Determining Appropriate Medical Image Processing Pipeline Based on Machine Learning
US-2019392547-A1 · Dec 26, 2019 · US
US11969291B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11969291-B2 |
| Application number | US-202016843950-A |
| Country | US |
| Kind code | B2 |
| Filing date | Apr 9, 2020 |
| Priority date | Apr 18, 2019 |
| Publication date | Apr 30, 2024 |
| Grant date | Apr 30, 2024 |
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An ultrasonic diagnostic apparatus according to an embodiment includes a processing circuitry. The processing circuitry is configured to display, as a live image, an image that data output from an ultrasonic probe represents; recognize an image type of the live image; extract, out of past data collected before the live image, data at least a part of which is in common to the image type of the live image; and display an image that the extracted data represents on the same screen as that of the live image.
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What is claimed is: 1. An ultrasonic diagnostic apparatus, comprising: processing circuitry configured to display, as a live image on a screen, at least one image that represents data output from an ultrasonic probe; recognize at least one mode type as at least one corresponding image type included in the displayed live image; extract, from a storage storing a plurality of pieces of data including one or more images collected before the live image, data including an image of the having a same mode type as one of the at least one image included in the live image; when determining that the live image is a superimposed image made of images having two or more mode types, generate a superimposed image made of other images having the same two or more mode types as the live image from the data extracted from the storage; and display, as a reference image, the generated superimposed image on the same screen as the live image. 2. The ultrasonic diagnostic apparatus according to claim 1 , wherein the processing circuitry is further configured to recognize, as the image type of the live image, dimensionality of the live image. 3. The ultrasonic diagnostic apparatus according to claim 1 , wherein the processing circuitry is further configured to recognize, as the image type of the live image, a cross-section type of a cross-section of a subject that the live image represents. 4. The ultrasonic diagnostic apparatus according to claim 1 , wherein the processing circuitry is further configured to extract the data including an image of the same mode type as the live image and representing a time phase identical to a time phase that is represented in the live image. 5. The ultrasonic diagnostic apparatus according to claim 1 , wherein when an ultrasonic image is extracted out of the one or more images collected before the live image, the processing circuitry is further configured to display, as the reference image, the extracted ultrasonic image on the same screen as the live image. 6. The ultrasonic diagnostic apparatus according to claim 1 , wherein when raw data for generating an ultrasonic image of the same mode type as the live image is extracted out of the one or more images collected before the live image, the processing circuitry is further configured to display, as the reference image, the ultrasonic image based, on the raw data, on the same screen as the live image. 7. The ultrasonic diagnostic apparatus according to claim 1 , wherein, in the recognizing, the processing circuitry is further configured to recognize any of a B mode, an M mode, a color Doppler mode, and a pulse Doppler mode as the mode type of the live image. 8. An ultrasonic diagnostic apparatus, comprising: processing circuitry configured to display, as a live image on a screen, at least one image that represents data output from an ultrasonic probe; store the live image in a memory; recognize at least one mode type as at least one corresponding image type included in the displayed live image; extract, from a storage storing a plurality of pieces of data including one or more images collected before the live image, data including an image of the having a same mode type as one of the at least one image included in the live image; when determining that the live image is a superimposed image made of images having two or more mode types, generate a superimposed image made of other images having the same two or more mode types as the live image from the data extracted from the storage; and display, as a reference image, the generated superimposed image on the same screen as the live image, in line with a display of the live image stored in the memory. 9. An ultrasonic diagnostic method, comprising: displaying, as a live image on a screen, at least one image that data output from an ultrasonic probe represents; recognizing at least one mode type as at least one corresponding image type included in the displayed live image; extracting, from a storage storing a plurality of pieces of data including one or more images collected before the live image, data including an image of the having a same mode type as one of the at least one image included in the live image; determining that the live image is a superimposed image made of images having two or more mode types, and generating a superimposed image made of other images having the same two or more mode types as the live image from the data extracted from the storage; and displaying, as a reference image, the generated superimposed image on the same screen as the live image. 10. An ultrasonic diagnostic method, comprising: displaying, as a live image on a screen, at least one image that represents data output from an ultrasonic probe; storing the live image in a memory; recognizing at least one mode type as at least one corresponding image type included in the displayed live image; extracting, from a storage storing a plurality of pieces of data including one or more images collected before the live image, data including an image of the having a same mode type as one of the at least one image included in the live image; determining that the live image is a superimposed image made of images having two or more mode types, and generating a superimposed image made of other images having the same two or more mode types as the live image from the data extracted from the storage; and displaying, as a reference image, the generated superimposed image on the same screen as the live image, in line with a display of the live image stored in the memory.
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