one_wire_master.cpp 6.7 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249
  1. #include "one_wire_master.h"
  2. #include "one_wire_timings.h"
  3. OneWireMaster::OneWireMaster(const GpioPin* one_wire_gpio) {
  4. gpio = one_wire_gpio;
  5. reset_search();
  6. }
  7. OneWireMaster::~OneWireMaster() {
  8. stop();
  9. }
  10. void OneWireMaster::start(void) {
  11. gpio_init(gpio, GpioModeOutputOpenDrain);
  12. api_hal_power_enable_otg();
  13. }
  14. void OneWireMaster::stop(void) {
  15. gpio_init(gpio, GpioModeAnalog);
  16. api_hal_power_disable_otg();
  17. }
  18. void OneWireMaster::reset_search() {
  19. // reset the search state
  20. last_discrepancy = 0;
  21. last_device_flag = false;
  22. last_family_discrepancy = 0;
  23. for(int i = 7;; i--) {
  24. saved_rom[i] = 0;
  25. if(i == 0) break;
  26. }
  27. }
  28. void OneWireMaster::target_search(uint8_t family_code) {
  29. // set the search state to find SearchFamily type devices
  30. saved_rom[0] = family_code;
  31. for(uint8_t i = 1; i < 8; i++) saved_rom[i] = 0;
  32. last_discrepancy = 64;
  33. last_family_discrepancy = 0;
  34. last_device_flag = false;
  35. }
  36. uint8_t OneWireMaster::search(uint8_t* newAddr, bool search_mode) {
  37. uint8_t id_bit_number;
  38. uint8_t last_zero, rom_byte_number, search_result;
  39. uint8_t id_bit, cmp_id_bit;
  40. unsigned char rom_byte_mask, search_direction;
  41. // initialize for search
  42. id_bit_number = 1;
  43. last_zero = 0;
  44. rom_byte_number = 0;
  45. rom_byte_mask = 1;
  46. search_result = 0;
  47. // if the last call was not the last one
  48. if(!last_device_flag) {
  49. // 1-Wire reset
  50. if(!reset()) {
  51. // reset the search
  52. last_discrepancy = 0;
  53. last_device_flag = false;
  54. last_family_discrepancy = 0;
  55. return false;
  56. }
  57. // issue the search command
  58. if(search_mode == true) {
  59. write(0xF0); // NORMAL SEARCH
  60. } else {
  61. write(0xEC); // CONDITIONAL SEARCH
  62. }
  63. // loop to do the search
  64. do {
  65. // read a bit and its complement
  66. id_bit = read_bit();
  67. cmp_id_bit = read_bit();
  68. // check for no devices on 1-wire
  69. if((id_bit == 1) && (cmp_id_bit == 1))
  70. break;
  71. else {
  72. // all devices coupled have 0 or 1
  73. if(id_bit != cmp_id_bit)
  74. search_direction = id_bit; // bit write value for search
  75. else {
  76. // if this discrepancy if before the Last Discrepancy
  77. // on a previous next then pick the same as last time
  78. if(id_bit_number < last_discrepancy)
  79. search_direction = ((saved_rom[rom_byte_number] & rom_byte_mask) > 0);
  80. else
  81. // if equal to last pick 1, if not then pick 0
  82. search_direction = (id_bit_number == last_discrepancy);
  83. // if 0 was picked then record its position in LastZero
  84. if(search_direction == 0) {
  85. last_zero = id_bit_number;
  86. // check for Last discrepancy in family
  87. if(last_zero < 9) last_family_discrepancy = last_zero;
  88. }
  89. }
  90. // set or clear the bit in the ROM byte rom_byte_number
  91. // with mask rom_byte_mask
  92. if(search_direction == 1)
  93. saved_rom[rom_byte_number] |= rom_byte_mask;
  94. else
  95. saved_rom[rom_byte_number] &= ~rom_byte_mask;
  96. // serial number search direction write bit
  97. write_bit(search_direction);
