REAL-TIME POSITION MEASUREMENT INTEGRATED WITH CAD - TECHNOLOGIES AND THEIR PROTOCOLS

被引:5
|
作者
BELIVEAU, YJ
WILLIAMS, JM
KING, MG
NILES, AR
机构
[1] Build. Constr. Dept., Virginia Polytech. Inst. & State Univ., Blacksburg, VA
[2] Bechtel Corp., San Francisco, CA, 94119-3965
[3] Jacobus Technology, Inc., Gaithersburg, MD, 20882, 7901, Beechcraft Ave.
[4] U.S. Army Corps of Engrs., Topographic Engrg. Ctr., Fort Belvoir, VA
关键词
D O I
10.1061/(ASCE)0733-9364(1995)121:4(346)
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The consortium for advanced positioning system (CAPS) was formed in December 1992. The purpose of CAPS is to assist the Civil Engineering Research Foundation (CERF) with a Cooperative Research & Development Agreement (CRDA). CAPS will field and test a new real-time laser-based technology, realtime differential global positioning systems (DGPS), and total stations to determine areas of functionality and how to best integrate these measurement devices to improve the work process and as-building capabilities. The founding members of CAPS are Spatial Positioning Systems, Inc., Blacksburg, Virginia; Jacobus Technology, Inc., Gaithersburg, Maryland; Bechtel Corporation, San Francisco, California; and CERF, Washington, D.C. Integraph Corporation Huntsville, Alabama, joined CAPS in May 1993. The U.S. Army Corps of Engineers (Corps) is participating in CAPS through a CRDA with CERF. The objective of the CRDA is to create and field-test a system that improves quality, speed, and accuracy of construction layout and generates real-time as-builts. This effort encompasses the integration of the aforementioned new laser-based positioning system, total stations, and DGPS with computer-aided design (CAD)/ systems to form a real-time construction layout and as-built development system (RtCLADS). This paper presents three positioning technologies, their capabilities, their limitations, and the protocol needed to support the objectives of the CRDA.
引用
收藏
页码:346 / 354
页数:9
相关论文
共 50 条
  • [1] REAL-TIME OPTICAL MEASUREMENT OF POSITION
    DURING, C
    [J]. MECHATRONICS, 1994, 4 (02) : 125 - 138
  • [2] Real-time numerical simulation integrated into the CAD environment
    Zwier, Marijn P.
    Wits, Wessel W.
    [J]. COMPLEX SYSTEMS ENGINEERING AND DEVELOPMENT, 2017, 60 : 98 - 103
  • [3] REAL-TIME MEASUREMENT OF INTRACAVITARY PROBE POSITION
    KUN, S
    PEURA, RA
    [J]. IMAGES OF THE TWENTY-FIRST CENTURY, PTS 1-6, 1989, 11 : 218 - 219
  • [4] REAL-TIME PROTOCOLS
    LELANN, G
    [J]. LECTURE NOTES IN COMPUTER SCIENCE, 1985, 184 : 457 - 469
  • [5] Emerging technologies for real-time and integrated agriculture decisions
    Kitchen, Newell R.
    [J]. COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2008, 61 (01) : 1 - 3
  • [6] REAL-TIME MEASUREMENT OF CORNER POSITION IN BINARY IMAGES
    GAIARSA, AE
    CAPSON, DW
    [J]. IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 1994, 43 (04) : 567 - 577
  • [7] REAL-TIME OPTICAL MEASUREMENT OF TIME-DEPENDENT SHOCK POSITION
    SAJBEN, M
    CRITES, RC
    [J]. AIAA JOURNAL, 1979, 17 (08) : 910 - 912
  • [8] Current Trends in Ligand Binding Real-Time Measurement Technologies
    Stephanie Fraser
    Judy Y. Shih
    Mark Ware
    Edward O’Connor
    Mark J. Cameron
    Martin Schwickart
    Xuemei Zhao
    Karin Regnstrom
    [J]. The AAPS Journal, 2017, 19 : 682 - 691
  • [9] Current Trends in Ligand Binding Real-Time Measurement Technologies
    Fraser, Stephanie
    Shih, Judy Y.
    Ware, Mark
    O'Connor, Edward
    Cameron, Mark J.
    Schwickart, Martin
    Zhao, Xuemei
    Regnstrom, Karin
    [J]. AAPS JOURNAL, 2017, 19 (03): : 682 - 691
  • [10] Portable real-time protocols to make real-time communications affordable
    Barned, RM
    Richards, RJ
    [J]. 2002 MILCOM PROCEEDINGS, VOLS 1 AND 2: GLOBAL INFORMATION GRID - ENABLING TRANSFORMATION THROUGH 21ST CENTURY COMMUNICATIONS, 2002, : 1183 - 1188