Full-optical multiwavelet orthogonal frequency divisional multiplexing (OFDM) and demultiplexing
09571313 ยท 2017-02-14
Assignee
Inventors
Cpc classification
International classification
Abstract
Aspects of embodiments relate to an optical wavelet transform (WT) or inverse wavelet transform (IWT) medium for implementing optical multiwavelet orthogonal Frequency Division Multiplexing (OFDM) or optical demultiplexing. In embodiments, the optical WT/IWT medium comprises a plurality of N waveguides for receiving in parallel a corresponding number of N modulated optical input signals .sub.1,MOD to .sub.N,MOD. Each waveguide comprises at least two optical resonators configured such to realize a wavelet filterbank so that the modulated optical signals .sub.1,MOD to .sub.n,MOD undergo WT/IWT in a manner such to obtain optical wavelet transformed signals that can be orthogonally frequency division multiplexed or demultiplexed.
Claims
1. An optical multiwavelet transform (MWT) or inverse multiwavelet transform (IMWT) medium for implementing optical wavelet transform (WT) Orthogonal Frequency Division Multiplexing (OFDM) or optical demultiplexing, the optical MWT/IMWT medium comprising: a plurality of N waveguides for receiving in parallel a corresponding number of N modulated optical input signals .sub.1,MOD to .sub.N,MOD, each waveguide comprising at least two optical resonators configured such as to realize a wavelet filterbank that effects a wavelet transformation or inverse wavelet transformation on modulated optical signals to obtain respective optical WT or IWT signals that are respectively orthogonally frequency division multiplexed or demultiplexed, wherein an optical resonator of the at least two optical resonators comprises a microring resonator.
2. The optical MWT medium of claim 1, wherein an optical resonator of the at least two optical resonators comprises a Mach-Zehnder interferometer.
3. The optical MWT medium of claim 1, wherein an optical resonator of the at least two optical resonators comprises a plurality of microring resonators in cascade arrangement.
4. The optical MWT medium of claim 1, wherein the wavelet filterbank is a Geronimo, Hardian and Massopust (GHM) wavelet filterbank.
5. The optical MWT medium of claim 2, wherein the wavelet filterbank is a Geronimo, Hardian and Massopust (GHM) wavelet filterbank.
6. The optical MWT medium of claim 3, wherein the wavelet filterbank is a Geronimo, Hardian and Massopust (GHM) wavelet filterbank.
7. An optical wavelet multiplexer comprising: a) a multiplexer input module comprising a plurality of N modulators for modulating N optical input signals to obtain a plurality of N modulated optical input signals .sub.1,MOD-.sub.N,MOD; and b) an optical multiwavelet transform (MWT) medium for receiving the N modulated optical input signals .sub.1,MOD-.sub.N,MOD, the optical MWT medium comprising a plurality of N waveguides for receiving in parallel the N modulated optical input signals .sub.1,MOD to .sub.N,MOD, each waveguide comprising at least two optical resonators configured such to realize a wavelet filterbank that effects a wavelet transformation on modulated optical signals to obtain optical WT signals that are orthogonally frequency division multiplexed.
8. The optical wavelet multiplexer of claim 7, wherein the multiplexer input module further comprises a light source.
9. The optical wavelet multiplexer of claim 8, wherein the multiplexer input module comprises a splitter for splitting optical signals emitted by the light source.
10. The optical wavelet multiplexer of claim 7, further comprising a multiplexer feedback module configured to cause adjustment of the physical parameters of the at least two optical multiplexer resonators based on detected signal parameters at an output signal line.
11. The optical wavelet multiplexer of claim 8, further comprising a multiplexer feedback module configured to cause adjustment of the physical parameters of the at least two optical multiplexer resonators based on detected signal parameters at an output signal line.
12. The optical wavelet multiplexer of claim 9, further comprising a multiplexer feedback module configured to cause adjustment of the physical parameters of the at least two optical multiplexer resonators based on detected signal parameters at an output signal line.
13. The optical wavelet multiplexer of claim 7, wherein an optical resonator of the at least two optical resonators comprises a resonator selected from the group consisting of a microring resonator, a Mach-Zehnder interferometer and a plurality of microring resonators in cascade arrangement.
14. The optical wavelet multiplexer of claim 7, wherein the wavelet filterbank is a Geronimo, Hardian and Massopust (GHM) wavelet filterbank.
