diff --git a/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-noise.xsd b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-noise.xsd
new file mode 100644
index 0000000000000000000000000000000000000000..2f478823275e320ea8c4540e8151950c5811d617
--- /dev/null
+++ b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-noise.xsd
@@ -0,0 +1,135 @@
+
+
+
+
+
+
+ Annotation record for range noise vectors.
+
+
+
+
+ Zero Doppler azimuth time at which noise vector applies [UTC].
+
+
+
+
+ Image line at which the noise vector applies.
+
+
+
+
+ Image pixel at which the noise vector applies. This array contains the count attribute number of integer values (i.e. one value per point in the noise vector), separated by spaces. The maximum length of this array will be one value for every pixel in an image line, however in general the vectors will be subsampled.
+
+
+
+
+ Range thermal noise correction vector power values. This array contains the count attribute number of floating point values separated by spaces.
+
+
+
+
+
+
+ List of noise range vector annotation records.
+
+
+
+
+ Noise range vector. This record contains the thermal noise estimation annotations which can be used to remove thermal noise from the image. With a minimum noise vector update rate of 1s and a maximum product length of 25 minutes, the maximum size of this list is 1500 elements. The azimuth spacing used will be different for different modes and product types.
+
+
+
+
+
+ Number of noiseRangeVector records within the list.
+
+
+
+
+
+ Annotation record for azimuth noise vectors.
+
+
+
+
+ Swath to which the noise vector applies.
+
+
+
+
+ The first line at which this annotation applies.
+
+
+
+
+ The first sample at which this annotation applies.
+
+
+
+
+ The last line at which this annotation applies.
+
+
+
+
+ The last sample at which this annotation applies.
+
+
+
+
+ Image line at which the noise vector applies. This array contains the count attribute number of integer values (i.e. one value per point in the noise vector), separated by spaces. The maximum length of this array will be one value for every line in an image pixel, however in general the vectors will be subsampled.
+
+
+
+
+ Azimuth thermal noise correction vector power values. This array contains the count attribute number of floating point values separated by spaces.
+
+
+
+
+
+
+ List of noise azimuth vector annotation records.
+
+
+
+
+ Noise azimuth vector. This record contains the thermal noise estimation annotations which can be used to remove thermal noise from the image.
+
+
+
+
+
+ Number of noiseAzimuthVector records within the list.
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 noise product annotations.
+
+
+
+
+ ADS header data set record. This DSR contains information that applies to the entire data set.
+
+
+
+
+ Range noise vector list. This element is a list of noiseRangeVector records that contain the range thermal noise estimation for the image MDS. The list contains an entry for each update made along azimuth.
+
+
+
+
+ Azimuth noise vector list. This annotation divides the image in blocks providing a list of azimuth noise vector records that contain the thermal noise estimation for the block. The block belongs to a (sub-)swath (i.e. it can't cross by design two swaths) and it is delimited by firstAzimuthLine, lastAzimuthLine, firstRangeSample, lastRangeSample.
+
+
+
+
+
+
+ Sentinel-1 level 1 thermal noise level product annotations.
+
+
+
diff --git a/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-product.xsd b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-product.xsd
new file mode 100644
index 0000000000000000000000000000000000000000..4dd222b8c3a5dfeae69f5cf38c883be13feb7b5d
--- /dev/null
+++ b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-product.xsd
@@ -0,0 +1,2628 @@
+
+
+
+
+
+
+ Annotation record for an antenna elevation pattern at given zero Doppler azimuth time and two-way slant range time.
+
+
+
+
+ Swath to which the elevation antenna pattern applies.
+
+
+
+
+ Zero Doppler azimuth time at which antenna pattern applies [UTC].
+
+
+
+
+ Two-way slant range time array for this antenna pattern [s]. This array contains the count attribute number of double floating point values (i.e. one value per point in the antenna pattern), separated by spaces.
+
+
+
+
+ Corresponding elevation angle for this antenna pattern [degrees]. This array contains the count attribute number of floating point values (i.e. one value per point in the antenna pattern), separated by spaces. This array contains the same number of values as the slantRangeTime array.
+
+
+
+
+ Corresponding two-way antenna elevation pattern value for this point. This array contains the count attribute number of complex floating point values (i.e. one value per point in the antenna pattern), separated by spaces in the order I Q I Q I Q... This array contains the same number of values as the slantRangeTime array.
+
+
+
+
+ Corresponding incidence angle value for this point. This array contains the count attribute number of floating point values (i.e. one value per point in the antenna pattern), separated by spaces [degrees]. This array contains the same number of values as the slantRangeTime array.
+
+
+
+
+ Average terrain height in range for this antenna pattern [m].
+
+
+
+
+ Estimated roll angle for this antenna pattern [degrees].
+
+
+
+
+
+
+ List of antenna elevation pattern annotation records.
+
+
+
+
+ The antenna pattern record describes the antenna elevation pattern at the given zero Doppler azimuth time for a given swath. For a minimum azimuth antenna pattern spacing of 10s, a maximum segment length of 25 minutes and a maximum 5 swaths, the maximum number of records in the list is 750.
+
+
+
+
+
+ Number of antenna pattern records within the list.
+
+
+
+
+
+ Annotation record for ASAR calibration pulses.
+
+
+
+
+ Max of Cal pulse 1 amplitude.
+
+
+
+
+ Max of Cal pulse 2 amplitude.
+
+
+
+
+ Max of Cal pulse 3 amplitude.
+
+
+
+
+ Average of Cal pulse 1 amplitude over the 3 dB on either side of the max amplitude.
+
+
+
+
+ Average of Cal pulse 2 amplitude over the 3 dB on either side of the max amplitude.
+
+
+
+
+ Average of Cal pulse 3 amplitude over the 3 dB on either side of the max amplitude.
+
+
+
+
+ Average of Cal pulse 1A over the sample window.
+
+
+
+
+ Extracted phase for calibration pulse 1 [degrees].
+
+
+
+
+ Extracted phase for calibration pulse 1A [degrees].
+
+
+
+
+ Extracted phase for calibration pulse 2 [degrees].
+
+
+
+
+ Extracted phase for calibration pulse 3 [degrees].
+
+
+
+
+
+
+ List of ASAR calibration pulse records.
+
+
+
+
+ ASAR calibration pulse information.
+
+
+
+
+
+ Length of the ASAR calibration pulse list.
+
+
+
+
+
+ Annotation record for attitude quaternion.
+
+
+
+
+ Timestamp - as extracted from ancillary attitude data - to which attitude data applies [UTC].
+
+
+
+
+ Reference frame of the attitude data.
+
+
+
+
+ Q0 attitude quaternion as extracted from ancillary attitude data.
+
+
+
+
+ Q1 attitude quaternion as extracted from ancillary attitude data.
+
+
+
+
+ Q2 attitude quaternion as extracted from ancillary attitude data.
+
+
+
+
+ Q3 attitude quaternion as extracted from ancillary attitude data.
+
+
+
+
+ X component of angular velocity vector as extracted from ancillary attitude data [degrees/s].
+
+
+
+
+ Y component of angular velocity vector as extracted from ancillary attitude data [degrees/s].
+
+
+
+
+ Z component of angular velocity vector as extracted from ancillary attitude data [degrees/s].
+
+
+
+
+ Platform roll calculated from ancillary attitude data [degrees].
+
+
+
+
+ Platform pitch calculated from ancillary attitude data [degrees].
+
+
+
+
+ Platform yaw calculated from ancillary attitude data [degrees].
+
+
+
+
+
+
+ List of attitude and angular velocity annotation records.
+
+
+
+
+ Attitude data record. This record contains the attitude quaternions and an angular velocity vector which together describe the attitude state of the platform at the annotated time. With a minimum orbit/attitude update rate of of 1s and a maximum product length of 25 minutes, the maximum size of this list is 1500 elements.
+
+
+
+
+
+ Length of the attitude list.
+
+
+
+
+
+ Annotation record for azimuth FM rate.
+
+
+
+
+ Zero Doppler azimuth time to which azimuth FM rate parameters apply [UTC].
+
+
+
+
+ Two way slant range time origin used for azimuth FM rate calculation [s].
+
+
+
+
+ Azimuth FM rate coefficients array in order of c0 [Hz/s] c1 [Hz/s^2] [Hz/s^3].
+
+
+
+
+
+
+ List of azimuth FM rate values updated along azimuth.
+
+
+
+
+ Azimuth FM rate = c0 + c1(tSR - t0) + c2(tSR - t0)2. Where tSR = two way slant range time. With a minimum azimuth processing block length of approximately 2s and a maximum product length of 25 minutes, the maximum size of this list is 750 elements.
+
+
+
+
+
+ Number of azimuthFmRate records within the list.
+
+
+
+
+
+ Annotation record for downlink bit error counts.
+
+
+
+
+ Number of errors detected in the sync marker field.
+
+
+
+
+ Number of errors detected in the data take identifier field.
+
+
+
+
+ Number of errors detected in the ECC number field.
+
+
+
+
+ Number of errors detected in the test mode field.
+
+
+
+
+ Number of errors detected in the Rx channel identifier field.
+
+
+
+
+ Number of errors detected in the instrument configuration identifier field.
+
+
+
+
+ Number of errors detected in the space packet count field.
+
+
+
+
+ Number of errors detected in the PRI count field.
+
+
+
+
+ Number of packets in which the SSB Error Flag is set to true.
+
+
+
+
+ Number of errors detected in the BAQ mode field.
