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609 lines
26 KiB
609 lines
26 KiB
/* |
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* Copyright (C) 2016 The Android Open Source Project |
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* |
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* Licensed under the Apache License, Version 2.0 (the "License"); |
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* you may not use this file except in compliance with the License. |
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* You may obtain a copy of the License at |
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* |
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* http://www.apache.org/licenses/LICENSE-2.0 |
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* |
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* Unless required by applicable law or agreed to in writing, software |
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* distributed under the License is distributed on an "AS IS" BASIS, |
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. |
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* See the License for the specific language governing permissions and |
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* limitations under the License. |
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*/ |
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package android.hardware.gnss@1.0; |
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/** The callback interface to report measurements from the HAL. */ |
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interface IGnssMeasurementCallback { |
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/** |
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* Flags to indicate what fields in GnssClock are valid. |
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*/ |
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@export(name="", value_prefix="GNSS_CLOCK_") |
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enum GnssClockFlags : uint16_t { |
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/** A valid 'leap second' is stored in the data structure. */ |
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HAS_LEAP_SECOND = 1 << 0, |
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/** A valid 'time uncertainty' is stored in the data structure. */ |
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HAS_TIME_UNCERTAINTY = 1 << 1, |
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/** A valid 'full bias' is stored in the data structure. */ |
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HAS_FULL_BIAS = 1 << 2, |
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/** A valid 'bias' is stored in the data structure. */ |
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HAS_BIAS = 1 << 3, |
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/** A valid 'bias uncertainty' is stored in the data structure. */ |
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HAS_BIAS_UNCERTAINTY = 1 << 4, |
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/** A valid 'drift' is stored in the data structure. */ |
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HAS_DRIFT = 1 << 5, |
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/** A valid 'drift uncertainty' is stored in the data structure. */ |
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HAS_DRIFT_UNCERTAINTY = 1 << 6 |
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}; |
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/** |
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* Flags to indicate what fields in GnssMeasurement are valid. |
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*/ |
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@export(name="", value_prefix="GNSS_MEASUREMENT_") |
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enum GnssMeasurementFlags : uint32_t { |
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/** A valid 'snr' is stored in the data structure. */ |
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HAS_SNR = 1 << 0, |
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/** A valid 'carrier frequency' is stored in the data structure. */ |
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HAS_CARRIER_FREQUENCY = 1 << 9, |
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/** A valid 'carrier cycles' is stored in the data structure. */ |
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HAS_CARRIER_CYCLES = 1 << 10, |
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/** A valid 'carrier phase' is stored in the data structure. */ |
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HAS_CARRIER_PHASE = 1 << 11, |
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/** A valid 'carrier phase uncertainty' is stored in the data structure. */ |
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HAS_CARRIER_PHASE_UNCERTAINTY = 1 << 12, |
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/** A valid automatic gain control is stored in the data structure. */ |
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HAS_AUTOMATIC_GAIN_CONTROL = 1 << 13 |
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}; |
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/** |
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* Enumeration of available values for the GNSS Measurement's multipath |
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* indicator. |
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*/ |
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@export(name="", value_prefix="GNSS_MULTIPATH_") |
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enum GnssMultipathIndicator : uint8_t { |
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/** The indicator is not available or unknown. */ |
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INDICATOR_UNKNOWN = 0, |
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/** The measurement is indicated to be affected by multipath. */ |
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INDICATOR_PRESENT = 1, |
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/** The measurement is indicated to be not affected by multipath. */ |
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INDICATIOR_NOT_PRESENT = 2 |
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}; |
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/** |
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* Flags indicating the GNSS measurement state. |
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* |
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* The expected behavior here is for GNSS HAL to set all the flags that applies. |
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* For example, if the state for a satellite is only C/A code locked and bit |
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* synchronized, and there is still millisecond ambiguity, the state must be |
