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Experimental results on the current-mode WTA-MAX circuit with multi-chip capability

机译:具有多芯片能力的电流模式WTA-MAX电路的实验结果

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This paper presents experimental results on the current-mode WTA-MAX circuit with multi-chip capability. The circuit technique used is based on current replication, transport and comparison. Traditional techniques rely on the matching of an array of N transistors, where N is the number of system inputs. This implies that when N increases, the size of the circuit and the distance between transistors also increases, resulting in transistor matching degradation and loss of precision in the overall system performance. Furthermore, when multi-chip systems are required, the transistor matching is even worse and performance is drastically degraded. The circuit presented in this paper does not rely on the proper matching of N transistors; but on the precise replication of currents, performed by current mirrors with a limited number of outputs. Thus N can increase without degrading the precision, even if the system is distributed among several chips. Also, the different chips constituting the system can be of different foundries without degrading the overall system precision. Experimental results are presented that attest these facts.
机译:本文介绍了具有多芯片能力的电流模式WTA-MAX电路实验结果。所使用的电路技术基于当前复制,传输和比较。传统技术依赖于N个晶体管阵列的匹配,其中n是系统输入的数量。这意味着当n增加时,电路的尺寸和晶体管之间的距离也增加,导致晶体管匹配整体系统性能的劣化和精度损失。此外,当需要多芯片系统时,晶体管匹配甚至更差,性能急剧下降。本文提出的电路不依赖于N晶体管的适当匹配;但是在电流的精确复制上,由具有有限数量的输出的电流镜进行。因此,即使系统分布在几个芯片之间,也可以增加而不会降低精度。此外,构成系统的不同芯片可以是不同的代副产品,而不会降低整体系统精度。提出了实验结果,证明了这些事实。

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