Communication

A systematic review of 3D cursor in the medical literature

  • Received: 01 January 2018 Accepted: 15 March 2018 Published: 20 March 2018
  • The term 3D cursor has been used in the computer graphics industry for quite some time; however, in recent years, it has also been used in the medical field. In medicine, the term 3D cursor has been used to describe a user’s hands, hand-controllers, a 2D cursor that can travel in 3D space, and a volume-subtending 3D cursor. In this article, we perform a systematic review of the medical literature of the term “3D cursor” and discuss the applications in the fields of diagnostic radiology and surgery. We discuss the important applications of the 3D cursor the use of a 3D cursor in combination with virtual reality (VR) and augmented reality (AR) in medicine.

    Citation: David B. Douglas, Robert E. Douglas, Cliff Wilke, David Gibson, John Boone, Max Wintermark. A systematic review of 3D cursor in the medical literature[J]. AIMS Electronics and Electrical Engineering, 2018, 2(1): 1-11. doi: 10.3934/ElectrEng.2018.1.1

    Related Papers:

  • The term 3D cursor has been used in the computer graphics industry for quite some time; however, in recent years, it has also been used in the medical field. In medicine, the term 3D cursor has been used to describe a user’s hands, hand-controllers, a 2D cursor that can travel in 3D space, and a volume-subtending 3D cursor. In this article, we perform a systematic review of the medical literature of the term “3D cursor” and discuss the applications in the fields of diagnostic radiology and surgery. We discuss the important applications of the 3D cursor the use of a 3D cursor in combination with virtual reality (VR) and augmented reality (AR) in medicine.