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* set as: |
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* |
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* STATE_CODE_LOCK | STATE_BIT_SYNC | STATE_MSEC_AMBIGUOUS |
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* |
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* If GNSS is still searching for a satellite, the corresponding state must be |
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* set to STATE_UNKNOWN(0). |
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*/ |
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@export(name="", value_prefix="GNSS_MEASUREMENT_") |
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enum GnssMeasurementState : uint32_t { |
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STATE_UNKNOWN = 0, |
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STATE_CODE_LOCK = 1 << 0, |
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STATE_BIT_SYNC = 1 << 1, |
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STATE_SUBFRAME_SYNC = 1 << 2, |
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STATE_TOW_DECODED = 1 << 3, |
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STATE_MSEC_AMBIGUOUS = 1 << 4, |
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STATE_SYMBOL_SYNC = 1 << 5, |
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STATE_GLO_STRING_SYNC = 1 << 6, |
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STATE_GLO_TOD_DECODED = 1 << 7, |
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STATE_BDS_D2_BIT_SYNC = 1 << 8, |
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STATE_BDS_D2_SUBFRAME_SYNC = 1 << 9, |
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STATE_GAL_E1BC_CODE_LOCK = 1 << 10, |
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STATE_GAL_E1C_2ND_CODE_LOCK = 1 << 11, |
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STATE_GAL_E1B_PAGE_SYNC = 1 << 12, |
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STATE_SBAS_SYNC = 1 << 13, |
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STATE_TOW_KNOWN = 1 << 14, |
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STATE_GLO_TOD_KNOWN = 1 << 15, |
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}; |
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/** |
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* Flags indicating the Accumulated Delta Range's states. |
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*/ |
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@export(name="", value_prefix="GNSS_") |
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enum GnssAccumulatedDeltaRangeState : uint16_t { |
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ADR_STATE_UNKNOWN = 0, |
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ADR_STATE_VALID = 1 << 0, |
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ADR_STATE_RESET = 1 << 1, |
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ADR_STATE_CYCLE_SLIP = 1 << 2, |
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}; |
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/** |
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* Represents an estimate of the GNSS clock time. |
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*/ |
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struct GnssClock { |
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/** |
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* A set of flags indicating the validity of the fields in this data |
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* structure. |
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*/ |
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bitfield<GnssClockFlags> gnssClockFlags; |
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/** |
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* Leap second data. |
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* The sign of the value is defined by the following equation: |
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* utcTimeNs = timeNs - (fullBiasNs + biasNs) - leapSecond * |
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* 1,000,000,000 |
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* |
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* If this data is available, gnssClockFlags must contain |
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* HAS_LEAP_SECOND. |
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*/ |
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int16_t leapSecond; |
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/** |
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* The GNSS receiver internal clock value. This is the local hardware clock |
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* value. |
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* |
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* For local hardware clock, this value is expected to be monotonically |
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* increasing while the hardware clock remains powered on. (For the case of a |
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* HW clock that is not continuously on, see the |
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* hwClockDiscontinuityCount field). The receiver's estimate of GNSS time |
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* can be derived by subtracting the sum of fullBiasNs and biasNs (when |
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* available) from this value. |
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* |
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* This GNSS time must be the best estimate of current GNSS time |
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* that GNSS receiver can achieve. |
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* |
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* Sub-nanosecond accuracy can be provided by means of the 'biasNs' field. |
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* The value contains the timeUncertaintyNs in it. |
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* |
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* This field is mandatory. |
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*/ |
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int64_t timeNs; |
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/** |
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* 1-Sigma uncertainty associated with the clock's time in nanoseconds. |
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* The uncertainty is represented as an absolute (single sided) value. |
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* |
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* If the data is available, gnssClockFlags must contain |
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* HAS_TIME_UNCERTAINTY. Ths value is ideally zero, as the time |
