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    • 4. 发明授权
    • Frequent pattern mining
    • 频繁模式挖掘
    • US09348852B2
    • 2016-05-24
    • US13095415
    • 2011-04-27
    • Shi HanYingnong DangSong GeDongmei Zhang
    • Shi HanYingnong DangSong GeDongmei Zhang
    • G06F17/30
    • G06F17/30539G06F17/30306H04L67/10
    • A system for frequent pattern mining uses two layers of processing: a plurality of computing nodes, and a plurality of processors within each computing node. Within each computing node, the data set against which the frequent pattern mining is to be performed is stored in shared memory, accessible concurrently by each of the processors. The search space is partitioned among the computing nodes, and sub-partitioned among the processors of each computing node. If a processor completes its sub-partition, it requests another sub-partition. The partitioning and sub-partitioning may be performed dynamically, and adjusted in real time.
    • 用于频繁模式挖掘的系统使用两层处理:多个计算节点和每个计算节点内的多个处理器。 在每个计算节点内,将要执行频繁模式挖掘的数据集存储在共享存储器中,由每个处理器并发访问。 搜索空间在计算节点之间划分,并在每个计算节点的处理器之间进行子分区。 如果处理器完成其子分区,则它请求另一个子分区。 可以动态执行分区和子分区,并实时调整。
    • 10. 发明授权
    • Feature design for character recognition
    • 字符识别功能设计
    • US08463043B2
    • 2013-06-11
    • US13526236
    • 2012-06-18
    • Yu ZouMing ChangShi HanDongmei ZhangJian Wang
    • Yu ZouMing ChangShi HanDongmei ZhangJian Wang
    • G06K9/00G06K9/46
    • G06K9/00416G06K2209/011
    • An exemplary method for online character recognition of characters includes acquiring time sequential, online ink data for a handwritten character, conditioning the ink data to produce conditioned ink data where the conditioned ink data includes information as to writing sequence of the handwritten character and extracting features from the conditioned ink data where the features include a tangent feature, a curvature feature, a local length feature, a connection point feature and an imaginary stroke feature. Such a method may determine neighborhoods for ink data and extract features for each neighborhood. An exemplary character recognition system may use various exemplary methods for training and character recognition.
    • 用于字符的在线字符识别的示例性方法包括获取用于手写字符的时间顺序在线墨水数据,调节墨水数据以产生经调节的墨水数据,其中经调节的墨水数据包括关于写入手写字符的序列的信息并从 调节的油墨数据,其中特征包括切线特征,曲率特征,局部长度特征,连接点特征和假想笔划特征。 这种方法可以确定墨水数据的邻域并提取每个邻域的特征。 示例性字符识别系统可以使用用于训练和字符识别的各种示例性方法。