Radiolucent Zone around Screws is Associated with Position Change of Screw-rod Constructs

Author(s):  
Satoru Tanioka ◽  
Masashi Fujimoto ◽  
Hirofumi Nishikawa ◽  
Katsuhiro Tanaka ◽  
Fujimaro Ishida ◽  
...  
Keyword(s):  
2006 ◽  
Vol 33 (S 1) ◽  
Author(s):  
S. Schnaudigel ◽  
C. Preul ◽  
H.J. Mentzel ◽  
O.W. Witte ◽  
M. Tittgemeyer ◽  
...  

2003 ◽  
Vol 8 (1) ◽  
pp. 43-78 ◽  
Author(s):  
Paula Murphy Ives

AbstractThis article provides an analysis of negotiated change within the global telecommunications regime. It examines how agreements are achieved in the area of trade and telecommunications, particularly within the aegis of the Geneva-based World Trade Organization (WTO). It argues that, in the negotiations examined, the interplay between unilateral action, bilateral, plurilateral and multilateral processes and the ensuing alchemy of coercion and concord led to an overall reframing of the central problem and thereby facilitated multilateral consensus. Drawing upon evidence from Japan-U.S. bilateral, Organization for Economic Cooperation and Development (OECD) and multilateral trade and telecom talks, this research tests the proposition that coercive pressure is the predominant factor in bringing about negotiated change. It also considers the alternate thesis that integrative reframing, involving the search for mutual gains, was paramount in facilitating change. Qualitative observations signal the phenomenon of progressive multilateralism, or the sequential interplay of unilateral action, bilateral, and multilateral processes, wherein undercurrents of coercion reorient perceptions of the outcome from uncertain gains towards loss avoidance. Together with information exchange and interaction, one observes position change. Understanding the dynamics at important impasse points facilitates a critical, political-economy reading of these international negotiations as well as more general conclusions about the nature of governance in this area.


2021 ◽  
Vol 10 (7) ◽  
pp. 437
Author(s):  
Hongxia Qi ◽  
Yunjia Wang ◽  
Jingxue Bi ◽  
Hongji Cao ◽  
Shenglei Xu

Floor positioning is an important aspect of indoor positioning technology, which is closely related to location-based services (LBSs). Currently, floor positioning technologies are mainly based on radio signals and barometric pressure. The former are impacted by the multipath effect, rely on infrastructure support, and are limited by different spatial structures. For the latter, the air pressure changes with the temperature and humidity, the deployment cost of the reference station is high, and different terminal models need to be calibrated in advance. In view of these issues, here, we propose a novel floor positioning method based on human activity recognition (HAR), using smartphone built-in sensor data to classify pedestrian activities. We obtain the degree of the floor change according to the activity category of every step and determine whether the pedestrian completes floor switching through condition and threshold analysis. Then, we combine the previous floor or the high-precision initial floor with the floor change degree to calculate the pedestrians’ real-time floor position. A multi-floor office building was chosen as the experimental site and verified through the process of alternating multiple types of activities. The results show that the pedestrian floor position change recognition and location accuracy of this method were as high as 100%, and that this method has good robustness and high universality. It is more stable than methods based on wireless signals. Compared with one existing HAR-based method and air pressure, the method in this paper allows pedestrians to undertake long-term static or round-trip activities during the process of going up and down the stairs. In addition, the proposed method has good fault tolerance for the misjudgment of pedestrian actions.


2020 ◽  
Vol 08 (12) ◽  
pp. E1842-E1849
Author(s):  
Venkat Nutalapati ◽  
Madhav Desai ◽  
Vivek Sandeep Thoguluva-Chandrasekar ◽  
Mojtaba Olyaee ◽  
Amit Rastogi

Abstract Background and study aims The adenoma detection rate (ADR) is an important quality metric of colonoscopy. Higher ADR correlates with lower incidence of interval colorectal cancer. ADR is variable between endoscopists and depends upon the withdrawal technique amongst other factors. Dynamic position change (lateral rotation of patients with a view to keep the portion of the colon being inspected at a higher level) helps with luminal distension during the withdrawal phase. However, impact of this on ADR is not known in a pooled sample. We performed a systematic review and meta-analysis to study the impact of dynamic position changes during withdrawal phase of colonoscopy on ADR Methods A comprehensive search of MEDLINE, EMBASE, Google Scholar, and the Cochrane Database was conducted from each database’s inception to search for studies comparing dynamic position changes during colonoscope withdrawal with static left lateral position (control). The primary outcome of interest was ADR. Other studied outcomes were polyp detection rate (PDR) and withdrawal time. Outcomes were reported as pooled odds ratio (OR) with 95 % confidence intervals (CI) with statistical significance (P < 0.05). RevMan 5.3 software was used for statistical analysis. Results Six studies were included in our analysis with 2860 patients. Of these, dynamic position change was implemented in 1177 patients while 1183 patients served as the controls. ADR was significantly higher in the dynamic position change group with pooled OR 1.36 (95 % CI, 1.15–1.61; P < 0.01). There was low heterogeneity in inclusion studies (I2 = 0 %). PDR was numerically higher in position change group (53.4 % vs 49.6 %) but not statistically significant (P = 0.16). Mean withdrawal time did not significantly change with dynamic position change (12.43 min vs 11.46 min, P = 0.27). Conclusion Position change during the withdrawal phase of colonoscopy can increase the ADR compared to static left lateral position. This is an easy and practical technique that can be implemented to improve ADR.


1978 ◽  
Vol 45 (4) ◽  
pp. 581-589 ◽  
Author(s):  
V. P. Vellody ◽  
M. Nassery ◽  
W. S. Druz ◽  
J. T. Sharp

With a linearized respiratory magnetometer, measurements of anteroposterior and lateral diameters of both the rib cage and the abdomen were made at functional residual capacity and continuously during tidal breathing. Twenty-five subjects with normal respiratory systems were studied in the sitting, supine, lateral decubitus, and prone body positions. When subjects changed from sitting to supine position anteroposterior diameters of both rib cage and abdomen decreased while their lateral diameters increased. Both anteroposterior and lateral tidal excursions of the rib cage decreased; those of the abdomen increased. When subjects turned from supine to lateral decubitus position both anteroposterior diameters increased and the lateral diameters decreased. This was associated with an increase in both lateral excursions and a decrease in the abdominal anteroposterior excursions. Diameters and tidal excursions in the prone position resembled those in the supine position. Diameter changes could be explained by gravitational effects. Differences in tidal excursions accompanying body position change were probably related to 1) differences in the distribution of respiratory muscle force, 2) differences in the activity or mechanical advantage of various inspiratory muscles, and 3) local compliance changes in parts of the rib cage and abdomen.


Sign in / Sign up

Export Citation Format

Share Document