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* 'latched' by timeNs is defined as the reference clock vs. which all |
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* other times (and corresponding uncertainties) are measured. |
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*/ |
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double timeUncertaintyNs; |
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/** |
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* The difference between hardware clock ('time' field) inside GNSS receiver |
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* and the true GNSS time since 0000Z, January 6, 1980, in nanoseconds. |
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* |
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* The sign of the value is defined by the following equation: |
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* local estimate of GNSS time = timeNs - (fullBiasNs + biasNs) |
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* |
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* This value is mandatory if the receiver has estimated GNSS time. If the |
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* computed time is for a non-GNSS constellation, the time offset of that |
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* constellation to GNSS has to be applied to fill this value. The error |
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* estimate for the sum of this and the biasNs is the biasUncertaintyNs, |
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* and the caller is responsible for using this uncertainty (it can be very |
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* large before the GNSS time has been solved for.) If the data is available |
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* gnssClockFlags must contain HAS_FULL_BIAS. |
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*/ |
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int64_t fullBiasNs; |
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/** |
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* Sub-nanosecond bias. |
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* The error estimate for the sum of this and the fullBiasNs is the |
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* biasUncertaintyNs. |
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* |
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* If the data is available gnssClockFlags must contain HAS_BIAS. If GNSS |
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* has computed a position fix. This value is mandatory if the receiver has |
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* estimated GNSS time. |
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*/ |
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double biasNs; |
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/** |
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* 1-Sigma uncertainty associated with the local estimate of GNSS time (clock |
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* bias) in nanoseconds. The uncertainty is represented as an absolute |
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* (single sided) value. |
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* |
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* If the data is available gnssClockFlags must contain |
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* HAS_BIAS_UNCERTAINTY. This value is mandatory if the receiver |
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* has estimated GNSS time. |
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*/ |
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double biasUncertaintyNs; |
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/** |
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* The clock's drift in nanoseconds (per second). |
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* |
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* A positive value means that the frequency is higher than the nominal |
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* frequency, and that the (fullBiasNs + biasNs) is growing more positive |
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* over time. |
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* |
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* The value contains the 'drift uncertainty' in it. |
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* If the data is available gnssClockFlags must contain HAS_DRIFT. |
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* |
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* This value is mandatory if the receiver has estimated GNSS time. |
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*/ |
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double driftNsps; |
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/** |
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* 1-Sigma uncertainty associated with the clock's drift in nanoseconds (per |
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* second). |
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* The uncertainty is represented as an absolute (single sided) value. |
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* |
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* If the data is available gnssClockFlags must contain |
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* HAS_DRIFT_UNCERTAINTY. If GNSS has computed a position fix this |
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* field is mandatory and must be populated. |
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*/ |
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double driftUncertaintyNsps; |
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/** |
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* When there are any discontinuities in the HW clock, this field is |
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* mandatory. |
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* |
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* A "discontinuity" is meant to cover the case of a switch from one source |
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* of clock to another. A single free-running crystal oscillator (XO) |
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* will generally not have any discontinuities, and this can be set and |
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* left at 0. |
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* |
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* If, however, the timeNs value (HW clock) is derived from a composite of |
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* sources, that is not as smooth as a typical XO, or is otherwise stopped & |