15. An optical wavelet demultiplexer, comprising: a) an optical inverse multiwavelet transform (IMWT) medium comprising a plurality of N waveguides for receiving in parallel corresponding N modulated optical wavelet transformed (WT) input signals .sub.1,MOD,WT to .sub.N,MOD,WT of an optical OFDM signal, each waveguide comprising at least two optical resonators configured such to realize a wavelet filterbank that effects inverse wavelet transformation (IWT) on the modulated optical wavelet transformed signals to obtain optical IWT signals .sub.1,MOD,IWT to .sub.N,MOD,IWT, wherein optical WT signals .sub.1,MOD,WT to .sub.N,MOD,WT and optical IWT signals .sub.1,MOD,IWT to .sub.N,MOD,IWT are orthogonally frequency division demultiplexed; and b) a demultiplexer input module for providing the optical IMWT medium with the plurality of N modulated and optical WT signals .sub.1,MOD,WT to .sub.N,MOD,WT of a multiplexed signal I.sub.mux.
16. The optical wavelet demultiplexer of claim 15, further comprising: c) a demultiplexer output module for providing demultiplexed signals I.sub.1,demux to I.sub.N,demux over output signal lines; and d) a demultiplexer feedback module that is operatively coupled with at least one of the at least two optical demultiplexer resonators and with the output signal lines and/or with each output of waveguides.
17. The optical wavelet demultiplexer of claim 16, wherein the demultiplexer output module further comprises N optical filters for obtaining optical inverse wavelet transformed signals .sub.c0,1,MOD,IWT to .sub.cQ,N,MOD,IWT respective of their carrier wavelengths c0 to cQ.
18. The optical wavelet multiplexer of claim 15, wherein an optical resonator of the at least two optical resonators comprises a resonator selected from the group consisting of a microring resonator, a Mach-Zehnder interferometer and a plurality of microring resonators in cascade arrangement.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments disclosed herein are described, by way of example only, with reference to the following accompanying drawings, wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
DETAILED DESCRIPTION
(10) Aspects of embodiments relate to a system, device and method that allow optical multiwavelet OFDM and, analogously, optical demultiplexing of multiwavelet OFDM signals. The multiplexing and/or demultiplexing may in some embodiments be performed fully optically, i.e., free of optical-to-electrical signal conversion or vice versa.
(11) According to some embodiments, an optical wavelet or multiwavelet Optical Frequency Division (OFD) multiplexer and OFD demultiplexer comprises an optical optical wavelet transform (WT) medium that includes a plurality of waveguides. Each of the plurality of waveguides includes at least two optical (multiplexer and/or demultiplexer) resonators for the concurrent transmission and wavelet-based filtering of a respective plurality of n modulated optical signals .sub.n,MOD, where n1.
(12) It should be noted that exemplarily in some embodiments, each of the plurality of optical signals .sub.2,MOD-.sub.n,MOD may undergo different modulation, while in some other embodiments two or more carrier signals may undergo identical modulation.
(13) As outlined hereinbelow in more detail, the optical resonators of the plurality of waveguides are configured such as to obtain coupling coefficients to effect multiwavelet multiplexing or demultiplexing with respect to the plurality of modulated optical signals. More specifically, coupling coefficients obtained by the optical microring resonators may correspond to coefficients of a multiwavelet (MW) matrix filterbank such as, for example, the filterbank proposed by Geronimo, Hardian and Massopust, also known as GHM filter matrix or GHM filterbank. In a multiwavelet setting exemplified herein, multiscaling and multiwavelet function coefficients may be 22 matrices which, during a transformation step, multiply vectors instead of scalars. This means that the filterbank needs two input rows.
(14) The plurality of modulated optical signals may for example originate from an unmodulated optical carrier wave that is split by a splitter of the system into N unmodulated optical carrier waves. The N unmodulated optical carrier waves may then each be modulated by an external modulator to obtain the modulated optical signals.
(15) It is noted that while embodiments disclosed herein refer in general to optical signals only, this should by no means to be constnied as limiting as, in some embodiments, electronic signal processing may also be involved. For example, an electronic signal representing a carrier wave may be split electronically into a plurality of electronic signals representing respective carrier waves, which may then be converted into a plurality of optical carrier waves.
(16) Referring to
(17) Multiplexer waveguides 112 include at least two optical multiplexer resonators 114 configured to realize a MW filterbank for optical multiwavelet OFDM such that modulated optical signals .sub.1,MOD to .sub.n,MOD received from multiplexer input module 104 by optical MWT multiplexer medium 110 are wavelet-processed over the optical MWT multiplexer medium 110 by the plurality of multiplexer waveguides 112. The plurality of wavelet-processed optical signals is then multiplexed by multiplexer output module 108 to obtain a multiplexed output signal I.sub.mux. As outlined hereinbelow in greater detail, I.sub.mux can be an electrical signal or an optical signal representative of wavelet processed optical signals.
