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相关论文: On Musical Onset Detection via the S-Transform

200 篇论文

Automatic Music Transcription (AMT) is one of the oldest and most well-studied problems in the field of music information retrieval. Within this challenging research field, onset detection and instrument recognition take important places in…

机器学习 · 统计学 2017-03-30 D. Cazau , G. Revillon , O. Adam

The onset of a musical note is the earliest time at which a note can be reliably detected. Detection of these musical onsets pose challenges in the presence of ornamentation such as vibrato, bending, and if the attack of the note transient…

音频与语音处理 · 电气工程与系统科学 2024-08-27 S. Johanan Joysingh , P. Vijayalakshmi , T. Nagarajan

In this paper, we propose an efficient and reproducible deep learning model for musical onset detection (MOD). We first review the state-of-the-art deep learning models for MOD, and identify their shortcomings and challenges: (i) the lack…

声音 · 计算机科学 2018-06-20 Rong Gong , Xavier Serra

We explore transfer learning strategies for musical onset detection in the Afro-Brazilian Maracatu tradition, which features complex rhythmic patterns that challenge conventional models. We adapt two Temporal Convolutional Network…

声音 · 计算机科学 2025-07-08 António Sá Pinto

Onsets are a key factor to split audio into several notes. In this paper, we ensemble multiple temporal convolution network (TCN) based model and utilize a restricted frequency range spectrogram to achieve more robust onset detection.…

声音 · 计算机科学 2023-06-09 Yu Cheng Hung , Jian-Jiun Ding

This paper describes a streaming audio-to-MIDI piano transcription approach that aims to sequentially translate a music signal into a sequence of note onset and offset events. The sequence-to-sequence nature of this task may call for the…

声音 · 计算机科学 2025-03-04 Weixing Wei , Jiahao Zhao , Yulun Wu , Kazuyoshi Yoshii

Transformer is a successful deep neural network (DNN) architecture that has shown its versatility not only in natural language processing but also in music information retrieval (MIR). In this paper, we present a novel Transformer-based…

声音 · 计算机科学 2022-05-31 Yun-Ning Hung , Ju-Chiang Wang , Xuchen Song , Wei-Tsung Lu , Minz Won

In recent years, the synchrosqueezing transform (SST) has gained popularity as a method for the analysis of signals that can be broken down into multiple components determined by instantaneous amplitudes and phases. One such version of SST,…

数值分析 · 数学 2017-09-20 Alexander Berrian , Naoki Saito

We propose ST-DETR, a Spatio-Temporal Transformer-based architecture for object detection from a sequence of temporal frames. We treat the temporal frames as sequences in both space and time and employ the full attention mechanisms to take…

计算机视觉与模式识别 · 计算机科学 2021-07-27 Eslam Mohamed , Ahmad El-Sallab

We present a sparse and invariant representation with low asymptotic complexity for robust unsupervised transient and onset zone detection in noisy environments. This unsupervised approach is based on wavelet transforms and leverages the…

机器学习 · 统计学 2016-11-24 Randall Balestriero , Behnaam Aazhang

Note-level automatic music transcription is one of the most representative music information retrieval (MIR) tasks and has been studied for various instruments to understand music. However, due to the lack of high-quality labeled data,…

声音 · 计算机科学 2023-04-13 Sangeon Yong , Li Su , Juhan Nam

In this paper, we design a system in order to perform the real-time beat tracking for an audio signal. We use Onset Strength Signal (OSS) to detect the onsets and estimate the tempos. Then, we form Cumulative Beat Strength Signal (CBSS) by…

声音 · 计算机科学 2017-10-31 Ali Mottaghi , Kayhan Behdin , Ashkan Esmaeili , Mohammadreza Heydari , Farokh Marvasti

Polyphonic Piano Transcription has recently experienced substantial progress, driven by the use of sophisticated Deep Learning approaches and the introduction of new subtasks such as note onset, offset, velocity and pedal detection. This…

声音 · 计算机科学 2023-06-02 Andres Fernandez

Synchrosqueezing transform (SST) is a useful tool for vibration signal analysis due to its high time-frequency (TF) concentration and reconstruction properties. However, existing SST requires much processing time for large-scale data. In…

信号处理 · 电气工程与系统科学 2020-03-17 Dong He , Hongrui Cao

The synchrosqueezing transform (SST) has been developed as a powerful EMD-like tool for instantaneous frequency (IF) estimation and component separation of non-stationary multicomponent signals. Recently, a direct method of the…

数值分析 · 数学 2020-10-22 Charles K. Chui , Qingtang Jiang , Lin Li , Jian Lu

In this paper, we propose a novelmethod to search for precise locations of paired note onset and offset in a singing voice signal. In comparison with the existing onset detection algorithms,our approach differs in two key respects. First,…

声音 · 计算机科学 2020-10-29 Sungkyun Chang , Kyogu Lee

Recently the study of modeling a non-stationary signal as a superposition of amplitude and frequency-modulated Fourier-like oscillatory modes has been a very active research area. The synchrosqueezing transform (SST) is a powerful method…

数值分析 · 数学 2018-12-31 Haiyan Cai , Qingtang Jiang , Lin Li , Bruce W. Suter

This paper addresses the problem of cross-modal musical piece identification and retrieval: finding the appropriate recording(s) from a database given a sheet music query, and vice versa, working directly with audio and scanned sheet music…

音频与语音处理 · 电气工程与系统科学 2021-05-27 Luis Carvalho , Gerhard Widmer

The synchrosqueezing transform, a kind of reassignment method, aims to sharpen the time-frequency representation and to separate the components of a multicomponent non-stationary signal. In this paper, we consider the short-time Fourier…

信号处理 · 电气工程与系统科学 2019-09-27 Lin Li , Haiyan Cai , Hongxia Han , Qingtang Jiang , Hongbing Ji

For audio source separation applications, it is common to estimate the magnitude of the short-time Fourier transform (STFT) of each source. In order to further synthesizing time-domain signals, it is necessary to recover the phase of the…

声音 · 计算机科学 2018-02-28 Paul Magron , Roland Badeau , Bertrand David
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