10 datasets found
  1. NASS - Quick Stats

    • agdatacommons.nal.usda.gov
    bin
    Updated Nov 30, 2023
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    USDA National Agricultural Statistics Service (2023). NASS - Quick Stats [Dataset]. https://agdatacommons.nal.usda.gov/articles/dataset/NASS_-_Quick_Stats/24660792
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    binAvailable download formats
    Dataset updated
    Nov 30, 2023
    Dataset provided by
    National Agricultural Statistics Servicehttp://www.nass.usda.gov/
    United States Department of Agriculturehttp://usda.gov/
    Authors
    USDA National Agricultural Statistics Service
    License

    U.S. Government Workshttps://www.usa.gov/government-works
    License information was derived automatically

    Description

    The Quick Stats Database is the most comprehensive tool for accessing agricultural data published by the USDA National Agricultural Statistics Service (NASS). It allows you to customize your query by commodity, location, or time period. You can then visualize the data on a map, manipulate and export the results as an output file compatible for updating databases and spreadsheets, or save a link for future use. Quick Stats contains official published aggregate estimates related to U.S. agricultural production. County level data are also available via Quick Stats. The data include the total crops and cropping practices for each county, and breakouts for irrigated and non-irrigated practices for many crops, for selected States. The database allows custom extracts based on commodity, year, and selected counties within a State, or all counties in one or more States. The county data includes totals for the Agricultural Statistics Districts (county groupings) and the State. The download data files contain planted and harvested area, yield per acre and production. NASS develops these estimates from data collected through:

    hundreds of sample surveys conducted each year covering virtually every aspect of U.S. agriculture

    the Census of Agriculture conducted every five years providing state- and county-level aggregates Resources in this dataset:Resource Title: Quick Stats database. File Name: Web Page, url: https://quickstats.nass.usda.gov/ Dynamic drill-down filtered search by Commodity, Location, and Date range, beginning with Census or Survey data. Filter lists are refreshed based upon user choice allowing the user to fine-tune the search.

  2. Quick Stats Agricultural Database

    • catalog.data.gov
    • datadiscoverystudio.org
    • +3more
    Updated Apr 21, 2025
    + more versions
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    National Agricultural Statistics Service, Department of Agriculture (2025). Quick Stats Agricultural Database [Dataset]. https://catalog.data.gov/dataset/quick-stats-agricultural-database
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    Dataset updated
    Apr 21, 2025
    Dataset provided by
    National Agricultural Statistics Servicehttp://www.nass.usda.gov/
    United States Department of Agriculturehttp://usda.gov/
    Description

    Quick Stats is the National Agricultural Statistics Service's (NASS) online, self-service tool to access complete results from the 1997, 2002, 2007, and 2012 Censuses of Agriculture as well as the best source of NASS survey published estimates. The census collects data on all commodities produced on U.S. farms and ranches, as well as detailed information on expenses, income, and operator characteristics. The surveys that NASS conducts collect information on virtually every facet of U.S. agricultural production.

  3. NASS Data Visualization

    • agdatacommons.nal.usda.gov
    bin
    Updated Feb 9, 2024
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    USDA National Agricultural Statistics Service (2024). NASS Data Visualization [Dataset]. https://agdatacommons.nal.usda.gov/articles/dataset/NASS_Data_Visualization/24660801
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    binAvailable download formats
    Dataset updated
    Feb 9, 2024
    Dataset provided by
    National Agricultural Statistics Servicehttp://www.nass.usda.gov/
    United States Department of Agriculturehttp://usda.gov/
    Authors
    USDA National Agricultural Statistics Service
    License

    U.S. Government Workshttps://www.usa.gov/government-works
    License information was derived automatically

    Description

    NASS Data Visualization provides a dynamic web query interface supporting searches by Commodity (e.g. Cotton, Corn, Farms & Land, Grapefruit, Hogs, Oranges, Soybeans, Wheat), Statistic type (automatically refreshed based upon choice of Commodity - e.g. Inventory, Head, Acres Planted, Acres Harvested, Production, Yield) to generate chart, table, and map visualizations by year (2001-2016), as well as a link to download the resulting data in CSV format compatible for updating databases and spreadsheets. Resources in this dataset:Resource Title: NASS Data Visualization web site. File Name: Web Page, url: https://nass.usda.gov/Data_Visualization/index.php Query interface with visualization of results as charts, tables, and maps.