+
+
+
+
+ Number of errors detected in the BAQ block length field.
+
+
+
+
+ Number of errors detected in the range decimation field.
+
+
+
+
+ Number of errors detected in the Rx gain field.
+
+
+
+
+ Number of errors detected in the Tx ramp rate field.
+
+
+
+
+ Number of errors detected in the Tx pulse start frequency field.
+
+
+
+
+ Number of errors detected in the rank field.
+
+
+
+
+ Number of errors detected in the PRI code field
+
+
+
+
+ Number of errors detected in the sampling window start time field.
+
+
+
+
+ Number of errors detected in the sampling window length (SWL) field.
+
+
+
+
+ Number of errors detected in the polarisation field.
+
+
+
+
+ Number of errors detected in the temperature compensation field.
+
+
+
+
+ Number of errors detected in the elevation beam address field.
+
+
+
+
+ Number of errors detected in the azimuth beam address field.
+
+
+
+
+ Number of errors detected in the SAS test mode field.
+
+
+
+
+ Number of errors detected in the calibration operation type field.
+
+
+
+
+ Number of errors detected in the calibration beam address field.
+
+
+
+
+ Number of errors detected in the calibration mode field.
+
+
+
+
+ Number of errors detected in the Tx pulse number field.
+
+
+
+
+ Number of errors detected in the signal type field.
+
+
+
+
+ Number of errors detected in the swap flag field.
+
+
+
+
+ Number of errors detected in the swath number field.
+
+
+
+
+ Number of errors detected in the number of quads field.
+
+
+
+
+ Total number of errors detected in ISP headers.
+
+
+
+
+
+
+ Annotation record for a burst table entry.
+
+
+
+
+ Zero Doppler azimuth time of the first line of this burst [UTC].
+
+
+
+
+ Zero Doppler azimuth time of the first line of this burst relative to the Ascending Node Crossing (ANX) time. [s].
+
+
+
+
+ Sensing time of the first input line of this burst [UTC].
+
+
+
+
+ Byte offset of this burst within the image MDS.
+
+
+
+
+ An array of integers indicating the offset of the first valid image sample within each range line. This array contains count attribute integers, equal to the numberOfLines field (i.e. one value per range line within the burst), separated by spaces. If a range line does not contain any valid image samples, the integer is set to -1.
+
+
+
+
+ An array of integers indicating the offset of the last valid image sample within each range line. This array contains count attribute integers, equal to the numberOfLines (i.e. one value per range line within the burst), separated by spaces. If a range line does not contain any valid image samples, the integer is set to -1.
+
+
+
+
+
+
+ Burst table annotation record.
+
+
+
+
+ Burst table entry. This record contains the information for a single burst entry including the dimensions of the burst, the timing of the burst and where it is located within the image MDS. With an approximate burst cycle time of 1s and a maximum product length of 25 minutes, the maximum size of this list is 1500 elements.
+
+
+
+
+
+ Number of burst records within the list.
+
+
+
+
+
+ Annotation record for image statistics information.
+
+
+
+
+ Mean value of output data.
+
+
+
+
+ Standard deviation of output data.
+
+
+
+
+
+
+ Annotation record for SRGR/GRSR conversion information.
+
+
+
+
+ Zero Doppler azimuth time at which parameters apply [UTC].
+
+
+
+
+ Two way slant range time to first range sample [s].
+
+
+
+
+ Slant range origin used for ground range calculation [m].
+
+
+
+
+ Coefficients to convert from slant range to ground range. Ground range = g0 + g1(sr-sr0) + g2 (sr-sr0)^2 + g3(sr-sr0)^3 + g4(sr-sr0)^4...+ gN(sr-sr0)^N where sr is the slant range distance to the desired pixel and N is the number of coefficients in the array minus one.
+
+
+
+
+ Ground range origin used for slant range calculation [m].
+
+
+
+
+ Coefficients to convert from ground range to slant range coefficients. Slant range = s0 + s1(gr-gr0) + s2 (gr-gr0)^2 + s3(gr-gr0)^3 + s4(gr-gr0)^4...+ sN(gr-gr0)^N where gr is the ground range distance to the desired pixel and N is the number of coefficients in the array minus one.
+
+
+
+
+
+
+ List of ground range to slant range conversion polynomials.
+
+
+
+
+ The polynomial used to convert image pixels between slant range and ground range. The polynomials are time-stamped with the zero Doppler azimuth and two way slant range times to which they apply. The coefficients used on range lines between updates are found by linear interpolation between the updated and previous values. For a minimum spacing of 1s between coordinateConversion record updates and a maximum acquisition length of 25 minutes, the maximum number of records in the list is 1500.
+
+
+
+
+
+ Number of coordinate conversion records within the list.
+
+
+
+
+
+ Annotation record for Doppler centroid coefficients.
+
+
+
+
+ Doppler centroid coefficient 0 as a function of slant range time [Hz].
+
+
+
+
+ Doppler centroid coefficient 1 as a function of slant range time [Hz/s].
+
+
+
+
+ Doppler centroid coefficient 2 as a function of slant range time [Hz/s^2].
+
+
+
+
+ Doppler centroid coefficient 3 as a function of slant range time [Hz/s^3].
+
+
+
+
+ Doppler centroid coefficient 4 as a function of slant range time [Hz/s^4].
+
+
+
+
+
+
+ Annotation record for baseband Doppler centroid estimates.
+
+
+
+
+ Two way slant range time to Doppler centroid frequency estimate [s].
+
+
+
+
+ Fine Doppler centroid frequency estimate [Hz].
+
+
+
+
+
+
+ List of baseband Doppler centroid estimates.
+
+
+
+
+ Fine Doppler centroid estimate. Each estimate represents the Doppler frequency at the given slant range time within the current block. Approximately 20 estimates are performed per swath so for 5 swaths, the maximum number of estimates in this list is 100.
+
+
+
+
+
+ Length of the baseband Doppler centroid estimates list.
+
+
+
+
+
+ Annotation record for Doppler estimate blocks.
+
+
+
+
+ Zero Doppler azimuth time of this Doppler centroid estimate [UTC]. This time represents the centre of the block used to calculate the fune DC estimates used to derive the data DC polynomial.
+
+
+
+
+ Two-way slant range time origin for Doppler centroid estimate [s].
+
+
+
+
+ Doppler centroid estimated from orbit, expressed as the following polynomial (assuming 5 coefficients): Doppler Centroid = d0 + d1(tSR-t0) + d2(tSR-t0)^2 + d3(tSR-t0)^3 + d4(tSR-t0)^4, where tSR = 2 way slant range time.
+
+
+
+
+ Doppler centroid estimated from data, expressed as the following polynomial (assuming 5 coefficients): Doppler Centroid = d0 + d1(tSR-t0) + d2(tSR-t0)^2 + d3(tSR-t0)^3 + d4(tSR-t0)^4, where tSR = 2 way slant range time.
+
+
+
+
+ The RMS error of the Doppler centroid estimate. It is calculated as the average of the individual RMS residual errors between input fine Doppler centroid estimates and the fitted polynomial. If the Doppler centroid was not estimated from data, this is set to 0.
+
+
+
+
+ False if the RMS error is below the acceptable threshold for the Doppler centroid estimated from the data. True if the RMS error is greater than or equal to the acceptable threshold.
+
+
+
+
+ First zero Doppler azimuth time of the block of signal data used for the fine DC estimates [UTC].
+
+
+
+
+ Last zero Doppler azimuth time of the block of signal data used for the fine DC estimates [UTC].
+
+
+
+
+ List of the fine Doppler centroid estimates for this block. This element is a list of fineDce records which contain the fine Doppler centroid frequencies that were used for fitting the data polynomial for this block.
+
+
+
+
+
+
+ List of Doppler estimate block records.
+
+
+
+
+ Doppler centroid estimate record which contains the Doppler centroid calculated from geometry and estimated from the data, associated signal-to-noise ratio values and indicates which DCE method was used by the IPF during image processing. With a minimum Doppler centroid update rate of 1s (for IW and EW where the Doppler is recalculated for every burst cycle) and a maximum product length of 25 minutes, the maximum size of this list is 1500 elements.
+
+
+
+
+
+ Number of dcEstimate records within the list.
+
+
+
+
+
+ Annotation record for downlink data compression information.
+
+
+
+
+ BAQ block length for all packets.
+
+
+
+
+ Data format of echo packets.
+
+
+
+
+ Data format of noise packets.
+
+
+
+
+ Data format of calibration packets.
+
+
+
+
+ The calculated mean bit rate of FDBAQ decompression for the entire segment [Mbps].
+
+
+
+
+
+
+ Annotation record for the Doppler centroid quality information.
+
+
+
+
+ Doppler centroid estimation method used during processing. Both the Doppler centroid (DC) calculated from orbit geometry and the DC estimated from the raw data are annotated within the Doppler data set; however, this parameter describes the actual DC method used during image processing. This value is a copy of the value from the processingOptions record.
+
+
+
+
+ Doppler centroid uncertain flag. False if the root mean squared (RMS) error for the DCE method used for image processing is less than the specified thresholdvalue, true if the RMS error is greater than or equal to the specified thresholdvalue. Note: if more than one Doppler centroid estimation is performed, the flag is set if any RMS error is greater than or equal to the threshold.
+
+
+
+
+
+
+ Position vector.
+
+
+
+
+ X component of position vector [m].
+
+
+
+
+ Y component of position vector [m].
