Claims
- 1. A method and apparatus for ultrasound imaging of a biopsy needle or the like during an ultrasound imaging examination, including the following steps:
a. Alternately performing one or more imaging scans with ultrasound transmit and receive parameters which are adapted for optimized imaging and visualization of the needle and one or more imaging scans with ultrasound transmit and receive parameters adapted for optimized imaging and visualization of the body or details thereof, in which the needle is inserted. Characterized in that it includes the additional steps of
b. Injecting contrast agents in the region to be examined before imaging; c. Setting ultrasound transmit and receive parameters adapted for optimized imaging and visualization of the body or details thereof, wherein the needle is inserted, so that these parameters are optimized for imaging body fluid flows.
- 2. A method as claimed in claim 1, characterized in that the ultrasound transmit and receive parameters optimized for imaging fluid flows involve the transmission of ultrasound beams at the fundamental frequency and the reception of ultrasound reflected beams at a harmonic or sub-harmonic frequency, particularly at the second harmonic of the fundamental frequency of transmitted beams.
- 3. A method as claimed in claim 2, characterized in that the transmitted ultrasound beams have a low mechanical index to avoid or drastically reduce the contrast agent collapsing effects.
- 4. A method as claimed in claim 2, characterized in that the transmitted ultrasound beams have a high mechanical index to cause the collapse of contrast agents or an operator-adjustable mechanical index for a controlled collapse thereof.
- 5. A method as claimed in one or more of the preceding claims, characterized in that it provides alternate ultrasound imaging with transmit and receive parameters optimized for imaging the needle, with transmit and receive parameters optimized for imaging the tissues of the body under examination or a detail thereof, and with transmit and receive parameters optimized for imaging body fluid flows.
- 6. A method as claimed in one or more of the preceding claims, characterized in that alternate imaging consists in performing single scans or a group of scans including a succession of a certain number of scans, each scan or each group of scans being performed with different optimization parameters, for imaging the needle, or the like, and body fluid flows respectively, and in succession either in a constant or variable order with time.
- 7. A method as claimed in claim 6, characterized in that the individual scans or groups of scans are performed within the same scan section or distributed over different sections of the body or region under examination.
- 8. A method as claimed in one or more of the preceding claims, characterized in that the images obtained by said imaging procedures with transmit and receive parameters optimized for the needle and body flows and possibly for tissues are displayed by assigning different color and/or gray scales to the intensity values of the reflected echo beams.
- 9. A method as claimed in one or more of the preceding claims, characterized in that a combined image is displayed which is made by overlaying and/or combining images, and is detected with an optimization for the needle, fluid flows and/or possibly for static tissues.
- 10. A method as claimed in one or more of the preceding claims, characterized in that it provides that the individual images obtained by optimized imaging of the needle, body fluid flows and/or possibly static tissues, are displayed in separate and adjacent positions or in combined positions, according to any sub-combination between the different images optimized for the needle, for body fluid flows and/or possibly for tissues.
- 11. A method as claimed in one or more of the preceding claims, characterized in that it provides an imaging procedure, for acquiring one or a group of images, with a low mechanical index and at the second harmonic for imaging body fluid flows and an imaging procedure, for acquiring one or a group of images, with a low mechanical index and at the fundamental frequency with needle optimized parameters.
- 12. A method as claimed in one or more of the preceding claims, characterized in that the parameters optimized for needle imaging provide a deformation of the focusing rule according to the so-called steering technique, in which the incidence direction between the ultrasound beam and the needle is essentially orthogonal to the needle or as close as possible to this condition.
- 13. A method as claimed in one or more of the preceding claims, characterized in that it provides an imaging procedure, for acquiring one or a group of images, with a low mechanical index and at the second harmonic for imaging body fluid flows and an imaging procedure, for acquiring one or a group of images, with a high mechanical index and at the fundamental frequency with needle optimized parameters, for instance by using a steering technology in combination with linear probes.
