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Analytical approach of developing the expression of output of all-optical frequency encoded different logical units and a way-out to implement the logic gates

机译:开发全光频率编码的不同逻辑单元的输出表示的分析方法以及实现逻辑门的出路

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To implement different all optical logic operations, encoding/decoding of optical signal is a very important issue. Since now there are so many types of optical signal encoding and decoding techniques have been adopted, such as intensity encoding, polarization encoding, phase encoding, symbolic substitution technique etc. All these existing techniques have their own limitations. In this context one may mention the frequency encoding/decoding technique. The basic inherent advantage of frequency encoding technique over all other existing techniques is that as the frequency of a signal is the fundamental character of it, it always preserves its identity throughout the communication of the signal, irrespective of reflection, refraction attenuation etc. Again, different optical signal has different distinct frequency which may be encoded as a distinct state of a logic system to represent the information. Adopting this technique it is possible to implement binary logic system as well as higher order logic system such as tristate logic, quaternary logic system etc. The major advantages of multivalued logic system over Boolean logic system are that in multivalued logic system the states of information is very more and as result information storage capacity is high. Again in multivalued logic system carry free and borrow free operation can be implemented which is less time consuming and therefore speed of operation is very fast. We have already developed methods of implementation of different all-optical frequency encoded logic as well as different optical processor. In this communication we propose an analytical approach to develop the expression of the outputs of frequency encoded different binary logic expression in terms of input frequencies from the stand point of basic laws of reflection, transmission and frequency conversion property of optical devices and of course mention the way-out to implement these logic operations.
机译:为了实现不同的所有光学逻辑操作,光学信号的编码/解码是非常重要的问题。从现在起,已经采用了多种类型的光信号编码和解码技术,例如强度编码,偏振编码,相位编码,符号替换技术等。所有这些现有技术都有其自身的局限性。在这种情况下,可以提及频率编码/解码技术。频率编码技术相对于所有其他现有技术的基本固有优势是,由于信号的频率是信号的基本特征,因此无论反射,折射衰减等如何,信号始终在整个信号通信过程中保持其身份。不同的光信号具有不同的不同频率,可以将其编码为逻辑系统的不同状态来表示信息。采用这种技术,可以实现二进制逻辑系统以及三态逻辑,四元逻辑系统等高阶逻辑系统。与布尔逻辑系统相比,多值逻辑系统的主要优点是在多值逻辑系统中信息状态为信息存储容量很高。再次,在多值逻辑系统中,可以实现无载和无借操作,这耗时较少,因此运算速度非常快。我们已经开发了实现不同全光频率编码逻辑以及不同光学处理器的方法。在本通讯中,我们提出一种分析方法,从光学设备的反射,透射和频率转换特性的基本定律的角度出发,根据输入频率来开发编码不同的二进制逻辑表达式的频率输出的表达式,当然要提到实现这些逻辑操作的出路。

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