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Alex Perrycb7da4b2019-08-28 19:35:56 -07001#ifndef AOS_EVENTS_SIMULATED_EVENT_LOOP_H_
2#define AOS_EVENTS_SIMULATED_EVENT_LOOP_H_
3
4#include <algorithm>
Brian Silverman601b9722020-06-18 14:33:43 -07005#include <functional>
Alex Perrycb7da4b2019-08-28 19:35:56 -07006#include <map>
7#include <memory>
Austin Schuh5f1cc5c2019-12-01 18:01:11 -08008#include <string_view>
Alex Perrycb7da4b2019-08-28 19:35:56 -07009#include <unordered_set>
10#include <utility>
11#include <vector>
12
13#include "absl/container/btree_map.h"
14#include "aos/events/event_loop.h"
15#include "aos/events/event_scheduler.h"
Austin Schuh20ac95d2020-12-05 17:24:19 -080016#include "aos/events/logging/uuid.h"
Austin Schuhe1dafe42020-01-06 21:12:03 -080017#include "aos/events/simple_channel.h"
Alex Perrycb7da4b2019-08-28 19:35:56 -070018#include "aos/flatbuffer_merge.h"
19#include "aos/flatbuffers.h"
20#include "aos/ipc_lib/index.h"
21#include "glog/logging.h"
22
23namespace aos {
24
25// Class for simulated fetchers.
26class SimulatedChannel;
27
Austin Schuhac0771c2020-01-07 18:36:30 -080028class NodeEventLoopFactory;
Austin Schuh898f4972020-01-11 17:21:25 -080029namespace message_bridge {
30class SimulatedMessageBridge;
31}
Austin Schuhac0771c2020-01-07 18:36:30 -080032
33// There are 2 concepts needed to support multi-node simulations.
34// 1) The node. This is implemented with NodeEventLoopFactory.
35// 2) The "robot" which runs multiple nodes. This is implemented with
36// SimulatedEventLoopFactory.
37//
38// To make things easier, SimulatedEventLoopFactory takes an optional Node
39// argument if you want to make event loops without interacting with the
40// NodeEventLoopFactory object.
41//
42// The basic flow goes something like as follows:
43//
44// SimulatedEventLoopFactory factory(config);
45// const Node *pi1 = configuration::GetNode(factory.configuration(), "pi1");
46// std::unique_ptr<EventLoop> event_loop = factory.MakeEventLoop("ping", pi1);
47//
48// Or
49//
50// SimulatedEventLoopFactory factory(config);
51// const Node *pi1 = configuration::GetNode(factory.configuration(), "pi1");
52// NodeEventLoopFactory *pi1_factory = factory.GetNodeEventLoopFactory(pi1);
53// std::unique_ptr<EventLoop> event_loop = pi1_factory.MakeEventLoop("ping");
54//
55// The distributed_clock is used to be the base time. NodeEventLoopFactory has
56// all the information needed to adjust both the realtime and monotonic clocks
57// relative to the distributed_clock.
Alex Perrycb7da4b2019-08-28 19:35:56 -070058class SimulatedEventLoopFactory {
59 public:
60 // Constructs a SimulatedEventLoopFactory with the provided configuration.
61 // This configuration must remain in scope for the lifetime of the factory and
62 // all sub-objects.
63 SimulatedEventLoopFactory(const Configuration *configuration);
64 ~SimulatedEventLoopFactory();
65
Austin Schuhac0771c2020-01-07 18:36:30 -080066 // Creates an event loop. If running in a multi-node environment, node needs
67 // to point to the node to create this event loop on.
68 ::std::unique_ptr<EventLoop> MakeEventLoop(std::string_view name,
69 const Node *node = nullptr);
70
71 // Returns the NodeEventLoopFactory for the provided node. The returned
72 // NodeEventLoopFactory is owned by the SimulatedEventLoopFactory and has a
73 // lifetime identical to the factory.
74 NodeEventLoopFactory *GetNodeEventLoopFactory(const Node *node);
Alex Perrycb7da4b2019-08-28 19:35:56 -070075
76 // Starts executing the event loops unconditionally.
77 void Run();
78 // Executes the event loops for a duration.
Austin Schuhac0771c2020-01-07 18:36:30 -080079 void RunFor(distributed_clock::duration duration);
Alex Perrycb7da4b2019-08-28 19:35:56 -070080
81 // Stops executing all event loops. Meant to be called from within an event
82 // loop handler.
Austin Schuh8fb315a2020-11-19 22:33:58 -080083 void Exit();
Alex Perrycb7da4b2019-08-28 19:35:56 -070084
Austin Schuhac0771c2020-01-07 18:36:30 -080085 const std::vector<const Node *> &nodes() const { return nodes_; }
86
87 // Sets the simulated send delay for all messages sent within a single node.
