CN105141410A - 0.9 order mixed type and chain type fractional order integral switching method and circuit - Google Patents

0.9 order mixed type and chain type fractional order integral switching method and circuit Download PDF

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CN105141410A
CN105141410A CN201510512420.2A CN201510512420A CN105141410A CN 105141410 A CN105141410 A CN 105141410A CN 201510512420 A CN201510512420 A CN 201510512420A CN 105141410 A CN105141410 A CN 105141410A
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fractional order
order integration
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resistance
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王春梅
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Abstract

The invention provides a 0.9 order mixed type and chain type fractional order integral switching method and circuit. A mixed type 0.9 order fractional order integral and a 0.9 order chain type fractional order integral are selectively controlled and output by an alternative analog switching device, when the control signal of the alternative analog switching device is a high level, the mixed type 0.9 order fractional order integral is selected and output, when the control signal of the alternative analog switching device is a low level, the chain type fractional order integral is selected and output, or when the control signal of the alternative analog switching device is the low level, the mixed type 0.9 order fractional order integral is selected and output, and when the control signal of the alternative analog switching device is the high level, the chain type fractional order integral is selected and output. The alternative analog switching device is used by the method and circuit provided by the invention for automatically switching the 0.9 order mixed type fractional order integral and the 0.9 order chain type fractional order integral, when the 0.9 order chain type fractional order integral is applied to secret communication, the complexity of the 0.9 order fractional order integral is increased, the decoding difficulty is increased, and the communication security is improved.

Description

A kind of 0.9 rank mixed type and chain type fractional order integration changing method and circuit
Technical field
The present invention relates to a kind of 0.9 rank fractional order integration changing method and circuit, particularly a kind of 0.9 rank mixed type and chain type fractional order integration changing method and circuit.
Background technology
The structure realizing 0.9 rank fractional order integration circuit mainly contains mixed type fractional order integration form, chain type fractional order integration form and T-shaped fractional order integration form, these the three kinds structures realizing 0.9 rank fractional order integration circuit are all made up of three partial ohmic and electric capacity, utilize above-mentioned three kinds of versions realize fractional order integration circuit Method and circuits oneself have report, but utilize the method switched between 0.9 multi-form rank fractional order integration circuit to realize 0.9 rank fractional order integration circuit have not been reported, the invention provides one and realize 0.9 rank mixed type and chain type fractional order integration changing method and circuit.
Summary of the invention
The technical problem to be solved in the present invention is to provide a kind of 0.9 rank mixed type fractional order integration and chain type fractional order integration changing method and circuit, and the present invention adopts following technological means to realize goal of the invention:
1, a kind of 0.9 rank mixed type and chain type fractional order integration changing method, it is characterized in that being: a kind of mixed type 0.9 rank fractional order integration and a kind of 0.9 rank chain type fractional order integration carry out selection by alternative analog switch device and control to export, when the control signal of analog switch device is high level, mixed type 0.9 rank fractional order integration is selected to export, when the control signal of analog switch device is low level, chain type fractional order integration is selected to export, or, when the control signal of analog switch device is low level, mixed type 0.9 rank fractional order integration is selected to export, when the control signal of analog switch device is high level, chain type fractional order integration is selected to export.
