| 1 |
Personal exposures and microenvironment concentrations of PM 2.5, VOC, NO 2 and CO in Oxford, UK  |
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| 2 |
Within-microenvironment exposure to particulate matter and health effects in children with asthma: a pilot study utilizing real-time personal monitoring with GPS interface  |
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| 3 |
Masih A, Lall AS, Taneja A, Singhvi R. Exposure profile, seasonal variation and health risk assessment of BTEX in indoor air of homes at different microenvironments of a terai province of northern India. Chemosphere. 2017; 176: 8-17. |
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| 4 |
Using human activity data in exposure models: Analysis of discriminating factors  |
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| 5 |
Liu W, Zhang JJ, Korn LR, Zhang L, Weisel CP, Turpin B, Morandi M, Stock T, Colome S. Predicting personal exposure to airborne carbonyls using residential measurements and time/activity data. Atmospheric Environment. 2007; 41(25): 5280-5288. |
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| 6 |
Determinants of residential indoor and transportation activity times in Korea.  |
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| 7 |
Air quality guidelines for Europe.  |
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| 8 |
Ott WR. Human exposure assessment: the birth of a new science. Journal of Exposure Analysis and Environmental Epidemiology. 1995; 5(4): 449-472. |
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| 9 |
Estimating Volatile Organic Compound Concentrations in Selected Microenvironments Using Time–Activity and Personal Exposure Data  |
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| 10 |
Indoor time-microenvironment-activity patterns in seven regions of Europe.  |
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| 11 |
Wang SW, Majeed MA, Chu PL, Lin HC. Characterizing relationships between personal exposures to VOCs and socioeconomic, demographic, behavioral variables. Atmospheric Environment, 2009;43(14): 2296-2302. |
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| 12 |
Greenberg MM. The central nervous system and exposure to toluene: a risk characterization. Environmental research. 1997; 72(1): 1-7. |
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| 13 |
Shin DC, Park SE, Lim YW, Yang JY, Kim MS. Exposure assessment of volatile organic matters(VOCs) using exposure biomarker in the residents living near petrochemical industry areas. Korea of Journal of Environmental Toxicology. 2000; 15(3): 81-91. |
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| 14 |
Agency for Toxic Substances, Disease Registry. Toxicological profile for toluene. ATSDR, Atlanta. 2000. |
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| 15 |
Validity of new biomarkers of internal dose for use in the biological monitoring of occupational and environmental exposure to low concentrations of benzene and toluene  |
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| 16 |
Assessing the Importance of Different Exposure Metrics and Time-Activity Data to Predict 24-H Personal PM 2.5 Exposures  |
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| 17 |
Volatile organic compounds in twelve California office buildings: Classes, concentrations and sources  |
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| 18 |
Blas MD, Navazo M, Alonso L, Durana N, Gomez MC, Iza J. Simultaneous indoor and outdoor on-line hourly monitoring of atmospheric volatile organic compounds in an urban building. The role of inside and outside sources. Science of the Total Environment. 2012; 426: 327-335. |
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| 19 |
The National Human Activity Pattern Survey (NHAPS): a resource for assessing exposure to environmental pollutants  |
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| 20 |
Personal exposures and microenvironment concentrations of PM 2.5, VOC, NO 2 and CO in Oxford, UK  |
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| 21 |
It's about time: a comparison of Canadian and American time-activity patterns.  |
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| 22 |
Field evaluation of thermal and chemical desorption BTEX radial diffusive sampler radiello compared with active (pumped) samplers for ambient air measurements.  |
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| 23 |
A field comparison of volatile organic compound measurements using passive organic vapor monitors and stainless steel canisters.  |
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| 24 |
Residential Mobility Trends in France, 1973-2006. New Estimates  |
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| 25 |
Personal exposure of primary school children to BTEX, NO2 and ozone in Eskişehir, Turkey: Relationship with indoor/outdoor concentrations and risk assessment  |
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| 26 |
Time–activity relationships to VOC personal exposure factors  |
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