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Article detail · 2005 · article

Potential Anomaly Separation and Archeological Site Localization Using Genetically Trained Multi level Cellular Neural Networks

Journal ETRI Journal
ISSN1225-6463
YÖKSİS OpenAlex Open access · bronze
Year2005
Citations5OpenAlex
Percentile%88.3
FWCI1.771.00 = world average
Scopus (SJR)Q2
WoS (JCR)Q1

Data source split

  • YÖKSİSYÖKSİS article record
  • YÖKSİS venueETRI Journal
  • Catalog match (ISSN)ETRI Journal
  • OpenAlexOpenAlex enrichment (abstract, citations, topics)
  • Semantic Scholarcitation count (not merged with OpenAlex)

Abstract

OpenAlex English

In this paper, a supervised algorithm for the evaluation of geophysical sites using a multi-level cellular neural network (ML-CNN) is introduced, developed, and applied to real data. ML-CNN is a stochastic image processing technique based on template optimization using neighborhood relationships of the pixels. The separation/enhancement and border detection performance of the proposed method is evaluated by various interesting real applications. A genetic algorithm is used in the optimization of CNN templates. The first application is concerned with the separation of potential field data of the Dumluca chromite region, which is one of the rich reserves of Turkey; in this context, the classical approach to the gravity anomaly separation method is one of the main problems in geophysics. The other application is the border detection of archeological ruins of the Hittite Empire in Turkey. The Hittite civilization sites located at the Sivas-Altinyayla region of Turkey are among the most important archeological sites in history, one reason among others being that written documentation was first produced by this civilization.

Topics

Citations

OpenAlex cited_by_count. Not a WoS or Scopus citation count; those sources have no separate column here.

5citationsOpenAlex · cited_by_count (cache / database)

3 publications in the local catalog that cite this work (OpenAlex reference match; not the full global list).

  1. 2007 Modeling of trophospheric ozone concentrations using genetically trained multi level cellular neural networksCitations 11 · OpenAlex
  2. 2008 Arkeolojik Kalintilarda Hücresel Yapay Sinir Ağlari (HYSA) Kullanilarak Yapi Sinirlarinin SaptanmasiCitations 0 · OpenAlex
  3. 2008 Determination of structure boundaries in Archaeological ruins by using Cellular Neural Networks (CNN)Citations 0 · OpenAlex

Authors

7
  1. Bilgili Erdem 1
  2. Göknar I. Cem 2
  3. Albora Ali Muhittin 3
  4. Uçan Osman Nuri 4
  5. ALİ MUHİTTİN ALBORA İSTANBUL ÜNİVERSİTESİ-CERRAHPAŞA 5
  6. OSMAN NURİ UÇAN ALTINBAŞ ÜNİVERSİTESİ 6
  7. ERDEM BİLGİLİ PİRİ REİS ÜNİVERSİTESİ 7