+
+
+
+
+ Z component of position vector [m].
+
+
+
+
+
+
+ Velocity vector.
+
+
+
+
+ X component of velocity vector [m/s].
+
+
+
+
+ Y component of velocity vector [m/s].
+
+
+
+
+ Z component of velocity vector [m/s].
+
+
+
+
+
+
+ Annotation record for orbit state vector information.
+
+
+
+
+ Timestamp at which orbit state vectors apply [UTC].
+
+
+
+
+ Reference frame of the orbit state data.
+
+
+
+
+ Position vector record. This record cotains the platform position data with respect to the Earth-fixed reference frame.
+
+
+
+
+ Velocity vector record. his record cotains the platform velocity data with respect to the Earth-fixed reference frame.
+
+
+
+
+
+
+ List of orbit state vector annotation records.
+
+
+
+
+ Orbit state vector record. This record contains a position vector and a velocity vector which together describe the orbit state of the platform at the annotated time. With a minimum orbit/attitude update rate of of 0.2s and a maximum product length of 25 minutes, the maximum size of this list is 7500 elements.
+
+
+
+
+
+ Length of the orbit vector list.
+
+
+
+
+
+ Annotation record to record the decimation of the radar data.
+
+
+
+
+ Filter bandwidth used to decimate the SAR signal data [Hz].
+
+
+
+
+ Sampling frequency of the SAR signal data after decimation [Hz]. This frequency is equivalent to the to the sampling frequency before decimation multiplied by the decimation ratio.
+
+
+
+
+ Length of the decimation filter [samples].
+
+
+
+
+
+
+ Annotation record for sampling window start time.
+
+
+
+
+ Zero Doppler azimuth time of sampling window start change [UTC].
+
+
+
+
+ Sampling window length [s].
+
+
+
+
+
+
+ List of sampling window lengths.
+
+
+
+
+ Sampling window length record. This record holds the SWL for the given zero Doppler azimuth time. For a SWL update rate of approximately 8s and a maximum segment length of 25 minutes, the maximum number of records in the list is 200.
+
+
+
+
+
+ Number of SWL records within the list.
+
+
+
+
+
+ Annotation record for sampling window start time.
+
+
+
+
+ Zero Doppler azimuth time of sampling window start change [UTC].
+
+
+
+
+ Sampling window start time [s].
+
+
+
+
+
+
+ List of sampling window start time changes.
+
+
+
+
+ SWST record. This record holds the SWST for the given zero Doppler azimuth time. For a SWST update rate of approximately 8s and a maximum segment length of 25 minutes, the maximum number of records in the list is 200.
+
+
+
+
+
+ Number of SWST records within the list.
+
+
+
+
+
+ Pointing status as reported in the S/C ancillary data from the downlink. Note: The information in this record is reported but not interpreted by the IPF.
+
+
+
+
+ Zero Doppler azimuth time of the pointing status change [UTC].
+
+
+
+
+ AOCS operational mode.
+
+
+
+
+ Roll error status. Set to false when the roll axis is fine pointed and set to true when the roll axis is degraded.
+
+
+
+
+ Pitch error status. Set to false when the pitch axis is fine pointed and set to true when the pitch axis is degraded.
+
+
+
+
+ Yaw error status. Set to false when the yaw axis is fine pointed and set to true when the yaw axis is degraded.
+
+
+
+
+
+
+ List of pointing status changes.
+
+
+
+
+ Pointing status record. This record holds the pointing status for the given zero Doppler azimuth time. With a minimum orbit/attitude update rate of of 1s and a maximum product length of 25 minutes, the maximum size of this list is 1500 elements.
+
+
+
+
+
+ Number of pointing status changes in the list.
+
+
+
+
+
+ Annotation record for downlink values.
+
+
+
+
+ Pulse Repetition Interval [s].
+
+
+
+
+ The number of PRI between transmitted pulse and return echo.
+
+
+
+
+ Data take identifier.
+
+
+
+
+ The ECC number of the measurement or test mode.
+
+
+
+
+ Receive channel identifier.
+
+
+
+
+ Instrument configuration identifier.
+
+
+
+
+ Data format for instrument samples. There is one element corresponding to the data format for each packet type in the segment.
+
+
+
+
+ Decimation of the SAR data in the sampling window according to the needed mode bandwidth.
+
+
+
+
+ Applied value of the commandable Rx attenuation in the receiver channel of the SES.
+
+
+
+
+ Transmit pulse length [s]. This field is set as follows:
+1- If the nominalTxPulseLength value in the AUX_INS data is greater than zero and less than the txPulseLength extracted from the ISP headers, then this field is set to the nominalTxPulseLength from the input AUX_INS data; otherwise,
+2- this field is set to the txPulseLength extracted from the ISP headers.
+
+
+
+
+ Starting frequency of the transmit pulse [Hz].
+
+
+
+
+ The linear FM rate at which the frequency changes over the pulse duration [Hz/s].
+
+
+
+
+ SPPDU swath number identifier
+
+
+
+
+ List of sampling window lengths.
+
+
+
+
+ List of sampling window start time changes.
+
+
+
+
+ List of pointing status changes.
+
+
+
+
+
+
+ Annotation record for downlink information.
+
+
+
+
+ Swath from which this downlink information data was extracted.
+
+
+
+
+ Zero Doppler azimuth time at which this set of downlink information applies [UTC].
+
+
+
+
+ Sensing time of first line of input data [UTC].
+
+
+
+
+ Sensing time of last line of input data [UTC].
+
+
+
+
+ Pulse repetition frequency (PRF) of the input raw data [Hz]. This is the inverse of the PRI extracted from the downlink for this swath.
+
+
+
+
+ Error counters. This record contains the error counter for each field that is validated as the input source packets are analyzed.
+
+
+
+
+ Downlink values. This record contains values extracted directly from the Instrument Source Packets.
+
+
+
+
+
+
+ List of downlink information records.
+
+
+
+
+ Downlink information. This record contains information about the data extracted/calculated from the input data, including values extracted from the ISP and data error counters. For individual scene and slice products there is one downlinkInformation record, except in the case of IW/EW GRD products, where there will be one record per swath. For assembled products the list contains all the downlinkInformation records for each slice included in the assembled product. For a minimum output slice length of 10s, a maximum segment length of 25 minutes and a maximum 5 swaths, the maximum number of records in the list is 750.
+
+
+
+
+
+ Number of downlinkInformation records within the list.
+
+
+
+
+
+ Annotation record for downlink quality information.
+
+
+
+
+ Calculated mean of the input data for the I channel.
+
+
+
+
+ Calculated mean of the input data for the Q channel.
+
+
+
+
+ Input data mean outside nominal range flag. False if the mean of I and Q input values are both within specified range from expected mean. For expected mean of x, the measured mean must fall between x-threshold to x+threshold. True otherwise.
+
+
+
+
+ Calculated standard deviation of the input data for the I channel.
+
+
+
+
+ Calculated standard deviation of the input data for the Q channel.
+
+
+
+
+ Input data standard deviation outside nominal range flag. False if the standard deviation values of I and Q input values are both within specified range of expected standard deviation. For expected std. dev. x, the measured std. dev. must fall between x-threshold to x+threshold. True otherwise.
+
+
+
+
+ Number of downlink gaps detected in the input data.
+
+
+
+
+ Significant downlink gaps in the input data flag. A downlink input data gap is defined as a contiguous block of N downlink missing lines (the value of N is predefined for each product). False if the number of downlink input gaps is less than or equal to the threshold value, true if number of downlink input data gaps is greater than the threshold value.
+
+
+
+
+ Number of downlink missing lines detected in the input data, excluding data gaps. A downlink missing line is defined as any echo line physically absent from the input data file due to a downlink error.
+
+
+
+
+ Downlink missing lines significant flag. False if the percentage of downlink missing lines is less than or equal to the threshold value, true if the percentage of downlink missing lines is greater than the threshold value. The number of downlink missing lines is numInputDownlinkMissingLines.
+
+
+
+
+ Number of instrument gaps detected in the input data.
+
+
+
+
+ Significant instrument gaps in the input data flag. An instrument input data gap is defined as a contiguous block of N instrument missing lines (the value of N is predefined for each product). False if the number of instrument input gaps is less than or equal to the threshold value, true if number of instrument input data gaps is greater than the threshold value.
+
+
+
+
+ Number of instrument missing lines detected in the input data, excluding data gaps. An instrument missing line is defined as any echo line physically absent from the input data file due to a failure by the instrument to produce the expected echo line.
+
+
+
+
+ Instrument missing lines significant flag. False if the percentage of instrument missing lines is less than or equal to the threshold value, true if the percentage of instrument missing lines is greater than the threshold value. The number of instrument missing lines is numInstrumentInputMissingLines.
+
+
+
+
+ Number of gaps detected in the input data due to the SSB Error flag being set.
+
+
+
+
+ Significant SSB Error gaps in the input data flag. An SSB Error input data gap is defined as a contiguous block of N lines in which the SSB Error Flag is set to true (the value of N is predefined for each product). False if the number of SSB Error input gaps is less than or equal to the threshold value, true if number of SSB Error input data gaps is greater than the threshold value.
+
+
+
+
+ Number of SSB Error missing lines detected in the input data, excluding data gaps. An SSB Error missing line is defined as any echo line in which the SSB Error Flag is the ISP secondary header is set to true.
