Algorithms for Parallel Terrain Modelling and Visualisation

Author(s):  
P. Magillo ◽  
E. Puppo
Keyword(s):  
Crime Science ◽  
2021 ◽  
Vol 10 (1) ◽  
Author(s):  
James Hunter ◽  
Bethany Ward ◽  
Andromachi Tseloni ◽  
Ken Pease

AbstractExpected crime rates that enable police forces to contrast recorded and anticipated spatial patterns of crime victimisation offer a valuable tool in evaluating the under-reporting of crime and inform/guide crime reduction initiatives. Prior to this study, police forces had no access to expected burglary maps at the neighbourhood level covering all parts of England and Wales. Drawing on analysis of the Crime Survey for England and Wales and employing a population terrain modelling approach, this paper utilises household and area characteristics to predict the mean residential burglary incidences per 1000 population across all neighbourhoods in England and Wales. The analysis identifies distinct differences in recorded and expected neighbourhood burglary incidences at the Output Area level, providing a catalyst for stimulating further reflection by police officers and crime analysts.


Sensors ◽  
2016 ◽  
Vol 16 (11) ◽  
pp. 1952 ◽  
Author(s):  
Affan Shaukat ◽  
Peter Blacker ◽  
Conrad Spiteri ◽  
Yang Gao

Author(s):  
Pişleagă Mihaela ◽  
Bădăluţă -Minda Codruţa ◽  
Eleş Gabriel ◽  
Popescu Daniela

2021 ◽  
Author(s):  
Meng Yang ◽  
Xiao-Le Deng ◽  
Min Zhong

<p>       In physical geodesy, the harmonic correction (HC), as one of the main problems when using residual terrain modelling (RTM), has become a research focus of high-frequency gravity field modelling. Over past decades, though various methods have been proposed to handle the HC issues for RTM technique, most of them focused on the HC for RTM gravity anomaly rather than other gravity functionals, such as RTM geoid height and gravity gradient. In practice, the HC for RTM geoid height was generally assumed to be negligible, but a quantification is yet studied. In this study, besides the highlighted HC for gravity anomaly in previous studies, the expressions of HC terms for RTM geoid height are provided in the framework of the classical condensation method under infinite Bouguer plate approximation. The errors involved by various assumption of the classical condensation method, e.g., mass inconsistency between infinite masses in the HC and limited masses in the RTM, and planar assumption of the Earth’s surface, are further studied. Based on the derived formulas, the quantification of HC for RTM geoid height when reference surface is expanded to degree and order of 2,159 is given. Our results showed the significance of HC for RTM geoid height, with values up to ~10 cm, in cm-level and mm-level geoid determination. With integration masses extending up to a sufficient distance, such as 1° from calculation point for the determination of RTM geoid height, the errors due to an infinite Bouguer plate approximation are neglectable small. The validation through comparison with terrestrial measurements proved that the HC terms provided in this study can improve the accuracy of RTM derived geoid height and are expected to be useful for applications of RTM technique in regional and global gravity field modelling.</p>


Author(s):  
Kati Steven Emmanuel ◽  
Christian Mathuram ◽  
Akshay Rai Priyadarshi ◽  
Rishu Abraham George ◽  
J Anitha

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