(18) The MW filterbank is realized by the plurality of multiplexer waveguides 112 and optical multiplexer resonators 114. Examples disclosed herein relate to the realization of a GHM filterbank. However, this should by no means to be construed as limiting. Accordingly, optical MWT multiplexer medium 110 may be configured to implement other MW filterbanks such that optical wavelet multiplexer 100 enables optical multiwavelet-transform and orthogonal multiplexing of modulated optical signals .sub.1,MOD to .sub.n,MOD.
(19) The number of optical multiplexer resonators 114 may be n.sup.2, where n is the number of optical input signals. The MW filterbank may for example be expressed by the following mathematical equation:
(20)
where H.sub.0, H.sub.1, H.sub.2 and H.sub.3 are high-pass filter matrices and G.sub.0, G.sub.1, G.sub.2 and G.sub.3 are low-pass filter matrices. In general, matrices H.sub.0 and G.sub.0 may be referred to as taps that are KK matrices. Merely to simplify the discussion that follows, K may equal 2, the taps are implemented by 22 matrices. Accordingly, an incoming data stream carried by modulated optical signals may undergo serial-to-parallel conversion.
(21) The matrix elements of H.sub.0, H.sub.1, H.sub.2 and H.sub.3 may for example take the following values:
(22)
The matrix elements of G.sub.0, G.sub.1, G.sub.2 and G.sub.3 may for example take the following values:
(23)
(24) Since the number of input signals n equals 2K, a 2K2K transformation matrix is obtained by substituting the MW matrix filterbank with coefficients values. Each row of the filterbank represents therefore a combination of filters and operates on a respective data stream or, as exemplified herein, modulated optical signal, wherein the matrix filter coefficients of H and G each satisfy an orthogonality condition.
(25) While in the accompanying figures an optical multiplexer resonator 114 is schematically illustrated by a single microring component, this should by no means to be construed as limiting. Correspondingly, one or more optical multiplexer resonators 114 of optical MWT multiplexer medium 110 may for example include a plurality of ring resonators, e.g., in a cascade arrangement (not shown), and/or a Mach-Zehnder interferometer and/or any optical component or components, which may be passive optical components. Realizing an optical multiplexer resonator 114 for example with a plurality of cascaded microrings may facilitate, in comparison to the controlling of the coupling coefficients where only one microring 114 is employed per coefficient, the controlling and/or adjusting of the coupling coefficients according to the system's operating parameters and, therefore, of the coefficients of matrices H.sub.0 to H.sub.3 and G.sub.0 to G.sub.3.
(26) The coupling coefficients for the high and low-filter matrix elements H and G may depend on various parameters like, inter alia, the data rate carried by the received optical input signals. A higher data rate may require a smaller radius of microring 114 to retain for example the values of the coefficients in equations (2) and (3). In other words, in order for the orthogonality conditions to be met to enable optical multiwavelet-based OFDM, the parameters of optical multiplexer resonators 114 may be adjustable based on the system's operating parameters (e.g., the data rate). Correspondingly, multiplexer 100 may include, according to some embodiments, a feedback module 140 operatively coupled with one or more or each of optical multiplexer resonators 114 and with an output signal line 120 operative to carry I.sub.mux and/or with each output of multiplexer waveguides 112.
(27) Multiplexer feedback module 140 may be configured to cause adjustment of the physical parameters of optical multiplexer resonators 114 based on signal parameters detected at output signal line 120. For example, responsive to an increase in the data rate, multiplexer feedback module 140 may cause adjustment (e.g., reduction) of a radius of one or more of the microrings 114. Adjustment of parameters of multiplexer resonator 114 such as (for example) the radius of a microring can be achieved by local heating by heating element (not shown) (or cooling by cooler element (not shown)) and/or by illumination of resonator 114 by a radiation source (not shown), and/or by evaporation of refractive material onto or from resonator 114 by an evaporator (not shown).
(28) Referring now to
(29) Modulated optical signals having the same carrier wave .sub.c0,1,MOD to .sub.c0,n,MOD are subjected to multiwavelet transform and filtering by a MW matrix filterbank (e.g., GHM matrix filterbank) implemented by optical MWT multiplexer medium 110. After the modulated optical signals are subjected to multiwavelet transform and filtering by optical MWT multiplexer medium 110, the resulting wavelet-processed optical signals .sub.c0,1,WT,MOD to .sub.c0,n,WT,MOD are multiplexed or combined into a multiplexed optical output signal .sub.c0,MUX. The multiplexing is performed by combining the wavelet-transformed optical signals by multiplexing output module 108 of optical wavelet multiplexer 100. Alternatively, output module 108 may include a plurality of detectors (not shown) configured to detect the optical signals .sub.c0,n,WT,MOD to .sub.c0,n,WT,MOD emitted from multiplexer waveguides 112 and to convert the detected light into respective electrical signals, which may then be multiplexed into multiplexed signal I.sub.c0,mux.