  4. Data from: USDA National Agricultural Statistics Service (NASS) Agricultural...

    • agdatacommons.nal.usda.gov
    bin
    Updated May 6, 2025
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    Yulu Xia; Scott Shimmin (2025). USDA National Agricultural Statistics Service (NASS) Agricultural Chemical Use Database [Dataset]. http://doi.org/10.15482/USDA.ADC/1235563
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    binAvailable download formats
    Dataset updated
    May 6, 2025
    Dataset provided by
    United States Department of Agriculturehttp://usda.gov/
    Cooperative State Research, Education, and Extension Service
    Authors
    Yulu Xia; Scott Shimmin
    License

    U.S. Government Workshttps://www.usa.gov/government-works
    License information was derived automatically

    Description

    This site provides interactive access to data from NASS, as part of a cooperative effort among USDA, the USDA Regional Pest Management Centers and the NSF Center for Integrated Pest Management (CIPM). All data available have been previously published by NASS and have been consolidated at the state level. Commodity acreages and active ingredient agricultural chemical use (% acres treated, ai/acre/treatment, average number of treatments, ai/acre, total ai used) data are available. All data can be searched by commodity, year, state and active ingredient. For more details on methodology, please see NASS website. Search results can be obtained in web format and as downloadable Excel files. For each individual active ingredient, commodity, year and statistic, dynamic U.S. maps of each use statistic can be generated. Agricultural chemical usage statistic data can also be seen in a graphical format. Currently, this site contains the data from 1990. We will continue to update the database annually. As this site is enhanced, we will also provide means and totals of the statistics over years, states, and commodities. This project is funded by USDA, The Cooperative State Research, Education, and Extension Service (CSREES), project award No. 2001-34366-10324. Resources in this dataset:Resource Title: Agricultural Chemical Use Program Data. File Name: Web Page, url: https://www.nass.usda.gov/Surveys/Guide_to_NASS_Surveys/Chemical_Use/#data Since 2009, the release of chemical use surveys is available through Quick Stats. The following materials are available for each survey: highlights fact sheet, a methodology paper, and a set of data tables featuring commonly requested information.

  5. 2017 Census of Agriculture - Census Data Query Tool (CDQT)

    • agdatacommons.nal.usda.gov
    bin
    Updated Feb 13, 2024
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    USDA National Agricultural Statistics Service (2024). 2017 Census of Agriculture - Census Data Query Tool (CDQT) [Dataset]. https://agdatacommons.nal.usda.gov/articles/dataset/2017_Census_of_Agriculture_-_Census_Data_Query_Tool_CDQT_/24663345
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    binAvailable download formats
    Dataset updated
    Feb 13, 2024
    Dataset provided by
    National Agricultural Statistics Servicehttp://www.nass.usda.gov/
    United States Department of Agriculturehttp://usda.gov/
    Authors
    USDA National Agricultural Statistics Service
    License

    CC0 1.0 Universal Public Domain Dedicationhttps://creativecommons.org/publicdomain/zero/1.0/
    License information was derived automatically

