SerialLeafT3 mpSerial3;
  107. #define SERIAL_LEAF_3 mpSerial3
  108. #else
  109. #define SERIAL_LEAF_3 _SERIAL_LEAF_3
  110. #endif
  111. #define __S_MULTI(N) decltype(SERIAL_LEAF_##N),
  112. #define _S_MULTI(N) __S_MULTI(N)
  113. typedef MultiSerial< REPEAT_1(NUM_SERIAL, _S_MULTI) 0> SerialOutputT;
  114. #undef __S_MULTI
  115. #undef _S_MULTI
  116. extern SerialOutputT multiSerial;
  117. #define SERIAL_IMPL multiSerial
  118. #else
  119. #define _PORT_REDIRECT(n,p) NOOP
  120. #define _PORT_RESTORE(n) NOOP
  121. #define SERIAL_ASSERT(P) NOOP
  122. #define SERIAL_IMPL SERIAL_LEAF_1
  123. #endif
  124. #define SERIAL_OUT(WHAT, V...) (void)SERIAL_IMPL.WHAT(V)
  125. #define PORT_REDIRECT(p) _PORT_REDIRECT(1,p)
  126. #define PORT_RESTORE() _PORT_RESTORE(1)
  127. #define SERIAL_PORTMASK(P) SerialMask::from(P)
  128. //
  129. // SERIAL_CHAR - Print one or more individual chars
  130. //
  131. inline void SERIAL_CHAR(char a) { SERIAL_IMPL.write(a); }
  132. template <typename ... Args>
  133. void SERIAL_CHAR(char a, Args ... args) { SERIAL_IMPL.write(a); SERIAL_CHAR(args ...); }
  134. /**
  135. * SERIAL_ECHO - Print a single string or value.
  136. * Any numeric parameter (including char) is printed as a base-10 number.
  137. * A string pointer or literal will be output as a string.
  138. *
  139. * NOTE: Use SERIAL_CHAR to print char as a single character.
  140. */
  141. template <typename T>
  142. void SERIAL_ECHO(T x) { SERIAL_IMPL.print(x); }
  143. // Wrapper for ECHO commands to interpret a char
  144. typedef struct SerialChar { char c; SerialChar(char n) : c(n) { } } serial_char_t;
  145. inline void SERIAL_ECHO(serial_char_t x) { SERIAL_IMPL.write(x.c); }
  146. #define AS_CHAR(C) serial_char_t(C)
  147. #define AS_DIGIT(C) AS_CHAR('0' + (C))
  148. // SERIAL_ECHO_F prints a floating point value with optional precision
  149. inline void SERIAL_ECHO_F(EnsureDouble x, int digit=2) { SERIAL_IMPL.print(x, digit); }
  150. template <typename T>
  151. void SERIAL_ECHOLN(T x) { SERIAL_IMPL.println(x); }
  152. // SERIAL_PRINT works like SERIAL_ECHO but allow to specify the encoding base of the number printed
  153. template <typename T, typename U>
  154. void SERIAL_PRINT(T x, U y) { SERIAL_IMPL.print(x, y); }
  155. template <typename T, typename U>
  156. void SERIAL_PRINTLN(T x, U y) { SERIAL_IMPL.println(x, y); }
  157. // Flush the serial port
  158. inline void SERIAL_FLUSH() { SERIAL_IMPL.flush(); }
  159. inline void SERIAL_FLUSHTX() { SERIAL_IMPL.flushTX(); }
  160. // Print a single PROGMEM string to serial
  161. void serialprintPGM(PGM_P str);
  162. //
  163. // SERIAL_ECHOPAIR... macros are used to output string-value pairs.
  164. //
  165. // Print up to 20 pairs of values. Odd elements must be literal strings.
  166. #define __SEP_N(N,V...) _SEP_##N(V)
  167. #define _SEP_N(N,V...) __SEP_N(N,V)
  168. #define _SEP_N_REF() _SEP_N
  169. #define _SEP_1(s) SERIAL_ECHOPGM(s);
  170. #define _SEP_2(s,v) serial_echopair_PGM(PSTR(s),v);
  171. #define _SEP_3(s,v,V...) _SEP_2(s,v); DEFER2(_SEP_N_REF)()(TWO_ARGS(V),V);
  172. #define SERIAL_ECHOPAIR(V...) do{ EVAL(_SEP_N(TWO_ARGS(V),V)); }while(0)
  173. // Print up to 20 pairs of values followed by newline. Odd elements must be literal strings.
