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Study on acoustic impedance conversion using an optimal chirplet analyzed in chirp SBP raw data

机译:啁啾SBP原始数据分析的最优性啁啾声的研究

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摘要

Chirplets are wavelets that are transmitted by a chirp sub-bottom profiler (SBP) system. They contain multiple frequencies, typically in the kHz range, and are modulated linearly within a fixed signal length, which makes efficient data analysis possible. However, when chirp SBP field data are recorded, they are usually not raw but have gone through a matching filter and been converted to a Klauder wavelet section or signal envelope. When pre-processed data are reviewed, anomalies can easily be distinguished by sight, and since the data are not raw, reliable quantitative analysis of physical properties is unlikely. Moreover, as chirplets are transmitted through media, their waveforms often become distorted, creating many difficulties in performing analysis of physical properties following data processing. In this study, raw data were used as input to perform an accurate physical analysis of the background media and anomalies at the site of a 600-year-old shipwreck off the coast of Korea. During data processing, an optimal chirplet found through an analysis of the seabed reflection in the raw data was used, instead of the original chirplet set that was applied during acquisition. Conventional data processing was performed in addition to sparse-spike deconvolution and acoustic impedance conversion, using the optimal chirplet found in the raw data. The acoustic impedance results obtained by using the optimal chirplet had a higher level of accuracy when determining the properties of the medium and identifying anomalies, compared to those obtained when the original chirplet was used.
机译:Chirplet是由Chirp次底分布器(SBP)系统发送的小波。它们包含通常在KHz范围内的多个频率,并且在固定信号长度内线性调制,这使得能够有效的数据分析。但是,当记录CHIRP SBP现场数据时,它们通常不是RAW,而是通过匹配过滤器并已转换为KLAUDER小波部分或信号信封。当审查预处理数据时,可以通过视觉轻易区分异常,因为数据不是原始的,因此不太可能对物理性质进行可靠的定量分析。此外,由于通过媒体传输了编排,它们的波形通常变得扭曲,在数据处理之后执行物理性质的分析产生许多困难。在这项研究中,原始数据被用作输入,以便在韩国海岸的600岁的沉船场地的场地上对背景媒体和异常进行准确的物理分析。在数据处理期间,使用了通过分析原始数据中的海底反射的最佳啁啾,而不是在采集期间应用的原始啁重集合。除了在原始数据中发现的最佳啁啾之外,还执行传统的数据处理。通过使用最佳啁啾获得的声学阻抗结果在确定培养基的性质和鉴定异常时,与使用原始啁啾时的介质和识别异常时,具有更高的精度。

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