2, a kind of 0.9 rank mixed type and chain type fractional order integration commutation circuit, it is characterized in that: described a kind of 0.9 rank mixed type and chain type fractional order integration commutation circuit are made up of 0.9 rank mixed type fractional order integration circuit and 0.9 rank chain type fractional order integration circuit and alternative analog switch U0 tri-part, described 0.9 rank mixed type fractional order integration circuit is made up of three parts, wherein resistance Rhx is in parallel with electric capacity Chx, form Part I, Part I is in parallel with electric capacity Chy again after connecting with resistance Rhy, form Part II, front two parts are in parallel with electric capacity Chz again after connecting with resistance Rhz, form Part III, output pin HA connects Part I, output pin HB connects Part III, described 0.9 rank chain type fractional order integration circuit is made up of three parts, wherein resistance Rlx is in parallel with electric capacity Clx, form Part I, resistance Rly is in parallel with electric capacity Cly, forms Part II, Part II is connected with Part I, resistance Rlz is in parallel with electric capacity Clz, and form Part III, Part III is connected with front two parts, output pin LA connects Part I, and output pin LB connects Part III, the output pin HB of described 0.9 rank mixed type fractional order integration circuit connects the SB pin of described alternative analog switch U0, the output pin LB of described 0.9 rank chain type fractional order integration circuit connects the SA pin of described alternative analog switch U0, the output pin D of described alternative analog switch U0 is as the output of 0.9 rank mixed type and chain type fractional order integration commutation circuit, the control pin IN of alternative analog switch U0 is as the control of 0.9 rank mixed type and chain type fractional order integration commutation circuit, the output pin HA of described 0.9 rank mixed type fractional order integration circuit and the output pin LA of described 0.9 rank chain type fractional order integration circuit is respectively as the input pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit, described alternative analog switch U0 adopts ADG884, described resistance Rhx=61.52M, described potentiometer Rhx1=20K, described resistance Rhx2=22M, Rhx3=22M, Rhx4=10M, Rhx5=7.5M, described electric capacity Chx=0.5062uF, described electric capacity Chx1=470nF, Chx2=33nF, Chx3=2.2nF, Chx4=1nF, described resistance Rhy=1.552M, described potentiometer Rhy1=2K, described resistance Rhy2=1M, Rhy3=510K, Rhy4=20K, Rhy5=20K, described electric capacity Chy=0.2996uF, described electric capacity Chy1=220nF, Chy2=68nF, Chy3=6.8nF, Chy4=4.7nF, described resistance Rhz=15.65M, described potentiometer Rhz1=0.55K and described resistance Rhz2=10K, Rhz3=5.1K, Rhz4=0K, Rhz5=0K, described electric capacity Chz=0.441uF, described electric capacity Chz1=220nF, Chz2=220nF, Chz3=1nF, Chz4 are unsettled, described resistance RLx=62.84M, described potentiometer RLx1=22M and described resistance RLx2=10M, RLx3=10M, RLx4=10M, RLx5=10M, described electric capacity CLx=1.232uF, described electric capacity CLx1=1uF, CLx2=100nF, CLx3=100nF, CLx4=33nF, described resistance RLy=0.25M, described potentiometer RLy1=51K and described resistance RLy2=200K, RLy3=0K, RLy4=0K, RLy5=0K, described electric capacity CLy=1.840uF, described electric capacity CLy1=1uF, CLy2=470nF, CLy3=330nF, CLy4=47nF, described resistance RLz=0.0025M, described potentiometer RLz1=0.51K and described resistance RLz2=2K, RLz3=0K, RLz4=0K, RLz5=0K, described electric capacity CLz=1.1uF, described electric capacity CLz1=1uF, CLz2=100nF, CLz3 are unsettled, CLz4 is unsettled.
Useful fruit of the present invention is: the analog switch adopting alternative, achieve the automatic switchover of 0.9 rank mixed type fractional order integration circuit and 0.9 rank chain type fractional order integration circuit, make 0.9 rank fractional order integration circuit in secure communication time, improve the complexity of 0.9 rank fractional order integration, add the difficulty of decoding, be conducive to the fail safe communicated.
Accompanying drawing explanation
Fig. 1 is the inner actual connection layout of mixed type of the present invention and chain type fractional order integration commutation circuit.
Fig. 2 is mixed type of the present invention and the actual connection layout of chain type fractional order integration commutation circuit 0.9 rank Mixed Integro circuit.
Fig. 3 is mixed type of the present invention and the actual connection layout of chain type fractional order integration commutation circuit 0.9 rank chain type integrating circuit.
Fig. 4 is mixed type of the present invention and chain type fractional order integration commutation circuit schematic diagram.
Fig. 5 is the circuit connection structure schematic diagram of the preferred embodiment of the present invention.
Fig. 6, Fig. 7 and Fig. 8 are the actual connection layout of circuit of the present invention.
Embodiment
Below in conjunction with accompanying drawing and preferred embodiment, the present invention is further described in detail, see Fig. 1-Fig. 8.
1, a kind of 0.9 rank mixed type and chain type fractional order integration changing method, it is characterized in that being: a kind of mixed type 0.9 rank fractional order integration and a kind of 0.9 rank chain type fractional order integration carry out selection by alternative analog switch device and control to export, when the control signal of analog switch device is high level, mixed type 0.9 rank fractional order integration is selected to export, when the control signal of analog switch device is low level, chain type fractional order integration is selected to export, or, when the control signal of analog switch device is low level, mixed type 0.9 rank fractional order integration is selected to export, when the control signal of analog switch device is high level, chain type fractional order integration is selected to export.