    Description

    The Census of Agriculture is a complete count of U.S. farms and ranches and the people who operate them. Even small plots of land - whether rural or urban - growing fruit, vegetables or some food animals count if $1,000 or more of such products were raised and sold, or normally would have been sold, during the Census year. The Census of Agriculture, taken only once every five years, looks at land use and ownership, operator characteristics, production practices, income and expenditures. For America's farmers and ranchers, the Census of Agriculture is their voice, their future, and their opportunity. The Census Data Query Tool (CDQT) is a web-based tool that is available to access and download table level data from the Census of Agriculture Volume 1 publication. The data found via the CDQT may also be accessed in the NASS Quick Stats database. The CDQT is unique in that it automatically displays data from the past five Census of Agriculture publications. The CDQT is presented as a "2017 centric" view of the Census of Agriculture data. All data series that are present in the 2017 dataset are available within the CDQT, and any matching data series from prior Census years will also display (back to 1997). If a data series is not included in the 2017 dataset, then data cells will remain blank in the tool. For example, one of the data series had a label change from "Operator" to "Producer." This means that data from prior Census years labelled "Operator" will not show up where the label has changed to “Producer” for 2017. The new Census Data Query Tool application can be used to query Census data from 1997 through 2017. Data are searchable by Census table and are downloadable as CSV or PDF files. 2017 Census Ag Atlas Maps are also available for download. Resources in this dataset:Resource Title: 2017 Census of Agriculture - Census Data Query Tool (CDQT). File Name: Web Page, url: https://www.nass.usda.gov/Quick_Stats/CDQT/chapter/1/table/1 The Census Data Query Tool (CDQT) is a web based tool that is available to access and download table level data from the Census of Agriculture Volume 1 publication. The data found via the CDQT may also be accessed in the NASS Quick Stats database. The CDQT is unique in that it automatically displays data from the past five Census of Agriculture publications. The CDQT is presented as a "2017 centric" view of the Census of Agriculture data. All data series that are present in the 2017 dataset are available within the CDQT, and any matching data series from prior Census years will also display (back to 1997). If a data series is not included in the 2017 dataset, then data cells will remain blank in the tool. For example, one of the data series had a label change from "Operator" to "Producer." This means that data from prior Census years labelled "Operator" will not show up where the label has changed to "Producer" for 2017. Using CDQT:

    Upon entering the CDQT, a data table is present. Changing the parameters at the top of the data table will retrieve different combinations of Census Chapter, Table, State, or County (when selecting Chapter 2). For the U.S., Volume 1, US/State Chapter 1 will include only U.S. data; Chapter 2 will include U.S. and State level data. For a State, Volume 1 US/State Level Data Chapter 1 will include only the State level data; Chapter 2 will include the State and county level data. Once a selection is made, press the “Update Grid” button to retrieve the new data table. Comma-separated values (CSV) download, compatible with most spreadsheet and database applications: to download a CSV file of the data as it is currently presented in the data grid, press the "CSV" button in the "Export Data" section of the toolbar. When CSV is chosen, data will be downloaded as numeric. To view the source PDF file for the data table, press the "View PDF" button in the toolbar.

  6. Census of Agriculture, 2008 - American Samoa

    • microdata.fao.org
    Updated Jan 22, 2021
    + more versions
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    National Agricultural Statistics Service (2021). Census of Agriculture, 2008 - American Samoa [Dataset]. https://microdata.fao.org/index.php/catalog/1730
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    Dataset updated
    Jan 22, 2021
    Dataset authored and provided by
    National Agricultural Statistics Servicehttp://www.nass.usda.gov/
    Time period covered
    2008
    Area covered
    American Samoa
    Description

    Abstract

    For 156 years (1840 - 1996), the U.S. Department of Commerce, Bureau of the Census was responsible for collecting census of agriculture data. The 1997 Appropriations Act contained a provision that transferred the responsibility for the census of agriculture from the Bureau of the Census to the U.S. Department of Agriculture (USDA), National Agricultural Statistics Service (NASS). The 2007 Census of Agriculture is the 27th Federal census of agriculture and the third conducted by NASS. The first agriculture census was taken in 1840 as part of the sixth decennial census of population. The agriculture census continued to be taken as part of the decennial census through 1950. A separate middecade census of agriculture was conducted in 1925, 1935, and 1945. From 1954 to 1974, the census was taken for the years ending in 4 and 9. In 1976, Congress authorized the census of agriculture to be taken for 1978 and 1982 to adjust the data reference year so that it coincided with other economic censuses. This adjustment in timing established the agriculture census on a 5-year cycle collecting data for years ending in 2 and 7. Agriculture census data are used to:

