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Multipath propagation

In radio communication, multipath is the propagation phenomenon that results in radio signals reaching the receiving antenna by two or more paths. Causes of multipath include atmospheric ducting, ionospheric reflection and refraction, and reflection from water bodies and terrestrial objects such as mountains and buildings. When the same signal is received over more than one path, it can create interference and phase shifting of the signal. Destructive interference causes fading; this may cause a radio signal to become too weak in certain areas to be received adequately. For this reason, this effect is also known as multipath interference or multipath distortion.

Where the magnitudes of the signals arriving by the various paths have a distribution known as the Rayleigh distribution, this is known as Rayleigh fading. Where one component (often, but not necessarily, a line of sight component) dominates, a Rician distribution provides a more accurate model, and this is known as Rician fading. Where two components dominate, the behavior is best modeled with the two-wave with diffuse power (TWDP) distribution. All of these descriptions are commonly used and accepted and lead to results. However, they are generic and abstract/hide/approximate the underlying physics.

Interference edit

 
Coherent waves that travel along two different paths will arrive with phase shift, hence interfering with each other.

Multipath interference is a phenomenon in the physics of waves whereby a wave from a source travels to a detector via two or more paths and the two (or more) components of the wave interfere constructively or destructively. Multipath interference is a common cause of "ghosting" in analog television broadcasts and of fading of radio waves.

 
A diagram of the ideal situation for TV signals moving through space: The signal leaves the transmitter (TX) and travels through one path to the receiver (the TV set, which is labeled RX)
 
In this illustration, an object (in this case an aircraft) pollutes the system by adding a second path. The signal arrives at receiver (RX) by means of two different paths which have different lengths. The main path is the direct path, while the second is due to a reflection from the plane.

The condition necessary is that the components of the wave remain coherent throughout the whole extent of their travel.

The interference will arise owing to the two (or more) components of the wave having, in general, travelled a different length (as measured by optical path length – geometric length and refraction (differing optical speed)), and thus arriving at the detector out of phase with each other.

The signal due to indirect paths interferes with the required signal in amplitude as well as phase which is called multipath fading.

Examples edit

In analog facsimile and television transmission, multipath causes jitter and ghosting, seen as a faded duplicate image to the right of the main image. Ghosts occur when transmissions bounce off a mountain or other large object, while also arriving at the antenna by a shorter, direct route, with the receiver picking up two signals separated by a delay.

 
Radar multipath echoes from an actual target cause ghosts to appear.

In radar processing, multipath causes ghost targets to appear, deceiving the radar receiver. These ghosts are particularly bothersome since they move and behave like the normal targets (which they echo), and so the receiver has difficulty in isolating the correct target echo. These problems can be minimized by incorporating a ground map of the radar's surroundings and eliminating all echoes which appear to originate below the ground or above a certain height (altitude).

In digital radio communications (such as GSM) multipath can cause errors and affect the quality of communications. The errors are due to intersymbol interference (ISI). Equalizers are often used to correct the ISI. Alternatively, techniques such as orthogonal frequency division modulation and rake receivers may be used.

 
GPS error due to multipath

In a Global Positioning System receiver, multipath effects can cause a stationary receiver's output to indicate as if it were randomly jumping about or creeping. When the unit is moving the jumping or creeping may be hidden, but it still degrades the displayed accuracy of location and speed.

In wired media edit

Multipath propagation is similar in power line communication and in telephone local loops. In either case, impedance mismatch causes signal reflection.

High-speed power line communication systems usually employ multi-carrier modulations (such as OFDM or wavelet OFDM) to avoid the intersymbol interference that multipath propagation would cause. The ITU-T G.hn standard provides a way to create a high-speed (up to 1 gigabit per second) local area network using existing home wiring (power lines, phone lines, and coaxial cables). G.hn uses OFDM with a cyclic prefix to avoid ISI. Because multipath propagation behaves differently in each kind of wire, G.hn uses different OFDM parameters (OFDM symbol duration, guard interval duration) for each media.

DSL modems also use orthogonal frequency-division multiplexing to communicate with their DSLAM despite multipath. In this case the reflections may be caused by mixed wire gauges, but those from bridge taps are usually more intense and complex. Where OFDM training is unsatisfactory, bridge taps may be removed.

Mathematical modeling edit

 
Mathematical model of the multipath impulse response.

The mathematical model of the multipath can be presented using the method of the impulse response used for studying linear systems.

Suppose you want to transmit a single, ideal Dirac pulse of electromagnetic power at time 0, i.e.

 

At the receiver, due to the presence of the multiple electromagnetic paths, more than one pulse will be received, and each one of them will arrive at different times. In fact, since the electromagnetic signals travel at the speed of light, and since every path has a geometrical length possibly different from that of the other ones, there are different air travelling times (consider that, in free space, the light takes 3 μs to cross a 1 km span). Thus, the received signal will be expressed by

 

where   is the number of received impulses (equivalent to the number of electromagnetic paths, and possibly very large),   is the time delay of the generic   impulse, and   represent the complex amplitude (i.e., magnitude and phase) of the generic received pulse. As a consequence,   also represents the impulse response function   of the equivalent multipath model.

