Patents Assigned to LightLab Imaging, Inc.
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Patent number: 8948613Abstract: In part, aspects of the invention relate to methods, apparatus, and systems for intensity and/or pattern line noise reduction in a data collection system such as an optical coherence tomography system that uses an electromagnetic radiation source and interferometric principles. In one embodiment, the noise is intensity noise or line pattern noise and the source is a laser such as a swept laser. One or more attenuators responsive to one or more control signals can be used in conjunction with an analog or digital feedback network in one embodiment.Type: GrantFiled: March 17, 2011Date of Patent: February 3, 2015Assignee: Lightlab Imaging, Inc.Inventors: Joseph M. Schmitt, Victor Grinberg
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Patent number: 8926590Abstract: An apparatus comprising a torque wire connected to an imaging probe; and a torque limiter defining a bore, a first end of the torque limiter being in mechanical communication with a motor, a second end of the torque limiter being in mechanical communication with the torque wire, the torque wire being disposed through the bore of the torque limiter. The torque limiter comprises a member defining at least one cutout which causes the torque limiter to break when rotational force on the torque wire exceeds a predetermined amount, thereby decoupling the motor from the torque wire.Type: GrantFiled: December 21, 2010Date of Patent: January 6, 2015Assignee: Lightlab Imaging, Inc.Inventor: Christopher Petroff
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Publication number: 20140379269Abstract: In one aspect, the invention relates to system comprising: a processor configured to receive a first optical coherence tomography (OCT) data set obtained during a pullback of a data collection probe along a first length of a first blood vessel; determine a minimum lumen area disposed along the first length using the first OCT data set; and determine a first FFR value along the first length based on the minimum lumen area. In one embodiment, the first FFR value is an estimated FFR. In another aspect, the invention relates to a method that includes measuring, using OCT, the area of a lumen of a vessel for which the vessel's FFR is to be determined; and calculating, using a computer, A2m/(A2m+k) or YA2min/(YA2min+k) as a FFR value. In one embodiment, k is about 0.7 mm2 and ? is patient-specific variable that depends on the coronary branch in which the images were obtained.Type: ApplicationFiled: August 1, 2012Publication date: December 25, 2014Applicant: LIGHTLAB IMAGING, INC.Inventor: Joseph Schmitt
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Patent number: 8902941Abstract: In one embodiment of the invention, a semiconductor optical amplifier (SOA) in a laser ring is chosen to provide low polarization-dependent gain (PDG) and a booster semiconductor optical amplifier, outside of the ring, is chosen to provide high polarization-dependent gain. The use of a semiconductor optical amplifier with low polarization-dependent gain nearly eliminates variations in the polarization state of the light at the output of the laser, but does not eliminate the intra-sweep variations in the polarization state at the output of the laser, which can degrade the performance of the SS-OCT system.Type: GrantFiled: December 30, 2010Date of Patent: December 2, 2014Assignee: LightLab Imaging, Inc.Inventor: Joseph M. Schmitt
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Lumen Morphology and Vascular Resistance Measurements Data Collection Systems, Apparatus and Methods
Publication number: 20140276011Abstract: A method and apparatus of automatically locating in an image of a blood vessel the lumen boundary at a position in the vessel and from that measuring the diameter of the vessel. From the diameter of the vessel and estimate blood flow rate, a number of clinically significant physiological parameters are then determine and various user displays of interest generated. One use of these images and parameters is to aid the clinician in the placement of a stent. The system, in one embodiment, uses these measurements to allow the clinician to simulate the placement of a stent and to determine the effect of the placement. In addition, from these patient parameters various patient treatments are then performed.Type: ApplicationFiled: March 12, 2013Publication date: September 18, 2014Applicant: LightLab Imaging, Inc.Inventors: Joseph M. Schmitt, Joel M. Friedman, Christopher Petroff, Amr Elbasiony -
