Ahmad Jan
flowchart A[Ahmad Jan] AC["Associated Concepts (24)"] AW["Authored Works (9)"] CA["Linked Co-Authors (9)"] CI["Linked Collaborating Institutions (9)"] A== dcterms:relation ==>AC AW== author ==>A AW== author ==>CA AW== affil ==>CI click AC "#associated-concepts" click AW "#authored-works" click CA "#co-authors" click CI "#collaborating-institutions" NI["add incoming edge"] NO["add outgoing edge"] NI-- ? -->A A-- ? -->NO click NI "#add-incoming-edge" click NO "#add-outgoing-edge" style NI stroke-width:2px,stroke-dasharray: 5 5 style NO stroke-width:2px,stroke-dasharray: 5 5
- ORCiD
- https://orcid.org/0000-0003-2781-7857
- OpenAlex ID
- https://openalex.org/A5062964972 (API record)
Associated Concepts [?]
- Engineering
- Physics
- Biology
- Geology
- Mathematics
- Computer science
- Geography
- Ecology
- Quantum mechanics
- Geotechnical engineering
- Environmental science
- Permafrost
- Oceanography
- Chemistry
- Thermodynamics
- Organic chemistry
- Mathematical analysis
- Machine learning
- Artificial intelligence
- Medicine
- Materials science
- Groundwater
- Composite material
- Hydrology (agriculture)
Authored Works
sorted by decreasing year, and then by display-name
- Warming or Cooling? The Impact of Extreme Summer Rainfall on Permafrost Soils
- Model performance of high flow events using a heterogeneous land surface configuration
- Layered Green-Ampt with Redistribution: an efficient, accurate and reliable approximation of the Richards/Richardson equation
- Fitting GIUH Probability Distributions to Observed Data Using Scalar Values to Facilitate Hydrologic Model Calibration
- Exploring the Benefits of Machine Learning: Improving Stormflow Predictions using Long Short-Term Memory Networks
- Evaluating Soil Freeze Thaw Approaches for Hydrologic Models Using the Next Generation Water Resources Modeling Framework
- Deploying Coupled Snow and Runoff Models in the Next Generation Water Resources Modeling Framework
- Coupled Process Simulations Indicate that Subsidence Will Accelerate Permafrost Thaw and Lead to Drier Tundra
- Toward more mechanistic representations of biogeochemical processes in river networks: Implementation and demonstration of a multiscale model
Linked Co-Authors
- Alexandra Hamm
- Andrew Frampton
- Ethan T. Coon
- Jonathan Frame
- Julie D. Jastrow
- K. S. Jennings
- N. Frazier
- S. D. Peckham
- S. L. Painter
Linked Collaborating Institutions
- Argonne National Laboratory, Illinois
- California State University, Monterey Bay
- National Center for Atmospheric Research, Colorado
- National Oceanic and Atmospheric Administration, Washington
- Oak Ridge National Laboratory, Tennessee
- Stockholm University
- University of Colorado, Boulder
- University of Nevada, Reno
- Wageningen University, Netherlands
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