+
+
+
+
+ SSB Error missing lines significant flag. False if the percentage of SSB Error missing lines is less than or equal to the threshold value, true if the percentage of SSB Error missing lines is greater than the threshold value. The number of SSB Error missing lines is numSsbErrorInputMissingLines.
+
+
+
+
+ Chirp source used during processing (Nominal or Extracted). This value is a copy of the value from the processingInformation record.
+
+
+
+
+ PG source used during processing (Model or Extracted). This value is a copy of the value from the processingInformation record.
+
+
+
+
+ Type of range replica function used (Unextended, Extended Flat, Extended Tapered). This value is a copy of the value from the processingOptions record.
+
+
+
+
+ Chirp replica reconstruction failed or is of low quality flag. False if able to reconstruct at leaset one valid extracted replica during processing. True if unable to reconstruct any valid extracted replicas during processing. A replica is valid if it was successfully reconstructed and all quality measures were acceptable. If this flag is true then the processor uses the nominal range pulse for processing and a nominal elevation beam scaling factor.
+
+
+
+
+ Mean of all PG product amplitude values.
+
+
+
+
+ Standard deviation of all PG product amplitude values.
+
+
+
+
+ Mean value of all PG product phase values [radians].
+
+
+
+
+ Standard deviation of all PG product phase values [radians].
+
+
+
+
+ PG product derivation failed flag. False if the percentage of invalid relative and absolute PG products is below the configured threshold; or, true otherwise. If this flag is set to true then the values from the PG product model will be used in place of the derived PG product values.
+
+
+
+
+ Invalid downlink parameters flag. False if all parameters read from the downlinked data were valid, true if any downlink parameter is out of range and therefore a default value has been used during processing.
+
+
+
+
+
+
+ Annotation record for swath boundary information.
+
+
+
+
+ Zero Doppler azimuth time of firstAzimuthLine [UTC].
+
+
+
+
+ First azimuth line of the swath boundary [lines].
+
+
+
+
+ First range sample of the swath boundary [samples].
+
+
+
+
+ Last azimuth line of the swath boundary [lines].
+
+
+
+
+ Last range sample of the swath boundary [samples].
+
+
+
+
+
+
+ List of swath boundary records.
+
+
+
+
+ Swath boundary record. This record contains the information needed to identify the position of the swath within the image. The swath boundary is identified by a rectangular area defined by the points (firstRangeSample,firstAzimuthLine) and (lastRangeSample,lastAzimuthLine). The optimal range cut line can vary in azimuth and so a new record is included for each swath boundary update in azimuth. It is important to note that the information on the azimuth cut line is lost and not represented by these annotations. Although a line in azimuth is implicitly created by each bounding box, this does not necessarily represent the azimuth cut line used during swath merging. For an average spacing of 1s between swath bound updates and a maximum acquisition length of 25 minutes, the maximum number of records in the list is 1500.
+
+
+
+
+
+ Number of swath bounds records within the list.
+
+
+
+
+
+ Swath merging information for TOPS modes.
+
+
+
+
+ Swath to which swath merging information applies.
+
+
+
+
+ This list contains the information needed to identify where the current swath has been merged into the image MDS. Each swathBounds record represents a rectangular area that may include several burst merged in azimuth. The se records do not describe where individual bursts were merged in azimuth, within a swath.
+
+
+
+
+
+
+ List of swath merging records.
+
+
+
+
+ This record contains the information needed to identify where each burst of the given swath was merged within the image MDS.
+
+
+
+
+
+ Number of swath merge records within the list.
+
+
+
+
+
+ Swath merging information for IW mode.
+
+
+
+
+ IW1 merge information. This record contains the information needed to identify where the IW1 swath was merged within the image MDS.
+
+
+
+
+ IW2 merge information. This record contains the information needed to identify where the IW2 swath was merged within the image MDS.
+
+
+
+
+ IW3 merge information. This record contains the information needed to identify where the IW3 swath was merged within the image MDS.
+
+
+
+
+
+
+ Annotation record for a geolocation grid point.
+
+
+
+
+ Zero Doppler azimuth time to which grid point applies [UTC].
+
+
+
+
+ Two way slant range time to grid point [s].
+
+
+
+
+ Reference image MDS line to which this geolocation grid point applies.
+
+
+
+
+ Reference image MDS sample to which this geolocation grid point applies.
+
+
+
+
+ Geodetic latitude of grid point [degrees].
+
+
+
+
+ Geodetic longitude of grid point [degrees].
+
+
+
+
+ Height of the grid point above sea level [m].
+
+
+
+
+ Incidence angle to grid point [degrees].
+
+
+
+
+ Elevation angle to grid point [degrees].
+
+
+
+
+
+
+ List of geolocation grid point annotations.
+
+
+
+
+ Geolocation grid point. This record describes geolocation information for a single point (line/pixel combination) within the image MDS. For 11 geolotcation grid points across range and a new set of points calculated every 1s in azimuth, for a maximum product length of 25 minutes, the maximum size of this list is 16500 elements.
+
+
+
+
+
+ Number of geolocation grid point records within the list.
+
+
+
+
+
+ Annotation record for slice information
+
+
+
+
+
+ Sensing start time of this slice [UTC]. If this slice entry is the same as the sliceNumber of the product, this sensing start time will be the same as the firstLineSensingTime for the current product.
+
+
+
+
+ Sensing stop time of this slice [UTC]. If this slice entry is the same as the sliceNumber of the product, this sensing stop time will be the same as the lastLineSensingTime for the current product.
+
+
+
+
+
+
+ List of slice annotation records
+
+
+
+
+
+
+
+
+ Annotation record for general image information.
+
+
+
+
+ Zero Doppler azimuth time to the mid-slant range of the first line of the image [UTC]. When bi-static correction is performed during processing the time annotated is the time of the imaging of the ground. When bi-static correction is not performed the time annotated is the time of the reception of the echo.
+
+
+
+
+ Zero Doppler azimuth time to the mid-slant range of the last line of the image [UTC]. When bi-static correction is performed during processing the time annotated is the time of the imaging of the ground. When bi-static correction is not performed the time annotated is the time of the reception of the echo.
+
+
+
+
+ Time of the Ascending Node Crossing (ANX) priorto the start of the image [UTC].
+
+
+
+
+ Zero Doppler reference time used for processing [UTC]. If the product is a slice product, this time is at the time of the first slice within a segment and all slices within the segment report the same time value. Otherwise, this time is the same as the productFirstLineUtcTime.
+
+
+
+
+ Product composition indicator, where the valid values are: "Individual", to indicate a full non-sliced product; "Slice", to indicate that this is a single slice of a larger product; and "Assembled", to indicate that this is a product that has been created by combining multiple slices.
+
+
+
+
+ If the product composition is type “Slice”, this indicates the number of the current slice within the multi-slice segment. If product composition type is “Individual” or “Assembled”, the slice number is 0.
+
+
+
+
+ List of annotations for all slices in segment. The total size of the list represents the number of slices in the segment. If product composition type is “Individual” or “Assembled”, the total size of this list is 0.
+
+
+
+
+ Two-way slant range time to first sample [s].
+
+
+
+
+ Interpretation of the image pixels within the image MDS [Detected or Complex].
+
+
+
+
+ Data type of output pixels within the image MDS.
+
+
+
+
+ Pixel spacing between range samples [m].
+
+
+
+
+ Nominal pixel spacing between range lines [m].
+
+
+
+
+ Time spacing between azimuth lines of the output image [s].
+
+
+
+
+ Azimuth line frequency of the output image [Hz]. This is the inverse of the azimuthTimeInterval.
+
+
+
+
+ Total number of samples in the output image (image width).
+
+
+
+
+ Total number of lines in the output image (image length).
+
+
+
+
+ Time difference between zero Doppler time and acquisition time of output image lines [s].
+
+
+
+
+ Incidence angle at mid swath [degrees].
+
+
+
+
+ Mean and standard deviation statistics for the image. If the pixelValue field is set to Complex, both the real and imaginary parts of the statistics are reported. If the pixelValue field is set to Detected, only the real parts of the statistics are reported.
+
+
+
+
+
+
+ Annotation record for image quality information.
+
+
+
+
+ Mean and standard deviation statistics for the image. This record is a copy of the record from the imageInformation record.
+
+
+
+
+ Output data mean outside nominal range flag. False if the mean of I and Q output values for SLC image or mean of detected pixels for a detected product, are both within specified range from expected mean. For expected mean of x, the measured mean must fall
+between x-threshold to x+threshold. True otherwise.
+
+
+
+
+ Output data standard deviation outside nominal range flag. False if the std. dev. of I and Q output values for SLC image or std. dev. of detected
+pixels for a detected product, are both within specified range from expected std. dev. For expected std. dev. of x, the measured std. dev. must fall between x-threshold to x+threshold. True otherwise.
+
+
+
+
+
+
+ Annotation record for image dimension information.
+
+
+
+
+ Zero Doppler azimuth time to which this set of dimensions applies [UTC].
+
+
+
+
+ Input swath to which the dimensions apply.
+
+
+
+
+ Number of input range samples for the image or slice.
+
+
+
+
+ Number of input range lines for the image or slice.
+
+
+
+
+
+
+ List of image dimension annotations.
+
+
+
+
+ Input dimensions. This record contains the dimensions of the input data in terms of number of input samples and lines. For individual scene and slice products there is one inputDimensions record, except in the case of IW/EW GRD products which contain one record per swath. For assembled products the list contains all the inputDimensions records for each slice included in the assembled product. For a minimum output slice length of 10s, a maximum segment length of 25 minutes and a maximum of 5 swaths, the maximum number of records in the list is 750.
