An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting
碩士 === 國立清華大學 === 資訊系統與應用研究所 === 102 === Audio Fingerprinting (AFP) is a fast way of music retrieval. It first records a segment of a music through the microphone on a cellphone or tablet device, and sends the recorded segment to the server for AFP computation. The server returns the most possible s...
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ndltd-TW-102NTHU53940332016-03-09T04:34:23Z http://ndltd.ncl.edu.tw/handle/68103600602734483480 An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting 使用排序學習演算法產生重新排名以改進的音訊指紋辨識 Lin, Meng-Hua 林孟樺 碩士 國立清華大學 資訊系統與應用研究所 102 Audio Fingerprinting (AFP) is a fast way of music retrieval. It first records a segment of a music through the microphone on a cellphone or tablet device, and sends the recorded segment to the server for AFP computation. The server returns the most possible song to the user. However, in a real life scenario, a user commonly records the sound in a noisy environment, such as a restaurant or a supermarket. The noise might distort the recording and thus degrades the accuracy of AFP. The goal of my research is to improve the accuracy of the system in a noisy environment. The recognition system was developed in two stages. The first stage compute the confidence score for the query. The query with a low confidence score goes to the second stage for re-ranking. In the second stage, the frequency and time between the query and top 10 songs obtained from the first stage are compared, and the top 10 songs are re-ranked to improve the recognition accuracy. Three learning to rank methods are used to deal with the ranking problem, including the pointwise, the pairwise and the listwise approaches. Experimental result shows that the proposed re-ranking method is able to improve the recognition rate. Jang, Jyh-Shing Chang, Jason S. 張智星 張俊盛 2014 學位論文 ; thesis 47 zh-TW |
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碩士 === 國立清華大學 === 資訊系統與應用研究所 === 102 === Audio Fingerprinting (AFP) is a fast way of music retrieval. It first records a segment of a music through the microphone on a cellphone or tablet device, and sends the recorded segment to the server for AFP computation. The server returns the most possible song to the user. However, in a real life scenario, a user commonly records the sound in a noisy environment, such as a restaurant or a supermarket. The noise might distort the recording and thus degrades the accuracy of AFP. The goal of my research is to improve the accuracy of the system in a noisy environment.
The recognition system was developed in two stages. The first stage compute the confidence score for the query. The query with a low confidence score goes to the second stage for re-ranking. In the second stage, the frequency and time between the query and top 10 songs obtained from the first stage are compared, and the top 10 songs are re-ranked to improve the recognition accuracy. Three learning to rank methods are used to deal with the ranking problem, including the pointwise, the pairwise and the listwise approaches. Experimental result shows that the proposed re-ranking method is able to improve the recognition rate.
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author2 |
Jang, Jyh-Shing |
author_facet |
Jang, Jyh-Shing Lin, Meng-Hua 林孟樺 |
author |
Lin, Meng-Hua 林孟樺 |
spellingShingle |
Lin, Meng-Hua 林孟樺 An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting |
author_sort |
Lin, Meng-Hua |
title |
An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting |
title_short |
An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting |
title_full |
An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting |
title_fullStr |
An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting |
title_full_unstemmed |
An Effective Re-ranking Method Based on Learning to Rank for Improving Audio Fingerprinting |
title_sort |
effective re-ranking method based on learning to rank for improving audio fingerprinting |
publishDate |
2014 |
url |
http://ndltd.ncl.edu.tw/handle/68103600602734483480 |
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