More in general, in presence of time variation of the geometrical reflection conditions, this impulse response is time varying, and as such we have

 
 
 

Very often, just one parameter is used to denote the severity of multipath conditions: it is called the multipath time,  , and it is defined as the time delay existing between the first and the last received impulses

 
 
Mathematical model of the multipath channel transfer function.

In practical conditions and measurement, the multipath time is computed by considering as last impulse the first one which allows receiving a determined amount of the total transmitted power (scaled by the atmospheric and propagation losses), e.g. 99%.

Keeping our aim at linear, time invariant systems, we can also characterize the multipath phenomenon by the channel transfer function  , which is defined as the continuous time Fourier transform of the impulse response  

 

where the last right-hand term of the previous equation is easily obtained by remembering that the Fourier transform of a Dirac pulse is a complex exponential function, an eigenfunction of every linear system.

The obtained channel transfer characteristic has a typical appearance of a sequence of peaks and valleys (also called notches); it can be shown that, on average, the distance (in Hz) between two consecutive valleys (or two consecutive peaks), is roughly inversely proportional to the multipath time. The so-called coherence bandwidth is thus defined as

 

For example, with a multipath time of 3 μs (corresponding to a 1 km of added on-air travel for the last received impulse), there is a coherence bandwidth of about 330 kHz.

See also edit

References edit

  This article incorporates public domain material from . General Services Administration. Archived from the original on 2022-01-22.

