Communication channel
A communication channel refers either to a physical transmission medium such as a wire, or to a logical connection over a multiplexed medium such as a radio channel in telecommunications and computer networking. A channel is used to convey an information signal, for example a digital bit stream, from one or several senders to one or several receivers. A channel has a certain capacity for transmitting information, often measured by its bandwidth in Hz or its data rate in bits per second.
Communicating data from one location to another requires some form of pathway or medium. These pathways, called communication channels, use two types of media: cable and broadcast. Cable or wire line media use physical wires of cables to transmit data and information. Twisted-pair wire and coaxial cables are made of copper, and fiber-optic cable is made of glass.
In information theory, a channel refers to a theoretical channel model with certain error characteristics. In this more general view, a storage device is also a kind of channel, which can be sent to and received from.
Examples
Examples of communications channels include:- A connection between initiating and terminating nodes of a circuit.
- A single path provided by a transmission medium via either
- * physical separation, such as by multipair cable or
- * electrical separation, such as by frequency-division or time-division multiplexing.
- A path for conveying electrical or electromagnetic signals, usually distinguished from other parallel paths.
- * A storage which can communicate a message over time as well as space
- * The portion of a storage medium, such as a track or band, that is accessible to a given reading or writing station or head.
- * A buffer from which messages can be 'put' and 'got'. See Actor model and process calculi for discussion on the use of channels.
- In a communications system, the physical or logical link that connects a data source to a data sink.
- A specific radio frequency, pair or band of frequencies, usually named with a letter, number, or codeword, and often allocated by international agreement.
- * Marine VHF radio uses some 88 channels in the VHF band for two-way FM voice communication. Channel 16, for example, is 156.800 MHz. In the US, seven additional channels, WX1 - WX7, are allocated for weather broadcasts.
- * Television channels such as North American TV Channel 2 = 55.25 MHz, Channel 13 = 211.25 MHz. Each channel is 6 MHz wide. This was based on the bandwidth required by older analog television signals. Since 2006 television broadcasting has switched to digital modulation which uses image compression to transmit a television signal in a much smaller bandwidth, so each of these "physical channels" has been divided into multiple "virtual channels" each carrying a DTV channel.
- * Wi-Fi uses 13 channels from 2412 MHz to 2484 MHz in 5 MHz steps, in the ISM bands.
- * The radio channel between an amateur radio repeater and a ham uses two frequencies often 600 kHz apart. For example, a repeater that transmits on 146.94 MHz typically listens for a ham transmitting on 146.34 MHz.
Channel models
A channel can be modelled physically by trying to calculate the physical processes which modify the transmitted signal. For example, in wireless communications the channel can be modelled by calculating the reflection off every object in the environment. A sequence of random numbers might also be added in to simulate external interference and/or electronic noise in the receiver.Statistically a communication channel is usually modelled as a triple consisting of an input alphabet, an output alphabet, and for each pair of input and output elements a transition probability p. Semantically, the transition probability is the probability that the symbol o is received given that i was transmitted over the channel.
Statistical and physical modelling can be combined. For example, in wireless communications the channel is often modelled by a random attenuation of the transmitted signal, followed by additive noise. The attenuation term is a simplification of the underlying physical processes and captures the change in signal power over the course of the transmission. The noise in the model captures external interference and/or electronic noise in the receiver. If the attenuation term is complex it also describes the relative time a signal takes to get through the channel. The statistics of the random attenuation are decided by previous measurements or physical simulations.
Channel models may be continuous channel models in that there is no limit to how precisely their values may be defined.
Communication channels are also studied in a discrete-alphabet setting. This corresponds to abstracting a real world communication system in which the analog → digital and digital → analog blocks are out of the control of the designer. The mathematical model consists of a transition probability that specifies an output distribution for each possible sequence of channel inputs. In information theory, it is common to start with memoryless channels in which the output probability distribution only depends on the current channel input.
A channel model may either be digital or analog.