+
+
+
+
+
+ Number of inputDimensions records within the list.
+
+
+
+
+
+ Annotation record for noise packet information.
+
+
+
+
+ Swath to which this noise information applies.
+
+
+
+
+ Zero Doppler azimuth time of the noise measurement [UTC].
+
+
+
+
+ Noise power correction factor.
+
+
+
+
+ Number of noise lines used to calculate noise correction factor.
+
+
+
+
+
+
+ List of noise packet records.
+
+
+
+
+ Noise parameters derived from noise packets. There are a maximum of two sets of noise parameters per swath by a maximum of 150 slices.
+
+
+
+
+
+ Number of noise records within the list.
+
+
+
+
+
+ Annotation record for parameters used during range and azimuth processing.
+
+
+
+
+ Name of the weighting window type used during processing.
+
+
+
+
+ Value of the weighting window coefficient used during processing.
+
+
+
+
+ Total available bandwidth [Hz].
+
+
+
+
+ Bandwidth used during processing [Hz].
+
+
+
+
+ Bandwidth for each look used during processing [Hz].
+
+
+
+
+ Number of looks.
+
+
+
+
+ Overlap between looks [Hz].
+
+
+
+
+
+
+ Processing parameters. This record contains the range and azimuth processing parameters used to process each input swath in the image.
+
+
+
+
+ Input swath to which the processing parameters were applied.
+
+
+
+
+ Range processing information. This record describes the parameters used by the IPF during range processing.
+
+
+
+
+ Azimuth processing information. This record describes the parameters used by the IPF during azimuth processing.
+
+
+
+
+ Processor scaling factor. This value includes the input scaling factor and the range and azimuth oversampling factorscomes from the auxiliary input and is applied multiplicatively to the image data during processing. This is the value referred to as kproc in [R-14].
+
+
+
+
+
+
+ List of processing parameters that may vary per swath. This list contains one record for all products except IW/EW GRD products.
+
+
+
+
+ Processing parameters. This record contains the range and azimuth processing parameters used to process each input swath in the image. There will be one record per ADS, except for IW/EW GRD products which will contain one per swath.
+
+
+
+
+
+ Number of inputDimensions records within the list.
+
+
+
+
+
+ Annotation record for processing information.
+
+
+
+
+ False if correction was done using default parameters, true if correction was done using raw data analysis.
+
+
+
+
+ True if the orbit data used for processing came from an external file, false if the orbit data used for processing came from the downlink.
+
+
+
+
+ True if the attitude data used for processing came from an external file, false if the attitude data used for processing came from the downlink.
+
+
+
+
+ False if the receive variation correction was not applied, true if the receive variation correction was applied.
+
+
+
+
+ False if antenna elevation pattern correction was not applied, true if antenna elevation pattern correction was applied.
+
+
+
+
+ False if antenna azimuth pattern correction was not applied, true if antenna azimuth pattern correction was applied.
+
+
+
+
+ False if antenna azimuth element pattern correction was not applied, true if antenna azimuth element pattern correction was applied.
+
+
+
+
+ Doppler centroid estimation method used during processing. Both the DC calculated from orbit geometry and the DC estimated from the raw data are annotated within the Doppler data set; however, this parameter describes the actual DC method used during image processing.
+
+
+
+
+ Type of input data used for Doppler centroid estimation.
+
+
+
+
+ False if range spreading loss compensation was not performed, true if range spreading loss compensation was performed.
+
+
+
+
+ False if slant range to ground range conversion has not been performed, true if slant range to ground range conversion has been performed.
+
+
+
+
+ False if detection has not been performed, true if detection has been performed.
+
+
+
+
+ False if thermal noise correction has not been performed, true if thermal noise correction has been performed.
+
+
+
+
+ Chirp source used for range compression.
+
+
+
+
+ PG source used during processing.
+
+
+
+
+ Spectrum of range replica function used.
+
+
+
+
+ Name of the application scaling LUT applied to compensate for the range spreading loss. Set to "None" if no scaling was applied.
+
+
+
+
+ List of processing parameters that may vary per swath.
+
+
+
+
+ Input dimensions list. This element contains a list of inputDimensions records which describe the number of input range samples and azimuth lines.
+
+
+
+
+ Range spreading loss reference slant range [m]. The range spreading loss is compensated by amplitude scaling each range sample by 1/Grsl(R) where: Grsl(R) = cuberoot(rRef/R); and, R = slant range of sample.
+
+
+
+
+ Name of the reference ellipsoid used when processing this product.
+
+
+
+
+ Semi-major axis of ellipsoid [m].
+
+
+
+
+ Semi-minor axis of ellipsoid [m].
+
+
+
+
+ False if bi-static delay correction was not applied, true if bi-static delay correction was applied.
+
+
+
+
+ Name of the TOPS filter convention used during processing. This field describes how the TOPS ramping/de-ramping filters are defined. If set to "Only Echo Lines" then the filter is defined using only the echo lines in a burst; otherwise, if set to "All Lines" then the filter is defined using all the lines in a burst.
+
+
+
+
+ Source of the orbit data used during processing. Set to “Extracted” if the orbit information extracted from the sub-commutated acillary data in the source packet headers is used during processing. Set to “Auxiliary” if the orbit information from an input auxiliary file is used during processing.
+
+
+
+
+ Source of the orbit data used during processing. Set to “Extracted” if the attitude information extracted from the sub-commutated acillary data in the source packet headers is used during processing. Set to “Auxiliary” if the attitude information from an input auxiliary file is used during processing.
+
+
+
+
+
+
+ Annotation record for general product information.
+
+
+
+
+ Direction of the orbit (ascending, descending) for the oldest image data in the product (the start of the product).
+
+
+
+
+ Timeliness category under which the product was produced, i.e. time frame from the data acquisition (for the near real time categories) or from the satellite tasking to the product delivery to the end user.
+
+
+
+
+ Platform heading relative to North [degrees].
+
+
+
+
+ Projection of the image, either slant range or ground range.
+
+
+
+
+ Range sample rate [Hz]. The value of this field is identical for all slices.
+
+
+
+
+ Radar frequency [Hz]. The value of this field is identical for all slices.
+
+
+
+
+ Azimuth steering rate for IW and EW modes [degrees/s].
+
+
+
+
+
+
+ Annotation record for RDA quality information.
+
+
+
+
+ Calculated I bias. This value is a copy of the value from the rawDataAnalysis record.
+
+
+
+
+ I bias significance, true if I bias falls within acceptable range, false otherwise.
+
+
+
+
+ Calculated Q bias. This value is a copy of the value from the rawDataAnalysis record.
+
+
+
+
+ Q bias significance, true if Q bias falls within acceptable range, false otherwise.
+
+
+
+
+ Calculated I/Q gain imbalance. This value is a copy of the value from the rawDataAnalysis record.
+
+
+
+
+ I/Q Gain Significance, true if I/Q gain imbalance falls within acceptable range, false otherwise.
+
+
+
+
+ Calculated I/Q quadrature departure.
+
+
+
+
+ I/Q Quadrature Departure Significance, true if quadrature departure falls within acceptable range, false otherwise.
+
+
+
+
+
+
+ Annotation record for raw data analysis information.
+
+
+
+
+ I bias upper bound.
+
+
+
+
+ I bias lower bound.
+
+
+
+
+ Q bias upper bound.
+
+
+
+
+ Q bias lower bound.
+
+
+
+
+ I/Q gain upper bound.
+
+
+
+
+ I/Q gain lower bound.
+
+
+
+
+ I/Q quadrature departure upper bound.
+
+
+
+
+ I/Q quadrature departure lower bound.
+
+
+
+
+ I channel bias used for correction (may be different from the calculated bias).
+
+
+
+
+ Q channel bias used for correction (may be different from the calculated bias).
+
+
+
+
+ I/Q gain imbalance used for correction (may be different from the calculated gain).
+
+
+
+
+ I/Q quadrature departure used for correction (may be different from the calculated quadrature departure).
+
+
+
+
+
+
+ Annotation record for raw data analysis information.
+
+
+
+
+ Zero Doppler azimuth time at which this set of raw data analysis values apply [UTC].
+
+
+
+
+ Calculated I bias.
+
+
+
+
+ Calculated Q bias.
+
+
+
+
+ Calculated I/Q quadrature departure.
+
+
+
+
+ Calculated I/Q gain imbalance.
+
+
+
+
+ Supporting RDA values.
+
+
+
+
+
+
+ List of RDA information records.
+
+
+
+
+ Raw data analysis information. This record contains data statistics collected from sampling a subset of the raw input data. It contains the values calculated for both the I and Q channels. For individual scene and slice products there is one rawDataAnalysis record except in the case of IW/EW GRD products, where there will be one record per swath. For assembled products the list contains all the downlinkInformation records for each slice included in the assembled product. For a minimum output slice length of 10s, a maximum segment length of 25 minutes and a maximum 5 swaths, the maximum number of records in the list is 750.
+
+
+
+
+
+ Number of rawDataAnalysis records within the list.
+
+
+
+
+
+ Annotation record for quality information.
+
+
+
+
+ Zero Doppler azimuth time at which this set of quality annotations applies [UTC].
+
+
+
+
+ Downlink quality. This record contains the quality indicators - values and flags - related to the downlink information.
