IP Library › Granted Patent US 11,092,660
Granted Patent B2
US 11,092,660 · App. 16/679,677 · Granted Aug 17, 2021

Pilot tone identification

Inventors: Peter Speier (Erlangen, DE); Markus Vester (Nuremberg, DE)
Assignee: Siemens Healthcare GmbH
G01R33/5673A61B5/055G01R33/543H04B13/005
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Quick Facts
Patent No.
US 11,092,660
App. No.
16/679,677
Granted
Aug 17, 2021
Kind
B2
Abstract

The disclosure relates to a medical image acquisition device with a pilot tone transmitter and a pilot tone receiver and to a method for operating the same. The pilot tone transmitter is configured to emit an electromagnetic radio frequency signal into a patient. The pilot tone receiver is configured to receive the radio frequency signal and to decode an item of information relating to a physiological process in the patient. The pilot tone transmitter has a modulator configured to modulate the electromagnetic radio frequency signal with a code and the pilot tone receiver is configured to select the modulated radio frequency signal using the encoding from a plurality of signals.

Claims (35)

1. A magnetic resonance tomograph comprising:

a pilot tone transmitter configured to emit an electromagnetic radio frequency signal into a patient; and

a pilot tone receiver configured to receive the electromagnetic radio frequency signal and to decode an item of information about a physiological process in the patient,

wherein the pilot tone transmitter has a modulator configured to modulate the electromagnetic radio frequency signal with a code and the pilot tone receiver is configured to select the modulated electromagnetic radio frequency signal by an encoding from a plurality of signals, and

wherein the electromagnetic radio frequency signal lies in an immediately adjacent frequency range or in a same frequency range as that of a magnetic resonance signal to be acquired by the magnetic resonance tomograph such that the pilot tone receiver is configured to receive both the electromagnetic radio frequency signal and the magnetic resonance signal.

2. The magnetic resonance tomograph of claim 1 , wherein the electromagnetic radio frequency signal is a spread spectrum signal.

3. The magnetic resonance tomograph of claim 2 , wherein the code is a pseudo random code.

4. The magnetic resonance tomograph of claim 3 , wherein the pilot tone transmitter is configured to modulate the electromagnetic radio frequency signal by amplitude modulation, frequency modulation, or phase modulation.

5. The magnetic resonance tomograph of claim 1 , wherein the pilot tone transmitter is configured to generate the electromagnetic radio frequency signal orthogonally to the magnetic resonance signal to be acquired from the magnetic resonance tomograph such that the electromagnetic radio frequency signal does not interfere with the magnetic resonance signal.

6. The magnetic resonance tomograph of claim 5 , wherein the pilot tone transmitter is configured to generate the electromagnetic radio frequency signal in a k-space orthogonally to the magnetic resonance signal to be acquired from the magnetic resonance tomograph.

7. The magnetic resonance tomograph of claim 5 , wherein the pilot tone transmitter is configured to generate the electromagnetic radio frequency signal temporally orthogonally to the magnetic resonance signal to be acquired from the magnetic resonance tomograph.

8. The magnetic resonance tomograph of claim 1 , wherein the pilot tone receiver has a decoder which is orthogonal to the magnetic resonance signal to be acquired from the magnetic resonance tomograph such that detection of the electromagnetic radio frequency signal is unaffected by the magnetic resonance signal.

9. The magnetic resonance tomograph of claim 1 , wherein the code is a pseudo random code.

10. The magnetic resonance tomograph of claim 1 , wherein the pilot tone transmitter is configured to modulate the electromagnetic radio frequency signal by amplitude modulation, frequency modulation, or phase modulation.

11. The magnetic resonance tomograph of claim 1 , wherein the pilot tone transmitter is configured to generate the electromagnetic radio frequency signal orthogonally to the magnetic resonance signal to be acquired from the magnetic resonance tomograph such that the electromagnetic radio frequency signal does not interfere with the magnetic resonance signal.

12. The magnetic resonance tomograph of claim 1 , wherein the pilot tone transmitter is configured to generate the electromagnetic radio frequency signal in a k-space orthogonally to the magnetic resonance signal to be acquired from the magnetic resonance tomograph such that the electromagnetic radio frequency signal does not interfere with the magnetic resonance signal.

13. The magnetic resonance tomograph of claim 1 , wherein the pilot tone transmitter is configured to generate the electromagnetic radio frequency signal temporally orthogonally to the magnetic resonance signal to be acquired from the magnetic resonance tomograph such that the electromagnetic radio frequency signal does not interfere with the magnetic resonance signal.

14. The magnetic resonance tomograph of claim 1 , wherein the pilot tone receiver has a decoder which is orthogonal to the magnetic resonance signal to be acquired from the magnetic resonance tomograph such that detection of the electromagnetic radio frequency signal is unaffected by the magnetic resonance signal.

15. The magnetic resonance tomograph of claim 1 , wherein the same frequency range comprises a Larmor frequency used by the magnetic resonance tomograph during imaging.

16. A method for operating a magnetic resonance tomograph, the method comprising:

providing a radio frequency signal;

generating a pilot tone signal by modulating the radio frequency signal with a code by a pilot tone transmitter of the magnetic resonance tomograph;

emitting the pilot tone signal into a body of a patient by the pilot tone transmitter;

receiving the pilot tone signal with a pilot tone receiver;

receiving a magnetic resonance signal with the pilot tone receiver, wherein the pilot tone signal lies in an immediately adjacent frequency range or in a same frequency range as that of the magnetic resonance signal;

selecting, by the pilot tone receiver, the pilot tone signal by an encoding from a plurality of signals; and

extracting a physiological parameter from the pilot tone signal by the pilot tone receiver.

17. A computer-readable storage medium comprising electronically readable control information stored thereon, wherein the electronically readable control information is configured to be used in a controller of a magnetic resonance tomograph, and wherein the electronically readable control information is configured to cause the magnetic resonance tomograph to:

provide a radio frequency signal;

generate a pilot tone signal by modulating the radio frequency signal with a code by a pilot tone transmitter of the magnetic resonance tomograph;

emit the pilot tone signal into a body of a patient by the pilot tone transmitter;

receive the pilot tone signal with a pilot tone receiver;

receive a magnetic resonance signal with the pilot tone receiver, wherein the pilot tone signal lies in an immediately adjacent frequency range or in a same frequency range as that of the magnetic resonance signal;

select the pilot tone signal by an encoding from a plurality of signals; and

extract a physiological parameter from the pilot tone signal by the pilot tone receiver.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 20, 2023
From: SIEMENS HEALTHCARE GMBH
To: SIEMENS HEALTHINEERS AG
Reel/Frame 066267/0346 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 29, 2020
From: SPEIER, PETER; VESTER, MARKUS
To: SIEMENS HEALTHCARE GMBH
Reel/Frame 051660/0925 →
Priority Claims (1)
DE 102018220351.2 · Nov 27, 2018 · national
Continuity (1)
Related Publication 20200166597A1 · May 28, 2020