IP Library Granted Patent US 9,531,432
Granted Patent B2
US 9,531,432 · App. 14/895,016 · Granted Dec 27, 2016

Energy-efficient system for distant measurement of analog signals

Inventors: Tomislav Matic (Osijek, HR); Marijan Herceg (Osijek, HR); Josip Job (Osijek, HR)
Assignee: ELEKTROTEHNICKI FAKULTET SVEUCILISTA U OSIJEKU
H04B1/7174H03M1/125H04B1/7163H04B1/71632H04B17/364
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,531,432
App. No.
14/895,016
Granted
Dec 27, 2016
Kind
B2
Abstract

An energy-efficient system for measurement of analog signals including one or more measuring units. Each measuring unit has a measuring probe which signal is processed by a modulator. All measuring units have identical modulators selected from the Time Encoding Machine family: Asynchronous Sigma Delta Modulator, Integrate And Fire Modulator and Integral Pulse Frequency Modulator. A signal from the modulator is processed by a delay circuit from which is optionally fed back to the modulator. Signals from the delay circuit and modulator are used to trigger a UWB pulse generator, which is optionally amplified and transmitted via transmission line or antenna. The delay circuit uniquely characterizes the measuring unit and enables the receiving unit to separate received signals from plurality of measuring units signals sent in an unsynchronized manner. The invention is useful for long term acquisition of analog signals, especially time varying signals such as biological signals.

Claims (49)

1. An energy-efficient system for distant measurement of analog signals, the system comprising:

two or more measuring units; and

a corresponding receiving unit;

each measuring unit comprises:

an analog input,

a modulator that converts the analog input signal into a series of pulses, the modulator selected from the Time Encoding Machine family consisting of: an Asynchronous Sigma Delta Modulator, an Integrate And Fire Modulator and an Integral Pulse Frequency Modulator,

a delay circuit coupled to an output of the modulator,

an ultra-wide bandwidth pulse generator connected to transmission line or antenna directly or via an auxiliary amplifier, and

a power supply; and

the corresponding receiving unit comprises:

a receiving line or antenna,

a low noise amplifier coupled to the receiving line or the antenna,

at least one unipolar pulse detector selected from a positive pulse detector or negative pulse detector coupled to an output of the low noise amplifier and where one monostable multivibrator follows each pulse detector,

a signal processing means coupled to an output of the monostable multivibrator, and

a power supply;

all measuring units having identical modulators;

all measuring units use delay circuits tuned to mutually different delay times τ i that are used to identify the signal originating from the i-th measuring unit by the signal processing means;

each ultra-wide bandwidth pulse generator of the i-th measuring unit is triggered by the series of pulses generated by the modulator and by the series of the same pulses delayed in time by the delay time τ i by the corresponding delay circuit; where the signal from the delay circuit is optionally fed back to the modulator; and

the signal processing means comprising demodulators compatible with the pre-selected type of modulators, and at least one set of identical delay circuits with delay times τ i that corresponds to the set of delay times used by the measuring units;

wherein the signal processing means extracts the received signal corresponding to the i-th measuring unit according to the delay time τ i in the form of a pulse length suitable for being further processed to analog or digital information.

2. The energy-efficient system for distant measurement of analog signals according to claim 1 , wherein,

the selected modulator of all measuring units is the Asynchronous Sigma Delta Modulator;

the receiving unit comprises the positive pulse detector and the negative pulse detector which are connected to the output of the low noise amplifier and followed by the corresponding monostable multivibrators and two sets of delay circuits tuned to different delay times τ i corresponding to the delay times used by the measuring units within signal processing means; one set being connected to the branch dedicated to detection of positive pulses and another set being connected to the branch dedicated to detection of negative pulses; and

the input into i-th Asynchronous Sigma Delta Demodulator comprises original signals from both branches, previously multiplied by their corresponding signals delayed by the delay time τ i .

3. The energy-efficient system for distant measurement of analog signals according to claim 2 , wherein, each delay circuit of the different measuring unit has a different delay time τ i adjusted in the manner that:

τ i =T p ·( jN+ji−j ); where iε[ 1, N ] is a positive integer; and  (a)

τ i <T C /2;  (b)

where T c being minimum period of the pulsed signal out of the Asynchronous Sigma Delta Modulator, j being a positive integer, N being a number of users, and T p being ultra-wide bandwidth pulse width.