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    [1] Mitchell JM, LaGalia RR (2009) Controlling the escalating use of advanced imaging: the role of radiology benefit management programs. Med Care Res Rev 66: 339–351. doi: 10.1177/1077558709332055
    [2] Mettler FA, Jr., Wiest PW, Locken JA, et al. (2000) CT scanning: patterns of use and dose. J Radiol Prot 20: 353–359. doi: 10.1088/0952-4746/20/4/301
    [3] Mitchell DG, Parker L, Sunshine JH, et al. (2002) Body MR imaging and CT volume: variations and trends based on an analysis of medicare and fee-for-service health insurance databases. Am J Roentgenol 179: 27–31. doi: 10.2214/ajr.179.1.1790027
    [4] Boone JM, Brunberg JA (2008) Computed tomography use in a tertiary care university hospital. J Am Coll Radiol 5: 132–138. doi: 10.1016/j.jacr.2007.07.008
    [5] MEREL T (2015) The 7 drivers of the $150 billion AR/VR industry. Aol Tech.
    [6] Douglas D (2013) US 8,384,771 Method and Apparatus for Three Dimensional Viewing of Images. USA: US Patent Office.
    [7] Douglas D (2016) US 9,349,183 Method and Apparatus for Three Dimensional Viewing of Images. USA: US Patent Office.
    [8] Douglas DB, Boone JM, Petricoin E, et al. (2016) Augmented Reality Imaging System: 3D Viewing of a Breast Cancer. J Nat Sci 2.
    [9] Douglas DB, Petricoin EF, Liotta L, et al. (2016) D3D augmented reality imaging system: proof of concept in mammography. Med Devices (Auckl) 9: 277–283.
    [10] Douglas DB, Wilke CA, Gibson JD, et al. (2017) Augmented Reality: Advances in Diagnostic Imaging. Multimodal Technologies and Interaction 1: 29. doi: 10.3390/mti1040029
    [11] Butts DR, McAllister DF (1988) Implementation of true 3D cursors in computer graphics. SPIE Proc 902: Three-Dimensional Imaging and Remote Sensing Imaging (January 1988): 74–84.
    [12] Moher D, Liberati A, Tetzlaff J, et al. (2009) Preferred reporting items for systematic reviews and meta-analyses: the PRISMA statement. PLoS medicine 6: e1000097. doi: 10.1371/journal.pmed.1000097
    [13] Lopes DS, de Figueiredo Parreira PD, Paulo SF, et al. (2017) On the utility of 3D hand cursors to explore medical volume datasets with a touchless interface. J biomed inform 72: 140–149. doi: 10.1016/j.jbi.2017.07.009
    [14] Wang W, Collinger JL, Degenhart AD, et al. (2013) An electrocorticographic brain interface in an individual with tetraplegia. PloS one 8: e55344. doi: 10.1371/journal.pone.0055344
    [15] Goodsitt MM, Chan HP, Hadjiiski L (2000) Stereomammography: Evaluation of depth perception using a virtual 3D cursor. Mel phys 27: 1305–1310.
    [16] Wong TZ, Lateiner JS, Mahon TG, et al. (1996) Stereoscopically guided characterization of three-dimensional dynamic MR images of the breast. Radiology 198: 288–291. doi: 10.1148/radiology.198.1.8539396
    [17] Park S, Kim S, Park J (2012) Select ahead: efficient object selection technique using the tendency of recent cursor movements. Asia-Pacific Computer and Human Interaction: 51–58.
    [18] Katzakis N, Kiyokawa K, Takemura H (2013) Plane-casting: 3D cursor control with a smartphone. Asia-Pacific Computer and Human Interaction: 199–200.
    [19] Hudson SE (1992) The interaction technique notebook: Adding shadows to a 3D cursor. ACM Transactions on Graphics (TOG) 11: 193–199. doi: 10.1145/130881.370599
    [20] Dorta T, Kinayoglu G, Hoffmann M (2015) Hyve-3D and rethinking the 3D cursor: unfolding a natural interaction model for remote and local co-design in VR. International Conference on Computer Graphics and Interactive Techniques: 43.
    [21] Biocca F, Tang A, Owen C, et al. (2006) Attention funnel: omnidirectional 3D cursor for mobile augmented reality platforms. Human Factors in Computing Systems: 1115–1122.
    [22] Jung T, Bauer P (2017) Constraint-based modeling technique for mid-air interaction. Symposium on Spatial User Interaction: 157–157.
    [23] Feng J, Wartell Z (2014) Riding the plane: bimanual, desktop 3D manipulation. User Interface Software and Technology: 93–94.
    [24] Brewer J, Anderson D (1976) Techniques for interactive three dimensional design. International Conference on Computer Graphics and Interactive Techniques: 13–30.
    [25] Venolia D (1993) Facile 3D direct manipulation. Human Factors in Computing Systems: 31–36.
    [26] Teather RJ, Stuerzlinger W (2012) A system for evaluating 3D pointing techniques. Virtual Reality Software and Technology: 209–210.
    [27] Elmqvist N (2005) BalloonProbe: Reducing occlusion in 3D using interactive space distortion. Virtual Reality Software and Technology: 134–137.
    [28] Brewer JA, Anderson DC (1977) Visual interaction with overhauser curves and surfaces. International Conference on Computer Graphics and Interactive Techniques 11: 132–137.