  98. // increment the byte counter id_bit_number
  99. // and shift the mask rom_byte_mask
  100. id_bit_number++;
  101. rom_byte_mask <<= 1;
  102. // if the mask is 0 then go to new SerialNum byte rom_byte_number and reset mask
  103. if(rom_byte_mask == 0) {
  104. rom_byte_number++;
  105. rom_byte_mask = 1;
  106. }
  107. }
  108. } while(rom_byte_number < 8); // loop until through all ROM bytes 0-7
  109. // if the search was successful then
  110. if(!(id_bit_number < 65)) {
  111. // search successful so set last_Discrepancy, last_device_flag, search_result
  112. last_discrepancy = last_zero;
  113. // check for last device
  114. if(last_discrepancy == 0) last_device_flag = true;
  115. search_result = true;
  116. }
  117. }
  118. // if no device found then reset counters so next 'search' will be like a first
  119. if(!search_result || !saved_rom[0]) {
  120. last_discrepancy = 0;
  121. last_device_flag = false;
  122. last_family_discrepancy = 0;
  123. search_result = false;
  124. } else {
  125. for(int i = 0; i < 8; i++) newAddr[i] = saved_rom[i];
  126. }
  127. return search_result;
  128. }
  129. bool OneWireMaster::reset(void) {
  130. uint8_t r;
  131. uint8_t retries = 125;
  132. // wait until the gpio is high
  133. gpio_write(gpio, true);
  134. do {
  135. if(--retries == 0) return 0;
  136. delay_us(2);
  137. } while(!gpio_read(gpio));
  138. // pre delay
  139. delay_us(OneWireTiming::RESET_DELAY_PRE);
  140. // drive low
  141. gpio_write(gpio, false);
  142. delay_us(OneWireTiming::RESET_DRIVE);
  143. // release
  144. gpio_write(gpio, true);
  145. delay_us(OneWireTiming::RESET_RELEASE);
  146. // read and post delay
  147. r = !gpio_read(gpio);
  148. delay_us(OneWireTiming::RESET_DELAY_POST);
  149. return r;
  150. }
  151. bool OneWireMaster::read_bit(void) {
  152. bool result;
  153. // drive low
  154. gpio_write(gpio, false);
  155. delay_us(OneWireTiming::READ_DRIVE);
  156. // release
  157. gpio_write(gpio, true);
  158. delay_us(OneWireTiming::READ_RELEASE);
  159. // read and post delay
  160. result = gpio_read(gpio);
  161. delay_us(OneWireTiming::READ_DELAY_POST);
  162. return result;
  163. }
  164. void OneWireMaster::write_bit(bool value) {
  165. if(value) {
  166. // drive low
  167. gpio_write(gpio, false);
  168. delay_us(OneWireTiming::WRITE_1_DRIVE);
  169. // release
  170. gpio_write(gpio, true);
  171. delay_us(OneWireTiming::WRITE_1_RELEASE);
  172. } else {
  173. // drive low
  174. gpio_write(gpio, false);
  175. delay_us(OneWireTiming::WRITE_0_DRIVE);
  176. // release
  177. gpio_write(gpio, true);
  178. delay_us(OneWireTiming::WRITE_0_RELEASE);
  179. }
  180. }
  181. uint8_t OneWireMaster::read(void) {
  182. uint8_t result = 0;
  183. for(uint8_t bitMask = 0x01; bitMask; bitMask <<= 1) {
  184. if(read_bit()) {
  185. result |= bitMask;
  186. }
  187. }
  188. return result;
  189. }
  190. void OneWireMaster::read_bytes(uint8_t* buffer, uint16_t count) {
  191. for(uint16_t i = 0; i < count; i++) {
  192. buffer[i] = read();
  193. }
  194. }
  195. void OneWireMaster::write(uint8_t value) {
  196. uint8_t bitMask;
  197. for(bitMask = 0x01; bitMask; bitMask <<= 1) {
  198. write_bit((bitMask & value) ? 1 : 0);
  199. }
  200. }
  201. void OneWireMaster::skip(void) {
  202. write(0xCC);
  203. }