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Partha Pratim Roy

Researcher at Indian Institute of Technology Roorkee

Publications -  509
Citations -  8436

Partha Pratim Roy is an academic researcher from Indian Institute of Technology Roorkee. The author has contributed to research in topics: Chemistry & Medicine. The author has an hindex of 36, co-authored 404 publications receiving 5505 citations. Previous affiliations of Partha Pratim Roy include Samsung & Indian Statistical Institute.

Papers
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Journal ArticleDOI

Development of a clustering based fusion framework for locating the most consistent IrisCodes bits

TL;DR: This work focuses on locating and subsequently extracting the most consistent bit-locations from these binary iris features, and achieves this objective by initially constructing a Matching-Code vector from some specifically designated training IrisCodes, and subsequently forming a series of 1D clusters in them.
Journal ArticleDOI

A rhodamine based chemodosimeter for the detection of Group 13 metal ions.

TL;DR: In this article , a new rhodamine derivative, HL-CIN, derived from a reaction between N-(rhodamine-6G)lactam-ethylenediamine (L1) and trans-cinnamaldehyde, is reported for the colorimetric and fluorogenic sensing of Group 13 trivalent cations, namely Al3+, Ga3+, In3+ and Tl3+.
Book ChapterDOI

Multi-oriented Text Detection from Video Using Sub-pixel Mapping

TL;DR: An iterative algorithm with super resolution to reduce information into its fundamental unit, like alphabets and digits in this case, to detect moving and static text in video images is provided.
Proceedings ArticleDOI

Writer Identification in Music Score Documents without Staff-Line Removal

TL;DR: A symbol-independent writer identification framework using HMM in music score without removing staff lines is proposed and compared with Gaussian Mixture Models (GMMs) based writer identification system in CVC-MUSCIMA data set.
Proceedings Article

A complete system for detection and recognition of text in graphical documents using background information

TL;DR: This paper proposes a methodology to extract individual text lines and an approach for recognition of the extracted text characters from such complex graphical documents and is based on the foreground and background information of the text components.