  174. #define __SELP_N(N,V...) _SELP_##N(V)
  175. #define _SELP_N(N,V...) __SELP_N(N,V)
  176. #define _SELP_N_REF() _SELP_N
  177. #define _SELP_1(s) SERIAL_ECHOLNPGM(s);
  178. #define _SELP_2(s,v) serial_echopair_PGM(PSTR(s),v); SERIAL_EOL();
  179. #define _SELP_3(s,v,V...) _SEP_2(s,v); DEFER2(_SELP_N_REF)()(TWO_ARGS(V),V);
  180. #define SERIAL_ECHOLNPAIR(V...) do{ EVAL(_SELP_N(TWO_ARGS(V),V)); }while(0)
  181. // Print up to 20 pairs of values. Odd elements must be PSTR pointers.
  182. #define __SEP_N_P(N,V...) _SEP_##N##_P(V)
  183. #define _SEP_N_P(N,V...) __SEP_N_P(N,V)
  184. #define _SEP_N_P_REF() _SEP_N_P
  185. #define _SEP_1_P(s) serialprintPGM(s);
  186. #define _SEP_2_P(s,v) serial_echopair_PGM(s,v);
  187. #define _SEP_3_P(s,v,V...) _SEP_2_P(s,v); DEFER2(_SEP_N_P_REF)()(TWO_ARGS(V),V);
  188. #define SERIAL_ECHOPAIR_P(V...) do{ EVAL(_SEP_N_P(TWO_ARGS(V),V)); }while(0)
  189. // Print up to 20 pairs of values followed by newline. Odd elements must be PSTR pointers.
  190. #define __SELP_N_P(N,V...) _SELP_##N##_P(V)
  191. #define _SELP_N_P(N,V...) __SELP_N_P(N,V)
  192. #define _SELP_N_P_REF() _SELP_N_P
  193. #define _SELP_1_P(s) { serialprintPGM(s); SERIAL_EOL(); }
  194. #define _SELP_2_P(s,v) { serial_echopair_PGM(s,v); SERIAL_EOL(); }
  195. #define _SELP_3_P(s,v,V...) { _SEP_2_P(s,v); DEFER2(_SELP_N_P_REF)()(TWO_ARGS(V),V); }
  196. #define SERIAL_ECHOLNPAIR_P(V...) do{ EVAL(_SELP_N_P(TWO_ARGS(V),V)); }while(0)
  197. #ifdef AllowDifferentTypeInList
  198. inline void SERIAL_ECHOLIST_IMPL() {}
  199. template <typename T>
  200. void SERIAL_ECHOLIST_IMPL(T && t) { SERIAL_IMPL.print(t); }
  201. template <typename T, typename ... Args>
  202. void SERIAL_ECHOLIST_IMPL(T && t, Args && ... args) {
  203. SERIAL_IMPL.print(t);
  204. serialprintPGM(PSTR(", "));
  205. SERIAL_ECHOLIST_IMPL(args...);
  206. }
  207. template <typename ... Args>
  208. void SERIAL_ECHOLIST(PGM_P const str, Args && ... args) {
  209. SERIAL_IMPL.print(str);
  210. SERIAL_ECHOLIST_IMPL(args...);
  211. }
  212. #else // Optimization if the listed type are all the same (seems to be the case in the codebase so use that instead)
  213. template <typename ... Args>
  214. void SERIAL_ECHOLIST(PGM_P const str, Args && ... args) {
  215. serialprintPGM(str);
  216. typename Private::first_type_of<Args...>::type values[] = { args... };
  217. constexpr size_t argsSize = sizeof...(args);
  218. for (size_t i = 0; i < argsSize; i++) {
  219. if (i) serialprintPGM(PSTR(", "));
  220. SERIAL_IMPL.print(values[i]);
  221. }
  222. }
  223. #endif
  224. #define SERIAL_ECHOPGM_P(P) (serialprintPGM(P))
  225. #define SERIAL_ECHOLNPGM_P(P) do{ serialprintPGM(P); SERIAL_EOL(); }while(0)
  226. #define SERIAL_ECHOPGM(S) (serialprintPGM(PSTR(S)))
  227. #define SERIAL_ECHOLNPGM(S) (serialprintPGM(PSTR(S "\n")))
  228. #define SERIAL_ECHOPAIR_F_P(P,V...) do{ serialprintPGM(P); SERIAL_ECHO_F(V); }while(0)