    • Evaluate, change, promote, and formulate farm and rural policies and programs that help agricultural producers; • Study historical trends, assess current conditions, and plan for the future; • Formulate market strategies, provide more efficient production and distribution systems, and locate facilities for agricultural communities; • Make energy projections and forecast needs for agricultural producers and their communities; • Develop new and improved methods to increase agricultural production and profitability; • Allocate local and national funds for farm programs, e.g. extension service projects, agricultural research, soil conservation programs, and land-grant colleges and universities; • Plan for operations during drought and emergency outbreaks of diseases or infestations of pests. • Analyze and report on the current state of food, fuel, feed, and fiber production in the United States.

    American Samoa is one of the territories collectively referred as the "US Outlying areas". The 2008 American Samoa Census of Agriculture was conducted by personal interviews of all farm operations on the list of commercial farms, and supplemented by an area sample of the remaining households. The purpose of the area sample was to efficiently accountfor farms not on the commercialfarmlist and provide an accurate measure of the agricultural activity in American Samoa.

    Geographic coverage

    National coverage

    Analysis unit

    Households

    Universe

    The statistical unit for the CA 2008 was the farm, an operating unit defined as any place from which USD 1 000 or more of agricultural products were produced and sold, or normally would have been sold, during the census year.

    Kind of data

    Census/enumeration data [cen]

    Sampling procedure

    i. Methodological modality for conducting the census The classical approach was used in the CA 2008.

    ii. sample design The design of the sample for the 2008 Census of Agriculture made use of materials and information available from the American Samoa Department of Commerce. These included detailed maps of all the islands in the territory, up-to-date map-spotting (location on a map) of all households in the territory, a system of numbering each household to provide it a unique identifier, and identification of householdswhich were on the list of commercial farms. The households that were on the list of commercial farms were excluded from the universe used to select the area sample. A random sample of the remaining households was selected, using the available maps with the household identification information. It was determined that a 20 percent sample would be optimal. A serpentine selection methodology, starting at a point determined by the generation of a random number, was used to select the area sample.

    Mode of data collection

    Face-to-face paper [f2f]

    Research instrument

    One questionnaire was used which collected information on:

    • Land owned
    • Field crops
    • Fruit
    • Root crops
    • Cattle and calves
    • Poultry
    • Aquaculture
    • Expenditure
    • Production expenses
    • Machinery, equipment and buildings
    • Household characteristics

    Cleaning operations

    1. DATA PROCESSING AND ARCHIVING The completed forms were scanned and Optical Mark Recognition (OMR) was used to retrieve categorical responses and to identify the other answer zones in which some type of mark was present. The edit system determined the best value to impute for reported responses that were deemed unreasonable and for required responses that were absent. The complex edit ensured the full internal consistency of the record. After tabulation and review of the aggregates, a comprehensive disclosure review was conducted. Cell suppression was used to protect the cells that were determined to be sensitive to a disclosure of information.

    2. CENSUS DATA QUALITY NASS conducted an extensive program to follow-up all non-response. NASS also used capture-recapture methodology to adjust for under-coverage, non-response, and misclassification. To implement capture-recapture methods, two independent surveys were required --the 2012 Census of Agriculture (based on the Census Mail List) and the 2012 June Agricultural Survey (based on the area frame). Historically, NASS has been careful to maintain the independence of these two surveys.

    Data appraisal

    The complete data series from the 2008 Census of Agriculture is available from the NASS website free of charge in multiple formats, including Quick Stats 2.0 - an online database to retrieve customized tables with Census data at the national, state and county levels. The 2012 Census of Agriculture provides information on a range of topics, including agricultural practices, conservation, organic production, as well as traditional and specialty crops.