Digital channel models
In a digital channel model, the transmitted message is modelled as a digital signal at a certain protocol layer. Underlying protocol layers, such as the physical layer transmission technique, is replaced by a simplified model. The model may reflect channel performance measures such as bit rate, bit errors, latency/delay, delay jitter, etc. Examples of digital channel models are:- Binary symmetric channel, a discrete memoryless channel with a certain bit error probability
- Binary bursty bit error channel model, a channel "with memory"
- Binary erasure channel, a discrete channel with a certain bit error detection probability
- Packet erasure channel, where packets are lost with a certain packet loss probability or packet error rate
- Arbitrarily varying channel, where the behavior and state of the channel can change randomly
Analog channel models
- Noise model, for example
- * Additive white Gaussian noise channel, a linear continuous memoryless model
- * Phase noise model
- Interference model, for example cross-talk and intersymbol interference
- Distortion model, for example a non-linear channel model causing intermodulation distortion
- Frequency response model, including attenuation and phase-shift
- Group delay model
- Modelling of underlying physical layer transmission techniques, for example a complex-valued equivalent baseband model of modulation and frequency response
- Radio frequency propagation model, for example
- * Log-distance path loss model
- * Fading model, for example Rayleigh fading, Ricean fading, log-normal shadow fading and frequency selective fading
- * Doppler shift model, which combined with fading results in a time-variant system
- * Ray tracing models, which attempt to model the signal propagation and distortions for specified transmitter-receiver geometries, terrain types, and antennas
- * Mobility models, which also causes a time-variant system
Types
- Digital or analog channel
- Transmission medium, for example a fibre channel
- Multiplexed channel
- Computer network virtual channel
- Simplex communication, duplex communication or half duplex communication channel
- Return channel
- Uplink or downlink
- Broadcast channel, unicast channel or multicast channel
Channel performance measures
- Spectral bandwidth in Hertz
- Symbol rate in baud, pulses/s or symbols/s
- Digital bandwidth bit/s measures: gross bit rate, net bit rate, channel capacity, and maximum throughput
- Channel utilization
- Link spectral efficiency
- Signal-to-noise ratio measures: signal-to-interference ratio, Eb/No, carrier-to-interference ratio in decibel
- Bit-error rate, packet-error rate
- Latency in seconds: propagation time, transmission time
- Delay jitter
Multi-terminal channels, with application to cellular systems
- A point-to-multipoint channel, also known as broadcasting medium : In this channel, a single sender transmits multiple messages to different destination nodes. All wireless channels except radio links can be considered as broadcasting media, but may not always provide broadcasting service. The downlink of a cellular system can be considered as a point-to-multipoint channel, if only one cell is considered and inter-cell co-channel interference is neglected. However, the communication service of a phone call is unicasting.
- Multiple access channel: In this channel, multiple senders transmit multiple possible different messages over a shared physical medium to one or several destination nodes. This requires a channel access scheme, including a media access control protocol combined with a multiplexing scheme. This channel model has applications in the uplink of the cellular networks.
- Relay channel: In this channel, one or several intermediate nodes cooperate with a sender to send the message to an ultimate destination node. Relay nodes are considered as a possible add-on in the upcoming cellular standards like 3GPP Long Term Evolution.
- Interference channel: In this channel, two different senders transmit their data to different destination nodes. Hence, the different senders can have a possible cross-talk or co-channel interference on the signal of each other. The inter-cell interference in the cellular wireless communications is an example of the interference channel. In spread spectrum systems like 3G, interference also occur inside the cell if non-orthogonal codes are used.
- A unicasting channel is a channel that provides a unicasting service, i.e. that sends data addressed to one specific user. An established phone call is an example.
- A broadcasting channel is a channel that provides a broadcasting service, i.e. that sends data addressed to all users in the network. Cellular network examples are the paging service as well as the Multimedia Broadcast Multicast Service.
- A multicasting channel is a channel where data is addressed to a group of subscribing users. LTE examples are the Physical Multicast Channel and MBSFN.