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* restarted, then this value shall be incremented each time a discontinuity |
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* occurs. (E.g. this value can start at zero at device boot-up and |
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* increment each time there is a change in clock continuity. In the |
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* unlikely event that this value reaches full scale, rollover (not |
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* clamping) is required, such that this value continues to change, during |
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* subsequent discontinuity events.) |
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* |
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* While this number stays the same, between GnssClock reports, it can be |
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* safely assumed that the timeNs value has been running continuously, e.g. |
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* derived from a single, high quality clock (XO like, or better, that is |
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* typically used during continuous GNSS signal sampling.) |
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* |
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* It is expected, esp. during periods where there are few GNSS signals |
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* available, that the HW clock be discontinuity-free as long as possible, |
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* as this avoids the need to use (waste) a GNSS measurement to fully |
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* re-solve for the GNSS clock bias and drift, when using the accompanying |
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* measurements, from consecutive GnssData reports. |
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*/ |
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uint32_t hwClockDiscontinuityCount; |
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}; |
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/** |
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* Represents a GNSS Measurement, it contains raw and computed information. |
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* |
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* All signal measurement information (e.g. svTime, |
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* pseudorangeRate, multipathIndicator) reported in this struct must be |
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* based on GNSS signal measurements only. You must not synthesize measurements |
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* by calculating or reporting expected measurements based on known or estimated |
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* position, velocity, or time. |
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*/ |
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struct GnssMeasurement{ |
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/** |
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* A set of flags indicating the validity of the fields in this data |
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* structure. |
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*/ |
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bitfield<GnssMeasurementFlags> flags; |
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/** |
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* Satellite vehicle ID number, as defined in GnssSvInfo::svid |
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* This is a mandatory value. |
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*/ |
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int16_t svid; |
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/** |
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* Defines the constellation of the given SV. |
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*/ |
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GnssConstellationType constellation; |
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/** |
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* Time offset at which the measurement was taken in nanoseconds. |
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* The reference receiver's time is specified by GnssData::clock::timeNs. |
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* |
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* The sign of timeOffsetNs is given by the following equation: |
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* measurement time = GnssClock::timeNs + timeOffsetNs |
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* |
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* It provides an individual time-stamp for the measurement, and allows |
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* sub-nanosecond accuracy. |
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* This is a mandatory value. |
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*/ |
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double timeOffsetNs; |
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/** |
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* Per satellite sync state. It represents the current sync state for the |
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* associated satellite. |
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* Based on the sync state, the 'received GNSS tow' field must be interpreted |
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* accordingly. |
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* |
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* This is a mandatory value. |
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*/ |
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bitfield<GnssMeasurementState> state; |
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/** |
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* The received GNSS Time-of-Week at the measurement time, in nanoseconds. |
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* For GNSS & QZSS, this is the received GNSS Time-of-Week at the |
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* measurement time, in nanoseconds. The value is relative to the |
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* beginning of the current GNSS week. |
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* |
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* Given the highest sync state that can be achieved, per each satellite, |
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* valid range for this field can be: |
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* Searching : [ 0 ] : STATE_UNKNOWN |
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* C/A code lock : [ 0 1ms ] : STATE_CODE_LOCK set |