- 14. A method as claimed in one or more of the preceding claims, characterized in that it provides an imaging procedure, for acquiring one or a group of images, with a low mechanical index and at the second harmonic for imaging body fluid flows and an imaging procedure, for acquiring one or a group of images, with a high mechanical index and at the fundamental frequency with needle optimized parameters, as well as an imaging procedure, for acquiring one or more images, with a high mechanical index and at the fundamental frequency, with tissue optimized parameters.
- 15. A method as claimed in one or more of the preceding claims, characterized in that it provides an imaging procedure, for acquiring one or a group of images, with a low mechanical index and at the second harmonic for imaging body fluid flows and an imaging procedure, for acquiring one or a group of images, with a high or low mechanical index and at the fundamental frequency with needle optimized parameters, e.g. by using the steering technology, as well as an imaging procedure, for acquiring one or more images, with a high mechanical index and at the second harmonic frequency, with tissue optimized parameters.
- 16. A method as claimed in one or more of the preceding claims, characterized in that it provides an imaging procedure, for acquiring one or more images, at the second harmonic optimized for imaging body fluid flows and an imaging procedure, for acquiring one or more images, with a high or low mechanical index and at the fundamental or second harmonic frequency, which subtracts two successive reflection echoes determined by two successively fired ultrasound beams with the same parameters, for imaging the needle.
- 17. A method as claimed in one or more of the preceding claims, characterized in that the different imaging procedures with parameters optimized for imaging the needle, body fluid flows and/or possibly static tissues are executed alternately, within a predetermined frame rate, or parallel, i.e. simultaneously to each other, at least as regards the processing of received echoes, there being provided two or three dedicated receiving and processing chains.
- 18. A method as claimed in one or more of the preceding claims, characterized in that it provides several imaging procedures, for acquiring one or more images, with the different parameters optimized for imaging the needle, body fluid flows and/or possibly tissues, in combination with three-dimensional imaging methods, which consist in performing scans of more predetermined adjacent section planes and in generating a three-dimensional image data matrix, in combination with means for locating the transducers and/or the probe for each scan plane along which a scan has been performed.
- 19. A method as claimed in one or more of the preceding claims, characterized in that it is provided in combination with a three-dimensional real-time imaging method comprising the following steps:
transmitting ultrasonic beams generated by transducers into an object volume corresponding to a body under examination or a part thereof; receiving and storing signals generated by the ultrasonic beams in said object volume; processing the received signals into image data associated to image dots or lines of a video display; displaying at least a portion of image data on the display according to user selected parameters, relating to a predetermined image section or projection plane of said volume under examination, the processing of ultrasound beams and/or the display being predetermined in a targeted manner, with reference to a previous selection of an image section or projection plane of the volume under examination to be imaged; defining a virtual volume coincident with the object body or part thereof or a three-dimensional reference system, provided it has a definite orientation with respect to the imaging planes generated by the ultrasound probe; selecting the section plane of the object body and/or part thereof along which ultrasound imaging is to be performed; determining the position-defining coordinates for the dots which form said section plane along which imaging is to be performed, with reference to the virtual volume; restricting the scanning operation to the region which coincides with said section plane along which imaging is to be performed; transmitting the transmission signals and receiving the reflected echoes only along such lines of view of the probe which coincide with the surface or the projection slice of the selected section plane along which imaging is to be performed; only processing and displaying the received echo signals; the execution of the above imaging steps for acquiring one or more images with parameters optimized for imaging the needle and/or for imaging fluid flows and/or for imaging tissues.
- 20. A method as claimed in one or more of the preceding claims, characterized in that it provides the alternate and sequential transmission of ultrasound beams with parameters optimized for imaging the needle, body fluid flows and/or possibly even tissues respectively, and the alternate processing of received data deriving from the two or possibly three types of parameters of the transmitted ultrasound beams, there being provided a memory in which the parameters or combinations thereof for optimized imaging of the needle, body fluid flows and/or stationary tissues are stored for user selection.
- 21. A method as claimed in claim 20, characterized in that it provides the automatic modification of the transmit parameters based on the presettable protocols for alternate imaging optimized for the needle and/or body fluid flows and/or possibly tissues.
