Utilization of MFCC in Conjuction with Elaborated LSTM Architechtures for the Amplification of Lexical Descrimination in Acoustic Milieus Characterized by …

D Upadhyay, S Malhotra, RS Rawat… - 2024 2nd …, 2024 - ieeexplore.ieee.org
D Upadhyay, S Malhotra, RS Rawat, M Gupta, S Mishra
2024 2nd International Conference on Disruptive Technologies (ICDT), 2024ieeexplore.ieee.org
In this pioneering research endeavor, we delved into the intricate realm of speech
recognition technology, aiming to surmount the formidable challenges posed by acoustically
complex environments, notably those marred by pronounced nocturnal disturbance.
Through the synergistic amalgamation of Mel-frequency cepstral coefficients (MFCC) and
meticulously crafted Long Short-Term Memory (LSTM) architectures, we charted a
transformative path toward the amplification of lexical discrimination. Our multifaceted …
In this pioneering research endeavor, we delved into the intricate realm of speech recognition technology, aiming to surmount the formidable challenges posed by acoustically complex environments, notably those marred by pronounced nocturnal disturbance. Through the synergistic amalgamation of Mel-frequency cepstral coefficients (MFCC) and meticulously crafted Long Short-Term Memory (LSTM) architectures, we charted a transformative path toward the amplification of lexical discrimination. Our multifaceted approach not only enhanced the discernment of subtle linguistic nuances but also showcased unparalleled efficacy in the face of disruptive nocturnal noise. The meticulously calibrated fusion of advanced signal processing techniques and neural network architectures culminated in a novel paradigm, revolutionizing the landscape of speech recognition technology. By pushing the boundaries of computational linguistics, this study not only advances scientific understanding but also paves the way for real-world applications in domains reliant on precise and resilient speech recognition systems.
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