Publication number: 20140268167Abstract: In part, the invention relates to systems and methods of calibrating a plurality of frames generated with respect to a blood vessel as a result of a pullback of an intravascular imaging probe being pullback through the vessel. A calibration feature disposed in the frames that changes between a subset of the frames can be used to perform calibration. Calibration can be performed post-pullback. Various filters and image processing techniques can be used to identify one or more feature in the frames including, without limitation, a calibration feature, a guidewire, a side branch, a stent strut, a lumen of the blood vessel, and other features. The feature can be displayed using a graphic user interface.Type: ApplicationFiled: March 15, 2013Publication date: September 18, 2014Applicant: LightLab Imaging, Inc.Inventors: Joel M. Friedman, Amr Elbasiony
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Publication number: 20140267038Abstract: A data collection system controller that includes a housing such as a cover. The housing includes a user facing section and a support facing section defining a hole. The controller also includes a first input device adjacent the user facing section and a second input device. The second input device includes a knob comprising a third input device and a rotatable shaft extending through the hole and partially disposed within the knob. In one embodiment, the second input device is an XYZ joystick with a button. In one embodiment, the joystick and the first input device are angled relative to each other on either side of an elbow joint. In part, the invention relates to a method of controlling the display of image data obtained with respect to a blood vessel.Type: ApplicationFiled: March 12, 2013Publication date: September 18, 2014Applicant: LightLab Imaging, Inc.Inventors: Desmond Adler, Joshua M. Gomes, David Winston, Susan Moynihan
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Publication number: 20140270436Abstract: In part, the invention relates to processing, tracking and registering angiography images and elements in such images relative to images from an intravascular imaging modality such as, for example, optical coherence tomography (OCT). Registration between such imaging modalities is facilitated by tracking of a marker of the intravascular imaging probe performed on the angiography images obtained during a pullback. Further, detecting and tracking vessel centerlines is used to perform a continuous registration between OCT and angiography images in one embodiment.Type: ApplicationFiled: March 12, 2013Publication date: September 18, 2014Applicant: LightLab Imaging, Inc.Inventors: Lorina Dascal, Itai Winkler, Stavit Cohen, Amit Cohen, Desmond Adler
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Publication number: 20140257087Abstract: In part, the invention relates to computer-based methods, devices, and systems suitable for displaying stent malapposition in a 2-D or 3-D image. A threshold malapposition distance can be set as an input in response to which a software component in an imaging pipeline automatically detects stent struts and calculates a malapposition distance from a lumen contour. Projections of stent strut dimensions can be used to compensate for stent imaging artifacts results from imaging probe orientation in the lumen.Type: ApplicationFiled: March 8, 2013Publication date: September 11, 2014Applicant: LightLab Imaging, Inc.Inventors: Amr Elbasiony, Joel Friedman
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Patent number: 8831321Abstract: In one embodiment, the invention relates to a method of detecting a side branch for a vessel scanned using a probe. The method includes storing optical coherence image data obtained during a pullback through the vessel in a memory device, the optical coherence image data comprising a plurality of frames; identifying a first region having a first intensity in a first frame of the plurality of frames; identifying a second region having a second intensity in the first frame of the plurality of frames; identifying a third region having a third intensity in the first frame of the plurality of frames; comparing the first intensity to the second intensity; comparing the third intensity to the second intensity; and generating an output characterizing the second region as a candidate side branch when the first intensity and the third intensity are both greater than the second intensity.Type: GrantFiled: December 30, 2011Date of Patent: September 9, 2014Assignee: Lightlab Imaging, Inc.Inventor: Amr Elbasiony
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Publication number: 20140249407Abstract: In part, the invention relates to optical caps having at least one lensed surface configured to redirect and focus light outside of the cap. The cap is placed over an optical fiber. Optical radiation travels through the fiber and interacts with the optical surface or optical surfaces of the cap, resulting in a beam that is either focused at a distance outside of the cap or substantially collimated. The optical elements such as the elongate caps described herein can be used with various data collection modalities such optical coherence tomography. In part, the invention relates to a lens assembly that includes a micro-lens; a beam director in optical communication with the micro-lens; and a substantially transparent film or cover. The substantially transparent film is capable of bi-directionally transmitting light, and generating a controlled amount of backscatter. The film can surround a portion of the beam director.Type: ApplicationFiled: October 11, 2013Publication date: September 4, 2014Applicant: LIGHTLAB IMAGING, INC.Inventors: Desmond Adler, Stephen McCartin, Christopher Petersen
