1 /** 2 * Copyright © 2020 IBM Corporation 3 * 4 * Licensed under the Apache License, Version 2.0 (the "License"); 5 * you may not use this file except in compliance with the License. 6 * You may obtain a copy of the License at 7 * 8 * http://www.apache.org/licenses/LICENSE-2.0 9 * 10 * Unless required by applicable law or agreed to in writing, software 11 * distributed under the License is distributed on an "AS IS" BASIS, 12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. 13 * See the License for the specific language governing permissions and 14 * limitations under the License. 15 */ 16 #include "json_parser.hpp" 17 18 #include "conditions.hpp" 19 #include "json_config.hpp" 20 #include "nonzero_speed_trust.hpp" 21 #include "power_interface.hpp" 22 #include "power_off_rule.hpp" 23 #include "tach_sensor.hpp" 24 #include "types.hpp" 25 26 #include <fmt/format.h> 27 28 #include <nlohmann/json.hpp> 29 #include <phosphor-logging/log.hpp> 30 31 #include <algorithm> 32 #include <map> 33 #include <memory> 34 #include <optional> 35 #include <vector> 36 37 namespace phosphor::fan::monitor 38 { 39 40 using json = nlohmann::json; 41 using namespace phosphor::logging; 42 43 namespace tClass 44 { 45 46 // Get a constructed trust group class for a non-zero speed group 47 CreateGroupFunction 48 getNonZeroSpeed(const std::vector<trust::GroupDefinition>& group) 49 { 50 return [group]() { 51 return std::make_unique<trust::NonzeroSpeed>(std::move(group)); 52 }; 53 } 54 55 } // namespace tClass 56 57 const std::map<std::string, trustHandler> trusts = { 58 {"nonzerospeed", tClass::getNonZeroSpeed}}; 59 const std::map<std::string, condHandler> conditions = { 60 {"propertiesmatch", condition::getPropertiesMatch}}; 61 const std::map<std::string, size_t> methods = { 62 {"timebased", MethodMode::timebased}, {"count", MethodMode::count}}; 63 64 const std::vector<CreateGroupFunction> getTrustGrps(const json& obj) 65 { 66 std::vector<CreateGroupFunction> grpFuncs; 67 68 if (obj.contains("sensor_trust_groups")) 69 { 70 for (auto& stg : obj["sensor_trust_groups"]) 71 { 72 if (!stg.contains("class") || !stg.contains("group")) 73 { 74 // Log error on missing required parameters 75 log<level::ERR>( 76 "Missing required fan monitor trust group parameters", 77 entry("REQUIRED_PARAMETERS=%s", "{class, group}")); 78 throw std::runtime_error( 79 "Missing required fan trust group parameters"); 80 } 81 auto tgClass = stg["class"].get<std::string>(); 82 std::vector<trust::GroupDefinition> group; 83 for (auto& member : stg["group"]) 84 { 85 // Construct list of group members 86 if (!member.contains("name")) 87 { 88 // Log error on missing required parameter 89 log<level::ERR>( 90 "Missing required fan monitor trust group member name", 91 entry("CLASS=%s", tgClass.c_str())); 92 throw std::runtime_error( 93 "Missing required fan monitor trust group member name"); 94 } 95 auto in_trust = true; 96 if (member.contains("in_trust")) 97 { 98 in_trust = member["in_trust"].get<bool>(); 99 } 100 group.emplace_back(trust::GroupDefinition{ 101 member["name"].get<std::string>(), in_trust}); 102 } 103 // The class for fan sensor trust groups 104 // (Must have a supported function within the tClass namespace) 105 std::transform(tgClass.begin(), tgClass.end(), tgClass.begin(), 106 tolower); 107 auto handler = trusts.find(tgClass); 108 if (handler != trusts.end()) 109 { 110 // Call function for trust group class 111 grpFuncs.emplace_back(handler->second(group)); 112 } 113 else 114 { 115 // Log error on unsupported trust group class 116 log<level::ERR>("Invalid fan monitor trust group class", 117 entry("CLASS=%s", tgClass.c_str())); 