multipath, propagation, this, article, about, electromagnetic, propagation, phenomenon, usage, computing, multipath, disambiguation, this, article, multiple, issues, please, help, improve, discuss, these, issues, talk, page, learn, when, remove, these, templat. This article is about the electromagnetic propagation phenomenon For usage in computing see Multipath disambiguation This article has multiple issues Please help improve it or discuss these issues on the talk page Learn how and when to remove these template messages This article includes a list of references related reading or external links but its sources remain unclear because it lacks inline citations Please help to improve this article by introducing more precise citations November 2009 Learn how and when to remove this template message This article needs additional citations for verification Please help improve this article by adding citations to reliable sources Unsourced material may be challenged and removed Find sources Multipath propagation news newspapers books scholar JSTOR October 2021 Learn how and when to remove this template message Learn how and when to remove this template message In radio communication multipath is the propagation phenomenon that results in radio signals reaching the receiving antenna by two or more paths Causes of multipath include atmospheric ducting ionospheric reflection and refraction and reflection from water bodies and terrestrial objects such as mountains and buildings When the same signal is received over more than one path it can create interference and phase shifting of the signal Destructive interference causes fading this may cause a radio signal to become too weak in certain areas to be received adequately For this reason this effect is also known as multipath interference or multipath distortion Where the magnitudes of the signals arriving by the various paths have a distribution known as the Rayleigh distribution this is known as Rayleigh fading Where one component often but not necessarily a line of sight component dominates a Rician distribution provides a more accurate model and this is known as Rician fading Where two components dominate the behavior is best modeled with the two wave with diffuse power TWDP distribution All of these descriptions are commonly used and accepted and lead to results However they are generic and abstract hide approximate the underlying physics Contents 1 Interference 2 Examples 3 In wired media 4 Mathematical modeling 5 See also 6 ReferencesInterference editMain article Wave interference nbsp Coherent waves that travel along two different paths will arrive with phase shift hence interfering with each other Multipath interference is a phenomenon in the physics of waves whereby a wave from a source travels to a detector via two or more paths and the two or more components of the wave interfere constructively or destructively Multipath interference is a common cause of ghosting in analog television broadcasts and of fading of radio waves nbsp A diagram of the ideal situation for TV signals moving through space The signal leaves the transmitter TX and travels through one path to the receiver the TV set which is labeled RX nbsp In this illustration an object in this case an aircraft pollutes the system by adding a second path The signal arrives at receiver RX by means of two different paths which have different lengths The main path is the direct path while the second is due to a reflection from the plane The condition necessary is that the components of the wave remain coherent throughout the whole extent of their travel The interference will arise owing to the two or more components of the wave having in general travelled a different length as measured by optical path length geometric length and refraction differing optical speed and thus arriving at the detector out of phase with each other The signal due to indirect paths interferes with the required signal in amplitude as well as phase which is called multipath fading Examples editIn analog facsimile and television transmission multipath causes jitter and ghosting seen as a faded duplicate image to the right of the main image Ghosts occur when transmissions bounce off a mountain or other large object while also arriving at the antenna by a shorter direct route with the receiver picking up two signals separated by a delay nbsp Radar multipath echoes from an actual target cause ghosts to appear In radar processing multipath causes ghost targets to appear deceiving the radar receiver These ghosts are particularly bothersome since they move and behave like the normal targets which they echo and so the receiver has difficulty in isolating the correct target echo These problems can be minimized by incorporating a ground map of the radar s surroundings and eliminating all echoes which appear to originate below the ground or above a certain height altitude In digital radio communications such as GSM multipath can cause errors and affect the quality of communications The errors are due to intersymbol interference ISI Equalizers are often used to correct the ISI Alternatively techniques such as orthogonal frequency division modulation and rake receivers may be used nbsp GPS error due to multipathIn a Global Positioning System receiver multipath effects can cause a stationary receiver s output to indicate as if it were randomly jumping about or creeping When the unit is moving the jumping or creeping may be hidden but it still degrades the displayed accuracy of location and speed In wired media editMultipath propagation is similar in power line communication and in telephone local loops In either case impedance mismatch causes signal reflection High speed power line communication systems usually employ multi carrier modulations such as OFDM or wavelet OFDM to avoid the intersymbol interference that multipath propagation would cause The ITU T G hn standard provides a way to create a high speed up to 1 gigabit per second local area network using existing home wiring power lines phone lines and coaxial cables G hn uses OFDM with a cyclic prefix to avoid ISI Because multipath propagation behaves differently in each kind of wire G hn uses different OFDM parameters OFDM symbol duration guard interval duration for each media DSL modems also use orthogonal frequency division multiplexing to communicate with their DSLAM despite multipath In this case the reflections may be caused by mixed wire gauges but those from bridge taps are usually more intense and complex Where OFDM training is unsatisfactory bridge taps may be removed Mathematical modeling edit nbsp Mathematical model of the multipath impulse response The mathematical model of the multipath can be presented using the method of the impulse response used for studying linear systems Suppose you want to transmit a single ideal Dirac pulse of electromagnetic power at time 0 i e x t d t displaystyle x t delta t nbsp At the receiver due to the presence of the multiple electromagnetic paths more than one pulse will be received and each one of them will arrive at different times In fact since the electromagnetic signals travel at the speed of light and since every path has a geometrical length possibly different from that of the other ones there are different air travelling times consider that in free space the light takes 3 ms to cross a 1 km span Thus the received signal will be expressed by y t h t n 0 N 1 r n e j ϕ n d t t n displaystyle y t h t sum n 0 N 1 rho n e j phi n delta t tau n nbsp where N displaystyle N nbsp is the number of received impulses equivalent to the number of electromagnetic paths and possibly very large t n displaystyle tau n nbsp is the time delay of the generic n t h displaystyle n th nbsp impulse and r n e j ϕ n displaystyle rho n e j phi n nbsp represent the complex amplitude i e magnitude and phase of the generic received pulse As a consequence y t displaystyle y t nbsp also represents the impulse response function h t displaystyle h t nbsp of the equivalent multipath model More in general in presence of time variation of the geometrical reflection conditions this impulse response is time varying and as such we have t n t n t displaystyle tau n tau n t nbsp r n r n t displaystyle rho n rho n t nbsp ϕ n ϕ n t displaystyle phi n phi n t nbsp Very often just one parameter is used to denote the severity of multipath conditions it is called the multipath time T M displaystyle T M nbsp and it is defined as the time delay existing between the first and the last received impulses T M t N 1 t 0 displaystyle T M tau N 1 tau 0 nbsp nbsp Mathematical model of the multipath channel transfer function In practical conditions and measurement the multipath time is computed by considering as last impulse the first one which allows receiving a determined amount of the total transmitted power scaled by the atmospheric and propagation losses e g 99 Keeping our aim at linear time invariant systems we can also characterize the multipath phenomenon by the channel transfer function H f displaystyle H f nbsp which is defined as the continuous time Fourier transform of the impulse response h t displaystyle h t nbsp H f F h t h t e j 2 p f t d t n 0 N 1 r n e j ϕ n e j 2 p f t n displaystyle H f mathfrak F h t int infty infty h t e j2 pi ft dt sum n 0 N 1 rho n e j phi n e j2 pi f tau n nbsp where the last right hand term of the previous equation is easily obtained by remembering that the Fourier transform of a Dirac pulse is a complex exponential function an eigenfunction of every linear system The obtained channel transfer characteristic has a typical appearance of a sequence of peaks and valleys also called notches it can be shown that on average the distance in Hz between two consecutive valleys or two consecutive peaks is roughly inversely proportional to the multipath time The so called coherence bandwidth is thus defined as B C 1 T M displaystyle B C approx frac 1 T M nbsp For example with a multipath time of 3 ms corresponding to a 1 km of added on air travel for the last received impulse there is a coherence bandwidth of about 330 kHz See also editChoke ring antenna a design that can reject extraneous reflection signals Diversity schemes Doppler spread Fading Lloyd s mirror Olivia MFSK Orthogonal frequency division multiplexing Rician fading Signal flow Two ray ground reflection model Ultra wide bandReferences editMIL STD 188 Federal Standard 1037C nbsp Look up multipath or multipathing in Wiktionary the free dictionary nbsp This article incorporates public domain material from Federal Standard 1037C General Services Administration Archived from the original on 2022 01 22 Retrieved from https en wikipedia org w index php title Multipath propagation amp oldid 1182877893, wikipedia, wiki, book, books, library,

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