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Patent number: 8810901Abstract: In at least one embodiment of the wavelength-tunable light source (1), it comprises an output source (2), which is capable in operation of generating electromagnetic radiation (R). Furthermore, the light source (1) has a wavelength-selective first filter element (5), which is situated downstream from the output source (2). Moreover, the light source (1) contains a first amplifier medium (3), which is situated downstream from the first filter element (5) and is capable of at least partial amplification of the radiation (R) emitted by the output source (2). The light source (1) further comprises at least one wavelength-selective second filter element (6), which is situated downstream from the first amplifier medium (3), the second filter element (6) having an optical spacing (L) to the first filter element (5). The first filter element (5) and the at least one second filter element (6) are tunable via a control unit (11), which the light source (1) has.Type: GrantFiled: September 3, 2009Date of Patent: August 19, 2014Assignee: Lightlab Imaging, Inc.Inventors: Robert Alexander Huber, Christoph Eigenwillig, Benjamin Biedermann
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Publication number: 20140218742Abstract: In part, the invention relates to methods, devices, and systems suitable for controlling a light source. The light source is configured for use in a data collection system such as an optical coherence tomography system. The light source can be controlled with a drive waveform. Linearizing and symmetrizing parameters of the light source such as forward and backward scan durations is achieved using a suitable drive waveform. Phase, amplitude, and other parameters for different harmonics of a fundamental wave can be identified that improve operating parameters such as the duty cycle and peak frequency matching between scans. The fundamental wave and one or more of such harmonics can be combined to generate the suitable drive wave form. The light source can include a tunable light source that includes or is in optical communication with a tunable filter.Type: ApplicationFiled: January 22, 2014Publication date: August 7, 2014Applicant: LIGHTLAB IMAGING, INC.Inventor: Desmond Adler
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Patent number: 8786336Abstract: In part, the invention relates to an optical coherence tomography system that includes one or more phased-locked loop circuits. In one embodiment, the phased-locked loop circuit includes a phase detector, a loop filter, and a voltage controlled oscillator wherein the phased-locked loop circuit is configured to generate a sample clock. The optical coherence tomography system can include an analog to digital converter having a sample clock input, an interferometric signal input, and a sample data output, the analog to digital converter configured to receive the sample clock and sample OCT data in response thereto. In one embodiment, the phased-locked loop circuit is configured to lock on a first signal in less than or equal to about 1 microseconds.Type: GrantFiled: October 4, 2013Date of Patent: July 22, 2014Assignee: Lightlab Imaging, Inc.Inventor: Joseph M. Schmitt
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Intravascular Optical Coherence Tomography System with Pressure Monitoring Interface and Accessories
Publication number: 20140187929Abstract: An optical coherence tomography system and method with integrated pressure measurement. In one embodiment the system includes an interferometer including: a wavelength swept laser; a source arm in communication with the wavelength swept laser; a reference arm in communication with a reference reflector; a first photodetector having a signal output; a detector arm in communication with the first photodetector, a probe interface; a sample arm in communication with a first optical connector of the probe interface; an acquisition and display system comprising: an A/D converter having a signal input in communication with the first photodetector signal output and a signal output; a processor system in communication with the A/D converter signal output; and a display in communication with the processor system; and a probe comprising a pressure sensor and configured for connection to the first optical connector of the probe interface, wherein the pressure transducer comprises an optical pressure transducer.Type: ApplicationFiled: January 9, 2014Publication date: July 3, 2014Applicant: LightLab Imaging, Inc.Inventors: Joseph M. Schmitt, Christopher Petroff -