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* Bit sync : [ 0 20ms ] : STATE_BIT_SYNC set |
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* Subframe sync : [ 0 6s ] : STATE_SUBFRAME_SYNC set |
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* TOW decoded : [ 0 1week ] : STATE_TOW_DECODED set |
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* TOW Known : [ 0 1week ] : STATE_TOW_KNOWN set |
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* |
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* Note: TOW Known refers to the case where TOW is possibly not decoded |
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* over the air but has been determined from other sources. If TOW |
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* decoded is set then TOW Known must also be set. |
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* |
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* Note: If there is any ambiguity in integer millisecond, |
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* GNSS_MEASUREMENT_STATE_MSEC_AMBIGUOUS must be set accordingly, in the |
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* 'state' field. |
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* |
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* This value must be populated if 'state' != STATE_UNKNOWN. |
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* |
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* For Glonass, this is the received Glonass time of day, at the |
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* measurement time in nanoseconds. |
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* |
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* Given the highest sync state that can be achieved, per each satellite, |
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* valid range for this field can be: |
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* Searching : [ 0 ] : STATE_UNKNOWN set |
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* C/A code lock : [ 0 1ms ] : STATE_CODE_LOCK set |
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* Symbol sync : [ 0 10ms ] : STATE_SYMBOL_SYNC set |
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* Bit sync : [ 0 20ms ] : STATE_BIT_SYNC set |
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* String sync : [ 0 2s ] : STATE_GLO_STRING_SYNC set |
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* Time of day decoded : [ 0 1day ] : STATE_GLO_TOD_DECODED set |
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* Time of day known : [ 0 1day ] : STATE_GLO_TOD_KNOWN set |
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* |
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* Note: Time of day known refers to the case where it is possibly not |
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* decoded over the air but has been determined from other sources. If |
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* Time of day decoded is set then Time of day known must also be set. |
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* |
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* For Beidou, this is the received Beidou time of week, |
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* at the measurement time in nanoseconds. |
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* |
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* Given the highest sync state that can be achieved, per each satellite, |
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* valid range for this field can be: |
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* Searching : [ 0 ] : STATE_UNKNOWN set. |
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* C/A code lock : [ 0 1ms ] : STATE_CODE_LOCK set. |
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* Bit sync (D2) : [ 0 2ms ] : STATE_BDS_D2_BIT_SYNC set. |
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* Bit sync (D1) : [ 0 20ms ] : STATE_BIT_SYNC set. |
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* Subframe (D2) : [ 0 0.6s ] : STATE_BDS_D2_SUBFRAME_SYNC set. |
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* Subframe (D1) : [ 0 6s ] : STATE_SUBFRAME_SYNC set. |
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* Time of week decoded : [ 0 1week ] : STATE_TOW_DECODED set. |
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* Time of week known : [ 0 1week ] : STATE_TOW_KNOWN set |
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* |
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* Note: TOW Known refers to the case where TOW is possibly not decoded |
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* over the air but has been determined from other sources. If TOW |
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* decoded is set then TOW Known must also be set. |
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* |
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* For Galileo, this is the received Galileo time of week, |
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* at the measurement time in nanoseconds. |
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* |
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* E1BC code lock : [ 0 4ms ] : STATE_GAL_E1BC_CODE_LOCK set. |
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* E1C 2nd code lock : [ 0 100ms] : STATE_GAL_E1C_2ND_CODE_LOCK set. |
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* E1B page : [ 0 2s ] : STATE_GAL_E1B_PAGE_SYNC set. |
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* Time of week decoded : [ 0 1week] : STATE_TOW_DECODED is set. |
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* Time of week known : [ 0 1week] : STATE_TOW_KNOWN set |
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* |
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* Note: TOW Known refers to the case where TOW is possibly not decoded |
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* over the air but has been determined from other sources. If TOW |
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* decoded is set then TOW Known must also be set. |
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* |
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* For SBAS, this is received SBAS time, at the measurement time in |
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* nanoseconds. |
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* |
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* Given the highest sync state that can be achieved, per each satellite, |
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* valid range for this field can be: |
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* Searching : [ 0 ] : STATE_UNKNOWN |
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* C/A code lock: [ 0 1ms ] : STATE_CODE_LOCK is set |
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* Symbol sync : [ 0 2ms ] : STATE_SYMBOL_SYNC is set |