  229. #define SERIAL_ECHOLNPAIR_F_P(V...) do{ SERIAL_ECHOPAIR_F_P(V); SERIAL_EOL(); }while(0)
  230. #define SERIAL_ECHOPAIR_F(S,V...) SERIAL_ECHOPAIR_F_P(PSTR(S),V)
  231. #define SERIAL_ECHOLNPAIR_F(V...) do{ SERIAL_ECHOPAIR_F(V); SERIAL_EOL(); }while(0)
  232. #define SERIAL_ECHO_START() serial_echo_start()
  233. #define SERIAL_ERROR_START() serial_error_start()
  234. #define SERIAL_EOL() SERIAL_CHAR('\n')
  235. #define SERIAL_ECHO_MSG(V...) do{ SERIAL_ECHO_START(); SERIAL_ECHOLNPAIR(V); }while(0)
  236. #define SERIAL_ERROR_MSG(V...) do{ SERIAL_ERROR_START(); SERIAL_ECHOLNPAIR(V); }while(0)
  237. #define SERIAL_ECHO_SP(C) serial_spaces(C)
  238. #define SERIAL_ECHO_TERNARY(TF, PRE, ON, OFF, POST) serial_ternary(TF, PSTR(PRE), PSTR(ON), PSTR(OFF), PSTR(POST))
  239. #if SERIAL_FLOAT_PRECISION
  240. #define SERIAL_DECIMAL(V) SERIAL_PRINT(V, SERIAL_FLOAT_PRECISION)
  241. #else
  242. #define SERIAL_DECIMAL(V) SERIAL_ECHO(V)
  243. #endif
  244. //
  245. // Functions for serial printing from PROGMEM. (Saves loads of SRAM.)
  246. //
  247. void serial_echopair_PGM(PGM_P const s_P, serial_char_t v);
  248. void serial_echopair_PGM(PGM_P const s_P, const char *v);
  249. void serial_echopair_PGM(PGM_P const s_P, char v);
  250. void serial_echopair_PGM(PGM_P const s_P, int v);
  251. void serial_echopair_PGM(PGM_P const s_P, long v);
  252. void serial_echopair_PGM(PGM_P const s_P, float v);
  253. void serial_echopair_PGM(PGM_P const s_P, double v);
  254. void serial_echopair_PGM(PGM_P const s_P, unsigned char v);
  255. void serial_echopair_PGM(PGM_P const s_P, unsigned int v);
  256. void serial_echopair_PGM(PGM_P const s_P, unsigned long v);
  257. inline void serial_echopair_PGM(PGM_P const s_P, bool v) { serial_echopair_PGM(s_P, (int)v); }
  258. inline void serial_echopair_PGM(PGM_P const s_P, void *v) { serial_echopair_PGM(s_P, (uintptr_t)v); }
  259. #if __INTPTR_WIDTH__ != __SIZE_WIDTH__
  260. inline void serial_echopair_PGM(PGM_P const s_P, size_t v) { serial_echopair_PGM(s_P, (long int)v); }
  261. #endif
  262. void serial_echo_start();
  263. void serial_error_start();
  264. void serial_ternary(const bool onoff, PGM_P const pre, PGM_P const on, PGM_P const off, PGM_P const post=nullptr);
  265. void serialprint_onoff(const bool onoff);
  266. void serialprintln_onoff(const bool onoff);
  267. void serialprint_truefalse(const bool tf);
  268. void serial_spaces(uint8_t count);
  269. void print_bin(const uint16_t val);
  270. void print_pos(LINEAR_AXIS_ARGS(const_float_t), PGM_P const prefix=nullptr, PGM_P const suffix=nullptr);
  271. inline void print_pos(const xyz_pos_t &xyz, PGM_P const prefix=nullptr, PGM_P const suffix=nullptr) {
  272. print_pos(LINEAR_AXIS_ELEM(xyz), prefix, suffix);
  273. }
  274. #define SERIAL_POS(SUFFIX,VAR) do { print_pos(VAR, PSTR(" " STRINGIFY(VAR) "="), PSTR(" : " SUFFIX "\n")); }while(0)
  275. #define SERIAL_XYZ(PREFIX,V...) do { print_pos(V, PSTR(PREFIX), nullptr); }while(0)