| Line | Branch | Exec | Source |
|---|---|---|---|
| 1 | /** | ||
| 2 | * \file | ||
| 3 | * \author T. Canham | ||
| 4 | * \brief Implementation file for channelized telemetry storage component | ||
| 5 | * | ||
| 6 | * \copyright | ||
| 7 | * Copyright 2009-2015, by the California Institute of Technology. | ||
| 8 | * ALL RIGHTS RESERVED. United States Government Sponsorship | ||
| 9 | * acknowledged. | ||
| 10 | * <br /><br /> | ||
| 11 | */ | ||
| 12 | #include <Fw/Com/ComBuffer.hpp> | ||
| 13 | #include <Fw/FPrimeBasicTypes.hpp> | ||
| 14 | #include <Fw/Time/Time.hpp> | ||
| 15 | #include <Fw/Types/Assert.hpp> | ||
| 16 | #include <Os/RawTime.hpp> | ||
| 17 | #include <Svc/TlmChan/TlmChan.hpp> | ||
| 18 | |||
| 19 | namespace Svc { | ||
| 20 | |||
| 21 | // Definition of TLMCHAN_HASH_BUCKETS is >= number of telemetry ids | ||
| 22 | static_assert(std::numeric_limits<FwChanIdType>::max() >= TLMCHAN_HASH_BUCKETS, | ||
| 23 | "Cannot have more hash buckets than maximum telemetry ids in the system"); | ||
| 24 | // TLMCHAN_HASH_BUCKETS >= TLMCHAN_NUM_TLM_HASH_SLOTS >= 0 | ||
| 25 | static_assert(std::numeric_limits<FwChanIdType>::max() >= TLMCHAN_NUM_TLM_HASH_SLOTS, | ||
| 26 | "Cannot have more hash slots than maximum telemetry ids in the system"); | ||
| 27 | |||
| 28 | // TLMCHAN_MAX_ENTRIES_PER_RUN must be defined in TlmChanImplCfg.hpp. | ||
| 29 | // It caps the number of updated telemetry entries that Run_handler will | ||
| 30 | // serialize and downlink in a single invocation. Any entries beyond this | ||
| 31 | // limit are skipped (deferred) for the current cycle and will be cleared | ||
| 32 | // by the next buffer swap, so they are effectively dropped rather than | ||
| 33 | // queued. Choose a value that keeps Run_handler's worst-case execution | ||
| 34 | // time within its rate-group budget. | ||
| 35 | static_assert(TLMCHAN_MAX_ENTRIES_PER_RUN > 0, "TLMCHAN_MAX_ENTRIES_PER_RUN must be greater than zero"); | ||
| 36 | static_assert(TLMCHAN_MAX_ENTRIES_PER_RUN <= TLMCHAN_HASH_BUCKETS, | ||
| 37 | "TLMCHAN_MAX_ENTRIES_PER_RUN cannot exceed TLMCHAN_HASH_BUCKETS"); | ||
| 38 | |||
| 39 | 1 | TlmChan::TlmChan(const char* name) | |
| 40 |
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3 | : TlmChanComponentBase(name), m_procCapCount(0), m_activeBuffer(ActiveBuffer::Buffer_0) { |
| 41 | 1 | FW_ASSERT(name != nullptr); | |
| 42 | |||
| 43 | // clear slot pointers | ||
| 44 |
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16 | for (FwChanIdType entry = 0; entry < TLMCHAN_NUM_TLM_HASH_SLOTS; entry++) { |
| 45 | 15 | this->m_tlmEntries[0].slots[entry] = nullptr; | |
| 46 | 15 | this->m_tlmEntries[1].slots[entry] = nullptr; | |
| 47 | } | ||
| 48 | // clear buckets | ||
| 49 |
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501 | for (FwChanIdType entry = 0; entry < TLMCHAN_HASH_BUCKETS; entry++) { |
| 50 | 500 | this->m_tlmEntries[0].buckets[entry].used = false; | |
| 51 | 500 | this->m_tlmEntries[0].buckets[entry].updated = false; | |
| 52 | 500 | this->m_tlmEntries[0].buckets[entry].bucketNo = entry; | |
| 53 | 500 | this->m_tlmEntries[0].buckets[entry].next = nullptr; | |
| 54 | 500 | this->m_tlmEntries[0].buckets[entry].id = 0; | |
| 55 | 500 | this->m_tlmEntries[1].buckets[entry].used = false; | |
| 56 | 500 | this->m_tlmEntries[1].buckets[entry].updated = false; | |
| 57 | 500 | this->m_tlmEntries[1].buckets[entry].bucketNo = entry; | |
| 58 | 500 | this->m_tlmEntries[1].buckets[entry].next = nullptr; | |
| 59 | 500 | this->m_tlmEntries[1].buckets[entry].id = 0; | |
| 60 | } | ||
| 61 | // clear free index | ||
| 62 | 1 | this->m_tlmEntries[0].free = 0; | |
