Objective To describe the prevalence of and risk factors for experiencing "phantom vibrations," the sensory hallucination sometimes experienced by people carrying pagers or cell phones when the device is not vibrating. Design Cross sectional survey. Setting Academic medical centre. Participants 176 medical staff who responded to questionnaire (76% of the 232 people invited). Measurements Electronic survey consisting of 17 questions about demographics, device use, phantom vibrations experienced, and attempts to stop them. Results Of the 169 participants who answered the question, 115 (68%, 95% confidence interval 61% to 75%) reported having experienced phantom vibrations. Most (68/112) who experienced phantom vibrations did so after carrying the device between 1 month and 1 year, and 13% experienced them daily. Four factors were independently associated with phantom vibrations: occupation (resident v attending physician, prevalence ratio 1.47, 95% confidence interval 1.10 to 1.97), device location (breast pocket v belt, prevalence ratio 1.66, 1.29 to 2.14), hours carried (per 6 hour increment, prevalence ratio 1.30, 1.07 to 1.58), and more frequent use in vibrate mode (per frequency category, prevalence ratio 1.18, 1.03 to 1.34). Of those who experienced phantom vibrations, 43 (39%, 30% to 48%) were able to stop them. Strategies for stopping phantom vibrations included taking the device off vibrate mode, changing the location of the device, and using a different device (success rates 75% v 63% v 50%, respectively, P=0.217). However, 39% (30% to 49%) of respondents did not attempt any strategies. Conclusions Phantom vibration syndrome is common among those who use electronic devices.
Internal medicine residents are required to participate in scholarly activity, but conducting original research during residency is challenging. Following a poor Match at Baystate Medical Center, the authors implemented a resident research program to overcome known barriers to resident research. The multifaceted program addressed the following barriers: lack of interest, lack of time, insufficient technical support, and paucity of mentors. The program consisted of evidence-based medicine training to stimulate residents' interest in research and structural changes to support their conduct of research, including protected time for research during ambulatory blocks, a research assistant to help with tasks such as institutional review board applications and data entry, a research nurse to help with data collection, easily accessible biostatistical support, and a resident research director to provide mentorship. Following implementation in the fall of 2005, there was a steady rise in the number of resident presentations at national meetings, then in the number of resident publications. From 2001 to 2006, the department saw 3 resident publications. From 2006 to 2012, that number increased to 39 (P< .001). The department also saw more original research (29 publications) and resident first authors (12 publications) after program implementation. The percentage of residents accepted into fellowships rose from 33% before program implementation to 49% after (P = .04). This comprehensive resident research program, which focused on evidence-based medicine and was tailored to overcome specific barriers, led to a significant increase in the number of resident Medline publications and improved the reputation of the residency program.
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