Lake level variations from satellite radar altimetry with retracking of multi-leading edge

Similar documents
Interannual variability of the lake levels in northwest Russia based on satellite altimetry

A Factor of 2-4 Improvement in Marine Gravity and Predicted Bathymetry from CryoSat, Jason-1, and Envisat Radar Altimetry: Arctic and Coastal Regions

WATER LEVEL CHANGES OF NAM-CO LAKE BASED ON SATELLITE ALTIMETRY DATA SERIES

GLOBAL WAVEFORM SHAPE ANALYSIS FOR THE DETECTION AND MONITORING OF EPHEMERAL SURFACE WATER

Studies of Austfonna ice cap (Svalbard) using radar altimetry with other satellite techniques

CONTINENTAL freshwater runoff or discharge, as well

RAIES: ENVISAT RA2 INDIVIDUAL ECHOES AND S-BAND DATA FOR NEW SCIENTIFIC APPLICATIONS FOR OCEAN, COASTAL, LAND AND ICE REMOTE SENSING

S3 Product Notice Altimetry

River and Lake Level data from Radar Altimetry in Support of the Tiger Initiative

TECH NOTE. New Mean Sea Surface for the CryoSat-2 L2 SAR Chain. Andy Ridout, CPOM, University College London

Nuisance Flooding and Relative Sea-Level Rise: The Importance of Present-Day. Land Motion

Inter-tropical Convergence Zone (ITCZ) analysis using AIRWAVE retrievals of TCWV from (A)ATSR series and potential extension of AIRWAVE to SLSTR

High resolution geoid from altimetry & bathymetry: requirements for a future mission

HY-2A Satellite User s Guide

Using Remote-sensed Sea Ice Thickness, Extent and Speed Observations to Optimise a Sea Ice Model

GNSS reflectometry aboard the International Space Station GEROS-ISS: Numerical simulation of expected observation coverage

1 The satellite altimeter measurement

Gravity Anomaly and Satellite Altimetry in the China Seas: Applications to Geodynamics

Potential of ENVISAT Radar Altimetry for Water Level Monitoring in the Pantanal Wetland

Treating the Hooking Effect in Satellite Altimetry Data: A Case Study along the Mekong River and Its Tributaries

A Factor of 2-4 Improvement in Marine Gravity and Predicted Bathymetry from CryoSat, Jason-1, and Envisat Radar Altimetry: Arctic and Coastal Regions

Journal of Applied Geophysics

Analysis of Doppler signals from nadir altimeters over ocean. F. Boy (CNES)

CryoSat Monthly Quality Report #93

Determination of Marine Gravity Anomalies in the Truong Sa Archipelago s Sea Territory Using Satellite Altimeter Data

Hydrological balance in the large Russian river basins from GRACE satellites

The ICESat 2 Mission Laser altimetry of ice, clouds and land elevation

Missions for Hydrology and the River&Lake Project

Optimizing σ 0 information from the Jason-2 altimeter

SNOW DEPTH AND SURFACE CONDITIONS OF AUSTFONNA ICE CAP (SVALBARD) USING FIELD OBSERVATIONS AND SATELLITE ALTIMETRY

Vertical Motion from Satellite Altimetry and Tide gauges

SATELLITE ALTIMETRY AND HYDROLOGIC MODELING OF POORLY-GAUGED TROPICAL WATERSHED

GOCE DATA PRODUCT VERIFICATION IN THE MEDITERRANEAN SEA

Preliminary results of ENVISAT RA-2-derived water levels validation over the Amazon basin

More than 60% of the Earth s land and shallow

Active microwave systems (2) Satellite Altimetry * the movie * applications

Ice sheet mass balance from satellite altimetry. Kate Briggs (Mal McMillan)

LEGOS Altimetric Sea Ice Thickness Data Product v1.0

SSH retrieval in the ice covered Arctic Ocean: from waveform classification to regional sea level maps

AN ASSESSMENT OF SATELLITE ALTIMETRY IN PROXIMITY OF THE MEDITERRANEAN COASTLINE

Presented at the FIG Congress 2018, May 6-11, 2018 in Istanbul, Turkey

Comparison of Mean Sea Surface Data For Oceanography

Stacked Global Satellite Gravity Proles. Mara M. Yale. Institution of Oceanography, David T. Sandwell. (Submitted to Geophysics: May 6, 1998) ABSTRACT

Satellite Altimetry for Geodesy, Geophysics and Oceanography

Coastal Altimetry: recent developments and proposed use in the Agulhas region. Paolo Cipollini (NOCS, UK)