- 22. A method as claimed in one or more of the preceding claims, characterized in that it provides that a different or identical number of images to be acquired may be set alternately with the specific optimization for the needle, for fluid flows and/or possibly for tissues.
- 23. A method as claimed in claim 22, characterized in that a greater number of images optimized for imaging the needle, body fluid flow and/or possibly tissues is acquired for the imaging type which is to have the best image quality.
- 24. A method as claimed in one or more of the preceding claims, characterized in that it provides presetting and storage of parameters optimized for imaging the needle and/or body fluid flows and/or possibly tissues both as regards transmitted ultrasound beams and as regards reflected and received ultrasound beams and/or also as regards the different image coloring and/or displaying and/or combining modes, and protocols for executing imaging procedures optimized relative to each other and in such a manner that a specific setting of the parameters for controlling the processing and possibly a specific setting of processing, handling and/or combining parameters for images detected in different modes for the needle, body fluid flows and/or possibly tissues corresponds to each specific setting of the parameters of transmitted ultrasound beams, univocally related to imaging optimized for the needle, body fluid flows and/or possibly tissues.
- 25. A method as claimed in one or more of the preceding claims, characterized in that it provides a modulation of intensity, i.e. of the mechanical index of ultrasound beams also within the imaging procedure/s for the needle, and/or body fluid flows and/or tissues.
- 26. A method as claimed in one or more of the preceding claims, characterized in that it provides storage of the parameters optimized for imaging the needle, fluid flows and/or possibly tissues into a working storage memory which is accessible by the scan control unit and/or by the image processing and/or handling and/or combining unit, with no need to reprogram said units.
- 27. An apparatus for implementing the method as claimed in one or more of the preceding claims, characterized in that it comprises an ultrasonic probe, means for generating ultrasound beams and for controlling the scan of a body under examination by said ultrasound beams; means for receiving and reconstructing image data from the ultrasound beams reflected by the body under examination and display means, characterized in that said apparatus is further provided with a memory in which the parameters for generating the ultrasound beams and the methods for scanning the body under examination or a part thereof are loaded, which parameters are alternately optimized for imaging the needle and/or body fluid flows and/or possibly tissues, and means for receiving, reconstructing and processing reflected ultrasound beams deriving from said transmit beams, which operate in relation to the generating parameters and scan modes with the transmitted ultrasound beams.
- 28. An apparatus as claimed in claim 27, characterized in that it includes a single chain for generating the ultrasound beams transmitted toward the body under examination or a part thereof, wherein the optimization of imaging parameters and/or imaging modes is controlled by means provided with a parameter setting memory, in which parameters are provided to a scan control unit by a monitoring unit according to predetermined enabling protocols, which provide alternate scans with the different parameters.
- 29. An apparatus as claimed in claims 27 or 28, characterized in that it includes one or more receive and processing chains, each dedicated to the simultaneous or sequential handling of the data obtained by any type of optimized imaging parameters.
- 30. An apparatus as claimed in one or more of the preceding claims 27 to 29, characterized in that it includes a single chain for generating the ultrasound beams to be transmitted and/or for scanning and a single chain for receiving and processing and possibly a single chain for handling and/or combining images, which chains are of the controllable type, there being provided a central control unit which is connected to the memories containing the parameters of ultrasound beams transmitted according to the different optimizations for imaging the needle and body fluid flows and/or possibly tissues, and to the memories containing the receive and processing modes dedicated to the reflection signals obtained with the particular settings of parameters optimized for imaging the needle and/or body fluid flows and/or possibly tissues, and/or to the memories containing the particular image handling and/or image combining settings, as well as to the memories containing the imaging protocols according to the different optimizations and the transmit and receive synchronization chains, and to the memories containing the imaging modes, which means access the memories according to a timed imaging protocol, for optimized imaging and, as a result, control the transmit chain and the receive chain as well as the image handling and combining chain.
- 31. An apparatus as claimed in one or more of the preceding claims 27 to 30, characterized in that it has a working storage memory in which the CPU loads the optimized parameters and which working storage memory is directly accessible by the units for controlling the scanning, image processing and reconstructing, and handling and combining processes.
