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Green, Energy-Efficient and Sustainable Networks
Green, Energy-Efficient and Sustainable Networks
Autore Lorincz Josip
Pubbl/distr/stampa MDPI - Multidisciplinary Digital Publishing Institute, 2020
Descrizione fisica 1 electronic resource (382 p.)
Soggetto non controllato node speed
linear recovery
resource block allocation
social awareness
internet-of-things
scheduling algorithm
renewables
neural network
battery capacity
energy awareness
measurement structure
optimization
energy efficiency
charging efficiency
random structural matrices
SDN
water filling algorithm
ONOS
energy harvesting
malware detection
node density
HetNets
sustainability
cooperative smart community
adversarial samples
spatial modulation
NOMA
5G
light-weight authentication
green networking
Device-to-Device (D2D)
lightweight cipher
mobile edge computing
wireless power transfer
adaptive link rate
successive interference cancellation (SIC)
directional charging vehicle
self-interference cancellation
proportional rate constraint
inter-meeting time
sustainable
RWSN
channel state information
stochastic geometry
networks
green internet of things (IoT)
PHY-layer
IoT
Markov chain
traffic engineering
QoS
energy-efficient Ethernet
power
lightweight authentication
energy aware routing
authentication
wired access
amplify-and-forward
software defined networking (SDN)
image compressive sensing (CS)
green
edge computing
LTE-A
opportunistic networks
RF Fingerprinting
data centre
multiple-input multiple-output
Internet of Things
machine learning
peer discovery
full-duplex
industrial
carbon footprint
WSN
imperfect CSI
data center
symbol error probability
physical-layer authentication
interference coordination
clustering
control and data plane
wireless
ICT
bisection based optimal power allocation
energy-efficiency
consumer preferences
real-time traffic
ISBN 3-03928-039-2
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910372783803321
Lorincz Josip  
MDPI - Multidisciplinary Digital Publishing Institute, 2020
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Recent Technical Developments in Energy-Efficient 5G Mobile Cells
Recent Technical Developments in Energy-Efficient 5G Mobile Cells
Autore Abd-Alhameed Raed A
Pubbl/distr/stampa Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020
Descrizione fisica 1 electronic resource (292 p.)
Soggetto topico History of engineering & technology
Soggetto non controllato microstrip
tuneable filter
microwave filter
5G
MEMSs
varactor
4G
CR
MIMO
reconfigurable antenna
switch
UWB
WiMAX
WLAN
wireless communications
cooperative NOMA
multi-points DF relaying nodes
half-duplex
full-duplex
Rayleigh fading channels
Nakagami-m fading channels
energy harvesting
non-orthogonal multiple access
multiple antenna
transmit antenna selection
outage probability
pattern reconfigurable
patch antenna
s-parameters
frequency reconfigurable
dual-band Doherty power amplifier
LTE-advanced
high-efficiency
phase offset lines
impedance inverter network
phase compensation network
High power amplifiers
high efficiency
Doherty power amplifier
GaN-HEMT
small cell
maximum transmit power
UE
open-loop power control
interference
ergodic capacity
non-linear energy harvesting
NOMA
monopole antenna
S-parameters
5G, 4/4.5G
LTE
ISM
WiFi
5G antenna
slot antenna
mobile terminal antenna
MIMO antenna
medical applications
miniaturized antenna
arc-shaped
dual-band
chiral
Tellegen
multilayer CPW structure
dispersion characteristics
full-GEMT
Muller's method
complex propagation constant
acceleration procedure
ISM 2.4 GHz
isolation
envelope correlation coefficient (ECC)
channel capacity loss (CCL)
5G technology
CPW-fed antenna
diversity antenna
future smartphones
MIMO systems
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Record Nr. UNINA-9910557659903321
Abd-Alhameed Raed A  
Basel, Switzerland, : MDPI - Multidisciplinary Digital Publishing Institute, 2020
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui
Visible Light Communication (VLC)
Visible Light Communication (VLC)
Autore Chen Chen
Pubbl/distr/stampa MDPI - Multidisciplinary Digital Publishing Institute, 2022
Descrizione fisica 1 electronic resource (240 p.)
Soggetto topico Technology: general issues
History of engineering & technology
Soggetto non controllato visible light communication (VLC)
dimming control
constant transmission efficiency
error performance
light-emitting diode (LED)
visible light communications
deep learning
bit error rate
orthogonal frequency division multiplexing
index modulation
POF
FSO
LiFi
LED
orthogonal frequency division multiplexing (OFDM)
power efficiency
peak-to-average-power ratio (PAPR)
pre-distorted enhanced
underwater optical wireless communication (UOWC)
ADO-OFDM
gamma-gamma function
full-duplex
long-reach
photon counting
vehicular visible light communication (VVLC)
intelligent reflecting surface (IRS)
the number of mirrors
energy efficiency (EE)
carrierless amplitude and phase (CAP) modulation
pairwise coding (PWC)
dual-mode index modulation (DM)
chaotic encryption
visible light positioning (VLP)
free-space communication
RGB LED
non-orthogonal multiple access (NOMA)
superposition constellation adjustment
successive interference cancellation
bit error ratio
NOMA triangle
underwater wireless optical communication
temporal dispersion
bandwidth limitation
Monte Carlo method
maximum likelihood sequence estimation
visible light communication
nonlinear equalization
reservoir computing
neural network (NN)
autoencoder (AE)
transceiver design
nonlinearity
VLC
predistortion
coefficient approximation
BLSTM
orthogonal frequency-division multiplexing
sampling frequency offset
visible light communications (VLC)
mmWave communications
channel modeling
channel propagation characteristics
path loss
delay spread (DS)
Ricean K-factor
cluster characteristics
Formato Materiale a stampa
Livello bibliografico Monografia
Lingua di pubblicazione eng
Altri titoli varianti Visible Light Communication
Record Nr. UNINA-9910576877303321
Chen Chen  
MDPI - Multidisciplinary Digital Publishing Institute, 2022
Materiale a stampa
Lo trovi qui: Univ. Federico II
Opac: Controlla la disponibilità qui