Austin Schuh7d87b672019-12-01 20:23:49 -080088 void set_send_delay(std::chrono::nanoseconds send_delay);
Austin Schuhac0771c2020-01-07 18:36:30 -080089 std::chrono::nanoseconds send_delay() const { return send_delay_; }
90
91 // Sets the simulated network delay for messages forwarded between nodes.
Brian Silvermana7c62052020-04-28 16:52:27 -070092 void set_network_delay(std::chrono::nanoseconds network_delay) {
93 network_delay_ = network_delay;
94 }
Austin Schuhac0771c2020-01-07 18:36:30 -080095 std::chrono::nanoseconds network_delay() const { return network_delay_; }
96
97 // Returns the clock used to synchronize the nodes.
98 distributed_clock::time_point distributed_now() const {
Austin Schuh8bd96322020-02-13 21:18:22 -080099 return scheduler_scheduler_.distributed_now();
Austin Schuhac0771c2020-01-07 18:36:30 -0800100 }
101
102 // Returns the configuration used for everything.
103 const Configuration *configuration() const { return configuration_; }
104
Austin Schuh6f3babe2020-01-26 20:34:50 -0800105 // Disables forwarding for this channel. This should be used very rarely only
106 // for things like the logger.
107 void DisableForwarding(const Channel *channel);
108
Austin Schuh4c3b9702020-08-30 11:34:55 -0700109 // Disables the messages sent by the simulated message gateway.
110 void DisableStatistics();
111
Austin Schuhac0771c2020-01-07 18:36:30 -0800112 private:
113 const Configuration *const configuration_;
Austin Schuh8bd96322020-02-13 21:18:22 -0800114 EventSchedulerScheduler scheduler_scheduler_;
Austin Schuhac0771c2020-01-07 18:36:30 -0800115 // List of event loops to manage running and not running for.
116 // The function is a callback used to set and clear the running bool on each
117 // event loop.
118 std::vector<std::pair<EventLoop *, std::function<void(bool)>>>
119 raw_event_loops_;
120
121 std::chrono::nanoseconds send_delay_ = std::chrono::microseconds(50);
122 std::chrono::nanoseconds network_delay_ = std::chrono::microseconds(100);
123
124 std::vector<std::unique_ptr<NodeEventLoopFactory>> node_factories_;
125
126 std::vector<const Node *> nodes_;
Austin Schuh898f4972020-01-11 17:21:25 -0800127
128 std::unique_ptr<message_bridge::SimulatedMessageBridge> bridge_;
Austin Schuhac0771c2020-01-07 18:36:30 -0800129};
130
131// This class holds all the state required to be a single node.
132class NodeEventLoopFactory {
133 public:
134 ::std::unique_ptr<EventLoop> MakeEventLoop(std::string_view name);
Austin Schuh7d87b672019-12-01 20:23:49 -0800135
Austin Schuh217a9782019-12-21 23:02:50 -0800136 // Returns the node that this factory is running as, or nullptr if this is a
137 // single node setup.
138 const Node *node() const { return node_; }
139
Austin Schuh92547522019-12-28 14:33:43 -0800140 // Sets realtime clock to realtime_now for a given monotonic clock.
141 void SetRealtimeOffset(monotonic_clock::time_point monotonic_now,
142 realtime_clock::time_point realtime_now) {
Austin Schuhac0771c2020-01-07 18:36:30 -0800143 realtime_offset_ =
144 realtime_now.time_since_epoch() - monotonic_now.time_since_epoch();
Austin Schuh92547522019-12-28 14:33:43 -0800145 }
146
Austin Schuhac0771c2020-01-07 18:36:30 -0800147 // Returns the current time on both clocks.
148 inline monotonic_clock::time_point monotonic_now() const;
149 inline realtime_clock::time_point realtime_now() const;
Austin Schuh39788ff2019-12-01 18:22:57 -0800150
Austin Schuhfaec5e12020-11-05 17:39:55 -0800151 const Configuration *configuration() const {
152 return factory_->configuration();
153 }
154
Austin Schuh898f4972020-01-11 17:21:25 -0800155 // Returns the simulated network delay for messages forwarded between nodes.
156 std::chrono::nanoseconds network_delay() const {
157 return factory_->network_delay();
158 }
159 // Returns the simulated send delay for all messages sent within a single
160 // node.
161 std::chrono::nanoseconds send_delay() const { return factory_->send_delay(); }
162
Austin Schuh8bd96322020-02-13 21:18:22 -0800163 // TODO(austin): Private for the following?
164
Austin Schuhac0771c2020-01-07 18:36:30 -0800165 // Converts a time to the distributed clock for scheduling and cross-node time
166 // measurement.