  7. d

    County Proportion of Cultivated Agriculture 2012 Colorado Plateau.

    • datadiscoverystudio.org
    1823
    Updated Jun 8, 2018
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    (2018). County Proportion of Cultivated Agriculture 2012 Colorado Plateau. [Dataset]. http://datadiscoverystudio.org/geoportal/rest/metadata/item/33ec6ffd5314490eb72ccc26f0dd3400/html
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    1823Available download formats
    Dataset updated
    Jun 8, 2018
    Description

    description: County cultivated agriculture area from county census data (NASS, 2012). NASS [National Agricultural Statistics Service]. 2014. Quick Stats 2.0. U.S. Department of Agriculture, Washington D.C., USA.; abstract: County cultivated agriculture area from county census data (NASS, 2012). NASS [National Agricultural Statistics Service]. 2014. Quick Stats 2.0. U.S. Department of Agriculture, Washington D.C., USA.

  8. Vermont Agricultural Commodities 2002 - 2012

    • data.wu.ac.at
    csv, json, xml
    Updated Oct 28, 2014
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    U.S. Department of Agriculture (USDA), National Agricultural Statistics Service (NASS) (2014). Vermont Agricultural Commodities 2002 - 2012 [Dataset]. https://data.wu.ac.at/schema/data_vermont_gov/czI1ai01cnVu
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    json, xml, csvAvailable download formats
    Dataset updated
    Oct 28, 2014
    Dataset provided by
    National Agricultural Statistics Servicehttp://www.nass.usda.gov/
    United States Department of Agriculturehttp://usda.gov/
    Area covered
    Vermont
    Description

    U.S. Department of Agriculture (USDA), National Agricultural Statistics Service (NASS), Quick Stats

  9. c

    County Proportion of Cultivated Agriculture 2012 Colorado Plateau

    • s.cnmilf.com
    • data.usgs.gov
    • +2more
    Updated Jul 6, 2024
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    U.S. Geological Survey (2024). County Proportion of Cultivated Agriculture 2012 Colorado Plateau [Dataset]. https://s.cnmilf.com/user74170196/https/catalog.data.gov/dataset/county-proportion-of-cultivated-agriculture-2012-colorado-plateau
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    Dataset updated
    Jul 6, 2024
    Dataset provided by
    United States Geological Surveyhttp://www.usgs.gov/
    Area covered
    Colorado Plateau
    Description

    County cultivated agriculture area from county census data (NASS, 2012). NASS [National Agricultural Statistics Service]. 2014. Quick Stats 2.0. U.S. Department of Agriculture, Washington D.C., USA.

  10. u

    Instances for Sugarcane Harvest Logistics in Louisiana

    • iro.uiowa.edu
    zip
    Updated Oct 22, 2014
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    Kamal Lamsal; Philip C. Jones; Barrett W. Thomas (2014). Instances for Sugarcane Harvest Logistics in Louisiana [Dataset]. https://iro.uiowa.edu/esploro/outputs/dataset/Instances-for-Sugarcane-Harvest-Logistics-in/9983557356902771
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    zip(7216 bytes)Available download formats
    Dataset updated
    Oct 22, 2014
    Dataset provided by
    University of Iowa
    Authors
    Kamal Lamsal; Philip C. Jones; Barrett W. Thomas
    License

    Attribution-ShareAlike 4.0 (CC BY-SA 4.0)https://creativecommons.org/licenses/by-sa/4.0/
    License information was derived automatically

    Time period covered
    Oct 22, 2014
    Area covered
    Louisiana
    Description

    This zip file contains the 11 instances used in the paper “Continuous time scheduling for sugarcane harvest logistics in Louisiana.” (https://doi.org/10.1080/00207543.2015.1052156) You can find the publication details for that paper at http://myweb.uiowa.edu/bthoa/iowa/Research.html. The paper contains all of the details regarding the construction of the sets.

