Pattern Recognition/Classifiers PhD

Inggris

1

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About This Course

Pattern recognition is a very active field of research intimately bound to machine learning and data mining. Also known as classification or statistical classification, pattern recognition aims at building a classifier that can determine the class of an input pattern. An input could be the ZIP code on an envelope, a satellite image, microarray gene expression data, a chemical signature of an oil-field probe, a financial record of a company and many more. The classifier may take a form of a function, an algorithm, a set of rules, etc. Pattern recognition is about training such classifiers to do tasks that could be tedious, dangerous, infeasible, impractical, expensive or simply difficult for humans. Pattern recognition faces many challenges in the modern era of massive data collection (e.g. in retail, communication and Internet) and high demand for precision and speed (e.g. in security monitoring and target tracking). New methodologies are needed to answer these application-born challenges.

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School of Computer Science and Engineering

Pilihan kuliah

Purna Waktu (3 tahun)

Biaya kuliah
£20.000,00 (Rp 404.734.389) per tahun
Accommodation -Rent for premium studios for postgraduates - £10,425.71 (approx. £205 per week)

* Biaya yang tercantum di halaman ini untuk tujuan indikatif, silahkan baca informasi resmi dari universitas bersangkutan

Tanggal mulai

September 2025

Tempat

Main Campus

Bangor,

Bangor,

Gwynedd,

LL57 2DG, United Kingdom

Persyaratan masuk

Untuk mahasiswa internasional

A good honours degree or equivalent is required. Applicants need to have an overall IELTS: 6.0 (with no element below 5.5). TOEFL 75 Overall.

Mungkin ada beberapa persyaratan IELTS yang berbeda, tergantung jurusan yang kamu ambil

Info tentang Bangor University

Aneka fasilitas khusus & canggih di Bangor serta para pengajar yang antusias membantu para mahasiswa menikmati program studi yang sesuai & bermanfaat.

  • Beragam pilihan program studi yang disegani
  • Fasilitas lengkap yang dirancang sesuai dengan setiap fakultas
  • Jaringan dukungan yang mumpuni untuk semua mahasiswa
  • Lokasi yang indah & fantastis, dekat dengan kota-kota besar