167 inline distributed_clock::time_point ToDistributedClock(
168 monotonic_clock::time_point time) const;
Austin Schuhbe69cf32020-08-27 11:38:33 -0700169 inline monotonic_clock::time_point FromDistributedClock(
170 distributed_clock::time_point time) const;
Austin Schuhac0771c2020-01-07 18:36:30 -0800171
Austin Schuh8bd96322020-02-13 21:18:22 -0800172 // Sets the offset between the monotonic clock and the central distributed
173 // clock. distributed_clock = monotonic_clock + offset.
Austin Schuhbe69cf32020-08-27 11:38:33 -0700174 void SetDistributedOffset(std::chrono::nanoseconds monotonic_offset,
175 double monotonic_slope) {
176 scheduler_.SetDistributedOffset(monotonic_offset, monotonic_slope);
Austin Schuhcde938c2020-02-02 17:30:07 -0800177 }
178
Austin Schuh20ac95d2020-12-05 17:24:19 -0800179 // Returns the boot UUID for this node.
180 const UUID &boot_uuid() const { return boot_uuid_; }
181
182 // Reboots the node. This just resets the boot_uuid_, nothing else.
183 // TODO(austin): This is here for a test case or two, not for general
184 // consumption. The interactions with the rest of the system need to be
185 // worked out better. Don't use this for anything real yet.
186 void Reboot() { boot_uuid_ = UUID::Random(); }
187
Austin Schuhac0771c2020-01-07 18:36:30 -0800188 private:
189 friend class SimulatedEventLoopFactory;
190 NodeEventLoopFactory(
Austin Schuh8bd96322020-02-13 21:18:22 -0800191 EventSchedulerScheduler *scheduler_scheduler,
192 SimulatedEventLoopFactory *factory, const Node *node,
Austin Schuhac0771c2020-01-07 18:36:30 -0800193 std::vector<std::pair<EventLoop *, std::function<void(bool)>>>
194 *raw_event_loops);
195
Austin Schuh8bd96322020-02-13 21:18:22 -0800196 EventScheduler scheduler_;
Austin Schuhac0771c2020-01-07 18:36:30 -0800197 SimulatedEventLoopFactory *const factory_;
Austin Schuh7d87b672019-12-01 20:23:49 -0800198
Austin Schuh20ac95d2020-12-05 17:24:19 -0800199 UUID boot_uuid_ = UUID::Random();
200
Austin Schuh217a9782019-12-21 23:02:50 -0800201 const Node *const node_;
202
Austin Schuhac0771c2020-01-07 18:36:30 -0800203 std::vector<std::pair<EventLoop *, std::function<void(bool)>>>
204 *const raw_event_loops_;
205
Austin Schuhac0771c2020-01-07 18:36:30 -0800206 std::chrono::nanoseconds realtime_offset_ = std::chrono::seconds(0);
207
208 // Map from name, type to queue.
209 absl::btree_map<SimpleChannel, std::unique_ptr<SimulatedChannel>> channels_;
210
211 // pid so we get unique timing reports.
Austin Schuh39788ff2019-12-01 18:22:57 -0800212 pid_t tid_ = 0;
Alex Perrycb7da4b2019-08-28 19:35:56 -0700213};
214
Austin Schuhac0771c2020-01-07 18:36:30 -0800215inline monotonic_clock::time_point NodeEventLoopFactory::monotonic_now() const {
Austin Schuh8bd96322020-02-13 21:18:22 -0800216 // TODO(austin): Confirm that time never goes backwards?
Austin Schuhbe69cf32020-08-27 11:38:33 -0700217 return scheduler_.monotonic_now();
Austin Schuhac0771c2020-01-07 18:36:30 -0800218}
219
220inline realtime_clock::time_point NodeEventLoopFactory::realtime_now() const {
221 return realtime_clock::time_point(monotonic_now().time_since_epoch() +
222 realtime_offset_);
223}
224
Austin Schuhbe69cf32020-08-27 11:38:33 -0700225inline monotonic_clock::time_point NodeEventLoopFactory::FromDistributedClock(
226 distributed_clock::time_point time) const {
227 return scheduler_.FromDistributedClock(time);
228}
229
Austin Schuhac0771c2020-01-07 18:36:30 -0800230inline distributed_clock::time_point NodeEventLoopFactory::ToDistributedClock(
231 monotonic_clock::time_point time) const {
Austin Schuh8bd96322020-02-13 21:18:22 -0800232 return scheduler_.ToDistributedClock(time);
Austin Schuhac0771c2020-01-07 18:36:30 -0800233}
234
Alex Perrycb7da4b2019-08-28 19:35:56 -0700235} // namespace aos
236
237#endif // AOS_EVENTS_SIMULATED_EVENT_LOOP_H_