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Result : Searchterm 'Gradient Strength' found in 1 term [] and 7 definitions [], (+ 17 Boolean[] results
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(BW) Bandwidth is a measure of frequency range, the range between the highest and lowest frequency allowed in the signal. For analog signals, which can be mathematically viewed as a function of time, bandwidth is the width, measured in Hertz of a frequency range in which the signal's Fourier transform is nonzero.
Image Guidance
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(MR mammography) Magnetic resonance imaging of the breast is particularly useful in evaluation of newly diagnosed breast cancer, in women whose breast tissue is mammographically very dense and for screening in women with a high lifetime risk of breast cancer because of their family history or genetic disposition.
Breast MRI can be performed on all standard whole body magnets at a field strength of 0.5 T - 1.5 Tesla. Powerful gradient strengths over 15 mT/m will help to improve the balance between spatial resolution, scanning speed, and volume coverage. The use of a dedicated bilateral breast coil is obligatory.
Malignant lesions release angiogenic factors that increase local vessel density and vessel permeability. Breast cancer is detectable due to the strong enhancement in dynamic breast imaging that peaks early (about 1-2 min.) after contrast medium injection. If breast cancer is suspected, a breast biopsy may be necessary to secure the diagnosis. See also Magnetic Resonance Imaging MRI, Biopsy and MR Guided Interventions.
Requirements in breast MRI procedures:
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Both breasts must be measured without gaps.
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For the best possible detection of enhancement fat signal should be eliminated either by image subtraction or by
spectrally selective fat saturation.
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Thin slices are necessary to assure absence of partial
volume effects.
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Imaging should be performed with a spatial
resolution in plane less than 1 mm.
For Ultrasound Imaging (USI) see Breast Ultrasound at Medical-Ultrasound-Imaging.com.
See also the related poll result: ' MRI will have replaced 50% of x-ray exams by' | | | | | | | | | | | • View the DATABASE results for 'Breast MRI' (13).
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Technology advances in breast cancer screenings lead to early diagnosis Friday, 6 October 2023 by ksltv.com | | |
Are synthetic contrast-enhanced breast MRI images as good as the real thing? Friday, 18 November 2022 by healthimaging.com | | |
Abbreviated breast MRI protocols not as cost-effective as promised, new study shows Wednesday, 20 July 2022 by healthimaging.com | | |
Deep learning poised to improve breast cancer imaging Thursday, 24 February 2022 by www.eurekalert.org | | |
Pre-Operative Breast MRI Can Help Identify Patients Likely to Experience Nipple-Sparing Mastectomy Risks Wednesday, 7 April 2021 by www.diagnosticimaging.com | | |
Breast cancer screening recalls: simple MRI measurement could avoid 30% of biopsies Monday, 1 March 2021 by www.eurekalert.org | | |
A Comparison of Methods for High-Spatial-Resolution Diffusion-weighted Imaging in Breast MRI Tuesday, 25 August 2020 by pubs.rsna.org | | |
Pre-Operative Breast MRI Diagnoses More Cancers in Women with DCIS Thursday, 9 July 2020 by www.diagnosticimaging.com | | |
Breast MRI and tumour biology predict axillary lymph node response to neoadjuvant chemotherapy for breast cancer Thursday, 26 December 2019 by cancerimagingjournal.biomedcentral.com | | |
Breast MRI Coding Gets an Overhaul in 2019 Wednesday, 9 January 2019 by www.aapc.com | | |
How accurate are volumetric software programs when compared to breast MRI? Thursday, 27 July 2017 by www.radiologybusiness.com | | |
Additional Breast Cancer Tumors Found on MRI After Mammography May Be Larger, More Aggressive Wednesday, 9 December 2015 by www.oncologynurseadvisor.com | | |
Preoperative MRI May Overdiagnose Contralateral Breast Cancer Wednesday, 2 December 2015 by www.cancertherapyadvisor.com | | |
BI-RADS and breast MRI useful in predicting malignancy Wednesday, 30 May 2012 by www.oncologynurseadvisor.com |
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Quick Overview Please note that there are different common names for this artifact.
DESCRIPTION
Black or bright band
During frequency encoding, fat protons precess slower than water protons in the same slice because of their magnetic shielding. Through the difference in resonance frequency between water and fat, protons at the same location are misregistrated (dislocated) by the Fourier transformation, when converting MRI signals from frequency to spatial domain. This chemical shift misregistration cause accentuation of any fat-water interfaces along the frequency axis and may be mistaken for pathology. Where fat and water are in the same location, this artifact can be seen as a bright or dark band at the edge of the anatomy.
Protons in fat and water molecules are separated by a chemical shift of about 3.5 ppm. The actual shift in Hertz (Hz) depends on the magnetic field strength of the magnet being used. Higher field strength increases the misregistration, while in contrast a higher gradient strength has a positive effect. For a 0.3 T system operating at 12.8 MHz the shift will be 44.8 Hz compared with a 223.6 Hz shift for a 1.5 T system operating at 63.9 MHz.
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(EPI) Echo planar imaging is one of the early magnetic resonance imaging sequences (also known as Intascan), used in applications like diffusion, perfusion, and functional magnetic resonance imaging. Other sequences acquire one k-space line at each phase encoding step. When the echo planar imaging acquisition strategy is used, the complete image is formed from a single data sample (all k-space lines are measured in one repetition time) of a gradient echo or spin echo sequence (see single shot technique) with an acquisition time of about 20 to 100 ms.
The pulse sequence timing diagram illustrates an echo planar imaging sequence from spin echo type with eight echo train pulses. (See also Pulse Sequence Timing Diagram, for a description of the components.)
In case of a gradient echo based EPI sequence the initial part is very similar to a standard gradient echo sequence. By periodically fast reversing the readout or frequency encoding gradient, a train of echoes is generated.
EPI requires higher performance from the MRI scanner like much larger gradient amplitudes. The scan time is dependent on the spatial resolution required, the strength of the applied gradient fields and the time the machine needs to ramp the gradients.
In EPI, there is water fat shift in the phase encoding direction due to phase accumulations. To minimize water fat shift (WFS) in the phase direction fat suppression and a wide bandwidth (BW) are selected. On a typical EPI sequence, there is virtually no time at all for the flat top of the gradient waveform. The problem is solved by "ramp sampling" through most of the rise and fall time to improve image resolution.
The benefits of the fast imaging time are not without cost. EPI is relatively demanding on the scanner hardware, in particular on gradient strengths, gradient switching times, and receiver bandwidth. In addition, EPI is extremely sensitive to image artifacts and distortions. | | | | • View the DATABASE results for 'Echo Planar Imaging' (19).
| | | • View the NEWS results for 'Echo Planar Imaging' (1).
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