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Find similar grantsSupporting Research at the Intersection of Agricultural Science, Big Data, Informatics, and Smart Communities is sponsored by National Science Foundation (NSF) and U.S. Department of Agriculture's National Institute of Food and Agriculture (USDA/NIFA). This opportunity supports mission-aligned projects and measurable outcomes.
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Supporting Research at the Intersection of Agricultural Science, Big Data, Informatics, and Smart Communities, a joint effort between NSF and the U.S. Department of Agriculture's National Institute of Food and Agriculture (USDA/NIFA) | NSF - U.S. National Science Foundation Important information for proposers and award recipients All proposals must be submitted in accordance with the requirements specified in the funding opportunity and in the Proposal & Award Policies & Procedures Guide (PAPPG) and its supplements .
All NSF grants and cooperative agreements are subject to the applicable set of NSF award terms and conditions . NSF has updated its research security policies for NSF funded projects.
Supporting Research at the Intersection of Agricultural Science, Big Data, Informatics, and Smart Communities, a joint effort between NSF and the U.S. Department of Agriculture's National Institute of Food and Agriculture (USDA/NIFA) Encourages proposals that combine methods in agricultural, biological, and computer and information science and engineering to address pressing challenges in digital agriculture.
Encourages proposals that combine methods in agricultural, biological, and computer and information science and engineering to address pressing challenges in digital agriculture.
Building on NSF's history of investments in data and computational sciences and USDA/NIFA's history of investments in agricultural science, NSF and USDA/NIFA wish to notify the community of our intention to jointly fund convergent research that combines methods in agricultural, biological, and computer and information science and engineering to address pressing challenges and opportunities in digital agriculture.
This Dear Colleague Letter (DCL) is aligned with NSF's Harnessing the Data Revolution Big Idea, and aims to build capacity across disciplinary boundaries, in preparation for larger scale investments at the intersection of computational, agricultural, and biological sciences.
Motivated by the increasing volumes of data, faster computation, and algorithmic advances, there is an opportunity to apply transformative, data-driven research methods to the agriculture sector that are responsive to and will yield meaningful insights for farmers, other stakeholders, and society at large.
Of interest for this DCL are applications focused on economically important plants, animals, and their environments—in particular food, fuel, feed, and health—and where research outcomes in a particular application area may be transferable to, or informative for, other agricultural application areas.
Relevant stakeholders can be integrated into the proposed research activities, including as partners in the project, if appropriate for the project.
Specific topics of interest include, but are not limited to, the following: Methods for analyzing existing, large datasets, such as artificial intelligence, machine learning, and computer vision, for example, leveraging environmental, imaging, and genomic data; Models for genetic x environment x management x socioeconomic interactions (G x E x M x S) in order to predict livestock, aquaculture, and plant phenotypic outcomes and sustainability—such as yield, survivability, resistance to environmental stressors, pest resistance, drought resistance, and nutritional value; Data storage, management, and integration across a range of data types to enable a systems-level approach, including integration of big data in real-time systems; Wired and wireless networking challenges in rural settings, including computation at the edge; Security, privacy, and management for access and sharing of farm and community data; and Learning science innovations, which may include development of computational skills for biological and agricultural science majors, and communities of agricultural practice for a diverse and innovative future workforce.
Principal Investigators may also consider the design of instructional materials or workforce development pathways, combining computational and agricultural expertise, in the broader impacts of proposals.
The intention is to encourage students in biological, agricultural and engineering programs in two – or four-year colleges and universities, across all education levels, to acquire data and/or computational science skills and, vice versa, to expose students in data and/or computational science to agricultural challenges. Additionally, activities could aim to improve retention and capabilities of a region's agricultural workforce.
Proposals pursuant to this DCL may be submitted to one of the three programs listed below: Cyber-Physical Systems (CPS) program; Information and Intelligent Systems (IIS): Core Programs —Information Integration and Informatics (III) program; and Smart and Connected Communities (S&CC) program.
Proposals must follow the guidance contained in NSF's Proposal and Award Policies and Procedures Guide (PAPPG) , the corresponding solicitation and that is described here. All proposals pursuant to this DCL must include the prefix "DATAg:" following the title prefixes required in each solicitation, where appropriate. Additionally, researchers are encouraged to leverage existing agriculture data sets.
Data and code resulting from funded work is expected to be adequately characterized, readily accessible and usable, and stored in a safe environment with adequate measures taken for long-term preservation in specific repositories and catalogs, as appropriate, as well as with consideration for protection of confidentiality, personal privacy, and proprietary interests.
For more information, including questions about this DCL, please contact: Sylvia Spengler, NSF/CISE, (703) 292-8930, sspengle@nsf. gov ; David Corman, NSF/CISE, (703) 292-8754, dcorman@nsf. gov ; Cliff Weil, NSF/BIO, (703) 292-8712, cweil@nsf.
gov ; and Charlotte Kirk Baer, USDA/NIFA, (202) 445-3426, cbaer@nifa. usda.
gov. Assistant Director, Computer and Information Science and Engineering, NSF Assistant Director, Biological Sciences, NSF Director, National Institute of Food and Agriculture, USDA Division of Integrative Organismal Systems (BIO/IOS) Directorate for Biological Sciences (BIO) Division of Computer and Network Systems (CISE/CNS) Division of Information and Intelligent Systems (CISE/IIS) Directorate for Computer and Information Science and Engineering (CISE)
According to the current listing, eligibility includes: Projects must be inherently interdisciplinary, combining expertise in mathematics, engineering, computer science, and biomedical domains. Collaborative projects across multiple organizations are encouraged. Confirm the full requirements in the official notice before applying.
The current listing shows up to $1,000,000 for collaborative projects over up to 3 years. Verify award ceilings, matching requirements, and allowable costs in the official notice.
Supporting Research at the Intersection of Agricultural Science, Big Data, Informatics, and Smart Communities is funded by National Science Foundation (NSF) and U.S. Department of Agriculture's National Institute of Food and Agriculture (USDA/NIFA). Verify program details on the funder's official page before applying.
Start from the official opportunity page linked in this listing — it carries the sponsor's submission instructions.
MGPV Travel Grant is sponsored by Geological Society of America (GSA), Mineralogy, Geochemistry, Petrology, Volcanology Division. MGPV Travel grants support student travel to the annual GSA meeting. Applications are restricted to active graduate or undergraduate students who are the presenting authors of an accepted abstract at the annual GSA meeting.
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