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* Message : [ 0 1s ] : STATE_SBAS_SYNC is set |
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*/ |
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int64_t receivedSvTimeInNs; |
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/** |
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* 1-Sigma uncertainty of the Received GNSS Time-of-Week in nanoseconds. |
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* |
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* This value must be populated if 'state' != STATE_UNKNOWN. |
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*/ |
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int64_t receivedSvTimeUncertaintyInNs; |
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|
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/** |
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* Carrier-to-noise density in dB-Hz, typically in the range [0, 63]. |
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* It contains the measured C/N0 value for the signal at the antenna port. |
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* |
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* This is a mandatory value. |
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*/ |
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double cN0DbHz; |
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/** |
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* Pseudorange rate at the timestamp in m/s. The correction of a given |
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* Pseudorange Rate value includes corrections for receiver and satellite |
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* clock frequency errors. Ensure that this field is independent (see |
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* comment at top of GnssMeasurement struct.) |
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* |
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* It is mandatory to provide the 'uncorrected' 'pseudorange rate', and |
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* provide GnssClock's 'drift' field as well. When providing the |
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* uncorrected pseudorange rate, do not apply the corrections described above.) |
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* |
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* The value includes the 'pseudorange rate uncertainty' in it. |
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* A positive 'uncorrected' value indicates that the SV is moving away from |
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* the receiver. |
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* |
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* The sign of the 'uncorrected' 'pseudorange rate' and its relation to the |
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* sign of 'doppler shift' is given by the equation: |
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* pseudorange rate = -k * doppler shift (where k is a constant) |
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* |
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* This must be the most accurate pseudorange rate available, based on |
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* fresh signal measurements from this channel. |
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* |
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* It is mandatory that this value be provided at typical carrier phase PRR |
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* quality (few cm/sec per second of uncertainty, or better) - when signals |
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* are sufficiently strong & stable, e.g. signals from a GNSS simulator at >= |
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* 35 dB-Hz. |
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*/ |
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double pseudorangeRateMps; |
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|
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/** |
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* 1-Sigma uncertainty of the pseudorangeRateMps. |
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* The uncertainty is represented as an absolute (single sided) value. |
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* |
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* This is a mandatory value. |
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*/ |
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double pseudorangeRateUncertaintyMps; |
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|
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/** |
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* Accumulated delta range's state. It indicates whether ADR is reset or |
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* there is a cycle slip(indicating loss of lock). |
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* |
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* This is a mandatory value. |
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*/ |
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bitfield<GnssAccumulatedDeltaRangeState> accumulatedDeltaRangeState; |
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|
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/** |
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* Accumulated delta range since the last channel reset in meters. |
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* A positive value indicates that the SV is moving away from the receiver. |
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* |
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* The sign of the 'accumulated delta range' and its relation to the sign of |
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* 'carrier phase' is given by the equation: |
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* accumulated delta range = -k * carrier phase (where k is a constant) |
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* |
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* This value must be populated if 'accumulated delta range state' != |
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* ADR_STATE_UNKNOWN. |
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* However, it is expected that the data is only accurate when: |
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* 'accumulated delta range state' == ADR_STATE_VALID. |
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*/ |
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double accumulatedDeltaRangeM; |
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|
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/** |
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* 1-Sigma uncertainty of the accumulated delta range in meters. |