Patent number: 8753281Abstract: In one aspect, the invention relates to a probe. The probe includes a sheath, a flexible, bi-directionally rotatable, optical subsystem positioned within the sheath, the optical subsystem comprising a transmission fiber, the optical subsystem capable of transmitting and collecting light of a predetermined range of wavelengths along a first beam having a predetermined beam size. The probe also includes an ultrasound subsystem, the ultrasound subsystem positioned within the sheath and adapted to propagate energy of a predetermined range of frequencies along a second beam having a second predetermined beam size, wherein a portion of the first and second beams overlap a region during a scan.Type: GrantFiled: September 14, 2012Date of Patent: June 17, 2014Assignee: Lightlab Imaging Inc.Inventors: Joseph M. Schmitt, Christopher Petersen, Toro Ohasi, Tetsuya Nakamatsu
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Publication number: 20140142427Abstract: In part, the invention relates to catheters, methods, and blood clearing technologies suitable for use in an optical coherence tomography system. The optical coherence tomography system includes a control system, a probe including a catheter defining a lumen and a rotatable optical fiber located within the lumen, a fluid cartridge holder in communication with the lumen of the probe, a pump to move fluid from the fluid cartridge to the lumen of the probe; and a motor configured to rotate and pull the optical fiber through the lumen of a blood vessel. The pump and the motor are controlled by the control system. The catheter can include a wall that bounds the lumen of the probe, which defines a flush port and includes a valve in fluid communication with the flush port, the valve configured to permit fluid from the lumen to pass through the wall.Type: ApplicationFiled: March 11, 2013Publication date: May 22, 2014Applicant: LIGHTLAB IMAGING, INC.Inventor: Christopher Petroff
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Publication number: 20140114182Abstract: In one aspect, the invention relates to a probe. The probe includes a sheath, a flexible, bi-directionally rotatable, optical subsystem positioned within the sheath, the optical subsystem comprising a transmission fiber, the optical subsystem capable of transmitting and collecting light of a predetermined range of wavelengths along a first beam having a predetermined beam size. The probe also includes an ultrasound subsystem, the ultrasound subsystem positioned within the sheath and adapted to propagate energy of a predetermined range of frequencies along a second beam having a second predetermined beam size, wherein a portion of the first and second beams overlap a region during a scan.Type: ApplicationFiled: March 15, 2013Publication date: April 24, 2014Applicant: LIGHTLAB IMAGING, INC.Inventor: LightLab Imaging, Inc.
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Publication number: 20140094697Abstract: In part, the invention relates to methods, apparatus, and systems suitable for determining a fractional flow reserve (FFR) and variations of modifications thereof One embodiment relates to a method and apparatus for obtaining a corrected FFR in a vessel having a stenosis. In one aspect, the invention relates to an apparatus for measuring corrected FFR of a vessel having a stenosis. In one embodiment, the apparatus includes a probe comprising an optical coherence tomography assembly and a pressure assembly; and a processor in communication with the optical coherence tomography assembly and the pressure assembly. In one embodiment, the pressure assembly measures values of pressure in predetermined locations the vessel and communicates them to the processor. In one embodiment, a dual guidewire is used to reduce the interference in the pressure measurement.Type: ApplicationFiled: May 14, 2012Publication date: April 3, 2014Applicant: LIGHTLAB IMAGING, INC.Inventors: Christopher Petroff, Joseph Schmitt
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Patent number: 8687201Abstract: In part, the invention relates to methods, devices, and systems suitable for controlling a light source. The light source is configured for use in a data collection system such as an optical coherence tomography system. The light source can be controlled with a drive waveform. Linearizing and symmetrizing parameters of the light source such as forward and backward scan durations is achieved using a suitable drive waveform. Phase, amplitude, and other parameters for different harmonics of a fundamental wave can be identified that improve operating parameters such as the duty cycle and peak frequency matching between scans. The fundamental wave and one or more of such harmonics can be combined to generate the suitable drive wave form. The light source can include a tunable light source that includes or is in optical communication with a tunable filter.Type: GrantFiled: March 8, 2013Date of Patent: April 1, 2014Assignee: LightLab Imaging, Inc.Inventor: Desmond Adler