| 63 | 1 | this->m_tlmEntries[1].free = 0; | |
| 64 | |||
| 65 | // determine deployed channel size | ||
| 66 | 1 | this->m_chanIdSize = static_cast<U32>(sizeof(FwChanIdType)); | |
| 67 | |||
| 68 | // ------- Set random telemetry hash seed ------- | ||
| 69 | 1 | U32 seed = 0; | |
| 70 | |||
| 71 | // get current time and use as non-deterministic source for seed | ||
| 72 |
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1 | Os::RawTime rawTime; |
| 73 |
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1 | (void)rawTime.now(); |
| 74 | 1 | U8 timeBuf[FW_RAW_TIME_SERIALIZATION_MAX_SIZE] = {}; | |
| 75 |
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1 | Fw::ExternalSerializeBuffer serBuf(timeBuf, sizeof(timeBuf)); |
| 76 |
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1 | (void)rawTime.serializeTo(serBuf); |
| 77 | |||
| 78 | 1 | U32 foldedTime = 0; | |
| 79 |
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1 | const U32 timeSize = static_cast<U32>(serBuf.getSize()); |
| 80 |
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9 | for (U32 i = 0; i < timeSize; i++) { |
| 81 | // Rotate-and-XOR each byte to avoid cancellation when bytes are equal | ||
| 82 | 8 | foldedTime = (foldedTime << 8) | (foldedTime >> 24); | |
| 83 | 8 | foldedTime ^= static_cast<U32>(timeBuf[i]); | |
| 84 | } | ||
| 85 | |||
| 86 | // read stack-address - address varies per boot | ||
| 87 | 1 | const U64 raw = reinterpret_cast<U64>(&seed); | |
| 88 | 1 | const U32 foldedStack = static_cast<U32>(raw ^ (raw >> 32)); | |
| 89 | |||
| 90 | 1 | seed = foldedTime ^ foldedStack; | |
| 91 | |||
| 92 | // Force a non-zero seed. Of the three hash paths, only the narrow | ||
| 93 | // (<16-bit) path actually loses its keying at seed == 0: it reverts to the | ||
| 94 | // original linear (id % MOD) % SLOTS reduction, re-exposing the predictable | ||
| 95 | // collision pattern this change removes. The Murmur3 and Wang paths still | ||
| 96 | // diffuse a zero seed correctly, so this guard is conservative for them. | ||
| 97 | // Substituting a known non-zero constant keeps every branch keyed and the | ||
| 98 | // seed uniform to reason about across platforms. | ||
| 99 |
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1 | if (seed == 0) { |
| 100 | ✗ | seed = 0xDEADBEEFU; | |
| 101 | } | ||
| 102 | |||
| 103 | 1 | this->m_hashSeed = seed; | |
| 104 | 1 | } | |
| 105 | |||
| 106 |
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6 | TlmChan::~TlmChan() {} |
| 107 | |||
| 108 | 3068 | FwChanIdType TlmChan::doHash(FwChanIdType id) const { | |
| 109 | // Validate input before use. | ||
| 110 | static_assert(std::is_unsigned<FwChanIdType>::value, "FwChanIdType must be unsigned"); | ||
| 111 | static_assert(sizeof(FwChanIdType) <= sizeof(U32), "FwChanIdType must fit within U32 for safe hash cast"); | ||
| 112 | static_assert(TLMCHAN_NUM_TLM_HASH_SLOTS > 0, "TLMCHAN_NUM_TLM_HASH_SLOTS must be greater than zero"); | ||
| 113 | |||
| 114 | FwChanIdType result; | ||
| 115 | |||
| 116 |
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3068 | if (this->m_chanIdSize >= 4) { |
| 117 | // Verify id fits in U16 before narrowing cast | ||
| 118 | 3068 | FW_ASSERT(id <= static_cast<FwChanIdType>(std::numeric_limits<U32>::max()), static_cast<FwAssertArgType>(id)); | |
| 119 | |||
| 120 | 3068 | U32 h = static_cast<U32>(id) ^ static_cast<U32>(this->m_hashSeed); | |
| 121 | |||
| 122 | // Murmur3 32-bit | ||
| 123 | 3068 | h ^= (h >> 16); | |
| 124 | 3068 | h *= MURMUR3_C1; | |
| 125 | 3068 | h ^= (h >> 13); | |
| 126 | 3068 | h *= MURMUR3_C2; | |
| 127 | 3068 | h ^= (h >> 16); | |
| 128 | |||