+
+
+
+
+ Raw data analysis quality. This record contains the quality indicators - values and flags - related to the raw data analysis information.
+
+
+
+
+ Doppler centroid quality. This record contains the quality indicators - values and flags - related to the Doppler centroid estimation.
+
+
+
+
+ Image quality. This record contains the quality indicators - values and flags - related to properties of the output image.
+
+
+
+
+
+
+ List of qualityData ADS records.
+
+
+
+
+ Quality data. This record contains the quality values and flags that are set during image processing. Each flag indicates the status of a comparison between the corresponding value(s) and a pre-defined threshold. For individual scene and slice products there is one qualityData record. For assembled products the list contains all the qualityData records for each slice included in the assembled product. For a minimum output slice length of 10s and a maximum segment length of 25 minutes, the maximum number of records in the list is 150.
+
+
+
+
+
+ Number of qualityData records within the list.
+
+
+
+
+
+ Annotation record for the reference replica
+
+
+
+
+ Azimuth sensing time of the calibration packet that the reference replica was created from.
+
+
+
+
+ Source of the reference replica: Nominal or Extracted.
+
+
+
+
+ PG source used during processing (Model or Extracted).
+
+
+
+
+ Number of replica polynomial coefficients.
+
+
+
+
+ Reference replica coefficients. The element contains numCofficients double precision floating point values separated by spaces.
+
+
+
+
+ Internal time delay [s] representing the average deviation of the replica location from the location of the transmitted pulse. If the pgSource is Model, then this value is filled with the timeDelay parameter from the AUX_INS file. If the pgSource is Extracted, then this value is filled with the average internal time delay calculated across all valid extracted PG replicas reconstructed from the calibration pulses at 100 MHz bandwidth.
+
+
+
+
+ Complex gain to be applied to the range match filter to compensate for the amplitude and phase differences between the two channels in dual polarization data.
+
+
+
+
+
+
+ Annotation record for reconstructed replicas.
+
+
+
+
+ Zero Doppler azimuth time in azimuth at which replica applies [UTC].
+
+
+
+
+ 3-dB pulse width of chirp replica cross-correlation function between the reconstructed replica and the nominal replica [Hz].
+
+
+
+
+ Peak Side Lobe Ratio (PSLR) of replica cross-correlation function between the reconstructed replica and the nominal replica [dB].
+
+
+
+
+ Integrated Side Lobe Ratio (ISLR) of cross-correlation function between the reconstructed replica and the nominal replica [dB].
+
+
+
+
+ Peak location of cross-correlation function between the reconstructed replica and the nominal replica [samples].
+
+
+
+
+ Indicates if the cross-correlation between the nominal PG replica and this extracted PG replica resulted in a valid peak location. Set to true if a valid peak location was found; or, false otherwise.
+
+
+
+
+ Amplitude of the PG product derived from this replica. The amplitude value annotated for the PG product is:
+abs(1/PG * meanRxCalPow(swath1)/meanRxCalPow(swathn))
+Where:
+- abs() is the absolute value function for a complex number;
+- meanRxCalPow(swath1) is the mean RX calibration power of swath 1 calculated according to [R-14];
+- meanRxCalPow(swathn) is the mean RX calibration power of the current swath calculated according to [R-14].
+PG product values can only be calculated for products that have at least one valid extracted reconstructed replica. If no valid extracted reconstructed replica exists within the product then this value will be set to the default value of 1.0 for every replica record.
+
+
+
+
+ Phase of the PG product derived from this replica [radians]. The phase value annotated for the PG product is:
+arg(1/PG * meanRxCalPow(swath1)/meanRxCalPow(swathn))
+Where:
+- arg() is the phase value function for a complex number;
+- meanRxCalPow(swath1) is the mean RX calibration power of swath 1 calculated according to [R-14];
+- meanRxCalPow(swathn) is the mean RX calibration power of the current swath calculated according to [R-14].
+PG product values can only be calculated for products that have at least one valid extracted reconstructed replica. If no valid extracted reconstructed replica exists within the product then this value will be set to the default value of 0.0 for every replica record.
+
+
+
+
+ PG product amplitude value from the input PG product model.
+
+
+
+
+ PG product phase value from the input PG product model [radians].
+
+
+
+
+ Indicates if the amplitude and phase of the PG product are valid (within the configured threshold) when compared to the mean and standard deviation of the amplitude and phase for all PG product values. Set to true if |pgProductAmplitude – meanPgProductAmplitude| < pgAmpStdFractionThreshold * stdDevPgProductAmplitude and |pgProductPhase – meanPgProductPhase| < pgPhaseStdFractionThreshold * stdDevPgProductPhase; or, false otherwise.
+Where pgAmpStdFractionThreshold and pgPhaseStdFractionThreshold are configured threshold values.
+PG product values can only be calculated and validated for products that have at least one valid extracted reconstructed replica. If no valid extracted reconstructed replica exists within the product then this flag will be set to false for every replica record.
+
+
+
+
+
+ Indicates if the amplitude and phase of the PG product are valid (within the configure threshold) when compared to the value of the PG product model. Set to true if |pgProductAmplitude – modelPgProductAmplitude| < maxPgAmpErrorThreshold and |pgProductPhase – modelPgProductPhase| < maxPgPhaseErrorThreshold; or, false otherwise.
+Where maxPgAmpErrorThreshold and maxPgPhaseErrorThreshold are configured threshold values and and modelPgProductPhase are values obtained from the PG product model.
+PG product values can only be calculated and validated for products that have at least one valid extracted reconstructed replica. If no valid extracted reconstructed replica exists within the product then this flag will be set to false for every replica record.
+
+
+
+
+
+ Internal time delay [s] representing the calculated deviation of the location of this PG replica from the location of the transmitted pulse; i.e., the nominal PG replica.
+
+
+
+
+
+
+ List of reconstructed replica records.
+
+
+
+
+ PG chirp replica parameters derived from the calibration pulses at 100 MHz bandwidth, With an average calibration cycle interval of 5s and a maximum product length of 25 minutes, the maximum size of this list is 300 elements.
+
+
+
+
+
+ Number of replica records within the list.
+
+
+
+
+
+ Annotation record for replic information.
+
+
+
+
+ Swath to which this replica information applies.
+
+
+
+
+ Reference replica record. This record contains information about the reference replica that was used by the IPF during processing. When the extracted replica is used for processing the information in this record comes from the calibration pulses at the nominal imaging bandwidth. When the nominal replica is used for processing the information in this record comes directly from the AUX_INS data.
+
+
+
+
+ Replica list. This element contains a list of the reconstructed replicas calculated from the PG calibration pulses at 100 MHz bandwidth extracted from the downlink. The list contains an entry for each replica update made along azimuth.
+
+
+
+
+
+
+ List of replica information.
+
+
+
+
+ Replica information. This record contains information about the reference and reconstructed replicas. There will be one replica information record per ADS, except for IW/EW GRD products which will contain one per swath.
+
+
+
+
+
+ Number of replicaInformation records within the list.
+
+
+
+
+
+ Terrain height annotation record. A terrain height record contains the Zero Doppler azimuth time to which the height measurement applies and the measure of the terrain height above sea level.
+
+
+
+
+ Zero Doppler azimuth time of terrain height measurement [UTC].
+
+
+
+
+ Average terrain height above ocean surface [m]. The value is the average height in the range direction for the given zero Doppler azimuth time.
+
+
+
+
+
+
+ List of terrain height annotation records updated along track.
+
+
+
+
+ Terrain height record containing the average terrain height (in metres above the ocean surface) for the given zero Doppler azimuth time. With a minimum terrain height spacing of 1s and a maximum product length of 45 minutes, the maximum size of this list is 2700 elements.
+
+
+
+
+
+ Number of terrain height records within the list.
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 antenna pattern product annotations.
+
+
+
+
+ Antenna pattern list. This element is a list of antennaPattern records that describe the antenna elevation pattern as it is updated in azimuth. The list contains an entry for each AEP update made along azimuth.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 Doppler Centroid product annotations.
+
+
+
+
+ List of Doppler centroid estimates that have been calculated by the IPF during image processing. The list contains an entry for each Doppler centroid estimate made along azimuth.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 SRGR and GRSR conversion annotations.
+
+
+
+
+ Coordinate conversion list. This element is a list of coordinateConversion records that describe coversion between the slant range and ground range coordinate systems. The list contains an entry for each update made along azimuth. This list applies to and is filled in only for GRD products and therefore has a length of zero for SLC products.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 general product annotations.
+
+
+
+
+ General product information. This record describes some key characteristics of the product, the input data and the acquisition platform.
+
+
+
+
+ Downlink information list. This element contains a list of downlinkInformation records which contain information extracted and calculated from the input data.
+
+
+
+
+ List of orbit information used by the IPF during processing. This list contains sets of orbit state vectors that are updated along azimuth. The values represent the interpolated values used by the IPF and are derived from the OSVs in the sub-commutated ancilliary data from the ISPs or from an input auxiliary orbit file.
+
+
+
+
+ List of attitude information used by the IPF during processing. This list contains sets of attitude data records that are updated along azimuth. The values represent the interpolated values used by the IPF and are derived from the sub-commutated ancillary data from the ISPs or from an input auxiliary attitude file.
+
+
+
+
+ Raw data analysis list. This element contains a list of rawDataAnalysis records which contain statistics collected from the input data.
