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TY - JOUR
AU - Zubair Uddin,
AU - Muhammad Ameen Chhajro,
AU - Farhan Bashir Shaikh,
AU - Muhammad Hibatullah Channa,
AU - Fakhira Tabassum,
AU - Dr. Kirshan Kumar Luhana,
AU - Adnan Jahangir Panhwar,
PY - 2026/03/30
Y2 - 2026/10/08
TI - WORD EMBEDDING-BASED NEURAL NETWORKS' PERFORMANCE ON LOW-RESOURCED LANGUAGE
JF - Spectrum of Engineering Sciences
JA - SES
VL - 4
IS - 3
SE - Articles
DO -
UR - https://www.thesesjournal.com.medicalsciencereview.com/index.php/1/article/view/2458
SP - 1901-1916
AB - <p><em>Word embedding is a key concept in deep learning, particularly in the realm of natural language processing (NLP). It enables the efficient and accurate representation of words or phrases in vector spaces, capturing the contextual and semantic relationships between them. In this article we have applied different word embedding techniques, comparison analysis on the Sindhi language corpus, and proposed the word embedding framework for the Sindhi Language. The word embedding techniques discussed and applied in this research are </em><em>Bert-base-uncased</em><em>, word2vec (CBOW and Skip-gram) on an LSTM neural network. In the end, we evaluate word embeddings' performance on the low-resourced Sindhi Language corpus.</em></p>
ER -