Entrar

The innovation of touch-tone telephony revolutionized the telecommunications industry by replacing the traditional rotary dial with a dual-tone multi-frequency (DTMF) signaling system. This system uses a matrix-style keypad with buttons arranged in four rows and three columns, creating 12 distinct signals each assigned to a pair of frequencies. Each button press results in a simultaneous generation of two sinusoidal tones – one from a low-frequency group (697 to 941 Hz) and one from a high-frequency group (1209 to 1477 Hz).

This dual-tone system is an advancement in user interface design and a sophisticated application of signal processing technology. The filtering of signals, as depicted in the example of the touch-tone telephone set, utilizes a combination of low-pass (LP) and high-pass (HP) filters, followed by bandpass filters to discern individual tones within the grouped frequencies. The bandpass filters play a pivotal role in signal detection, allowing only a narrow band of frequencies to pass through – effectively isolating the tones produced by the keypad.

The design of these filters involves precision electronics and can be exemplified by constructing a series RLC circuit, which operates as a bandpass filter. This is a resonant circuit consisting of a resistor (R), inductor (L), and capacitor (C), which allows it to pass a selective range of frequencies while blocking others.

The touch-tone system exemplifies the practical application of electronic filter design in real-world systems, showcasing the critical nature of frequency selection and signal clarity in communication technology. Through the meticulous design of RLC bandpass filters, touch-tone telephones can reliably interpret user inputs, thereby maintaining the integrity of the information transmitted across the vast networks connecting calls worldwide.

Tags

Touch tone TelephonyTelecommunications IndustryDual tone Multi frequency DTMFUser Interface DesignSignal Processing TechnologyMatrix style KeypadSinusoidal TonesLow pass FiltersHigh pass FiltersBandpass FiltersSignal DetectionRLC CircuitFrequency SelectionElectronic Filter DesignCommunication Technology

Do Capítulo 9:

article

Now Playing

9.15 : Design Example

Frequency Response

130 Visualizações

article

9.1 : Network Function of a Circuit

Frequency Response

224 Visualizações

article

9.2 : Frequency Response of a Circuit

Frequency Response

196 Visualizações

article

9.3 : Gain

Frequency Response

149 Visualizações

article

9.4 : Bode Plots

Frequency Response

395 Visualizações

article

9.5 : Transfer function and Bode Plots-I

Frequency Response

269 Visualizações

article

9.6 : Transfer function and Bode Plots-II

Frequency Response

260 Visualizações

article

9.7 : Bode Plots Construction

Frequency Response

628 Visualizações

article

9.8 : Series Resonance

Frequency Response

128 Visualizações

article

9.9 : Characteristics of Series Resonant Circuit

Frequency Response

181 Visualizações

article

9.10 : Parallel Resonance

Frequency Response

155 Visualizações

article

9.11 : Frequency Response of Op Amp Circuits

Frequency Response

214 Visualizações

article

9.12 : Passive Filters

Frequency Response

280 Visualizações

article

9.13 : Active Filters

Frequency Response

403 Visualizações

article

9.14 : Scaling

Frequency Response

208 Visualizações

JoVE Logo

Privacidade

Termos de uso

Políticas

Pesquisa

Educação

SOBRE A JoVE

Copyright © 2025 MyJoVE Corporation. Todos os direitos reservados