    [29] Jerald J, Yoganandan A (2011) iMedic: immersive medical environment for distributed interactive consultation. International Conference on Computer Graphics and Interactive Techniques: 99–99.
    [30] Menelas B-AJ (2013) Interactive analysis of cavity-flows in a virtual environment. Spring Conference on Computer Graphics: 31–37.
    [31] Serrar Z, Elmarzouqi N, Jarir Z, et al. (2014) Evaluation of Disambiguation Mechanisms of Object-Based Selection in Virtual Environment: Which Performances and Features to Support "Pick Out"? International Conference on Human-Computer Interaction: 29.
    [32] Ware C, Lowther K (1997) Selection using a one-eyed cursor in a fish tank VR environment. ACM Transactions on Computer-Human Interaction (TOCHI) 4: 309–322. doi: 10.1145/267135.267136
    [33] Biocca F, Tang A, Owen C, et al. (2006) The omnidirectional attention funnel: A dynamic 3D cursor for mobile augmented reality systems. Hawaii International Conference on System Sciences 1: 22c–22c.
    [34] Kadri A, Lécuyer A, Burkhardt J-M, et al. (2007) The Influence of Visual Appearance of User's Avatar on the Manipulation of Objects in Virtual Environments. IEEE Virtual Reality Conference: 291–292.
    [35] Young TS, Teather RJ, MacKenzie IS (2017) An arm-mounted inertial controller for 6DOF input: Design and evaluation. Symposium on 3D User Interfaces: 26–35.
    [36] Moreira DA, Hage C, Luque EF, et al. (2015) 3D markup of radiological images in ePAD, a web-based image annotation tool. Computer-Based Medical Sytems: 97–102.
    [37] Jáuregui DAG, Argelaguet F, Lecuyer A (2012) Design and evaluation of 3D cursors and motion parallax for the exploration of desktop virtual environments. Symposium on 3D User Interfaces: 69–76.
    [38] Kadri A, Lécuyer A, Burkhardt J-M (2007) The visual appearance of user's avatar can influence the manipulation of both real devices and virtual objects. Symposium on 3D User Interfaces: 11.
    [39] Wither J, Höllerer T (2005) Pictorial depth cues for outdoor augmented reality. International Symposium on Wearable Computers: 92–99.
    [40] Wither J, Höllerer T (2004) Evaluating techniques for interaction at a distance. International Symposium on Wearable Computers 1: 124–127.
    [41] Wu S-T, Abrantes M, Tost D, et al. (2003) Picking and snapping for 3d input devices. Brazilian Symposium on Computer Graphics and Image Processing: 140–147.
    [42] Schwartz AB, Tillery SH, Taylor DM (2003) Cortical control of natural arm movement. International IEEE/EMBS Conference on Neural Engineering: 99.
    [43] Adachi Y (1993) Touch and trace on the free-form surface of virtual object. IEEE Virtual Reality Conference: 162–168.
    [44] Stein T, Coquillart S (2000) The metric cursor. Pacific Conference on Computer Graphics and Applications: 381–386.
    [45] Michel C, Sibomana M, Bodart J-M, et al. (1995) Interactive delineation of brain sulci and their merging into functional PET images. Nuclear Science Symposium and Medical Imaging Conference 3: 1480–1484.
    [46] Ernst H, Petzold J, Larice R, et al. (1996) Mixing of computer graphics and high-quality stereographic video. IEEE transactions on consumer electronics 42: 795–799. doi: 10.1109/30.536187
    [47] Özacar K, Hincapié-Ramos JD, Takashima K, et al. (2016) 3D Selection Techniques for Mobile Augmented Reality Head-Mounted Displays. Interact Comput 29: 579–591.
    [48] Eagleson R, Wucherer P, Stefan P, et al. (2015) Collaborative table-top VR display for neurosurgical planning. IEEE Virtual Reality Conference: 169–170.
    [49] Ernst H, Petzold J, Larice R, et al. (1996) High-quality overlay of live stereo video on computer graphics. International Conference on Consumer Electronics: 404.
    [50] Taylor DM (2007) The importance of online error correction and feed-forward adjustment in brain-machine interfaces for restoration of movement. Toward Brain-computer Interfacing: 161.
    [51] Dang N-T (2007) A survey and classification of 3D pointing techniques. IEEE International Conference on Research, Innovation and Vision for the Future: 71–80.
    [52] Douglas DB, Wilke CA, Gibson D, et al. (2017) Virtual reality and augmented reality: Advances in surgery. Biol 2: 1–8.
    [53] Hinckley K, Pausch R, Goble JC, et al. (1994) Passive real-world interface props for neurosurgical visualization. Human Factors in Computing Systems: 452–458.
    [54] David Douglas MDCW, M.S.; David Gibson, M.S.; Emanuel Petricoin, Ph.D.; Lance Liotta, Ph.D.; Demetri Venets, B.S.; Buddy Beck, M.B.A.; Robert Douglas, Ph.D. (2018) Depth-3-Dimensional (D3D) Augmented Reality Viewing of a Lung Cancer Imaged with PET: Proof of Concept. SNMMI Mid-Winter Meeting 2018. Orlando, FL.
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