Spatial Versus Nonspatial Variance in Fecal Indicator Bacteria Differs Within and Between Ponds.
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[1] C. Murphy,et al. Factors Associated With E. coli Levels in and Salmonella Contamination of Agricultural Water Differed Between North and South Florida Waterways , 2022, Frontiers in Water.
[2] M. Wiedmann,et al. Integrative Survey of 68 Non-overlapping Upstate New York Watersheds Reveals Stream Features Associated With Aquatic Fecal Contamination , 2021, Frontiers in Microbiology.
[3] M. Wiedmann,et al. Cross-Validation Indicates Predictive Models May Provide an Alternative to Indicator Organism Monitoring for Evaluating Pathogen Presence in Southwestern US Agricultural Water , 2021, Frontiers in Water.
[4] Alex Saturday,et al. Spatial and temporal variations of faecal indicator bacteria in Lake Bunyonyi, South-Western Uganda , 2021, SN Applied Sciences.
[5] Martin Wiedmann,et al. Predictive Models May Complement or Provide an Alternative to Existing Strategies for Assessing the Enteric Pathogen Contamination Status of Northeastern Streams Used to Provide Water for Produce Production , 2020, Frontiers in Sustainable Food Systems.
[6] Zhenyao Shen,et al. Spatiotemporal variability and key influencing factors of river fecal coliform within a typical complex watershed , 2020, Water Research.
[7] M. Wiedmann,et al. Complex Interactions Between Weather, and Microbial and Physicochemical Water Quality Impact the Likelihood of Detecting Foodborne Pathogens in Agricultural Water , 2020, Frontiers in Microbiology.
[8] B. Badgley,et al. Fecal indicator dynamics at the watershed scale: Variable relationships with land use, season, and water chemistry. , 2019, The Science of the total environment.
[9] R. González‐Pinzón,et al. Riverbed Sediments Control the Spatiotemporal Variability of E. coli in a Highly Managed, Arid River , 2019, Front. Water.
[10] Mattan S. Ben-Shachar,et al. Indices of Effect Existence and Significance in the Bayesian Framework , 2019, Front. Psychol..
[11] Dominique Makowski,et al. bayestestR: Describing Effects and their Uncertainty, Existence and Significance within the Bayesian Framework , 2019, J. Open Source Softw..
[12] C. Strohbehn,et al. Assessment of Midwest Growers’ Needs for Compliance with the Food Safety Modernization Act Produce Safety Rule , 2019 .
[13] C. Strohbehn,et al. Determining What Growers Need to Comply with the Food Safety Modernization Act Produce Safety Rule , 2018, Journal of Extension.
[14] S. Rideout,et al. Microbial Quality of Agricultural Water Used in Produce Preharvest Production on the Eastern Shore of Virginia. , 2018, Journal of food protection.
[15] E. Atwill,et al. Spatiotemporal Variability in Microbial Quality of Western US Agricultural Water Supplies: A Multistate Study. , 2018, Journal of environmental quality.
[16] T. Gentry,et al. Escherichia coli Concentration as a Function of Stream Order and Watershed Size. , 2018, Journal of environmental quality.
[17] L. Backer,et al. Outbreaks Associated with Untreated Recreational Water — United States, 2000–2014 , 2018, American journal of transplantation : official journal of the American Society of Transplantation and the American Society of Transplant Surgeons.
[18] Y. Pachepsky,et al. Temporal Stability of Escherichia coli Concentrations in Waters of Two Irrigation Ponds in Maryland , 2017, Applied and Environmental Microbiology.
[19] Rafael Muñoz-Carpena,et al. Evaluating the U.S. Food Safety Modernization Act Produce Safety Rule Standard for Microbial Quality of Agricultural Water for Growing Produce. , 2017, Journal of food protection.
[20] Paul-Christian Bürkner,et al. brms: An R Package for Bayesian Multilevel Models Using Stan , 2017 .
[21] M. Danyluk,et al. Microbial quality of agricultural water in Central Florida , 2017, PloS one.
[22] S. Doores,et al. Microbial Survey of Pennsylvania Surface Water Used for Irrigating Produce Crops. , 2016, Journal of food protection.
[23] M. Danyluk,et al. Predicting Salmonella Populations from Biological, Chemical, and Physical Indicators in Florida Surface Waters , 2013, Applied and Environmental Microbiology.
[24] J. Cevallos-Cevallos,et al. Factors affecting the occurrence of Escherichia coli O157 contamination in irrigation ponds on produce farms in the Suwannee River Watershed. , 2013, Canadian journal of microbiology.
[25] Heather E Johnson,et al. Predictive Models for Escherichia coli Concentrations at Inland Lake Beaches and Relationship of Model Variables to Pathogen Detection , 2013, Applied and Environmental Microbiology.
[26] J. Lejeune,et al. Spatial-temporal variations of microbial water quality in surface reservoirs and canals used for irrigation , 2013 .
[27] J. Duris,et al. Factors related to occurrence and distribution of selected bacterial and protozoan pathogens in Pennsylvania streams. , 2013, Water research.
[28] Pramod K. Pandey,et al. Assessing the impacts of watershed indexes and precipitation on spatial in-stream E. coli concentrations , 2012 .
[29] M. Wiedmann,et al. Landscape and Meteorological Factors Affecting Prevalence of Three Food-Borne Pathogens in Fruit and Vegetable Farms , 2012, Applied and Environmental Microbiology.
[30] R. Lowrance,et al. Survival dynamics of fecal bacteria in ponds in agricultural watersheds of the Piedmont and Coastal Plain of Georgia. , 2012, Water research.
[31] Davey L. Jones,et al. Spatial variation of waterborne Escherichia coli - implications for routine water quality monitoring. , 2011, Journal of water and health.
[32] E. Topp,et al. Associations among pathogenic bacteria, parasites, and environmental and land use factors in multiple mixed-use watersheds. , 2011, Water research.
[33] Y. Pachepsky,et al. Irrigation Waters as a Source of Pathogenic Microorganisms in Produce , 2011 .
[34] E. Topp,et al. Seasonal relationships among indicator bacteria, pathogenic bacteria, Cryptosporidium oocysts, Giardia cysts, and hydrological indices for surface waters within an agricultural landscape. , 2009, Water research.
[35] K. Schilling,et al. Temporal variations of Escherichia coli concentrations in a large Midwestern river , 2009 .
[36] T A Hill,et al. Recurrent multistate outbreak of Salmonella Newport associated with tomatoes from contaminated fields, 2005 , 2007, Epidemiology and Infection.
[37] Bradley P Carlin,et al. spBayes: An R Package for Univariate and Multivariate Hierarchical Point-referenced Spatial Models. , 2007, Journal of statistical software.
[38] Michael J Beach,et al. Waterborne outbreaks reported in the United States. , 2006, Journal of water and health.
[39] M. Plummer,et al. CODA: convergence diagnosis and output analysis for MCMC , 2006 .
[40] Michael J Beach,et al. HEALTHIER • PEOPLE TM Surveillance for Waterborne-Disease Outbreaks — United States , 1999 – 2000 , 2002 .
[41] R. Davies‐Colley,et al. Faecal contamination over flood events in a pastoral agricultural stream in New Zealand. , 2002, Water science and technology : a journal of the International Association on Water Pollution Research.
[42] M. Exner,et al. Microbial Load of Drinking Water Reservoir Tributaries during Extreme Rainfall and Runoff , 2002, Applied and Environmental Microbiology.