Bibliographic record
Abstract
The following are the correct References for the article “Human Laboratory Acquired Arbo-, Arena-, and Hantavirus Infections” by S. Ya. Gaida-movich, A. M. Butenko, and H. V. Leschinskaya which appeared on pages 5–11 of JABSA (Volume 5, Number 1, 2000). REFERENCES 1. Badalov, M. E., Lasarev, V. N., Koimtchidi, B. K., Karinskaya, G. A. Nosocomial and laboratory acquired Crimean hemorrhagic fever M. P.Chumakov (Ed.). Rostov na Donu 1970, p. 90–92. 2. Butenko, A. M., Leschinskaya, H. V., Semashko, L. V., Donez, M. A., Martiyanova, I. N., Rubin, S. G., Chumakov, M. P. Dhori virus, a causative agent of human diseases, five cases of laboratory infection. Vopr Virusol 1987;42:724–729 3. Chumakov, M. P., Leschinskaya, H. V., Povalishina, T. P. Cases of laboratory contamination with hemorraagic fever with renal syndrome (HFRS) from small rodents captured in Tulsky region. Trudy of Poliomyelitis and Viral Encephalitis Institute. Endemic viral infections. Chumakov, M. P. (Ed.). 1965;736–45. 4. Gaidamovich, S. Ya., Uvarov, V. N., Alekseyeva, A. A. Isolation of vesicular stomatitis virus from a sick man. Vopr Virusol 1966; 11:77–80. 5. Gaidamovich, S. Ya., Lavrova, N. A. Detection of antibodies against Venezuelan equine encephalomyelitis virus in convalescents by immunoenzyme method. Vopr Virusol 1980; 35:483–485. 6. Gaidamovich, S. Ya. Melnikova, E. E., Obukhova, V. R. Radial hemolysis in gel, used in serological studies on Venezuelan equine encephalomyelitis. Acta Virologica 1980; 25:36–40. 7. Kolobukhina, L. V., Gaidamovich, S. Ya., Sveshnikova, N. A., Melnikova, E. E., Klisenko, G. A. Clinical characteristics of laboratory acquired case of Kyasanur forest disease. Itogi Nauki i Tekhniki. Virology. Arboviruses and arboviral infections. (Ed.). Lvov, D. K. Moscow 1991; 24:87–88. 8. Kulagin, S. M., Fedorova, N. J., Ketiladze, E. S. Laboratory outbreak of hemorrhagic fever with a renal syndrome. Zhurn Mikrobiol Epidemiol i Immunol 1962; 33(10):121–126. 9. Laboratory safety for arboviruses and certain other viruses of vertebrates. The Subcommittee on Arbovirus Laboratory Safety of the American Committee on Arthropod-Bome Viruses. Am J Trop Med Hyg 1980; 29/6:1359–1381. 10. Leschinskaya, H. V., Chumakoy, M. P., Martiyanova, I. V., Tkachenko, E. A. Cases of laboratory acquired Bolivian hemorrhagic fever. Chumakov, M. P. (Ed.). Actual problems of virology and prevention of viral diseases. Abstracts of XVII Scientific Session of Institute of Poliomyelitis and viral encephalitis 24–27 October 1972, p. 325. 11. Oliphant, I. W., Parker, R. R. Q fever Three cases of laboratory infection. Pub. Health Rep. 1948, 63(42):1364–1370. 12. Pike, R. M. Laboratory associated infections: Summary and analysis of 3921 cases. 1976 Health Lab. SCI. 13:105–114. 13. Pike, R. M., Sulkin, S. E. and Schulze, M. L. Continuing importance of laboratory B acquired infections. 1965. Am. J. Pub. Health 55: 190–199. 14. Shubladze, A. K., Gaidamovich, S. Ya., Gavrilov, V. I. Virological study of laboratory infections with Venezuelan equine encephalomyelitis. Vopr Virusol 1959; 4:305–310. 15. Slepushkin, A. N. Epidemiological study of laboratory infections with Venezuelan equine encephalomyelitis virus. Vopr Virusol 1959; 4:311–314. 16. Sulkin, S. E., and Pike, R. M. Viral infections contracted in the laboratory 1949, New Engl. J. Med. 241(5):205–213. The following are the correct References for the article “Biological Contamination of the Building Environment: Sampling and Analysis” by Richard C. Fink and Elizabeth A. Gilman which appeared on pages 19–29 of JABSA (Volume 5, Number 1, 2000). REFERENCES 1. Abad, X. F., Pinto, P. M., Bosch, A. Survival of Enteric Viruses on Environmental Fomites. App. Env. Micro., 60:3704–3710, 1994. 2. Ager, B. P., Tickner, J. A. The control of microbiological hazards associated with air-conditioning and ventilation systems. Ann Occup Hyg 27:341–358, 1983. 3. Al-Doory, Y. Airborne Fungi. In Al-Doory, Y, Donson, J. F. (eds.). Mould Allergy. Philadelphia, Lea & Febiger, 1984, pp. 27–40. 4. Anthony, B. Healthy Building: San Francisco Main Library. In Indoor Air '93. Proceedings of the 6th International Conference on Indoor Air Quality and Climate. Helsinki, Indoor Air '93, 1993, Vol. 2 pp. 623–628. 5. Arnow, P. M., Anderson, R. L., Mainous, P. D., et. al. Pulmonary Aspergillosis during hospital renovation. Am Rev Resp Dis, 118:49–53, 1978. 6. Barbaree, J. N., Fields, B. S., Feeley, J. C., et. al. Isolation of protozoa from water associated with a Legionellosis outbreak and demonstration of intracellular multiplication of Legionella pneumophila . Appl Env Microbiol 51:422–424, 1986. 7. Bernstein, R. S., Sorenson, W. G., Garabrant, D., et. al. Exposures to respirable airborne Penicillium from a contaminated ventilation system: Clinical, environmental and epidemiological aspects. Am Ind Hyg Assoc J, 44:161–169, 1983. 