2, a kind of 0.9 rank mixed type and chain type fractional order integration commutation circuit, it is characterized in that: described a kind of 0.9 rank mixed type and chain type fractional order integration commutation circuit are made up of 0.9 rank mixed type fractional order integration circuit and 0.9 rank chain type fractional order integration circuit and alternative analog switch U0 tri-part, described 0.9 rank mixed type fractional order integration circuit is made up of three parts, wherein resistance Rhx is in parallel with electric capacity Chx, form Part I, Part I is in parallel with electric capacity Chy again after connecting with resistance Rhy, form Part II, front two parts are in parallel with electric capacity Chz again after connecting with resistance Rhz, form Part III, output pin HA connects Part I, output pin HB connects Part III, described 0.9 rank chain type fractional order integration circuit is made up of three parts, wherein resistance Rlx is in parallel with electric capacity Clx, form Part I, resistance Rly is in parallel with electric capacity Cly, forms Part II, Part II is connected with Part I, resistance Rlz is in parallel with electric capacity Clz, and form Part III, Part III is connected with front two parts, output pin LA connects Part I, and output pin LB connects Part III, the output pin HB of described 0.9 rank mixed type fractional order integration circuit connects the SB pin of described alternative analog switch U0, the output pin LB of described 0.9 rank chain type fractional order integration circuit connects the SA pin of described alternative analog switch U0, the output pin D of described alternative analog switch U0 is as the output of 0.9 rank mixed type and chain type fractional order integration commutation circuit, the control pin IN of alternative analog switch U0 is as the control of 0.9 rank mixed type and chain type fractional order integration commutation circuit, the output pin HA of described 0.9 rank mixed type fractional order integration circuit and the output pin LA of described 0.9 rank chain type fractional order integration circuit is respectively as the input pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit, described alternative analog switch U0 adopts ADG884, described resistance Rhx=61.52M, described potentiometer Rhx1=20K, described resistance Rhx2=22M, Rhx3=22M, Rhx4=10M, Rhx5=7.5M, described electric capacity Chx=0.5062uF, described electric capacity Chx1=470nF, Chx2=33nF, Chx3=2.2nF, Chx4=1nF, described resistance Rhy=1.552M, described potentiometer Rhy1=2K, described resistance Rhy2=1M, Rhy3=510K, Rhy4=20K, Rhy5=20K, described electric capacity Chy=0.2996uF, described electric capacity Chy1=220nF, Chy2=68nF, Chy3=6.8nF, Chy4=4.7nF, described resistance Rhz=15.65M, described potentiometer Rhz1=0.55K and described resistance Rhz2=10K, Rhz3=5.1K, Rhz4=0K, Rhz5=0K, described electric capacity Chz=0.441uF, described electric capacity Chz1=220nF, Chz2=220nF, Chz3=1nF, Chz4 are unsettled, described resistance RLx=62.84M, described potentiometer RLx1=22M and described resistance RLx2=10M, RLx3=10M, RLx4=10M, RLx5=10M, described electric capacity CLx=1.232uF, described electric capacity CLx1=1uF, CLx2=100nF, CLx3=100nF, CLx4=33nF, described resistance RLy=0.25M, described potentiometer RLy1=51K and described resistance RLy2=200K, RLy3=0K, RLy4=0K, RLy5=0K, described electric capacity CLy=1.840uF, described electric capacity CLy1=1uF, CLy2=470nF, CLy3=330nF, CLy4=47nF, described resistance RLz=0.0025M, described potentiometer RLz1=0.51K and described resistance RLz2=2K, RLz3=0K, RLz4=0K, RLz5=0K, described electric capacity CLz=1.1uF, described electric capacity CLz1=1uF, CLz2=100nF, CLz3 are unsettled, CLz4 is unsettled.3, based on the Zhou chaos system circuit of 0.9 rank mixed type and chain type fractional order integration commutation circuit, it is characterized in that:
(1) Zhou chaos system i is:
d x d t = a x - b y + y z d y d t = c x - y z d z d t = - d x y - e z i a = 25.5 , b = 35 , c = 30 , d = 20 , e = 35
(2) 0.9 rank Zhou chaos system ii are:
d α x dt α = a x - b y + y z d α y dt α = c x - y z d α z dt α = - d x y - e z i i a = 25.5 , b = 35 , c = 30 , d = 20 , e = 35 , α = 0.9
