QUANTIZATION METHOD AND DEVICE FOR WEIGHTS OF BATCH NORMALIZATION LAYER

    公开(公告)号:US20200151568A1

    公开(公告)日:2020-05-14

    申请号:US16541275

    申请日:2019-08-15

    Abstract: An embodiment of the present invention provides a quantization method for weights of a plurality of batch normalization layers, including: receiving a plurality of previously learned first weights of the plurality of batch normalization layers; obtaining first distribution information of the plurality of first weights; performing a first quantization on the plurality of first weights using the first distribution information to obtain a plurality of second weights; obtaining second distribution information of the plurality of second weights; and performing a second quantization on the plurality of second weights using the second distribution information to obtain a plurality of final weights, and thereby reducing an error that may occur when quantizing the weight of the batch normalization layer.

    DEVICE AND METHOD FOR CALIBRATING REFERENCE VOLTAGE

    公开(公告)号:US20210151091A1

    公开(公告)日:2021-05-20

    申请号:US16997445

    申请日:2020-08-19

    Abstract: Disclosed are a device and a method for calibrating a reference voltage. The reference voltage calibrating device includes a data signal communication unit that transmits/receives a data signal, a data strobe signal receiving unit that receives a first data strobe signal and a second data strobe signal, a voltage level of the second data strobe signal being opposite to a voltage level of the first data strobe signal, and a reference voltage generating unit that sets a reference voltage for determining a data value of the data signal, based on the first data strobe signal and the second data strobe signal, and the reference voltage generating unit adjusts the reference voltage based on the first data strobe signal and the second data strobe signal.

    NEUROMORPHIC ARITHMETIC DEVICE AND OPERATING METHOD THEREOF

    公开(公告)号:US20200226456A1

    公开(公告)日:2020-07-16

    申请号:US16742808

    申请日:2020-01-14

    Abstract: The neuromorphic arithmetic device comprises an input monitoring circuit that outputs a monitoring result by monitoring that first bits of at least one first digit of a plurality of feature data and a plurality of weight data are all zeros, a partial sum data generator that skips an arithmetic operation that generates a first partial sum data corresponding to the first bits of a plurality of partial sum data in response to the monitoring result while performing the arithmetic operation of generating the plurality of partial sum data, based on the plurality of feature data and the plurality of weight data, and a shift adder that generates the first partial sum data with a zero value and result data, based on second partial sum data except for the first partial sum data among the plurality of partial sum data and the first partial sum data generated with the zero value.

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