4. The energy-efficient system for distant measurement of analog signals according to claim 1 , wherein, the selected modulator of all measuring units is the Integrate And Fire Modulator; and where the receiving unit comprises the unipolar pulse detector connected to the output of the low noise amplifier and followed by the monostable multivibrator and one set of delay circuits tuned to different delay times τ i within signal processing means; where input into i-th Integrate And Fire Demodulator consists of the original signal previously multiplied by their corresponding signal delayed by the delay time τ i .

5. The energy-efficient system for distant measurement of analog signals according to claim 4 , wherein, each delay circuit of the different measuring unit has a different delay time τ i adjusted in the manner that:

τ i =T p ·( jN+ji−j ); where iε[ 1, N ] is a positive integer; and  (a)

τ i <T 1 min ;  (b)

where T 1 min being minimum period of the pulsed signal out of the Integrate And Fire Modulator, j being a positive integer, N being a number of users, and T p as being ultra-wide bandwidth pulse width.

6. The energy-efficient system for distant measurement of analog signals according to claim 1 , wherein,

the selected modulator of all measuring units is the Integral Pulse Frequency Modulator; and

the receiving unit comprises the unipolar pulse detector connected to the output of the low noise amplifier and followed by the monostable multivibrator and one set of delay circuits tuned to different delay times τ i within signal processing means; where input into i-th Integral Pulse Frequency Demodulator consist of original signal previously multiplied by their corresponding signal delayed by the delay time τ i .

7. The energy-efficient system for distant measurement of analog signals according to claim 6 , wherein, each delay circuit of the different measuring units has the different delay time τ i adjusted in the manner that:

τ i =T p ·( jN+ji−j ); where iε[ 1, N ] is a positive integer; and  (a)

τ i <T 1 min ;  (b)

where T 1 min being minimum period of the pulsed signal out of the Integral Pulse Frequency Modulator, j being a positive integer, N being a number of users, and T p being ultra-wide bandwidth pulse width.

8. The energy-efficient system for distant measurement of analog signals according to claim 1 , wherein

each signal generated by the ultra-wide bandwidth pulse generator in the measuring unit is transmitted via the transmission line or antenna, and

transmission of each measuring unit is performed in an unsynchronized manner with other measuring units within the same system for distant measurement.

9. The energy-efficient system for distant measurement of analog signals according to claim 1 , wherein the power supply is a micro energy harvesting device integrated into the measuring unit.

10. The energy-efficient system for distant measurement of analog signals according to claim 1 , wherein the power supply is a battery integrated into the measuring unit.

11. Use of energy-efficient system for distant measurement of analog signals according to claim 1 for long term acquisition of analog signals.

12. Use of energy-efficient system for distant measurement of analog signals according to claim 11 where the analog signals are biological signals.

13. Use of energy-efficient system for distant measurement of analog signals according to claim 12 where the biological signals are time varying biological signals.

14. Use of energy-efficient system for distant measurement of analog signals according to claim 13 wherein the time varying biological signals are ECG signals or EEG signals.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE NAME OF THE ASSIGNEE PREVIOUSLY RECORDED ON REEL 041479 FRAME 0569. ASSIGNOR(S) HEREBY CONFIRMS THE CHANGE OF NAME. Recorded Mar 27, 2017
From: ELEKTROTEHNICKI FAKULTET SVEUCILISTA U OSIJEKU
To: SVEUCILISTE U OSIJEKU, FAKULTET ELEKTROTEHNIKE, RACUNARSTVA I INFORMACIJSKIH TEHNOLOGIJA
Reel/Frame 042097/0860 →
CHANGE OF NAME Recorded Jan 25, 2017
From: ELEKTROTEHNICKI FAKULTET SVEUCILISTA U OSIJEKU
To: SVEUCILISTE U OSIJEKU, FAKULTET ELEKTROTEHNIKE, RACUNARSTVA I INFORMACIJSKIH TECHNOLOGIJA
Reel/Frame 041479/0569 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2015
From: MATIC, TOMISLAV; HERCEG, MARIJAN; JOB, JOSIP
To: ELEKTROTEHICKI FAKULTET SVEUCILISTA U OSIJEKU
Reel/Frame 037176/0172 →
Priority Claims (1)
WO PCT/HR2013/000015 · Jun 6, 2013 · international
Continuity (1)
Related Publication 20160142097A1 · May 19, 2016