| 129 | 3068 | result = static_cast<FwChanIdType>(h % TLMCHAN_NUM_TLM_HASH_SLOTS); | |
| 130 | ✗ | } else if (this->m_chanIdSize == 2) { | |
| 131 | // Verify id fits in U16 before narrowing cast | ||
| 132 | ✗ | FW_ASSERT(id <= static_cast<FwChanIdType>(std::numeric_limits<U16>::max()), static_cast<FwAssertArgType>(id)); | |
| 133 | |||
| 134 | ✗ | U16 h = (static_cast<U16>(id)) ^ (static_cast<U16>(this->m_hashSeed) & static_cast<U16>(0xFFFFU)); | |
| 135 | |||
| 136 | // Wang 16-bit | ||
| 137 | ✗ | h = static_cast<U16>(h ^ (h >> 7)); | |
| 138 | ✗ | h = static_cast<U16>(h * WANG16_C1); | |
| 139 | ✗ | h = static_cast<U16>(h ^ (h >> 5)); | |
| 140 | ✗ | h = static_cast<U16>(h * WANG16_C2); | |
| 141 | ✗ | h = static_cast<U16>(h ^ (h >> 3)); | |
| 142 | |||
| 143 | ✗ | result = static_cast<FwChanIdType>(h % TLMCHAN_NUM_TLM_HASH_SLOTS); | |
| 144 | } else { | ||
| 145 | // Verify id fits in U8 before narrowing cast | ||
| 146 | ✗ | FW_ASSERT(id <= static_cast<FwChanIdType>(std::numeric_limits<U8>::max()), static_cast<FwAssertArgType>(id)); | |
| 147 | |||
| 148 | // FwChanIdType is smaller than 16 bits (at most 255 distinct channel IDs). | ||
| 149 | // XOR with the low byte of the seed before reduction to maintain consistency | ||
| 150 | ✗ | const U8 h = static_cast<U8>(id) ^ (static_cast<U8>(this->m_hashSeed) & static_cast<U8>(0xFFU)); | |
| 151 | ✗ | result = static_cast<FwChanIdType>((h % TLMCHAN_HASH_MOD_VALUE) % TLMCHAN_NUM_TLM_HASH_SLOTS); | |
| 152 | } | ||
| 153 | 3068 | return result; | |
| 154 | } | ||
| 155 | |||
| 156 | 59 | void TlmChan::pingIn_handler(const FwIndexType portNum, U32 key) { | |
| 157 | static_assert(NUM_PINGIN_INPUT_PORTS == 1, "pingIn_handler expects exactly one input port"); | ||
| 158 | // return key | ||
| 159 | 59 | this->pingOut_out(0, key); | |
| 160 | 59 | } | |
| 161 | |||
| 162 | ✗ | Fw::TlmValid TlmChan::TlmGet_handler(FwIndexType portNum, FwChanIdType id, Fw::Time& timeTag, Fw::TlmBuffer& val) { | |
| 163 | static_assert(NUM_TLMGET_INPUT_PORTS == 1, "TlmGet_handler expects exactly one input port"); | ||
| 164 | ✗ | FwChanIdType index = this->doHash(id); | |
| 165 | |||
| 166 | // Search to see if channel has been stored | ||
| 167 | // check both buffers | ||
| 168 | // don't need to lock because this port is guarded | ||
| 169 | ✗ | TlmEntry* activeEntry = this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].slots[index]; | |
| 170 | ✗ | for (FwChanIdType bucket = 0; bucket < TLMCHAN_HASH_BUCKETS; bucket++) { | |
| 171 | ✗ | if (activeEntry) { | |
| 172 | ✗ | if (activeEntry->id == id) { | |
| 173 | ✗ | break; | |
| 174 | } else { | ||
| 175 | ✗ | activeEntry = activeEntry->next; | |
| 176 | } | ||
| 177 | } else { | ||
| 178 | ✗ | break; | |
| 179 | } | ||
| 180 | } | ||
| 181 | |||
| 182 | ✗ | TlmEntry* inactiveEntry = this->m_tlmEntries[1 - static_cast<U8>(this->m_activeBuffer)].slots[index]; | |
| 183 | ✗ | for (FwChanIdType bucket = 0; bucket < TLMCHAN_HASH_BUCKETS; bucket++) { | |
| 184 | ✗ | if (inactiveEntry) { | |
| 185 | ✗ | if (inactiveEntry->id == id) { | |
| 186 | ✗ | break; | |
| 187 | } else { | ||
| 188 | ✗ | inactiveEntry = inactiveEntry->next; | |
| 189 | } | ||
| 190 | } else { | ||
| 191 | ✗ | break; | |
| 192 | } | ||
| 193 | } | ||
| 194 | |||
| 195 | ✗ | if (activeEntry && inactiveEntry) { | |
| 196 | ✗ | Fw::TimeComparison cmp = Fw::Time::compare(inactiveEntry->lastUpdate, activeEntry->lastUpdate); | |
| 197 | ✗ | if (cmp == Fw::TimeComparison::GT) { | |
| 198 | ✗ | val = inactiveEntry->buffer; | |
| 199 | ✗ | timeTag = inactiveEntry->lastUpdate; | |
| 200 | ✗ | return Fw::TlmValid::VALID; | |
| 201 | ✗ | } else if (cmp != Fw::TimeComparison::INCOMPARABLE) { | |
