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Figure 2.1 Depth. (a, b) Adjust depth so that the echo image fills the sector. (a) Wasted space below the image; (b) An appropriate depth setting. For details of abbreviations used in the figures, see the Glossary.
Figure 2.2 Transducer frequency. (a, b) Higher-frequency transducers provide better image resolution but less depth penetration, while low-frequency transducers can image deeper structures but have poorer resolution. (a) A high-frequency transducer used in a dog. (b) A lower-frequency transducer used in the same dog. Image quality is poorer in panel (b) than in panel (a).
Figure 2.3 Gain. (a-c) Gain adjusts the overall brightness of the image. Adjust gain to see structures clearly. (a) A low gain setting, where the image is too black and details are difficult to see; (b) A very high gain setting, where the pixels begin to blend together and details are lost. (c) An appropriate gain setting.
Figure 2.4 Time Gain Compensation (TGC) curve. (a-c) This adjusts for attenuation (loss of sound energy) as the sound beams travel deeper into the body. Using overall gain would increase gain over the entire image, while TCG sliders control gain at specific depths. (a) Far-field attenuation with low gain. The appropriate TGC sliders should be moved to the right in order to increase brightness at that depth; (b) Too little gain in the near field; the top few TGC sliders should be moved to the right in order to increase the level of brightness in the near field; (c) The TGC curve adjusted so that gain levels are similar from near to far field.
Figure 2.5 Grey maps. (a, b) Grey maps change the intensity of grays in the image. (a) A gray map with more contrast than in panel (b), which shows softer grays. Adjust based on personal preference without losing image detail.
Figure 2.6 Dynamic range. (a, b) This knob controls the range of grays displayed. (a) This shows a narrow range of grays; (b) A large range of grays. Select the dynamic range based on personal preference and without loss of image quality.
Figure 2.7 Rejection. (a, b) Low-intensity sound can be "rejected" - removed from the image. (a) An M-mode image without a lot of rejection; (b) The same image with a lot of rejection added; this results in blacker chambers. Here, so much rejection has been added that some details are lost. Rejection is used more often in M-mode imaging than in two-dimensional imaging.
Figure 2.8 Focus. (a, b) The focus allows the beam to be narrowed and display better resolution at whatever depth it is placed. Usually, a symbol of some sort along the depth indicators shows where the focus is (triangles). (a) A focus positioned in the near field. (b) The focus is positioned in the bottom half of the image. Overall resolution is better in panel (b), while far-field structures lack good resolution in panel (a). Place the focus in the area of interest or near the bottom one-third of the sector image.
Figure 2.9 Harmonics. (a, b) Having harmonics on usually provides better resolution and fewer artifacts. It does not always work, however, depending on the transducer frequency and the patient. Turn harmonics on or off and see which setting provides the best image quality. (a) Harmonics on; (b) Harmonics off.
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