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Hiperspektral Görüntülerde Siniflandirma Hizinin Iyileştirilmesi

  • Hacettepe University

Araştırma sonucu: Kitap/Rapor/Konferans Bildirisinde BölümKonferans katkısıbilirkişi

Özet

K-nearest neighbour (K-NN) is a supervised classification technique that is widely used in many fields of study to classify unknown queries based on some known information about the dataset. K-NN is known to be robust and simple to implement when dealing with data of small size. However its performance is slow when data is large and has high dimensions. Hyperspectral images, often collected from high altitudes, cover very large areas and consist of a large number of pixels, each having hundreds of spectral dimensions. We focus on one of the most popular algorithms for performing approximate search for large datasets based on the concept of locality-sensitive hashing (LSH) for Hyperspectral Image Processing, that allows us to quickly find similar entries in large databases. Our experiments show that LSH accelerates the classification time significantly without effecting the classification rates.

Tercüme edilen katkı başlığıAccelerating classification time in Hyperspectral Images
Orijinal dilTürkçe
Ana bilgisayar yayını başlığı2015 23rd Signal Processing and Communications Applications Conference, SIU 2015 - Proceedings
YayınlayanInstitute of Electrical and Electronics Engineers Inc.
Sayfalar2126-2129
Sayfa sayısı4
ISBN (Elektronik)9781467373869
DOI'lar
Yayın durumuYayınlandı - 19 Haz 2015
Etkinlik2015 23rd Signal Processing and Communications Applications Conference, SIU 2015 - Malatya, !!Turkey
Süre: 16 May 201519 May 2015

Yayın serisi

Adı2015 23rd Signal Processing and Communications Applications Conference, SIU 2015 - Proceedings

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???event.eventtypes.event.conference???2015 23rd Signal Processing and Communications Applications Conference, SIU 2015
Ülke/Bölge!!Turkey
ŞehirMalatya
Periyot16/05/1519/05/15

Keywords

  • hyperspectral imaging
  • k nearest neighbour method
  • locality Sensitive Hashing

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