| 202 | ✗ | val = activeEntry->buffer; | |
| 203 | ✗ | timeTag = activeEntry->lastUpdate; | |
| 204 | ✗ | return Fw::TlmValid::VALID; | |
| 205 | } else { | ||
| 206 | ✗ | if (inactiveEntry->updated) { | |
| 207 | ✗ | val = inactiveEntry->buffer; | |
| 208 | ✗ | timeTag = inactiveEntry->lastUpdate; | |
| 209 | ✗ | return Fw::TlmValid::VALID; | |
| 210 | } else { | ||
| 211 | ✗ | val = activeEntry->buffer; | |
| 212 | ✗ | timeTag = activeEntry->lastUpdate; | |
| 213 | ✗ | return Fw::TlmValid::VALID; | |
| 214 | } | ||
| 215 | } | ||
| 216 | ✗ | } else if (activeEntry) { | |
| 217 | ✗ | val = activeEntry->buffer; | |
| 218 | ✗ | timeTag = activeEntry->lastUpdate; | |
| 219 | ✗ | return Fw::TlmValid::VALID; | |
| 220 | ✗ | } else if (inactiveEntry) { | |
| 221 | ✗ | val = inactiveEntry->buffer; | |
| 222 | ✗ | timeTag = inactiveEntry->lastUpdate; | |
| 223 | ✗ | return Fw::TlmValid::VALID; | |
| 224 | } else { | ||
| 225 | ✗ | val.resetSer(); | |
| 226 | } | ||
| 227 | ✗ | return Fw::TlmValid::INVALID; | |
| 228 | } | ||
| 229 | |||
| 230 | 3068 | void TlmChan::TlmRecv_handler(FwIndexType portNum, FwChanIdType id, Fw::Time& timeTag, Fw::TlmBuffer& val) { | |
| 231 | static_assert(NUM_TLMRECV_INPUT_PORTS == 1, "TlmRecv_handler expects exactly one input port"); | ||
| 232 | 3068 | FwChanIdType index = this->doHash(id); | |
| 233 | 3068 | TlmEntry* entryToUse = nullptr; | |
| 234 | 3068 | TlmEntry* prevEntry = nullptr; | |
| 235 | |||
| 236 | // Search to see if channel has already been stored or a bucket needs to be added | ||
| 237 |
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3068 | if (this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].slots[index]) { |
| 238 | 3039 | entryToUse = this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].slots[index]; | |
| 239 | // Loop one extra time so that we don't inadvertently fall through the end of the loop early. | ||
| 240 |
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6621 | for (FwChanIdType bucket = 0; bucket < TLMCHAN_HASH_BUCKETS + 1; bucket++) { |
| 241 |
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6621 | if (entryToUse) { |
| 242 |
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6558 | if (entryToUse->id == id) { |
| 243 | 2976 | break; | |
| 244 | } else { | ||
| 245 | 3582 | prevEntry = entryToUse; | |
| 246 | 3582 | entryToUse = entryToUse->next; | |
| 247 | } | ||
| 248 | } else { | ||
| 249 | // Out of buckets: drop the new channel rather than asserting, since | ||
| 250 | // telemetry IDs may arrive from external sources (e.g. a hub) | ||
| 251 |
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63 | if (this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].free >= TLMCHAN_HASH_BUCKETS) { |
| 252 | ✗ | this->log_WARNING_HI_TlmChanBucketPoolExhausted(id); | |
| 253 | ✗ | return; | |
| 254 | } | ||
| 255 | // add new bucket from free list | ||
| 256 | 63 | entryToUse = &this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)] | |
| 257 | 63 | .buckets[this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].free++]; | |
| 258 | 63 | FW_ASSERT(prevEntry != nullptr); | |
| 259 | 63 | prevEntry->next = entryToUse; | |
| 260 | 63 | entryToUse->next = nullptr; | |
| 261 | 63 | break; | |
| 262 | } | ||
| 263 | } | ||
| 264 | } else { | ||
| 265 | // Out of buckets: drop the new channel rather than asserting, since | ||
| 266 | // telemetry IDs may arrive from external sources (e.g. a hub) | ||
| 267 |
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29 | if (this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].free >= TLMCHAN_HASH_BUCKETS) { |
