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Published byErick Hutchinson Modified over 9 years ago
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Basic MRI Chapter 1 Lecture
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Introduction MRI uses radio waves and a magnetic field to make images MRI uses radio waves and a magnetic field to make images Other methods make images in other ways Other methods make images in other ways Radiography – x-ray attenuation Radiography – x-ray attenuation CT – x-ray with computer CT – x-ray with computer NM – gamma rays from radionuclides NM – gamma rays from radionuclides US – sound waves US – sound waves
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MR Images The image is a display of the radiofrequency (RF) signal intensity The image is a display of the radiofrequency (RF) signal intensity The source of the RF signal from the patient is the “condition of magnetization produced when the patient is placed in the magnetic field.” The source of the RF signal from the patient is the “condition of magnetization produced when the patient is placed in the magnetic field.” Magnetization occurs when magnetic nuclei (like H nuclei or protons) are present Magnetization occurs when magnetic nuclei (like H nuclei or protons) are present Magnetization is changed during imaging, and the rate of change depends on tissue characteristics Magnetization is changed during imaging, and the rate of change depends on tissue characteristics
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Tissue Characteristics PD PD T1 T1 T2 T2 Flow Flow Diffusion Diffusion Spectroscopy/chemical shift Spectroscopy/chemical shift
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Major Tissue Characteristics PD– proton density PD– proton density T1– longitudinal relaxation time; spin-lattice relaxation time T1– longitudinal relaxation time; spin-lattice relaxation time T2– transverse relaxation time; spin-spin relaxation time T2– transverse relaxation time; spin-spin relaxation time
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Minor Tissue Characteristics Flow Flow Diffusion Diffusion Spectroscopy/chemical shift Spectroscopy/chemical shift
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What do you see on an MR image? RF signal intensity, influenced by RF signal intensity, influenced by Tissue magnetization, including saturation pulses Tissue magnetization, including saturation pulses Proton (hydrogen nuclei) density Proton (hydrogen nuclei) density Relaxation effects from T1 and T2 Relaxation effects from T1 and T2
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Spatial Characteristics Slices Slices Voxels Voxels Pixels Pixels
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Image Quality Detail/Resolution Detail/Resolution Noise/Signal-to-Noise ratio Noise/Signal-to-Noise ratio Artifacts Artifacts
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In-Plane Resolution This is a photo that has been taken at 165x256 resolution
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In-Plane Resolution This is a photo that has been taken with 329x512 resolution
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In-Plane Resolution Original Resolution 720x1150 Original Resolution 720x1150
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Signal-to-Noise
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Signal-to-Noise
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Signal-to-Noise
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Signal-to-Noise
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Aliasing: Example
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Wraparound Artfacts in 3D
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Chemical Shift Effect
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Chemical Shift
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Chemical Shift - Example
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Chemical Shift Artifacts
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Signal Truncation
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Truncation Artifacts
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Partial Volume Effect
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Motion Artifacts - Periodic
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Motion Artifacts - Random
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Flow Motion Artifacts - CSF
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Magic Angle Artifacts
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FT of Realistic RF Signal
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RF Zipper Artefact
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RF Feed through Zipper Artifact
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RF Noise
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Magnetic Inhomogeneity Artifacts
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Diamagnetic Susceptibility Artifact
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Paramagnetic Effect of Deoxyhemoglobin
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Ferromagnetic Susceptibility Artifacts
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Susceptibility Artifacts
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Gradient Non-linearity
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Geometric Distortion: Gradient Non-Linearity
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