• https://doi.org/10.4018/978-1-59904-714-0.ch006Copy DOI Icon

Feature Interactions

  • Jan 1, 2009
  • Xun Xu
Show More
  • Abstract
  • Literature Map
  • Similar Papers
Abstract

Feature interaction tends to have a wide range of consequences and effects on a feature model and its applications. While these may often be intended, it is also true that feature validity can be violated, one way or another, by feature interactions (Shah & Mäntylä, 1995, Gao & Shah, 1998, Lee & Kim, 1998). They may affect the semantics of a feature, ranging from slight changes in actual parameter values, to some substantial alterations to both geometry and topology or even complete suppression of its contribution to the model shape. To certain extent, successful applications of feature recognition and feature-based techniques have been hindered by interactions among the features. Feature interaction was first studied in relation to feature recognition systems. As an alternative to feature recognition, feature-based design methodology has also become prevalent in recent years. Although a number of successful and commercially available feature-based design systems have been reported, current CAD technology is still unable to provide an effective solution for fully handling the complexity of feature interactions. Very often in a feature-based design system, the interaction between two features gives rise to an unintended feature, nullifying the one-to-one mapping from design features to manufacturing features. The resulting manufacturing feature is usually of a form that the system cannot handle or represent. Thus feature interaction resolution is equally essential for a feature-based design system (Dereli & Baykasoglu, 2004). As discussed in Chapter IV, features can be represented either as a set of faces or as a volume. The interactions between surface features are different from those occurring between volumetric features. This chapter discusses different types of interactions that arise from these two feature representation schemes and uses the interacting entities to classify them. There are two types of surface feature interactions, basic feature interaction and complex feature interaction. Three types of basic feature interactions are discussed. They are nested, overlapping, and intersecting types. Interacting patches are used to classify volumetric feature interactions. These interacting patches can be of a containing, contained, or overlapping type. The significance of feature interactions lies in their effect on the machining sequence of the features involved. This is also discussed in this chapter. When features are close to each other but do not share any geometric entities, interactions may also happen for structural reasons. This type of feature interaction can be called interaction by vicinity. The main aim of this chapter is to take a holistic approach toward feature interaction solutions. The example parts used are from the “Catalogue of the NIST (National Institute of Standards and Technology) Design, Planning and Assembly Repository” (Regli & Gaines, 1996). A case study is provided in the end of the chapter.

Similar Papers
  • Book Chapter
  • Citations115

Feature Interaction and Dependencies: Modeling Features for Reengineering a Legacy Product Line

  • Jan 01, 2002
  • Stefan Ferber +2
  • Single Report

Mercury CEM Calibration

  • Mar 31, 2007
  • John F Schabron +2
  • Book Chapter

Feature Recognition

  • Jan 01, 2009
  • Xun Xu
  • Conference Article
  • Citations1

The NIST Quality System for Measurement Services: A look at its Past Decade and a Gaze towards its Future

  • Jan 01, 2013
  • Sally Bruce
  • Single Report

The National Institute of Standards and Technology’s Impact on Fire Safety Standards

  • Jan 01, 2022
  • Benjamin M Miller
  • Single Report
  • Citations2

Voices of NIST :

  • Mar 15, 2021
  • Mary F Theofanos +3
  • Single Report
  • Citations27

Metrological tools for the reference materials and reference instruments of the NIST Material Measurement Laboratory

  • Sep 16, 2021
  • Carlos R Beauchamp +21
  • Conference Article

NIST strategies, activities and collaborations in electronics packaging, interconnection and assembly

  • May 16, 1995
  • M Schen +2
  • Single Report
  • Citations7

Standards and performance metrics for on-road automated vehicles

  • Jun 04, 2024
  • Zeid Suzanne Kootbally +5
  • Conference Article
  • Citations1

NIST Development of Reference Material Scaffolds for Tissue Engineering

  • Jan 01, 2005
  • Joy P Dunkers +5
  • Research Article
  • Citations1

Cyber Security Awareness Model Based on NIST (National Institute of Standards and Technology) for Secondary School Students in Malaysia

  • Oct 08, 2024
  • Journal of Advanced Research in Applied Sciences and Engineering Technology
  • Zahidah Zulkifli +3
  • Conference Article
  • Citations5

Local Distribution and Calibration of Timing Signals at NIST

  • Mar 07, 2017
  • Proceedings of the ... annual Precise Time and Time Interval (PTTI) Systems and Applications Meeting/Proceedings of a meeting - Precise Time and Time Interval (PTTI) Systems and Applications Meeting
  • J Savory +3
  • Research Article
  • Citations7

Composite feature and variational design concepts in a feature-based design system

  • Jul 01, 1993
  • International Journal of Production Research
  • Rong-Kwei Li +2
  • Research Article
  • Citations6

The role of metallurgy in the NIST investigation of the World Trade Center towers collapse

  • Nov 01, 2007
  • JOM
  • S W Banovic +6
  • Conference Article

Technique for assessing PNA measurement repeatability using a NIST standard

  • Dec 01, 2005
  • Nazia Akil +1
Cactus Communications logo

Copyright 2026 Cactus Communications. All rights reserved.