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Timing acquisition of frequency-hopped ultra-wideband OFDM system
Paavo Hahtola
VTT Technical Research Centre of Finland
Research output
:
Thesis
›
Master's thesis
Overview
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Dive into the research topics of 'Timing acquisition of frequency-hopped ultra-wideband OFDM system'. Together they form a unique fingerprint.
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Keyphrases
Orthogonal Frequency Division multiplexing System
100%
Ultra-wideband
100%
Frequency Hopping
100%
Time-frequency
100%
Frequency Code
100%
Timing Acquisition
100%
Training Symbol
66%
Differential Correlation
50%
Variable Renewable Energy
33%
Additive White Gaussian Noise Channel
33%
Decision Variables
33%
Time Synchronization
33%
Correlation-based
33%
Training Data
16%
Challenging Tasks
16%
Wireless Communication Systems
16%
Preamble Structure
16%
Frequency-selective Fading Channel
16%
Low Signal-to-noise Ratio
16%
Model Characteristics
16%
Multipath Fading
16%
Determination Method
16%
Data-aided
16%
Correlation Length
16%
Acquisition Time
16%
Gaussian Fading Channels
16%
Symbol Structure
16%
Orthogonal Frequency Division multiplexing Technique
16%
Search Step
16%
Distance Correlation
16%
Detector Parameters
16%
Characteristic Simulation
16%
Acquisition Scheme
16%
Signal Design
16%
Data Overhead
16%
Engineering
Ultra-Wideband
100%
Orthogonal Frequency Division Multiplexing
100%
Simulation Result
66%
Fading Channel
66%
Decision Variable
66%
Target System
66%
Additive White Gaussian Noise
66%
Signal-to-Noise Ratio
33%
Acquisition Time
33%
Wireless Communication
33%
Communication System
33%
Fits and Tolerances
33%
Step Size α
33%
Correlation Length
33%
Selective Fading
33%
Computer Science
Ultra-Wideband
100%
Orthogonal Frequency Division Multiplexing
100%
Additive White Gaussian Noise
66%
Target System
66%
Decision Variable
66%
Multipath Fading
33%
Multiplexing Technique
33%
Symbol Structure
33%
wireless communication system
33%
frequency selective fading
33%
Training Data
33%
Fading Channel
33%
Acquisition Time
33%
Correlation Length
33%
Signal-to-Noise Ratio
33%
INIS
simulation
100%
correlations
83%
signals
66%
synchronization
50%
data
33%
length
33%
additives
33%
noise
33%
performance
16%
design
16%
tolerance
16%
size
16%
detection
16%
signal-to-noise ratio
16%
testing
16%
distance
16%
probability
16%