• DocumentCode
    2641545
  • Title

    Polynomial time approximation schemes for Euclidean TSP and other geometric problems

  • Author

    Arora, Sanjeev

  • Author_Institution
    Princeton Univ., NJ, USA
  • fYear
    1996
  • fDate
    14-16 Oct 1996
  • Firstpage
    2
  • Lastpage
    11
  • Abstract
    We present a polynomial time approximation scheme for Euclidean TSP in ℜ2. Given any n nodes in the plane and ε>0, the scheme finds a (1+ε)-approximation to the optimum traveling salesman tour in time n0(1/ε). When the nodes are in ℜd, the running time increases to n(O˜(logd-2n)/εd-1) The previous best approximation algorithm for the problem (due to Christofides (1976)) achieves a 3/2-approximation in polynomial time. We also give similar approximation schemes for a host of other Euclidean problems, including Steiner Tree, k-TSP, Minimum degree-k, spanning tree, k-MST, etc. (This list may get longer; our techniques are fairly general.) The previous best approximation algorithms for all these problems achieved a constant-factor approximation. All our algorithms also work, with almost no modification, when distance is measured using any geometric norm (such as lp for p⩾1 or other Minkowski norms)
  • Keywords
    computational complexity; computational geometry; Euclidean TSP; Euclidean problems; Minimum degree-k; Steiner Tree; best approximation; geometric problems; k-MST; k-TSP; optimum traveling salesman tour; polynomial time approximation; spanning tree; Algorithm design and analysis; Approximation algorithms; Complexity theory; Cost function; Engineering profession; History; Operations research; Polynomials; Testing; Traveling salesman problems;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Foundations of Computer Science, 1996. Proceedings., 37th Annual Symposium on
  • Conference_Location
    Burlington, VT
  • ISSN
    0272-5428
  • Print_ISBN
    0-8186-7594-2
  • Type

    conf

  • DOI
    10.1109/SFCS.1996.548458
  • Filename
    548458