    In summary, there are 11 mills and approximately 475 farms in Louisiana. The National Agricultural Statistics Service (http://quickstats.nass.usda.gov/results/87A51B62-DE8D-322D-8C98-88FEF17FBB6F) provide zip-code level addresses for 456 farms, and The American Sugar League (http://www.amscl.org/factories) provides exact addresses of the 11 mills. We also have the county level data on sizes of the farms that puts them into buckets of various sizes (http://quickstats.nass.usda.gov/results/D413417A-C18E-328A-8F69-D7B4534720C1). First, we calculate the distances between the farms and the mills. Then, we randomly assign the sizes for the individual farms according to the distribution of farm sizes in the respective counties. We then assume that farms that harvest more than 750 acres of cane a year have two combine harvesters and the ones that harvest less than 750 acres have one combine harvester. This harvester distribution is motivated by the fact Salassi and Barker (2008) found the average number of combines to be 1.5. Each combine harvester takes approximately 45 minutes to fill a load. So, the time to harvest a load in the farm with one harvester is 45 minutes plus a small random component (chosen from uniform random between negative 5 and positive 5) and the time to harvest a load in the farm with two harvesters is 22.5 minutes plus a small random component (chosen from uniform random between negative 2.5 and positive 2.5) (Barker 2007, Salassi and Barker 2008).

    Each row of each of the files represents a farm. For each farm, there are three columns of data. The columns are the distance to the mill from the farm, the inter-harvest time, and the number of loads to be supplied by the farm. The inter-harvest time is the amount of time needed to harvest one load at the farm.

    References

    Francis G. Barker. An economic evaluation of sugarcane combine harvester costs and optimal harvest schedules for Louisiana. PhD thesis, Louisiana State University, 2007.

    Michael E. Salassi and F. Gil Barker. Reducing harvest costs through coor- dinated sugarcane harvest and transport operations in Louisiana. Journal Association Sugar Cane Technologists, 28:32–41, 2008.

  11. Not seeing a result you expected?
    Learn how you can add new datasets to our index.

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USDA National Agricultural Statistics Service (2023). NASS - Quick Stats [Dataset]. https://agdatacommons.nal.usda.gov/articles/dataset/NASS_-_Quick_Stats/24660792
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NASS - Quick Stats

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2 scholarly articles cite this dataset (View in Google Scholar)
binAvailable download formats
Dataset updated
Nov 30, 2023
Dataset provided by
National Agricultural Statistics Servicehttp://www.nass.usda.gov/
United States Department of Agriculturehttp://usda.gov/
Authors
USDA National Agricultural Statistics Service
License

U.S. Government Workshttps://www.usa.gov/government-works
License information was derived automatically

Description

The Quick Stats Database is the most comprehensive tool for accessing agricultural data published by the USDA National Agricultural Statistics Service (NASS). It allows you to customize your query by commodity, location, or time period. You can then visualize the data on a map, manipulate and export the results as an output file compatible for updating databases and spreadsheets, or save a link for future use. Quick Stats contains official published aggregate estimates related to U.S. agricultural production. County level data are also available via Quick Stats. The data include the total crops and cropping practices for each county, and breakouts for irrigated and non-irrigated practices for many crops, for selected States. The database allows custom extracts based on commodity, year, and selected counties within a State, or all counties in one or more States. The county data includes totals for the Agricultural Statistics Districts (county groupings) and the State. The download data files contain planted and harvested area, yield per acre and production. NASS develops these estimates from data collected through:

hundreds of sample surveys conducted each year covering virtually every aspect of U.S. agriculture

the Census of Agriculture conducted every five years providing state- and county-level aggregates Resources in this dataset:Resource Title: Quick Stats database. File Name: Web Page, url: https://quickstats.nass.usda.gov/ Dynamic drill-down filtered search by Commodity, Location, and Date range, beginning with Census or Survey data. Filter lists are refreshed based upon user choice allowing the user to fine-tune the search.

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