Literature DB >> 28236645

An effective noise reduction method for multi-energy CT images that exploit spatio-spectral features.

Zhoubo Li1,2, Shuai Leng1, Lifeng Yu1, Armando Manduca3, Cynthia H McCollough1.   

Abstract

PURPOSE: To develop and evaluate an image-domain noise reduction method for multi-energy CT (MECT) data.
METHODS: Multi-Energy Non-Local Means (MENLM) is a technique that uses the redundant information in MECT images to achieve noise reduction. In this method, spatio-spectral features are used to determine the similarity between pixels, making the similarity evaluation more robust to image noise. The performance of this MENLM filter was tested on images acquired on a whole-body research photon counting CT system. The impact of filtering on image quality was quantitatively evaluated in phantom studies in terms of image noise level (standard deviation of pixel values), noise power spectrum (NPS), in-plane and cross-plane spatial resolution, CT number accuracy, material decomposition performance, and subjective low-contrast spatial resolution using the American College of Radiology (ACR) CT accreditation phantom. Clinical feasibility was assessed by performing MENLM on contrast-enhanced swine images and unenhanced cadaver head images using clinically relevant doses and dose rates.
RESULTS: The phantom studies demonstrated that the MENLM filter reduced noise substantially and still preserved the shape and peak frequency of the NPS. With 80% noise reduction, MENLM filtering caused no degradation of high-contrast spatial resolution, as illustrated by the modulation transfer function (MTF) and slice sensitivity profile (SSP). CT number accuracy was also maintained for all energy channels, demonstrating that energy resolution was not affected by filtering. Material decomposition performance was improved with MENLM filtering. The subjective evaluation using the ACR phantom demonstrated an improvement in low-contrast performance. MENLM achieved effective noise reduction in both contrast-enhanced swine images and unenhanced cadaver head images, resulting in improved detection of subtle vascular structures and the differentiation of white/gray matter.
CONCLUSION: In MECT, MENLM achieved around 80% noise reduction and greatly improved material decomposition performance and the detection of subtle anatomical/low-contrast features while maintaining spatial and energy resolution. MENLM filtering may improve diagnostic or functional analysis accuracy and facilitate radiation dose and contrast media reduction for MECT.
© 2017 American Association of Physicists in Medicine.

Entities:  

Keywords:  CT dose reduction; image denoising; multi-energy CT; non-local means filtering; photon counting CT

Mesh:

Year:  2017        PMID: 28236645      PMCID: PMC5462440          DOI: 10.1002/mp.12174

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  42 in total

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Review 2.  Photon-counting Detector CT: System Design and Clinical Applications of an Emerging Technology.

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5.  Photon Counting CT: Clinical Applications and Future Developments.

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Journal:  IEEE Trans Radiat Plasma Med Sci       Date:  2020-08-28

6.  Spectral Photon Counting CT: Imaging Algorithms and Performance Assessment.

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7.  A Blooming correction technique for improved vasa vasorum detection using an ultra-high-resolution photon-counting detector CT.

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8.  Non-Local Low-Rank Cube-Based Tensor Factorization for Spectral CT Reconstruction.

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9.  Improved coronary calcification quantification using photon-counting-detector CT: an ex vivo study in cadaveric specimens.

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10.  Noise reduction in CT image using prior knowledge aware iterative denoising.

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