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18-Geom-B2 Satellite Navigation · December 2014

Question 6 of 9: Conventional (Relative Static) GPS Control Surveying

Nivaar worked solution (AI-drafted; not reviewed by a licensed engineer)

Notes on this paper

Paper format: National Exams, December 2014 — 3 hours, closed book (approved Casio/Sharp non-programmable calculators only). NINE questions: questions 1–7 are mandatory (80 marks) and the candidate answers one of Q8/Q9 (20 marks) for a total of 100. This is a theory paper — answers are in essay form, with two short symbolic derivations (Q2 DOP, Q4 double differencing). All nine questions, including both Q8 and Q9, are solved below for completeness.

Reference texts: Hofmann-Wellenhof, Lichtenegger & Wasle, GNSS — Global Navigation Satellite Systems (Springer, 2008); Leick, Rapoport & Tatarnikov, GPS Satellite Surveying (4th ed., Wiley); Kaplan & Hegarty, Understanding GPS/GNSS: Principles and Applications (3rd ed., Artech House); Groves, Principles of GNSS, Inertial, and Multisensor Integrated Navigation Systems (2nd ed., Artech House) for Q9; Natural Resources Canada — Canadian Geodetic Survey (CSRS-PPP service, Canadian Active Control System). Canadian frame throughout (NAD83(CSRS), NRCan reference products).

Question 6: Conventional (Relative Static) GPS Control Surveying (10 marks)

Question text not reproduced: the examination questions are © Engineers and Geoscientists BC. Open the official past paper (linked at the top of this page) to read the question, then follow the worked solution below.

Conventional (relative) static positioning is the classical high-accuracy GNSS technique used to establish and densify geodetic control. Two or more receivers occupy stations simultaneously for an extended session, and the precise baseline vectors between them are computed from carrier-phase double differences and adjusted into a network tied to known control.

Field procedure. Receivers with geodetic (e.g. choke-ring) antennas are set on the stations to be connected and levelled/centred over the marks, with antenna heights carefully measured. They observe the same satellites simultaneously for a session long enough (commonly 30 minutes to several hours, increasing with baseline length) to accumulate strong geometry. Sessions are planned in advance using an almanac so that observations fall in windows with adequate satellites and low PDOP. Multiple receivers form several baselines per session, and stations are re-occupied in different sessions so that the network contains redundant, independently-observed baselines.

Processing. Each baseline is processed by forming between-receiver and between-satellite (double) differences, which cancel the satellite and receiver clock errors and reduce the atmospheric and orbit errors (Q4); the carrier-phase integer ambiguities are then resolved to yield a fixed, centimetre-or-better baseline vector with its covariance. The full set of baseline vectors is combined in a least-squares network adjustment, constrained to the coordinates of the known control stations, producing adjusted coordinates and a rigorous statistical assessment (error ellipses, residuals).

Accuracy and use. Relative static routinely achieves a few millimetres plus roughly 0.1–1 ppm of baseline length — the highest accuracy available from field GNSS — which is why it is used for first-order geodetic control, densification of the national framework, and any project demanding the best coordinates. In Canada the network is tied to NAD83(CSRS) through the Canadian Active Control System and Canadian Base Network stations, and observations can be submitted to NRCan for processing.