首页> 外文会议>Australian Joint Conference on Artificial Intelligence; 20041204-06; Cairns(AU) >Voice Code Verification Algorithm Using Competing Models for User Entrance Authentication
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Voice Code Verification Algorithm Using Competing Models for User Entrance Authentication

机译:使用竞争模型的语音代码验证算法用于用户进入身份验证

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摘要

In this paper, we propose a voice code verification method for an intelligent surveillance guard robot, wherein a robot prompts for a code (i.e. word or phrase) for verification. In the application scenario, the voice code can be changed every day for security reasoning and the targeting domain is unlimited. Thus, the voice code verification system not only requires the text-prompted and speaker independent verification, but also it should not require an extra trained model as an alternative hypothesis for log-likelihood ratio test because of memory limitation. To resolve these issues, we propose to exploit the sub-word based anti-models for log-likelihood normalization through reusing an acoustic model and competing with voice code model. The anti-model is automatically produced by using the statistical distance of phonemes against a voice code. In addition, a harmonics-based spectral subtraction algorithm is applied for a noisy robust system on an outdoor environment. The performance evaluation is done by using a common Korean database, PBW452DB, which consists of 63,280 utterances of 452 isolated words recorded in silent environment.
机译:在本文中,我们提出了一种用于智能监视卫士机器人的语音代码验证方法,其中机器人提示输入验证码(即单词或短语)。在应用场景中,出于安全原因,可以每天更改语音代码,并且目标域不受限制。因此,语音代码验证系统不仅需要文本提示和说话者无关的验证,而且由于内存的限制,它也不需要额外训练的模型作为对数似然比测试的替代假设。为了解决这些问题,我们建议通过重用声学模型并与语音代码模型竞争,将基于子词的反模型用于对数似然归一化。通过使用音素相对于语音代码的统计距离自动生成反模型。另外,基于谐波的频谱减法算法被应用于室外环境中的嘈杂鲁棒系统。使用韩国通用数据库PBW452DB进行性能评估,该数据库由在静默环境中记录的452个独立单词的63280语音组成。

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