PLEASE SCROLL DOWN FOR ARTICLE

GLOBAL SCALE EVALUATION OF WETLANDS USING THE ENVISAT RA-2 (1)

P. Cipollini, H. Snaith - A short course on Altimetry. Altimetry 2 - Data processing (from satellite height to sea surface height)

S3-A Land and Sea Ice Cyclic Performance Report. Cycle No Start date: 21/04/2017. End date: 18/05/2017

ON THE ACCURACY OF CURRENT MEAN SEA SURFACE MODELS FOR THE USE WITH GOCE DATA

Aquarius Data Release V2.0 Validation Analysis Gary Lagerloef, Aquarius Principal Investigator H. Kao, ESR And Aquarius Cal/Val Team

Interannual trends in the Southern Ocean sea surface temperature and sea level from remote sensing data

Recovering climate-quality coastal sea level measurements from satellite altimetry!

Lecture: Inland Altimetry I

Validation Report: WP5000 Regional tidal correction (Noveltis)

Satellite ALTimetry. SALT applications and use of data base for SE-Asia region. SEAMERGES kick-off meeting, Bangkok, Thailand.

S3-A Land and Sea Ice Cyclic Performance Report. Cycle No Start date: 30/09/2017. End date: 27/10/2017

D2.1 Product Validation Plan (PVP)

ESA Sea Level Climate Change Initiative. Sea Level CCI project. Phase II 1 st annual review

Satellite Altimetry and Earth Sciences

TIDE GAUGE AND SATELLITE ALTIMETRY INTEGRATION FOR STORM SURGE PREDICTION

Cross-calibrating ALES Envisat and CryoSat-2 Delay-Doppler: A coastal altimetry study in the Indonesian Seas,

ALES dataset in OpenADB

China France. Oceanography S A T. The CFOSAT project. e l l i t e. C. Tison (1), D. Hauser (2), A. Mouche (3) CNES, France (2)

COASTALT: Improving radar altimetry products in the oceanic coastal area

ACHIEVING THE ERS-2 ENVISAT INTER-SATELLITE INTERFEROMETRY TANDEM CONSTELLATION.

Earth-Oriented Space Research at TU-Delft

The COASTALT Project: Towards an Operational use of Satellite Altimetry in the Coastal Zone

Coastal Altimetry products in the Strait of Gibraltar

Cryosat-2 SAR altimetry processing and use in the Arctic Ocean. Ole Andersen, M. Jain & Lars Stenseng

A global high resolution mean sea surface from multi mission satellite altimetry

Current state of art of satellite altimetry

Thermal And Near infrared Sensor for carbon Observation (TANSO) onboard the Greenhouse gases Observing SATellite (GOSAT) Research Announcement

SATELLITE RADAR ALTIMETRY FOR INLAND HYDROLOGIC STUDIES

Hydrological Mass Variations due to Extreme Weather Conditions in Central Europe from Regional GRACE 4D Expansions

DERIVATION OF SEA LEVEL ANOMALY USING SATELLITE ALTIMETER. Ami Hassan Md Din, Kamaludin Mohd Omar

Study of Sea Level Variation of Exclusive Economic Zone of Malaysia. Universiti Teknologi Malaysia Skudai, Johor

SLR-based orbit determination and orbit prediction of space debris objects

New satellite mission for improving the Terrestrial Reference Frame: means and impacts

Sentinel 3A Product Notice STM L2 Marine

S3MPC STM Annual Performance Report - Year 1

Report from CNSA 16th GSICS Executive Panel, Boulder, May 2015

REGIONAL VALIDATION OF RETRACKED SEA LEVELS FROM SARAL/ALTIKA OVER THE SOUTH CHINA SEA AND ADJACENT SEAS

QUINC2. Harvest MNPEAK MCDON4 MAZTLN HOLLAS

Product Validation Report Polar Ocean

The KMS04 Multi-Mission Mean Sea Surface.

Satellite Geodesy and Navigation Present and Future

Exploiting radar power to study oceans and climate: the rise and prospects of satellite altimetry

Using satellite altimetry and tide gauges for storm surge warning

Contribution of non-tidal oceanic mass variations to Earth rotation determined from space geodesy and ocean data

Maryland, College Park, Maryland, USA b SGT, NASA/Goddard Space Flight Center, Greenbelt, Maryland, USA. Published online: 09 Aug 2010.