| 268 | ✗ | this->log_WARNING_HI_TlmChanBucketPoolExhausted(id); | |
| 269 | ✗ | return; | |
| 270 | } | ||
| 271 | 29 | this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].slots[index] = | |
| 272 | 29 | &this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)] | |
| 273 | 29 | .buckets[this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].free++]; | |
| 274 | 29 | entryToUse = this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].slots[index]; | |
| 275 | 29 | entryToUse->next = nullptr; | |
| 276 | } | ||
| 277 | |||
| 278 | 3068 | FW_ASSERT(entryToUse != nullptr); | |
| 279 | 3068 | entryToUse->used = true; | |
| 280 | 3068 | entryToUse->id = id; | |
| 281 | 3068 | entryToUse->updated = true; | |
| 282 | 3068 | entryToUse->lastUpdate = timeTag; | |
| 283 | 3068 | entryToUse->buffer = val; | |
| 284 | } | ||
| 285 | |||
| 286 | 235 | void TlmChan::Run_handler(FwIndexType portNum, U32 context) { | |
| 287 | static_assert(NUM_RUN_INPUT_PORTS == 1, "Run_handler expects exactly one input port"); | ||
| 288 | // Only write packets if connected | ||
| 289 |
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235 | if (not this->isConnected_PktSend_OutputPort(0)) { |
| 290 | ✗ | return; | |
| 291 | } | ||
| 292 | |||
| 293 | // Lock mutex long enough to swap the active buffer so the inactive buffer | ||
| 294 | // can be read without worrying about concurrent updates. | ||
| 295 |
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235 | this->lock(); |
| 296 | 235 | this->m_activeBuffer = | |
| 297 |
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235 | (this->m_activeBuffer == ActiveBuffer::Buffer_0) ? ActiveBuffer::Buffer_1 : ActiveBuffer::Buffer_0; |
| 298 | // Clear the new active buffer's updated flags so it is clean for incoming | ||
| 299 | // writes. Any entries that were deferred (skipped) in the previous cycle | ||
| 300 | // and still carry updated=true in this buffer are also cleared here. | ||
| 301 | // This is intentional: deferred entries are dropped rather than re-queued, | ||
| 302 | // which preserves Run_handler's bounded execution-time guarantee. | ||
| 303 |
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117735 | for (U32 entry = 0; entry < TLMCHAN_HASH_BUCKETS; entry++) { |
| 304 | 117500 | this->m_tlmEntries[static_cast<U8>(this->m_activeBuffer)].buckets[entry].updated = false; | |
| 305 | } | ||
| 306 |
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235 | this->unLock(); |
| 307 | |||
| 308 | // ----------------------------------------------------------------------- | ||
| 309 | // CPU processing guard | ||
| 310 | // | ||
| 311 | // entriesProcessed — updated entries serialized into downlink packets this | ||
| 312 | // invocation. Hard-capped at TLMCHAN_MAX_ENTRIES_PER_RUN. | ||
| 313 | // entriesDeferred — updated entries skipped because the cap was already | ||
| 314 | // reached. These samples are dropped for this cycle. | ||
| 315 | // A non-zero value means the system is producing | ||
| 316 | // telemetry faster than Run_handler can drain it. | ||
| 317 | // ----------------------------------------------------------------------- | ||
| 318 | 235 | U32 entriesProcessed = 0; | |
| 319 | 235 | U32 entriesDeferred = 0; | |
| 320 | |||
| 321 |
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235 | Fw::TlmPacket pkt; |
| 322 |
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235 | Fw::SerializeStatus resetStat = pkt.resetPktSer(); |
| 323 | 235 | FW_ASSERT(Fw::FW_SERIALIZE_OK == resetStat, static_cast<FwAssertArgType>(resetStat)); | |
| 324 | |||
| 325 |
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117735 | for (U32 entry = 0; entry < TLMCHAN_HASH_BUCKETS; entry++) { |
