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EFFICIENT NEARLY ERROR-LESS LVCSR DECODING BASED ON INCREMENTAL FORWARD AND BACKWARD PASSES

机译:基于增量向前和向后通行证的高效几乎误差的LVCSR解码

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We show that most search errors can be identified by aligning the results of a symmetric forward and backward decoding pass. Based on this knowledge, we introduce an efficient high-level decoding architecture which yields virtually no search errors, and requires virtually no manual tuning. We perform an initial forward- and backward decoding with tight initial beams, then we identify search errors, and then we recursively increment the beam sizes and perform new forward and backward decodings for erroneous intervals until no more search errors are detected. Consequently, each utterance and even each single word is decoded with the smallest beam size required to decode it correctly. On all tested systems we achieve an error rate equal or very close to classical decoding with ideally tuned beam size, but unsupervisedly without specific tuning, and at around 2 times faster runtime. An additional speedup by factor 2 can be achieved by decoding the forward and backward pass in separate threads.
机译:我们表明,可以通过对称前向和后向解码通过的结果来识别大多数搜索错误。基于此知识,我们介绍了一个有效的高级解码架构,它几乎不会产生搜索错误,并且几乎不需要手动调整。我们使用紧密的初始光束执行初始转发和后向解码,然后我们识别搜索错误,然后我们递归地增量光束大小并对错误的间隔执行新的前向和后向解码,直到未检测到更多搜索错误。因此,每个话语甚至每个单词都以正确解码所需的最小光束尺寸对其进行解码。在所有测试系统上,我们通过理想的调谐波束尺寸达到等于或非常接近经典解码的错误速率,但没有特定调谐,并且在速度速度速度左右的情况下。通过在单独的线程中解码前向和后向通过来实现因子2的额外加速。

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