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