+
+
+
+
+ Replica information list. This element contains a list of replicaInformation records, which describe the reference replica and the reconstructed replicas created from the calibration pulses extracted from the downlink.
+
+
+
+
+ Noise list. This element is a list of noise records that contain the noise parameters derived from the noise ISPs. The list contains an entry for each noise update made along azimuth. If the noise list is empty, the nominal noise value in the instrument auxiliary data file will be used instead.
+
+
+
+
+ Terrain height list. This element is a list of terrainHeight records that contain the average terrain height at the given zero Doppler azimuth time. The actual terrain heights used by the IPF may represent bilinearly interpolated values from this list. The list contains an entry for each terrain height update made along azimuth.
+
+
+
+
+ Azimuth Frequency Modulation (FM) rate list. This element is a list of azimuthFmRate records that contain the parameters needed to calculate the azimuth FM rate. The list contains an entry for each azimuth FM rate update made along azimuth.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 geolocation grid annotations.
+
+
+
+
+ Geolocation grid. This element is a list of geolocationGridPoint records which contains grid point entries for each line/pixel combination based on a configured resolution. The list contains an entry for each geolocation grid update made along azimuth.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 image product annotations.
+
+
+
+
+ Image information. This record contains the elements that describe the properties and characteristics of the image MDS.
+
+
+
+
+ Processing information. This record contains information describing the key options and parameters used by the IPF during image processing.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 quality summary annotations.
+
+
+
+
+ Overall product quality index. This annotation is calculated based on specific quality parameters and gives an overall quality value to the product. This parameter is TBD.
+
+
+
+
+ Quality data list. This element contains a list of qualityData records which contain the quality values and flags calculated and set during image processing. For individual scene and slice products there is one qualityData record in the list. For assembled products the list contains one qualityData record for each included in the assembled product.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 Level 1 swath merging information.
+
+
+
+
+ Merge information for IW and EW GRD products. This list contains one record per swath.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 swath timing annotations.
+
+
+
+
+ Number of range lines within each burst (constant for all bursts within the swath).
+
+
+
+
+ Number of range samples within each burst (constant for all bursts within the swath).
+
+
+
+
+ Burst list. This element contains a time ordered list of all the bursts within this swath. The list contains a burst record for each burst within this swath. This list is only applicable to IW and EW SLC products and has a length of zero for all others.
+
+
+
+
+
+
+ Annotation record for Sentinel-1 level 1 product annotations.
+
+
+
+
+ ADS header data set record. This DSR contains information that applies to the entire data set.
+
+
+
+
+ Quality information data set record. This DSR contains the quality flags and the values used to set them during image processing as well as the overall quality index.
+
+
+
+
+ General annotation data set record. This DSR contains information describing some key characteristics that apply to the entire L1 product. This includes annotations such as the sensing start and stop times, polarisation and swath. It also contains annotations derived from the input processing step including information extracted/calculated from the downlink data and raw data analysis (RDA) statistics.
+
+
+
+
+ Image annotation data set record. This DSR contains information describing the properties of the image MDS (such as data type and image dimensions) and the key parameters/options used during the processing of the image.
+
+
+
+
+ Doppler centroid data set record. This DSR contains information about the Doppler centroid values estimated and used during image processing.
+
+
+
+
+ Antenna pattern data set record. This DSR contains information describing the elevation antenna pattern and how it was applied by the IPF during image processing.
+
+
+
+
+ Swath timing data set record. This DSR contains the information about the bursts within the image MDS including the burst dimensions, burst timing and burst location. This DSR is specific to IW and EW SLC products.
+
+
+
+
+ Geolocation grid data set record. This DSR describes the geodetitic position of line/pixel combinations within the image MDS.
+
+
+
+
+ Coordinate conversion data set record. This DSR contains the annotations required to convert between the slant range and ground range coordinate systems.
+
+
+
+
+ Swath merging data set record. This DSR contains the annotations for interpreting the way in which IW or EW swaths were merged during GRD processing. The purpose of this DSR is to provide the information necessary to unambiguously identify the boundaries of each swath within the image MDS.
+
+
+
+
+
+
+ L1 Product root element.
+
+
+
diff --git a/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-quicklook.xsd b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-quicklook.xsd
new file mode 100644
index 0000000000000000000000000000000000000000..e4dfe6a4507447cf821b838cbed04b2029e7c446
--- /dev/null
+++ b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-level-1-quicklook.xsd
@@ -0,0 +1,9 @@
+
+
+
+
+
+ Comment describing your root element
+
+
+
diff --git a/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-map-overlay.xsd b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-map-overlay.xsd
new file mode 100644
index 0000000000000000000000000000000000000000..eb1bdc87166d6347343cc5bf02eeeb3ca5bd1e66
--- /dev/null
+++ b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-map-overlay.xsd
@@ -0,0 +1,10 @@
+
+
+
+
+
+
+
+
+
+
diff --git a/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-object-types.xsd b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-object-types.xsd
new file mode 100644
index 0000000000000000000000000000000000000000..cb6ddbd2e66455b53a33d19c6a356266d76a710a
--- /dev/null
+++ b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-object-types.xsd
@@ -0,0 +1,1632 @@
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned int SPF_ObjectTypes_AbsOrbitNumberType;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Absolute orbit number type.
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: INSERT
+/*
+ * XmlConvert function for the SPF_ObjectTypes_AdsHeaderType structure.
+ */
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_AdsHeaderType& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/missionId" );
+ if( XRW_Convert_Enum( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.missionId,
+ SPF_ObjectTypes_MissionIdTypeStringList,
+ SPF_ObjectTypes_MissionIdTypeStringListSize )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/productType" );
+ if( XRW_Convert_Enum( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.productType,
+ SPF_ObjectTypes_ProductTypeStringList,
+ SPF_ObjectTypes_ProductTypeStringListSize )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/polarisation" );
+ if( XRW_Convert_Enum( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.polarisation,
+ SPF_ObjectTypes_PolarisationTypeStringList,
+ SPF_ObjectTypes_PolarisationTypeStringListSize )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/mode" );
+ if( XRW_Convert_Enum( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.mode,
+ SPF_ObjectTypes_SensorModeTypeStringList,
+ SPF_ObjectTypes_SensorModeTypeStringListSize )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/swath" );
+ if( XRW_Convert_Enum( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.swath,
+ SPF_ObjectTypes_SwathTypeStringList,
+ SPF_ObjectTypes_SwathTypeStringListSize )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/startTime" );
+ if( XmlConvert( op, xmlTreeDescriptor, xmlFieldPath, value.startTime )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/stopTime" );
+ if( XmlConvert( op, xmlTreeDescriptor, xmlFieldPath, value.stopTime )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/absoluteOrbitNumber" );
+ if( XRW_Convert( op, xmlTreeDescriptor, xmlFieldPath, value.absoluteOrbitNumber )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/missionDataTakeId" );
+ if( XRW_Convert( op, xmlTreeDescriptor, xmlFieldPath, value.missionDataTakeId )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/imageNumber" );
+ if( XRW_Convert( op, xmlTreeDescriptor, xmlFieldPath, value.imageNumber, "%.3d" )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ Common header for all Annotation Data Sets. This record contains the three elements - polarisation, swath and imageNumber - used to identify Annotation Data Sets and link them to the appropriate Measurement Data Set.
+
+
+
+
+ Mission identifier for this data set.
+
+
+
+
+ Product type for this data set.
+
+
+
+
+ Polarisation for this data set.
+
+
+
+
+ Sensor mode for this data set. The sensorMode type are S1-S6, IW, EW, WV, and IM.
+
+
+
+
+ Swath identifier for this data set. This element identifies the swath that applies to all data contained within this data set. The swath identifier "EW" is used for products in which the 5 EW swaths have been merged. Likewise, "IW" is used for products in which the 3 IW swaths have been merged.
+
+
+
+
+ Zero Doppler start time of the output image [UTC].
+
+
+
+
+ Zero Doppler stop time of the output image [UTC].
+
+
+
+
+ Absolute orbit number at data set start time.
+
+
+
+
+ Mission data take identifier.
+
+
+
+
+ Image number. For WV products the image number is used to distinguish between vignettes. For SM, IW and EW modes the image number is still used but refers instead to each swath and polarisation combination (known as the 'channel') of the data.
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of the available AOCS operational mode from the pointing status in the downlink.
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of the available bandwidths for SAR signals in the timeline.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of BAQ/FDBAQ LUT index codes.
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid methods for combining calibration pulses.
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef int SPF_ObjectTypes_ChecksumType;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ CRC-16 Checksum type.
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of the available chirp schemes.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of the available PG schemes.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of compression method names. This enumeration is a consolidated list from the Sentinel-1 SPPDU document and the ENVISAT Product Specification.
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of Doppler centroid calculation/estimation methods.
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of Doppler centroid input data formats.
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned int SPF_ObjectTypes_EccNumberType;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ ECC number type.
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef int SPF_ObjectTypes_ImageNumberType;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Image number type. For WV products the image number is used to distinguish between vignettes. For SM, IW and EW modes the image number is still used but refers instead to each swath and polarisation combination (known as the 'channel') of the data.This value ranges from 001 to 999.
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned int SPF_ObjectTypes_MissionDataTakeIdType;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Mission data take identifier.
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid Sentinel-1 mission identifiers.