A Mission to Planet Mars Gravity Field Determination

Evaluation of Tides from TOPEX/Poseidon in the Bohai and Yellow Seas *

The Global Geodetic Observing System (GGOS) of the International Association of Geodesy, IAG

Sentinel-3A Product Notice STM L2 Marine ( Spring-2018 Reprocessing Campaign )

Long term performance monitoring of ASCAT-A

INVESTIGATION HYDROMETEOROLOGICAL REGIME OF THE WHITE SEA BASED ON SATELLITE ALTIMETRY DATA

Satellite Oceanography and Applications 2: Altimetry, scatterometry, SAR, GRACE. RMU Summer Program (AUGUST 24-28, 2015)

Cotidal Charts near Hawaii Derived from TOPEX/Poseidon Altimetry Data

Sentinel-3A Product Notice STM L2 Marine (NRT, STC and NTC)

Transcription:

Lake level variations from satellite radar altimetry with retracking of multi-leading edge Shirzad Roohi (shirzad.roohi@gis.uni-stuttgart.de) and Nico Sneeuw University of Stuttgart, Germany Institute of Geodesy Geodätische Woche, Essen, Germany 2013

Why waveform retracking? Improve the quality of water level measurements Increase the number of reliable observations particularly in the shoreline and shallow water 38.4 Sub satellite points Water level time series and fitting the trend to the all values Ascending tracks Ascending tracks 38.2 38 tracks 178 Latitude [deg] 37.8 37.6 In situ Gauge Descending tracks Residual = 42 cm Descending tracks 37.4 37.2 tracks 371 37 44.9 45 45.1 45.2 45.3 45.4 45.5 45.6 45.7 45.8 45.9 Longitude [deg] Residual = 83 cm Lake level variations from satellite radar altimetry with retracking of multi-leading edge 1

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 2 RADAR principle http://www.altimetry.info

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 3 How can we have more precise water level measurements? Increasing precision of range measurements Use more precise range correction, e.g. corrections included in GDRs waveform retracking, i.e. calculate another range correction from SGDRs R retracking = (G r G 0 ) c 2 τ G r : retracked gate, G 0 : nominal retracking gate, c: light velocity, τ: pulse duration

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 4 Waveform retracking techniques Conventional retrackers Onboard retracker (Ice-1/2 and Sea-ice) Offset Center Of Gravity (OCOG) Threshold β- parameters Unconventional retrackers Multi-leading edge Modified waveform

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 5 Data and area of study RA2 Geophysical and Sensor Data Records, i.e. RA2 GDRs and RA2 SGDRs of Envisat satellite altimetry from cycle 6 to cycle 113 Envisat satellite ground tracks from cycle 92

Conventional retrackers Onboard retrackers: Water level from RA2 GDRs data using median values of water level in each satellite over pass in Ice-1 retracker algorithm Water level from median values of all satellite tracks and fitting a trend 1275.5 1273.5 1273.5 1271.5 1271.5 Residual = 27 cm 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 ) ) h(t i ) = a + bt i + ct 2 i + dsin ( 2π T t i + ecos( 2π T t i a, b, c, d and e are unknown parameters to be estimated. T is the annual period and h is the observed water height. Lake level variations from satellite radar altimetry with retracking of multi-leading edge 6

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 7 Conventional retrackers OCOG Threshold Water level time series from combined ascending and descending tracks 1275 Water level time series from combined ascending and descending tracks 1275.5.5 1273.5 1273.5 1273.5 1273.5 1271.5 1271.5 1271 1271.5 Residual = 27 cm.5 Residual = 15 cm 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 8 Unconventional retrackers Multi-leading edge 10000 9000 8000 7000 6000 Power 5000 4000 3000 2000 1000 0 0 20 40 60 80 100 120 140 Gate

Unconventional retrackers Multi-leading edge Water level time series from combined ascending and descending tracks 1275.5 1273.5 1273.5 1271.5 1271.5 Residual = 14 cm 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 Lake level variations from satellite radar altimetry with retracking of multi-leading edge 9

Comparing different retrackers Onboard retracker Other retrackers Water level time series and fitting the trend to the all values Water level time series based on Threshold 10 % retracker Ascending tracks Ascending tracks Ascending track Ascending track Residual = 42 cm Residual = 59 cm Descending tracks Descending tracks Descending track Dscending track Residual = 83 cm Residual = 74 cm Lake level variations from satellite radar altimetry with retracking of multi-leading edge 10

