Thomas E. Workoff 1,2, Faye E. Barthold 1,3, Michael J. Bodner 1, Brad Ferrier 3,4, Ellen Sukovich 5, Benjamin J. Moore 5±, David R. Novak 1, Ligia Bernardet.

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Thomas E. Workoff 1,2, Faye E. Barthold 1,3, Michael J. Bodner 1, Brad Ferrier 3,4, Ellen Sukovich 5, Benjamin J. Moore 5±, David R. Novak 1, Ligia Bernardet 5, Tom Hamill 6, Gary Bates 5, and Wallace A. Hogsett 1 1 NOAA/NWS/Weather Prediction Center, College Park, MD 2 Systems Research Group, Inc., Colorado Springs, CO 3 I.M. Systems Group, Inc., Rockville, MD 4 NCEP/Environmental Modeling Center, Camp Springs, Maryland 5 CIRES/University of Colorado/NOAA Earth Systems Research Laboratory, Boulder, CO 6 Physical Sciences Division, NOAA/Earth System Research Laboratory, Boulder, CO ± Current affiliation: Department of Earth and Atmospheric Sciences, SUNY Albany, Albany, NY

Accelerate the transfer of scientific and technological innovations into operations to enhance WPC products and services. HMT-WPC: What do we do? WPC Mission Statement: A leader in the collaborative weather forecast process delivering responsive, accurate, and reliable national forecasts and analyses.

R2O at WPC: How it Really Works Three-step transition process: 1. Identify/develop and test new datasets, models and techniques -NAM Rime Factor Snowfall, ExREF, 2 nd Generation Reforecast Data -Test in forecast experiments -Winter Weather Experiment -Atmospheric River Retrospective Forecasting Experiment (ARRFEX) -Flash Flood and Intense Rainfall Experiment

R2O at WPC: How it Really Works Three-step transition process: 1. Identify/develop and test new datasets, models and techniques -NAM Rime Factor Snowfall, ExREF, 2 nd Generation Reforecast Data -Test in forecast experiments -Winter Weather Experiment -Atmospheric River Retrospective Forecasting Experiment (ARRFEX) -Flash Flood and Intense Rainfall Experiment 2. Subjective and objective evaluation: does it provide value in the forecast process? -Does it help the forecaster make a better forecast?

How accurate was your forecast? Did the experimental guidance provide any benefit? Impressions? Feedback? How can we improve it? A Penny for Your Thoughts?

R2O at WPC: How it Really Works Three-step transition process: 1. Identify/develop and test new datasets, models and techniques -NAM Rime Factor Snowfall, ExREF, 2 nd Generation Reforecast Data -Test in forecast experiments -Winter Weather Experiment -Atmospheric River Retrospective Forecasting Experiment (ARRFEX) -Flash Flood and Intense Rainfall Experiment 2. Subjective and objective evaluation: does it provide value in the forecast process? -Does it help the forecaster make a better forecast? 3. Operational training and implementation -Establish dependable data format, data feed, train forecasters on most effective uses, etc.

Goal: Improve Snowfall Forecasts: NAM Rime Factor-Modified Snowfall  Model snowfall forecasts are often, um, uninspiring….  Instantaneous process: QPF x ptype x SLR = snowfall  Modifies Roebber* SLR (courtesy of Brad Ferrier, EMC) Rime Factor (instantaneous) – indicates amount of growth of ice particles by riming and liquid water accretion Percent Frozen QPF (instantaneous) – percent of precipitation reaching the ground that is frozen 1 < RF < ~2 no change to Roebber SLR ~2 < RF < ~5 Roebber SLR reduced by factor of 2 ~5 < RF < ~20 Roebber SLR reduced by factor of 4 RF > ~20 Roebber SLR reduced by factor of 6 *Roebber, P. J., S. L. Bruening, D. M. Schultz, and J. V. Cortinas, 2003: Improving snowfall forecasting by diagnosing snow density. Wea. Forecasting, 18,

Example: January 17-18, 2013 NAM Roebber SnowfallNAM Rime Factor NAM Rime Factor SLR NAM RF-modified Snowfall

What we learned in 2013 WWE:  Overall favorable reception Rime factor, percent frozen precip, SLR modification Helps identify areas where precipitation-type could be a concern  Main drawbacks: Only applied to the NAM (and its QPF) Resolution differences made comparison to standard NAM Roebber snowfall difficult  Going forward: Apply it to SREF or GFS? Combine snowfall forecast with land use parameterization  potentially improve accumulation forecasts(?)

Goal: Improve Predictive Skill of Extreme Precipitation Events  ESRL/PSD 2 nd Generation Reforecast Dataset 2 nd generation GEFS (version 9.0.1); members plus control run; archive 00Z initializations Ranked analog PQPF and deterministic QPF Hamill and Whitaker (2006): reforecast dataset an improvement on operational guidance (PQPF) Evaluated in 2012 Atmospheric River Forecasting Experiment (ARRFEX)  ESRL/GSD Experimental Regional Ensemble Forecasting system (ExREF) Multi-physics, multi-initial condition, multiple boundary condition convection allowing ensemble 9 km resolution Evaluated in ARRFEX and 2013 Flash Flood and Intense Rainfall Experiment

Example: How did they perform?  Forecasters reacted favorably to the reforecast dataset in ARRFEX, particularly in its ability to identify areas at risk for heavy precipitation at mid-range lead times  Forecasters also found the ExREF helpful in ARRFEX and noted it showed promise in FFaIR  Potential of hi-res ensembles, difficult to produce desired dispersion at short lead times  Reforecast deemed ‘most helpful’ in 6 cases

Implementation: WPC/ESRL R20 Process for the ExREF

Where We Stand Today….  Rime Factor (NAM) available to forecasters Undergoing additional testing in 2014 WWE ○ Expanded to SREF snowfall  ExREF available in operations to forecasters Winter weather parameters being evaluated in 2014 WWE Plans to include it in 2014 FFaIR  Reforecast data available to forecasters Deterministic QPF, PQPF Evaluated in WWE, prototype Day 4-7 NAM RF Snowfall ExREF SnowfallReforecast PQPF

What You Should Take Away…  WPC-HMT continually works with colleagues to investigate ways to improve WPC operations A Few Examples: Ensemble Sensitivity Tool (SUNY Stonybrook)Storm Scale Ensemble of Opportunity (SPC) SREF parallel (EMC)Ensemble Clustering (EMC) AFWA High-Resolution Ensemble (AFWA)HMT-Ensemble (ESRL/HMT) GEFS 2 nd Generation Reforecast Dataset (ESRL)NAM Rime-Factor Modified Snowfall (EMC)  For the WPC, testing in the operational setting is imperative  Experiments  it’s not just about objective scores  Implementation can be a big hurdle TEST  EVALUATE  TRAIN AND IMPLEMENT Beneficial  Efficient  IT Compatible  Dependable