118 throw std::runtime_error( 119 "Invalid fan monitor trust group class"); 120 } 121 } 122 } 123 124 return grpFuncs; 125 } 126 127 const std::vector<SensorDefinition> getSensorDefs(const json& sensors) 128 { 129 std::vector<SensorDefinition> sensorDefs; 130 131 for (const auto& sensor : sensors) 132 { 133 if (!sensor.contains("name") || !sensor.contains("has_target")) 134 { 135 // Log error on missing required parameters 136 log<level::ERR>( 137 "Missing required fan sensor definition parameters", 138 entry("REQUIRED_PARAMETERS=%s", "{name, has_target}")); 139 throw std::runtime_error( 140 "Missing required fan sensor definition parameters"); 141 } 142 // Target interface is optional and defaults to 143 // 'xyz.openbmc_project.Control.FanSpeed' 144 std::string targetIntf = "xyz.openbmc_project.Control.FanSpeed"; 145 if (sensor.contains("target_interface")) 146 { 147 targetIntf = sensor["target_interface"].get<std::string>(); 148 } 149 // Factor is optional and defaults to 1 150 auto factor = 1.0; 151 if (sensor.contains("factor")) 152 { 153 factor = sensor["factor"].get<double>(); 154 } 155 // Offset is optional and defaults to 0 156 auto offset = 0; 157 if (sensor.contains("offset")) 158 { 159 offset = sensor["offset"].get<int64_t>(); 160 } 161 // Threshold is optional and defaults to 1 162 auto threshold = 1; 163 if (sensor.contains("threshold")) 164 { 165 threshold = sensor["threshold"].get<size_t>(); 166 } 167 168 sensorDefs.emplace_back(std::tuple( 169 sensor["name"].get<std::string>(), sensor["has_target"].get<bool>(), 170 targetIntf, factor, offset, threshold)); 171 } 172 173 return sensorDefs; 174 } 175 176 const std::vector<FanDefinition> getFanDefs(const json& obj) 177 { 178 std::vector<FanDefinition> fanDefs; 179 180 for (const auto& fan : obj["fans"]) 181 { 182 if (!fan.contains("inventory") || !fan.contains("deviation") || 183 !fan.contains("sensors")) 184 { 185 // Log error on missing required parameters 186 log<level::ERR>( 187 "Missing required fan monitor definition parameters", 188 entry("REQUIRED_PARAMETERS=%s", 189 "{inventory, deviation, sensors}")); 190 throw std::runtime_error( 191 "Missing required fan monitor definition parameters"); 192 } 193 // Construct the sensor definitions for this fan 194 auto sensorDefs = getSensorDefs(fan["sensors"]); 195 196 // Functional delay is optional and defaults to 0 197 size_t funcDelay = 0; 198 if (fan.contains("functional_delay")) 199 { 200 funcDelay = fan["functional_delay"].get<size_t>(); 201 } 202 203 // Method is optional and defaults to time based functional 204 // determination 205 size_t method = MethodMode::timebased; 206 if (fan.contains("method")) 207 { 208 auto methodConf = fan["method"].get<std::string>(); 209 auto methodFunc = methods.find(methodConf); 210 if (methodFunc != methods.end()) 211 { 212 method = methodFunc->second; 213 } 214 else 215 { 216 // Log error on unsupported method parameter 217 log<level::ERR>("Invalid fan method"); 218 throw std::runtime_error("Invalid fan method"); 219 } 220 } 221 222 // Timeout defaults to 0 223 size_t timeout = 0; 224 if (method == MethodMode::timebased) 225 { 226 if (!fan.contains("allowed_out_of_range_time")) 227 { 228 // Log error on missing required parameter 229 log<level::ERR>( 230 "Missing required fan monitor definition parameters", 231 entry("REQUIRED_PARAMETER=%s", 232 "{allowed_out_of_range_time}")); 233 throw std::runtime_error( 234 "Missing required fan monitor definition parameters"); 235 } 236 else 237 { 238 timeout = fan["allowed_out_of_range_time"].get<size_t>(); 239 } 240 } 241 242 // Monitor start delay is optional and defaults to 0 243 size_t monitorDelay = 0; 244 if (fan.contains("monitor_start_delay")) 245 { 246 monitorDelay = fan["monitor_start_delay"].get<size_t>(); 247 } 248 249 // num_sensors_nonfunc_for_fan_nonfunc is optional and defaults 250 // to zero if not present, meaning the code will not set the 251 // parent fan to nonfunctional based on sensors. 