- 32. A method for ultrasound imaging of a biopsy needle or the like during an ultrasound imaging examination, wherein one or more imaging scans are alternately performed with ultrasound transmit and receive parameters which are adapted for optimized imaging and visualization of the needle and one or more imaging scans with ultrasound transmit and receive parameters adapted for optimized imaging and visualization of the body or details thereof, in which the needle is inserted, characterized in that it includes the step of setting the ultrasound transmit and receive parameters adapted to optimized imaging and display of the body or details thereof, in which the needle is inserted, for second harmonic imaging of tissues, without contrast agents.
- 33. A method as claimed in claim 32, characterized in that, in order to image the tissues around the needle, echo signals are received and processed with a harmonic of the fundamental frequency, particularly the second harmonic.
- 34. A method as claimed in claims 32 and 33, characterized in that it provides that tissues are imaged by receiving and processing the echoes whose frequencies correspond to a harmonic of the fundamental frequency of the transmitted beams and without contrast agents.
- 35. A method as claimed in one or more of the preceding claims 32 to 34, characterized in that it has one or more characteristics as claimed in the preceding claims 1 to 26.
- 36. An apparatus for implementing the method as claimed in one or more of the preceding claims 32 to 35, characterized in that it is an apparatus as claimed in one or more of the preceding claims 27 to 31.
- 37. An apparatus as claimed in one or more of the preceding claims 27 to 31 or 36, characterized in that it has a working storage memory (11) which is directly accessible by the scan monitoring units (2) and by the processing units (4), and in which the CPU loads the parameters for the different optimized imaging scans.
- 38. An imaging method wherein one or more imaging scans are alternately performed with ultrasound transmit and receive parameters which are adapted for optimized imaging and visualization of different tissues and/or body fluid flows in a region under examination of a body, characterized in that it provides that protocols are set for alternating imaging scans according to the different optimized parameters.
- 39. A method as claimed in claim 38, characterized in that it provides that several color maps or scales are set, to be associated to the received image data, which maps or scales differ as regards the data of the different scan optimization modes.
- 40. A method as claimed in claim 38 or 39, characterized in that it provides protocols for combining image data into an image resulting from overlaid images or from the combination of image data prior to image reconstruction.
- 41. A method as claimed in one or more of claims 38 to 40, characterized in that the two optimized imaging scans are performed at the fundamental frequency and at the second harmonic or any other harmonic or sub-harmonic respectively.
- 42. A method as claimed in one or more of the preceding claims, characterized in that, alternatively to the biopsy needle, any other type of similar diagnostic or therapeutic instrument is provided, such as RF, microwave, laser, cryostatic probes, cannulae or needles for localized injection of drugs and other instruments having similar structural characteristics.
- 43. A method as claimed in one or more of the preceding claims, characterized in that the needle or any other diagnostic or therapeutic instrument are subjected to such a treatment that the material whereof they are made has acoustic impedance adjustment and improved reflection characteristics.
- 44. A method as claimed in claim 43, charactreized in that said treatment may be a surface treatment, aimed at generating reflection microcavities in the material whereof the needle or therapeutic and/or diagnostic instrument is made, or may consist of an outside coat having predetermined acoustic impedance and reflection characteristics.
- 45. A method as claimed in one or more of the preceding claims 43 and 44, characterized in that the needle and/or diagnostic or therapeutic instrument are coated with a layer of a material holding inner cavities or microbubbles which are filled with other materials, such as gases, liquids or the like, or are empty.
- 46. A method as claimed in one or more of the preceding claims 43 to 45, characterized in that the optimization of transmit, receive and/or processing parameters for the characteristics of the needle or other therapeutic or diagnostic instruments is to be intended as a parameter optimization related to acoustic impedance and reflection characteristics of the treated material.
REFERENCE TO RELATED APPLICATION
[0001] The present patent application is a continuation-in-part patent application of U.S. Ser. No. 10/180,881, filed Jun. 26, 2002, now pending.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10180881 |
Jun 2002 |
US |
Child |
10266549 |
Oct 2002 |
US |