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 11 Comparing different retrackers Water level standard deviation from different retrackers retracker standard deviation (cm) improvement Ice-1 27 OCOG 27 0 % Threshold 10 18 33 % Threshold 20 15 44 % Threshold 50 17 37 % Multi-leading edge 14 48 % Improvement = σ Ice 1 σ Ret σ Ice 1 100 %

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 12 Along track waveform variations First ascending pass-jun 2002 Last ascending pass- Sep 2010 x 10 4 120 3 120 4000 3500 100 2.5 100 3000 80 2 80 2500 Gate 60 1.5 Gate 60 2000 40 1 40 1500 1000 20 0.5 20 500 37.2 37.4 37.6 37.8 38 38.2 Latitude [deg] 0 37.2 37.4 37.6 37.8 38 38.2 Latitude [deg] 0

Validation OCOG Threshold Water level anomaly from satellite and in situ gauge measurements 0.6 0.4 Satellite In situ gauge Water level anomaly from satellite and in situ gauge measurements 0.6 0.4 Satellite In situ gauge 0.2 0.2 Water level anomaly [m] 0 0.2 Water level anomaly [m] 0 0.2 0.4 0.4 0.6 0.6 RMS = 41 cm RMS = 23 cm 0.8 2002 2002.5 2003 2003.5 2004 2004.5 2005 0.8 2002 2002.5 2003 2003.5 2004 2004.5 2005 Lake level variations from satellite radar altimetry with retracking of multi-leading edge 13

Validation Multi-leading edge Water level anomaly from satellite and in situ gauge measurements 0.6 0.4 Satellite In situ gauge 0.2 Water level anomaly [m] 0 0.2 0.4 0.6 RMS = 26 cm 0.8 2002 2002.5 2003 2003.5 2004 2004.5 2005 Lake level variations from satellite radar altimetry with retracking of multi-leading edge 14

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 15 Conclusion Obviously waveform retracking techniques can improve the quality of altimetry data. Due to the land and environmental effects on the return echoes to the altimeter particularly in the shoreline the waveform retracking is necessary. The quality of water level is dependent on the waveform retracking techniques. According to the result of data processing using both RA2 GDR and RA2 MWS (SGDRs) of Envisat, multi-leading edge and threshold 20 % retrackers outperform the other retackers to determine water level variations of Urmia lake.

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 16 Works under way Continuing waveform retracking using: β parameter Modified waveform

Thank you for your attention Lake level variations from satellite radar altimetry with retracking of multi-leading edge 17

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 18 References F. Frappart, S. Calmant, M. Cauhopé, F. Seyler and A. Cazenave, 2006, Preliminary results of Envisat RA-2 derived water levels validation over the Amazon basin. Remote sensing of environment 100, 2, 252 264. G. J. Yun, C. Xiaotao, G. Y. Gang, S.Jialong and H. C. Way, 2009, Lake level variations monitored with satellite altimetry waveform retracking, Ieee journal of selected topics in applied earth observations and remote sensing, 2, 2, 80 86. G. J. Yun, G. Y. Gang, H. C. Way, and S. J. Long, 2009, A multi-subwaveform parametric retracker of the radar satellite altimetric waveform and recovery of gravity anomalies over coastal oceans, Science China, Earth Sciences, 53, 4, 610 616. G. J. Yun, H. C. Way, C. Xiaotao and L. Yuting, 2006, Improved threshold retracker for satellite altimeter waveform retracking over coastal sea, Progress in natural science, 16, 7.

Lake level variations from satellite radar altimetry with retracking of multi-leading edge 19 References H. Lee, C.K. Shum, K. H. Tseng, J. Y. Guo and C. Y. Kuo, 2010, Present-day lake level variation from Envisat altimetry over the northeastern Qinghai-Tibetan plateau: links with precipitation and temperature, Terr. Atmos. Ocean. Sci 22, 2, 169 175. J. F. Crétaux and C. Birkett, 2006, Lake study from satellite radar altimetry, International Geophysics (Applied Geophysics) 338, 14, 1098 1112. J. S. Silva, S. Calmant, F. Seyler, O. Corrêa, R. Filho, G. Cochonneau and W. J. Mansur, 2010, Water levels in the Amazon basin derived from the ERS 2 and Envisat radar altimetry missions, Remote sensing of environment 114, 10, 2160 2181. Y. Yuchan, A. V. Kouraev, C.K. Shum, V. S. Vuglinsky, J. F. Crétaux and S. Calmanti, 2012, The performance of altimetry retrackers at lake Baikal, Terr. Atmos. Ocean. Sci 24, 4.