8. Bouhuys, A., Zuskin, E. Byssinosis: Occupational lung disease in textile workers. In Albee-Frazier, C. (ed.). Occupational Asthma. New York, Van Nostrand Reinhold Co., 1980, pp. 33–52. 9. Briggs, P. M., Delta, B. G., Keener, S. R., et. al. Human Cutaneous Anthrax-North Carolina, 1987. MMWR, 37:413–414, 1988. 10. Brooks, B. O., Davis, W. F. Understanding Indoor Air Quality, Chapter 3. CRC Press, Boca Raton, 1992. 11. Brundage, J. F., Scott, R. M., Lednar, W. M., et. al. Building-associated risk of febrile acute respiratory diseases in army trainees. JAMA, 259:2108–2112, 1988. 12. Burge, H. P., Solomon, W. R., Boise, J. R. Comparative merits of eight popular media in aerometric studies of fungi. J. Allergy Clin. Immunol. 60:199–203, 1977. 13. Buttner, M. P., Stetzenbach, L. D. Monitoring Airborne Fungal Spores in an Experimental Indoor Environment To Evaluate Sampling Methods and the Effects of Human Activity on Air Sampling. App. Env. Micro. 59:219–226, 1993. 14. Cinkotai, F. F., Lockwood, M. G., Rylander, R. Airborne microorganisms and prevalence of byssinotic symptoms in cotton mills. Am Ind Hyg J, 38:554–559, 1977. 15. Cordes, L. G., Fraser, D. W. Legionellosis. Legionnaires' disease; Pontiac fever. Med Clin N Am, 64:395–416, 1980. 16. Cormier, Y., Tremblay, G., Meriaux, A., et. al. Airborne microbial contents in two types of swine confinement buildings in Quebec. Am Ind Hyg Assoc J, 51:304–309, 1990. 17. Couch, R. B. Viruses and Indoor Air Pollution. Bull. N.Y. Acad. Med. 57:907–921, 1981. 18. deHoller, R. Respiratory symptoms and preventative aspects in farmers chronically exposed to moldy hay. Am J Ind Med, 10:288, 1986. 19. Donham, K. J. Hazardous agents in agricultural dusts and methods of evaluation. Am J Ind Med, 10:205–220, 1986. 20. Dupuis, G., Peter, O., Petite, J., et. al. Q-Fever outbreak-Switzerland. MMWR, 33:355–361, 1984. 21. Dutkiewicz, J. Microbial hazards in plants processing grain and herbs. Am J Indust Med, 10:300–302, 1986. 22. Edelstein, P. H., Nakahama, C., Tubin, J. O., et. al. Paleoepidemiologic investigation of Legionnaires disease at Wadsworth Veterans Administration Hospital by using three typing methods for comparison of Legionellae from clinical and environmental sources. J Clin Microbiol, 23:1121–1126, 1986. 23. Edwards, J. H. Microbial and immunological investigations and remedial action after an outbreak of humidifier fever. Br J Ind Med, 37:55–62, 1980. 24. Ehrlich, R., Miller, S., Idoine, L. S. Evaluation of slit sampler in quantitative studies of bacterial aerosols. Appl Microbiol, 14:328–330, 1966. 25. Ezeonu, I. M., Price, D. L., et. al. Fungal Production of Volatiles during Growth on Fiberglass. App. Env. Micro. 60:4172–4173, 1994. 26. Fields, N. B., Borrow, G. S. O. X., Puleuo, J. R., et. al. Evaluation of membrane filter field monitors for microbiological air sampling. Appl Microbiol, 27:517–520, 1974.
Fetched live from OpenAlex and de-inverted. Abstracts are not stored in this database: the inverted indexes are 8.6 GB of the frame’s 9.3 GB of text, and the host has 13 GB free.
How this classification was reachedexpand
Full frame machine prediction
Teacher imitationNot calibrated prevalence, not ground truth. Human validation pending. The Gemma side is a direct model label for every work in the frame, read from the title-only record. The Codex side is a classifier learned from the 10,348 direct Codex labels and calibrated to design-weighted sample rates; fields without enough sample support carry no Codex call. Candidate is the union of the two sides; consensus is their intersection. These outputs are machine_predicted_unvalidated and are not human labels.
Distilled classifier scores by category (both heads)
| Category | Codex | Gemma |
|---|---|---|
| Metaresearch | 0.006 | 0.077 |
| Meta-epidemiology (narrow) | 0.001 | 0.001 |
| Meta-epidemiology (broad) | 0.002 | 0.002 |
| Bibliometrics | 0.006 | 0.005 |
| Science and technology studies | 0.004 | 0.002 |
| Scholarly communication | 0.006 | 0.005 |
| Open science | 0.003 | 0.003 |
| Research integrity | 0.004 | 0.005 |
| Insufficient payload (model declined to judge) | 0.337 | 0.242 |
Machine scores (provisional)
The two teacher heads of the student model, read on this work. A score orders the frame for review; it never asserts a category, and the validation status ships verbatim with every row.
Baseline scores from an immature model (maturity gate not passed, 7 training rounds). Scores rank; they never assert a category.
score_only:v0-immature-baseline · verbatim from the scoring run: score_only means the number may rank works, and no category label ships from itClassification
machine, unvalidatedMachine predicted; a candidate call from one source (direct Gemma or distilled Codex), not a consensus.
How this classification was reached, model by model and score by score, is at the end of the page under "How this classification was reached".