| 326 | 117500 | TlmEntry* p_entry = &this->m_tlmEntries[1 - static_cast<U8>(this->m_activeBuffer)].buckets[entry]; | |
| 327 |
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117500 | if ((p_entry->updated) && (p_entry->used)) { |
| 328 | // ------------------------------------------------------------------ | ||
| 329 | // CPU guard check: once the per-run cap is reached, count this entry | ||
| 330 | // as deferred and skip serialization. The entry's updated flag will | ||
| 331 | // be cleared by the next buffer swap (see lock section above), so | ||
| 332 | // the sample is intentionally dropped for this cycle. This bounds | ||
| 333 | // Run_handler's worst-case execution time and prevents it from | ||
| 334 | // starving higher-priority tasks during a telemetry burst caused by | ||
| 335 | // a hardware anomaly, runaway component, software fault, or | ||
| 336 | // cyber-attack. | ||
| 337 | // ------------------------------------------------------------------ | ||
| 338 |
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2875 | if (entriesProcessed >= TLMCHAN_MAX_ENTRIES_PER_RUN) { |
| 339 | ✗ | entriesDeferred++; | |
| 340 | ✗ | continue; | |
| 341 | } | ||
| 342 | |||
| 343 |
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2875 | Fw::SerializeStatus stat = pkt.addValue(p_entry->id, p_entry->lastUpdate, p_entry->buffer); |
| 344 | |||
| 345 |
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2875 | if (Fw::FW_SERIALIZE_NO_ROOM_LEFT == stat) { |
| 346 |
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1 | this->PktSend_out(0, pkt.getBuffer(), 0); |
| 347 |
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1 | resetStat = pkt.resetPktSer(); |
| 348 | 1 | FW_ASSERT(Fw::FW_SERIALIZE_OK == resetStat, static_cast<FwAssertArgType>(resetStat)); | |
| 349 |
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1 | stat = pkt.addValue(p_entry->id, p_entry->lastUpdate, p_entry->buffer); |
| 350 | // If a single channel doesn't fit in an empty packet the packet | ||
| 351 | // is misconfigured; assert so the error is visible immediately. | ||
| 352 | 1 | FW_ASSERT(Fw::FW_SERIALIZE_OK == stat, static_cast<FwAssertArgType>(stat)); | |
| 353 |
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2874 | } else if (Fw::FW_SERIALIZE_OK == stat) { |
| 354 | // room available, continue filling packet | ||
| 355 | } else { | ||
| 356 | ✗ | FW_ASSERT(false, static_cast<FwAssertArgType>(stat)); | |
| 357 | } | ||
| 358 | |||
| 359 |
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2875 | this->lock(); |
| 360 | 2875 | p_entry->updated = false; | |
| 361 |
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2875 | this->unLock(); |
| 362 | 2875 | entriesProcessed++; | |
| 363 | } | ||
| 364 | } | ||
| 365 | |||
| 366 | // send remnant entries | ||
| 367 |
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235 | if (pkt.getNumEntries() > 0) { |
| 368 |
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225 | this->PktSend_out(0, pkt.getBuffer(), 0); |
| 369 | } | ||
| 370 | |||
| 371 | // Emit a WARNING_HI event when the processing cap was reached this cycle. | ||
| 372 | // Using an event rather than injecting a reserved telemetry channel into | ||
| 373 | // the downlink stream is the correct F-Prime anomaly reporting mechanism. | ||
| 374 |
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235 | if (entriesDeferred > 0) { |
| 375 | ✗ | this->m_procCapCount++; | |
| 376 | ✗ | this->log_WARNING_HI_TlmChanEpochProcessingCapReached(entriesDeferred, this->m_procCapCount); | |
| 377 | } | ||
| 378 | 235 | } | |
| 379 | |||
| 380 | } // namespace Svc | ||
| 381 |