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* This value must be populated if 'accumulated delta range state' != |
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* ADR_STATE_UNKNOWN. |
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*/ |
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double accumulatedDeltaRangeUncertaintyM; |
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|
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/** |
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* Carrier frequency of the signal tracked, for example it can be the |
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* GPS central frequency for L1 = 1575.45 MHz, or L2 = 1227.60 MHz, L5 = |
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* 1176.45 MHz, varying GLO channels, etc. If the field is not set, it |
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* is the primary common use central frequency, e.g. L1 = 1575.45 MHz |
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* for GPS. |
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* |
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* For an L1, L5 receiver tracking a satellite on L1 and L5 at the same |
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* time, two raw measurement structs must be reported for this same |
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* satellite, in one of the measurement structs, all the values related |
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* to L1 must be filled, and in the other all of the values related to |
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* L5 must be filled. |
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* |
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* If the data is available, gnssClockFlags must contain |
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* HAS_CARRIER_FREQUENCY. |
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*/ |
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float carrierFrequencyHz; |
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|
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/** |
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* The number of full carrier cycles between the satellite and the |
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* receiver. The reference frequency is given by the field |
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* 'carrierFrequencyHz'. Indications of possible cycle slips and |
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* resets in the accumulation of this value can be inferred from the |
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* accumulatedDeltaRangeState flags. |
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* |
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* If the data is available, gnssClockFlags must contain |
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* HAS_CARRIER_CYCLES. |
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*/ |
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int64_t carrierCycles; |
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|
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/** |
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* The RF phase detected by the receiver, in the range [0.0, 1.0]. |
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* This is usually the fractional part of the complete carrier phase |
|
* measurement. |
|
* |
|
* The reference frequency is given by the field 'carrierFrequencyHz'. |
|
* The value contains the 'carrier-phase uncertainty' in it. |
|
* |
|
* If the data is available, gnssClockFlags must contain |
|
* HAS_CARRIER_PHASE. |
|
*/ |
|
double carrierPhase; |
|
|
|
/** |
|
* 1-Sigma uncertainty of the carrier-phase. |
|
* If the data is available, gnssClockFlags must contain |
|
* HAS_CARRIER_PHASE_UNCERTAINTY. |
|
*/ |
|
double carrierPhaseUncertainty; |
|
|
|
/** |
|
* An enumeration that indicates the 'multipath' state of the event. |
|
* |
|
* The multipath Indicator is intended to report the presence of overlapping |
|
* signals that manifest as distorted correlation peaks. |
|
* |
|
* - if there is a distorted correlation peak shape, report that multipath |
|
* is MULTIPATH_INDICATOR_PRESENT. |
|
* - if there is no distorted correlation peak shape, report |
|
* MULTIPATH_INDICATOR_NOT_PRESENT |
|
* - if signals are too weak to discern this information, report |
|
* MULTIPATH_INDICATOR_UNKNOWN |
|
* |
|
* Example: when doing the standardized overlapping Multipath Performance |
|
* test (3GPP TS 34.171) the Multipath indicator must report |
|
* MULTIPATH_INDICATOR_PRESENT for those signals that are tracked, and |
|
* contain multipath, and MULTIPATH_INDICATOR_NOT_PRESENT for those |
|
* signals that are tracked and do not contain multipath. |
|
*/ |
|
GnssMultipathIndicator multipathIndicator; |
|
|
|
/** |
|
* Signal-to-noise ratio at correlator output in dB. |
|
* If the data is available, GnssMeasurementFlags must contain HAS_SNR. |
|
* This is the power ratio of the "correlation peak height above the |
|
* observed noise floor" to "the noise RMS". |
|
*/ |
|
double snrDb; |
|
|
|
/** |
|
* Automatic gain control (AGC) level. AGC acts as a variable gain |
|
* amplifier adjusting the power of the incoming signal. The AGC level |
|
* may be used to indicate potential interference. When AGC is at a |
|
* nominal level, this value must be set as 0. Higher gain (and/or lower |
|
* input power) must be output as a positive number. Hence in cases of |
|
* strong jamming, in the band of this signal, this value must go more |
|
* negative. |
|
* |
|
* Note: Different hardware designs (e.g. antenna, pre-amplification, or |
|
* other RF HW components) may also affect the typical output of of this |
|
* value on any given hardware design in an open sky test - the |
|
* important aspect of this output is that changes in this value are |
|
* indicative of changes on input signal power in the frequency band for |
|
* this measurement. |
|
*/ |
|
double agcLevelDb; |
|
}; |
|
|
|
/** |
|
* Represents a reading of GNSS measurements. For devices where GnssSystemInfo's |
|
* yearOfHw is set to 2016+, it is mandatory that these be provided, on |
|
* request, when the GNSS receiver is searching/tracking signals. |
|
* |
|
* - Reporting of GNSS constellation measurements is mandatory. |
|
* - Reporting of all tracked constellations are encouraged. |
|
*/ |
|
struct GnssData { |
|
/** Number of GnssMeasurement elements. */ |
|
uint32_t measurementCount; |
|
|
|
/** The array of measurements. */ |
|
GnssMeasurement[GnssMax:SVS_COUNT] measurements; |
|
|
|
/** The GNSS clock time reading. */ |
|
GnssClock clock; |
|
}; |
|
|
|
/** |
|
* Callback for the hal to pass a GnssData structure back to the client. |
|
* |
|
* @param data Contains a reading of GNSS measurements. |
|
*/ |
|
GnssMeasurementCb(GnssData data); |
|
};
|
|
|