Shape sensor systems for localizing movable targets
A method comprises receiving first shape data from a first elongated optical fiber section in a first shape sensor. The first elongated optical fiber section extends between a reference fixture and a first anatomic fixture coupled to a patient anatomy. The method further comprises determining a pose of the first anatomic fixture from the first shape data and tracking a pose change for the first anatomic fixture.
1. A method comprising:
receiving first shape data from a first elongated optical fiber section in a first shape sensor, the first elongated optical fiber section extending between a reference fixture and a first anatomic fixture coupled to a patient anatomy;
determining a pose of the first anatomic fixture relative to the reference fixture from the first shape data;
tracking a pose change for the first anatomic fixture based on the pose from the first shape data;
receiving second shape data from a second shape sensor extending between the reference fixture and an instrument fixture coupled to a medical instrument;
determining a first pose of the instrument fixture relative to the reference fixture from the second shape data;
tracking a first pose change of the first pose for the instrument fixture;
receiving third shape data from a second elongated optical fiber section of the first shape sensor extending between the first anatomic fixture and the instrument fixture;
determining a second pose of the instrument fixture relative to the reference fixture from the third shape data and the first shape data;
tracking a second pose change of the second pose for the instrument fixture; and
evaluating an instrument fixture pose redundancy based on the first pose and the second pose of the instrument fixture.
2. The method of claim 1 further comprising:
receiving fourth shape data from a third shape sensor including a third elongated optical fiber section extending between the reference fixture and the first anatomic fixture coupled to the patient anatomy;
determining a pose of the first anatomic fixture relative to the reference fixture from the fourth shape data; and
tracking a pose change for the first anatomic fixture based on the pose from the fourth shape data.
3. The method of claim 1 wherein the medical instrument is a probe adapted to digitize point locations.
4. The method of claim 1 wherein the second shape sensor extends within a cable including a power supply component or a communication component.
5. The method of claim 1 wherein determining a pose of the first anatomic fixture relative to the reference fixture from the first shape data includes integrating transformations for a plurality of discrete shape estimates from the first shape data.
6. The method of claim 1 wherein receiving the third shape data includes receiving fourth shape data from a third elongated optical fiber section extending between the first anatomic fixture and a second anatomic fixture coupled to the patient anatomy, wherein the second elongated optical fiber section includes the third elongated optical fiber section.
7. The method of claim 6 wherein receiving fourth shape data includes receiving the fourth shape data through the first elongated optical fiber section.
8. The method of claim 1 wherein the first shape sensor is coupled to a surgical drape.
9. The method of claim 8 wherein the first anatomic fixture is coupled to the surgical drape.
10. The method of claim 1 wherein the first anatomic fixture is a bone fixation device.
11. The method of claim 1 further comprising receiving instrument data signals on the first elongated optical fiber section, the instrument data signals including an instrument status, an instrument identification, a usage count, or applied force strain information.
12. The method of claim 1 wherein the first elongated optical fiber section is releasably couplable to the first anatomic fixture by a coupling mechanism.
13. The method of claim 1 wherein the first shape sensor includes a third elongated optical fiber section extending between the reference fixture and the first anatomic fixture and wherein the first and third elongated optical fiber sections are coupled to a support material and separated by a lateral distance in a spaced apart configuration by the support material, wherein the support material maintains the lateral distance between the first and third elongated optical fiber sections.
14. The method of claim 13 further comprising:
receiving fourth shape data from the third elongated optical fiber section of the first shape sensor; and
combining the first and fourth shape data to determine the pose of the first anatomic fixture relative to the reference fixture.
15. The method of claim 1 wherein the medical instrument includes a digitizing probe, a bone abrasion tool, a tissue cutting tool, an ablation instrument, a tissue approximation instrument, a biopsy instrument, an impedance measurement instrument, a tissue imaging instrument, or a therapeutic instrument.
16. A system comprising:
a reference fixture;
a first anatomic fixture configured to be coupled to a patient anatomy;
an instrument fixture coupled to a medical instrument;
a first shape sensor including:
a first elongated optical fiber section extending between the reference fixture and the first anatomic fixture; and
a second elongated optical fiber section extending between the first anatomic fixture and the instrument fixture;
a second shape sensor extending between the reference fixture and the instrument fixture; and
a processor configured for:
receiving first shape data from the first elongated optical fiber section of the first shape sensor;
determining a pose of the first anatomic fixture relative to the reference fixture from the first shape data;
tracking a pose change for the first anatomic fixture based on the pose from the first shape data;
receiving second shape data from the second shape sensor;
determining a first pose of the instrument fixture relative to the reference fixture from the second shape data;
tracking a first pose change of the first pose for the instrument fixture;
receiving third shape data from the second elongated optical fiber section of the first shape sensor;
determining a second pose of the instrument fixture relative to the reference fixture from the third shape data and the first shape data;
tracking a second pose change of the second pose for the instrument fixture; and
evaluating an instrument fixture pose redundancy based on the first pose and the second pose of the instrument fixture.
17. The system of claim 16 further comprising:
a third shape sensor including a third elongated optical fiber section extending between the reference fixture and the first anatomic fixture,
wherein the processor is further configured for:
receiving fourth shape data from the third shape sensor;
determining a pose of the first anatomic fixture relative to the reference fixture from the fourth shape data; and
tracking a pose change for the first anatomic fixture based on the pose from the fourth shape data.
18. The system of claim 16 further comprising:
a second anatomic fixture configured to be coupled to the patient anatomy, wherein:
the first shape sensor further includes:
a third elongated optical fiber section extending between the first anatomic fixture and the second anatomic fixture;
receiving the third shape data includes receiving fourth shape data from the third elongated optical fiber section; and
the second elongated optical fiber section includes the third elongated optical fiber section.
19. The system of claim 16 wherein:
the first shape sensor further includes a third elongated optical fiber section extending between the reference fixture and the first anatomic fixture;
the first and third elongated optical fiber sections are coupled to a support material and separated by a lateral distance in a spaced apart configuration by the support material, wherein the support material maintains the lateral distance between the first and third elongated optical fiber sections; and
the processor is further configured for:
receiving fourth shape data from the third elongated optical fiber section of the first shape sensor; and
combining the first and fourth shape data to determine the pose of the first anatomic fixture relative to the reference fixture.
20. The system of claim 16 wherein the medical instrument includes a digitizing probe, a bone abrasion tool, a tissue cutting tool, an ablation instrument, a tissue approximation instrument, a biopsy instrument, an impedance measurement instrument, a tissue imaging instrument, or a therapeutic instrument.