USING GPS NEAR THE FOREST AND QUALITY CONTROL
A. Pirti
Abstract
A. Pirti
Abstract
This paper attempts to provide some insights into the fading properties of GPS signals. When a GPS signal reaches the antenna, it suffers from masking and blocking effects from surrounding objects. With respect to these effects, GPS signals can be divided into clear signals, shadowed signals, and blocked signals.In this article we shall examine the performance and use of GPS based data acquisition systems near forest. As a general rule, a clear view of the sky is preferred when using GPS for determining location. This means that using GPS near forest is one of the most demanding uses of technology and one that requires particular attention when evaluating GPS receivers that will be used in such an environment.The signal transmitted by GPS satellites are extremely low power, and the GPS signal is about 100 times weaker than the general background radiation at that frequency. The signal passing through your body right now from a local television or radio station is almost certainly several thousand times stronger than a GPS signal. GPS receivers use sophisticated signal processing techniques to lock onto and track the GPS satellites. However, the relatively low power of these signals can indeed pose problems when the signal isfurther degraded by aforest canopy.Humidity of the leaves and the forest is the critical factor for GPS performance near the forest area. Water laden leaves of tree attenuate more signal than those that are dry. GPS signals will be present with weak signal strengths and positions that are computed from weak signals tend to be less accurate.This paper evaluates GPS positional accuracy, precision and performance near forest areas. As a result of this attenuation, positions are computed from weak signals and tend to be less accurate.
OpenAlex reports 4 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
This paper attempts to provide some insights into the fading properties of GPS signals. When a GPS signal reaches the antenna, it suffers from masking and blocking effects from surrounding objects. With respect to these effects, GPS signals can be divided into clear signals, shadowed signals, and blocked signals.In this article we shall examine the performance and use of GPS based data acquisition systems near forest. As a general rule, a clear view of the sky is preferred when using GPS for determining location. This means that using GPS near forest is one of the most demanding uses of technology and one that requires particular attention when evaluating GPS receivers that will be used in such an environment.The signal transmitted by GPS satellites are extremely low power, and the GPS signal is about 100 times weaker than the general background radiation at that frequency. The signal passing through your body right now from a local television or radio station is almost certainly several thousand times stronger than a GPS signal. GPS receivers use sophisticated signal processing techniques to lock onto and track the GPS satellites. However, the relatively low power of these signals can indeed pose problems when the signal isfurther degraded by aforest canopy.Humidity of the leaves and the forest is the critical factor for GPS performance near the forest area. Water laden leaves of tree attenuate more signal than those that are dry. GPS signals will be present with weak signal strengths and positions that are computed from weak signals tend to be less accurate.This paper evaluates GPS positional accuracy, precision and performance near forest areas. As a result of this attenuation, positions are computed from weak signals and tend to be less accurate.
Key concepts: Global Positioning System, GPS signals, GPS disciplined oscillator, Assisted GPS, SIGNAL (programming language), Precision Lightweight GPS Receiver, Remote sensing, Computer science