(30) Reference is now made to
(31) The plurality of optical signals .sub.c0 to L.sub.cQ may be modulated through modulators 102i to 102n where i=1, 2, . . . , n, by modulating signals m.sub.i to m.sub.n, where n denotes the number of received signals, to obtain modulated optical signals .sub.c0,1,Mod to .sub.cQ,n,Mod. The modulated optical signals having at least two different wavelengths are then subjected to multiwavelet transformation according to the MW matrix filterbank implemented by optical wavelet multiplexer 100 for obtaining multiwavelet transformed optical signals .sub.c0,1,WT,MOD to .sub.cQ,n,WT,MOD. Obtained signals .sub.c0,1,WT,MOD to .sub.cQ,n,WT,MOD are then multiplexed or combined into a multiplexed output signal .sub.c0-cQ,MUX. The multiplexing is performed by combining the wavelet-processed optical signals .sub.c0,1,WT,MOD to .sub.cQ,n,WT,MOD in multiplexer output module 108 of optical wavelet multiplexer 100.
(32) According to some embodiments, multiplexer output module 108 may include an output coupler that is communicatively coupled with an optical fiber (not shown). Alternatively, multiplexer output module 108 may include a plurality of detectors (not shown) configured to detect light emitted from multiplexer waveguides 112 and to generate electrical signals representative of the detected light. The electrical signals representative of the wavelet-processed optical signals may then be multiplexed by multiplexer output module 108 into a multiplexed signal I.sub.mux for further transmission and/or processing.
(33) Reference is now made to
(34) As exemplified hereinbelow in greater detail, the inverse wavelet-transformed signals .sub.1,IWT-.sub.n,IWT may in some embodiments be further processed by a demultiplexer output module 408. Demultiplexer output module 408 may be configured to demodulate inverse wavelet-transformed signals .sub.1,IWT-.sub.n,IWT, to convert inverse wavelet-transformed and optical signals .sub.1,IWT,demux-.sub.n,IWT,demux into electrical signals and/or configured to filter out one or more carrier wavelengths .sub.c0-.sub.cQ.
(35) Correspondingly, demultiplexer output module 408 may include demodulators (not shown) for recreating source signals or demultiplexed signals I.sub.1,source-I.sub.n,source. It should be noted that in some embodiments, the demodulators (not shown) may be configured to demodulate the modulated and inverse wavelet-transformed optical signals .sub.1,IWT-.sub.n,IWT. In alternative embodiments, the demodulators (not shown) may be configured to demodulate electrical signals representative of the modulated and inverse wavelet-transformed optical signals .sub.1,IWT-.sub.n,IWT.
(36) A demultiplexer feedback module 440 may be operatively coupled with one or more or each one of optical demultiplexer resonators 414 and output signal lines 420 operative to carry I.sub.1,demux-I.sub.N,demux, and/or with each output of demultiplexer waveguides 412. Demultiplexer feedback module 440 may for example be configured to cause adjustment of the physical parameters of optical demultiplexer resonators 414 based on the detected signal parameters at demultiplexer output signal lines 420.
(37) Further reference is made to
(38) Referring now to
(39) Further reference is now made to
(40) Reference is now made to
(41) As indicated by box 804, the method may include transmitting the plurality of N signals through the N waveguides for generating a plurality of wavelet transformed or inverse wavelet transformed optical signals .sub.1,MOD,WT/IWT to .sub.N,MOD,WT/IWT according to the coupling coefficients of the at least two optical resonators.
(42) In the claims or specification of the present application, unless otherwise stated, adjectives such as substantially and about modifying a condition or relationship characteristic of a feature or features of an embodiment of the invention, are understood to mean that the condition or characteristic is defined to within tolerances that are acceptable for operation of the embodiment for an application for which it is intended.
(43) It should be understood that where the claims or specification refer to a or an element, such reference is not to be construed as there being only one of that element.
(44) In the description and claims of the present application, each of the verbs, comprise include and have, and conjugates thereof, are used to indicate that the object or objects of the verb are not necessarily a complete listing of components, elements or parts of the subject or subjects of the verb.
(45) While this disclosure describes a limited number of embodiments, it will be appreciated that many variations, modifications and other applications of such embodiments may be made. The disclosure is to be understood as not limited by the specific embodiments described herein, but only by the scope of the appended claims.