252 size_t nonfuncSensorsCount = 0; 253 if (fan.contains("num_sensors_nonfunc_for_fan_nonfunc")) 254 { 255 nonfuncSensorsCount = 256 fan["num_sensors_nonfunc_for_fan_nonfunc"].get<size_t>(); 257 } 258 259 // nonfunc_rotor_error_delay is optional, though it will 260 // default to zero if 'fault_handling' is present. 261 std::optional<size_t> nonfuncRotorErrorDelay; 262 if (fan.contains("nonfunc_rotor_error_delay")) 263 { 264 nonfuncRotorErrorDelay = 265 fan["nonfunc_rotor_error_delay"].get<size_t>(); 266 } 267 else if (obj.contains("fault_handling")) 268 { 269 nonfuncRotorErrorDelay = 0; 270 } 271 272 // fan_missing_error_delay is optional. 273 std::optional<size_t> fanMissingErrorDelay; 274 if (fan.contains("fan_missing_error_delay")) 275 { 276 fanMissingErrorDelay = 277 fan.at("fan_missing_error_delay").get<size_t>(); 278 } 279 280 // Handle optional conditions 281 auto cond = std::optional<Condition>(); 282 if (fan.contains("condition")) 283 { 284 if (!fan["condition"].contains("name")) 285 { 286 // Log error on missing required parameter 287 log<level::ERR>( 288 "Missing required fan monitor condition parameter", 289 entry("REQUIRED_PARAMETER=%s", "{name}")); 290 throw std::runtime_error( 291 "Missing required fan monitor condition parameter"); 292 } 293 auto name = fan["condition"]["name"].get<std::string>(); 294 // The function for fan monitoring condition 295 // (Must have a supported function within the condition namespace) 296 std::transform(name.begin(), name.end(), name.begin(), tolower); 297 auto handler = conditions.find(name); 298 if (handler != conditions.end()) 299 { 300 cond = handler->second(fan["condition"]); 301 } 302 else 303 { 304 log<level::INFO>( 305 "No handler found for configured condition", 306 entry("CONDITION_NAME=%s", name.c_str()), 307 entry("JSON_DUMP=%s", fan["condition"].dump().c_str())); 308 } 309 } 310 311 fanDefs.emplace_back(std::tuple( 312 fan["inventory"].get<std::string>(), method, funcDelay, timeout, 313 fan["deviation"].get<size_t>(), nonfuncSensorsCount, monitorDelay, 314 nonfuncRotorErrorDelay, fanMissingErrorDelay, sensorDefs, cond)); 315 } 316 317 return fanDefs; 318 } 319 320 PowerRuleState getPowerOffPowerRuleState(const json& powerOffConfig) 321 { 322 // The state is optional and defaults to runtime 323 PowerRuleState ruleState{PowerRuleState::runtime}; 324 325 if (powerOffConfig.contains("state")) 326 { 327 auto state = powerOffConfig.at("state").get<std::string>(); 328 if (state == "at_pgood") 329 { 330 ruleState = PowerRuleState::atPgood; 331 } 332 else if (state != "runtime") 333 { 334 auto msg = fmt::format("Invalid power off state entry {}", state); 335 log<level::ERR>(msg.c_str()); 336 throw std::runtime_error(msg.c_str()); 337 } 338 } 339 340 return ruleState; 341 } 342 343 std::unique_ptr<PowerOffCause> getPowerOffCause(const json& powerOffConfig) 344 { 345 std::unique_ptr<PowerOffCause> cause; 346 347 if (!powerOffConfig.contains("count") || !powerOffConfig.contains("cause")) 348 { 349 const auto msg = 350 "Missing 'count' or 'cause' entries in power off config"; 351 log<level::ERR>(msg); 352 throw std::runtime_error(msg); 353 } 354 355 auto count = powerOffConfig.at("count").get<size_t>(); 356 auto powerOffCause = powerOffConfig.at("cause").get<std::string>(); 357 358 const