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of output pixel data types.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of the orbit pass direction values.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of the image projection.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of output pixel value interpretaion types.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid polarisations for the Sentinel-1 SAR instrument.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid composite polarisations used for product and data set naming: SH (Single HH), SV (Single VV), DH (Dual HH/HV), DV (Dual VV/VH), HH (Partial HH), HV (Partial HV), VV (Partial VV), VH (Partial VH).
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of value sources of orbit and attitude data. "Downlink" or "Auxiliary".
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of product composition indicators. The valid values are: "Individual", to indicate a full non-sliced product; "Slice", to indicate that this is a single slice of a larger product; and "Assembled", to indicate that this is a product that has been created by combining multiple slices.
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid processing levels.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid product classes: S (Standard Product), A (Annotation Product).
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid product class descriptions.
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid timeliness categories.
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid product types.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned int SPF_ObjectTypes_ProductUniqueIdType;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Product unique identifier (CRC-16 checksum on manifest file).
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid reference frames for orbit and attitude data.
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid RRF types.
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid receive polarisations.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid sensor mode abbreviations for the Sentinel-1 SAR instrument.
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid signal types for the Sentinel-1 SAR instrument.
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned int SPF_ObjectTypes_SwathNumberType;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Swath number from SPPDU.
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of all valid swath identifiers for the Sentinel-1 SAR instrument. The S1-S6 swaths apply to SM products, the IW and IW1-3 swaths apply to IW products (IW is used for detected IW products where the 3 swaths are merged into one image), the EW and EW1-5 swaths apply to EW products (EW is used for detected EW products where the 5 swaths are merged into one image), and the WV1-2 swaths apply to WV products. The EN, N1-N6 swaths apply to the Sentinel-1 notch modes used for instrument calibration. The RF swath applies to the Sentinel-1 RFC mode which is not processed by the IPF. The IS1-IS7 swaths apply to ASAR IM and WV products.
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef UTL_DateTime SPF_ObjectTypes_TimeType;
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_TimeType& value )
+{
+ UTL_DateTime_DateTimeString time;
+
+ switch( op )
+ {
+ case XRW_Convert_OpToXml:
+ {
+ if ( UTL_DateTime_Sprint( value,
+ UTL_DateTime_OutputFormat_CYMDTHMScu,
+ time )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_String( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ time,
+ UTL_DateTime_MaxDateTimeSize )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ break;
+ }
+ case XRW_Convert_OpFromXml:
+ {
+ if( XRW_Convert_String( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ time,
+ UTL_DateTime_MaxDateTimeSize )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if ( UTL_DateTime_Sscan( time,
+ UTL_DateTime_InputFormat_CYMDTHMScu,
+ &value )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ break;
+ }
+ default:
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ return UTL_Const_success;
+}
+
+ Time with respect to the specified reference time system. All times are with respect to UTC.
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of valid conventions for defining the TOPS ramping/de-ramping filter.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Transmit pulse number.
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of weighting windwow names.
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Enumeration of bi-static delay compensation methods.
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef bool SPF_ObjectTypes_Bool;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Boolean (true or false).
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef char SPF_ObjectTypes_String[SPF_ObjectTypes_StringLength];
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Character string containing up to 512 characters in UTF-8 encoding.
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned long SPF_ObjectTypes_UnsignedLong;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 64 bit unsigned integer.
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned int SPF_ObjectTypes_UnsignedInt;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 32 bit unsigned integer.
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: SKIP
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 16 bit unsigned integer.
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: SKIP
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 8 bit unsigned integer.
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: SKIP
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Extension of the integer data type to include an optional "units" attribute.
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: SKIP
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ Extension of the nonNegativeInteger data type to include an optional "units" attribute.
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef long SPF_ObjectTypes_Int64;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 64 bit signed integer.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned long long SPF_ObjectTypes_Uint64;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 64 bit unsigned integer.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef int SPF_ObjectTypes_Int32;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 32 bit signed integer.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned int SPF_ObjectTypes_Uint32;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 32 bit unsigned integer.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef short SPF_ObjectTypes_Int16;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 16 bit signed integer.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned short SPF_ObjectTypes_Uint16;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 16 bit unsigned integer.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef short SPF_ObjectTypes_Byte;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 8 bit signed byte.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef unsigned short SPF_ObjectTypes_Ubyte;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 8 bit unsigned byte.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef float SPF_ObjectTypes_Float;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 32 bit single precision floating point number.
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: typedef double SPF_ObjectTypes_Double;
+ CONVERT_FUNC_DEC: SKIP
+ CONVERT_FUNC_DEF: SKIP
+ 64 bit double precision floating point number.
+
+
+
+
+
+
+
+
+
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_Complex& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/re" );
+ if( XRW_Convert( op, xmlTreeDescriptor, xmlFieldPath, value.re )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/im" );
+ if( XRW_Convert( op, xmlTreeDescriptor, xmlFieldPath, value.im )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ 64 bit complex number consisting of a 32 bit single precision floating point real part and a 32 bit single precision floating point imaginary part.
+
+
+
+
+ 32 bit single precision floating point real number.
+
+
+
+
+ 32 bit single precision floating point imaginary number.
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: struct SPF_ObjectTypes_Uint64Array
+{
+ unsigned long count;
+ SPF_ObjectTypes_Uint64 values[SPF_ObjectTypes_MaxGroupedArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_Uint64Array& value )
+{
+ if ( op == XRW_Convert_OpToXml )
+ {
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if ( XRW_Convert_GroupedArray( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of 64 bit unsigned integer values separated by spaces. The mandatory count attribute defines the number of elements in the array.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: struct SPF_ObjectTypes_IntArray
+{
+ unsigned long count;
+ int values[SPF_ObjectTypes_MaxGroupedArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_IntArray& value )
+{
+ if ( op == XRW_Convert_OpToXml )
+ {
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_GroupedArray( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of int values separated by spaces. The mandatory count attribute defines the number of elements in the array.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: struct SPF_ObjectTypes_FloatArray
+{
+ unsigned long count;
+ float values[SPF_ObjectTypes_MaxGroupedArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_FloatArray& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_GroupedArray( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of float values separated by spaces. The mandatory count attribute defines the number of elements in the array.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: struct SPF_ObjectTypes_DoubleArray
+{
+ unsigned long count;
+ double values[SPF_ObjectTypes_MaxGroupedArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_DoubleArray& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_GroupedArray( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of double precision floating point values separated by spaces. The mandatory count attribute defines the number of elements in the array.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: const int SPF_ObjectTypes_MaxCoeffArrayLength = 22;
+struct SPF_ObjectTypes_FloatCoefficientArray
+{
+ unsigned long count;
+ float values[SPF_ObjectTypes_MaxCoeffArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_FloatCoefficientArray& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_GroupedArray( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of float coefficient values separated by spaces. The mandatory count attribute defines the number of elements in the array.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: struct SPF_ObjectTypes_DoubleCoefficientArray
+{
+ unsigned long count;
+ double values[SPF_ObjectTypes_MaxCoeffArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_DoubleCoefficientArray& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_GroupedArray( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of double precision floating point coefficient values separated by spaces. The mandatory count attribute defines the number of elements in the array.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: struct SPF_ObjectTypes_ComplexArray
+{
+ unsigned long count;
+ PTL_FComplex values[SPF_ObjectTypes_MaxGroupedArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_ComplexArray& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_GroupedArrayComplex( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of complex value pairs separated by spaces in the form of I Q I Q I Q ... The mandatory count attribute defines the number of complex elements in the array.
+
+
+
+
+
+
+
+
+
+
+ CONVERT_TYPE_DEC: const int SPF_ObjectTypes_MaxPatternArrayLength = 4500;
+struct SPF_ObjectTypes_FloatPatternArray
+{
+ unsigned long count;
+ float values[SPF_ObjectTypes_MaxPatternArrayLength];
+};
+ CONVERT_FUNC_DEC: INSERT
+inline int XmlConvert( XRW_Convert_Op op,
+ XRW_Convert_Tree* xmlTreeDescriptor,
+ const char* xmlPath,
+ SPF_ObjectTypes_FloatPatternArray& value )
+{
+ if( op == XRW_Convert_OpToXml )
+ {
+ if( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlPath )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+ }
+
+ char xmlFieldPath[XRW_Convert_MaxStringLength + 1];
+ sprintf( xmlFieldPath,
+ "%s%s",
+ xmlPath,
+ "/@count" );
+ if ( XRW_Convert( op,
+ xmlTreeDescriptor,
+ xmlFieldPath,
+ value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ if( XRW_Convert_GroupedArray( op,
+ xmlTreeDescriptor,
+ xmlPath,
+ value.values,
+ (int)value.count )
+ != UTL_Const_success )
+ {
+ return UTL_Const_failure;
+ }
+
+ return UTL_Const_success;
+}
+
+ CONVERT_FUNC_DEF: SKIP
+ String containing an array of up to 4500 float values separated by spaces. The mandatory count attribute defines the number of elements in the array.
+
+
+
+
+
+
+
+
+
diff --git a/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-product-preview.xsd b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-product-preview.xsd
new file mode 100644
index 0000000000000000000000000000000000000000..11dd98fbb0117d4338f793c7521e73cbda23509d
--- /dev/null
+++ b/CDSE_SAR/CDSE_download_Iwaki_Koriyama/S1B_IW_SLC__1SDV_20191012T204221_20191012T204249_018447_022C0C_9351.SAFE/support/s1-product-preview.xsd
@@ -0,0 +1,9 @@
+
+
+
+
+
+ Comment describing your root element
+
+
+