std::map<std::string, std::function<std::unique_ptr<PowerOffCause>()>> 359 causes{ 360 {"missing_fan_frus", 361 [count]() { return std::make_unique<MissingFanFRUCause>(count); }}, 362 {"nonfunc_fan_rotors", [count]() { 363 return std::make_unique<NonfuncFanRotorCause>(count); 364 }}}; 365 366 auto it = causes.find(powerOffCause); 367 if (it != causes.end()) 368 { 369 cause = it->second(); 370 } 371 else 372 { 373 auto msg = 374 fmt::format("Invalid power off cause {} in power off config JSON", 375 powerOffCause); 376 log<level::ERR>(msg.c_str()); 377 throw std::runtime_error(msg.c_str()); 378 } 379 380 return cause; 381 } 382 383 std::unique_ptr<PowerOffAction> 384 getPowerOffAction(const json& powerOffConfig, 385 std::shared_ptr<PowerInterfaceBase>& powerInterface, 386 PowerOffAction::PrePowerOffFunc& func) 387 { 388 std::unique_ptr<PowerOffAction> action; 389 if (!powerOffConfig.contains("type")) 390 { 391 const auto msg = "Missing 'type' entry in power off config"; 392 log<level::ERR>(msg); 393 throw std::runtime_error(msg); 394 } 395 396 auto type = powerOffConfig.at("type").get<std::string>(); 397 398 if (((type == "hard") || (type == "soft")) && 399 !powerOffConfig.contains("delay")) 400 { 401 const auto msg = "Missing 'delay' entry in power off config"; 402 log<level::ERR>(msg); 403 throw std::runtime_error(msg); 404 } 405 else if ((type == "epow") && 406 (!powerOffConfig.contains("service_mode_delay") || 407 !powerOffConfig.contains("meltdown_delay"))) 408 { 409 const auto msg = "Missing 'service_mode_delay' or 'meltdown_delay' " 410 "entry in power off config"; 411 log<level::ERR>(msg); 412 throw std::runtime_error(msg); 413 } 414 415 if (type == "hard") 416 { 417 action = std::make_unique<HardPowerOff>( 418 powerOffConfig.at("delay").get<uint32_t>(), powerInterface, func); 419 } 420 else if (type == "soft") 421 { 422 action = std::make_unique<SoftPowerOff>( 423 powerOffConfig.at("delay").get<uint32_t>(), powerInterface, func); 424 } 425 else if (type == "epow") 426 { 427 action = std::make_unique<EpowPowerOff>( 428 powerOffConfig.at("service_mode_delay").get<uint32_t>(), 429 powerOffConfig.at("meltdown_delay").get<uint32_t>(), powerInterface, 430 func); 431 } 432 else 433 { 434 auto msg = 435 fmt::format("Invalid 'type' entry {} in power off config", type); 436 log<level::ERR>(msg.c_str()); 437 throw std::runtime_error(msg.c_str()); 438 } 439 440 return action; 441 } 442 443 std::vector<std::unique_ptr<PowerOffRule>> 444 getPowerOffRules(const json& obj, 445 std::shared_ptr<PowerInterfaceBase>& powerInterface, 446 PowerOffAction::PrePowerOffFunc& func) 447 { 448 std::vector<std::unique_ptr<PowerOffRule>> rules; 449 450 if (!(obj.contains("fault_handling") && 451 obj.at("fault_handling").contains("power_off_config"))) 452 { 453 return rules; 454 } 455 456 for (const auto& config : obj.at("fault_handling").at("power_off_config")) 457 { 458 auto state = getPowerOffPowerRuleState(config); 459 auto cause = getPowerOffCause(config); 460 auto action = getPowerOffAction(config, powerInterface, func); 461 462 auto rule = std::make_unique<PowerOffRule>( 463 std::move(state), std::move(cause), std::move(action)); 464 rules.push_back(std::move(rule)); 465 } 466 467 return rules; 468 } 469 470 std::optional<size_t> getNumNonfuncRotorsBeforeError(const json& obj) 471 { 472 std::optional<size_t> num; 473 474 if (obj.contains("fault_handling")) 475 { 476 // Defaults to 1 if not present inside of 'fault_handling'. 477 num = obj.at("fault_handling") 478 .value("num_nonfunc_rotors_before_error", 1); 479 } 480 481 return num; 482 } 483 484 } // namespace phosphor::fan::monitor 485