(3) according to 0.9 rank Zhou chaos system ii constructing analog circuit, utilize operational amplifier U1, operational amplifier U2 and resistance and 0.9 rank mixed type and chain type fractional order integration commutation circuit U5, 0.9 rank mixed type and chain type fractional order integration commutation circuit U6, 0.9 rank mixed type and chain type fractional order integration commutation circuit U7 form anti-phase adder and anti-phase 0.9 rank integrator, utilizing multiplier U3 and multiplier U4 to realize multiplying utilizes operational amplifier U8 to realize comparator, described operational amplifier U1, operational amplifier U2 and operational amplifier U8 adopts LF347N, described multiplier U3 and multiplier U4 adopts AD633JN,
Described operational amplifier U1 concatenation operation amplifier U8, multiplier U3, multiplier U4 and 0.9 rank mixed type and chain type fractional order integration commutation circuit U5, 0.9 rank mixed type and chain type fractional order integration commutation circuit U6, described operational amplifier U2 connects multiplier U3, multiplier U4 and 0.9 rank mixed type and chain type fractional order integration commutation circuit U7, described multiplier U3 concatenation operation amplifier U1, described multiplier U4 concatenation operation amplifier U2, described operational amplifier U8 connects 0.9 rank mixed type and chain type fractional order integration commutation circuit U5, 0.9 rank mixed type and chain type fractional order integration commutation circuit U6 and 0.9 rank mixed type and chain type fractional order integration commutation circuit U7,
1st pin of described operational amplifier U1 is connected by the 6th pin of resistance R8 and U1, 2nd pin is connected by resistance R7 and U1 the 1st pin, 3rd, 5, 10, 12 pin ground connection, 4th pin meets VCC, 11st pin meets VEE, 6th pin connects HA pin and the LA pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U6, 7th pin connects and exports y, connected with the 9th pin by resistance R5, connect the D pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U6, connect the 1st pin of multiplier U3, connect the 1st pin of multiplier U4, 8th pin connects and exports x, connected with the 13rd pin by resistance R2, connected with the 2nd pin by resistance R6, connect the 3rd pin of multiplier U4, connect the D pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U5, 9th pin connects HA pin and the LA pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U5, 13rd pin is connected with the 14th pin by resistance R3, 14th pin is connected with the 9th pin by resistance R4,
Described operational amplifier U2 the 1st, 2,6,7,13,14 pins are unsettled, 3rd, 5,10,12 pin ground connection, 4th pin meets VCC, 11st pin meets VEE, 8th pin exports z, is connected, connect the 3rd pin of multiplier U3 by the 9th pin of resistance R10 and U2, connect the D pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U7, the 9th pin connects HA pin and the LA pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U7;
1st pin of described operational amplifier U8 connects the IN pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U5 by resistance R14, by resistance R14 and resistance R15 ground connection, 2nd, 6, 9, 12 pin ground connection, 4th pin meets VCC, 11st pin meets VEE, 7th pin connects the IN pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U6 by resistance R16, by resistance R16 and resistance R17 ground connection, 8th pin connects the IN pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit U7 by resistance R18, by resistance R18 and resistance R19 ground connection, 13rd pin and the 14th pin unsettled,
1st pin of described multiplier U3 connects the 7th pin of U1, and the 3rd pin connects the 8th pin of U2, the equal ground connection of the 2nd, 4,6 pin, and the 5th pin meets VEE, and the 7th pin connects U1 the 13rd pin by resistance R1, and connect U1 the 6th pin by resistance R9, the 8th pin meets VCC;
1st pin of described multiplier U4 connects the 7th pin of U1, and the 3rd pin connects the 8th pin of U1, the equal ground connection of the 2nd, 4,6 pin, and the 5th pin meets VEE, and the 7th pin connects U2 the 9th pin by resistance R11, and the 8th pin meets VCC;
HA and the LA pin of described 0.9 rank mixed type and chain type fractional order integration commutation circuit U5 connects the 9th pin of operational amplifier U1, and D pin connects the 8th pin of operational amplifier U1;
HA and the LA pin of described 0.9 rank mixed type and chain type fractional order integration commutation circuit U6 connects the 6th pin of operational amplifier U1, and D pin connects the 7th pin of operational amplifier U1;
HA and the LA pin of described 0.9 rank mixed type and chain type fractional order integration commutation circuit U7 connects the 9th pin of operational amplifier U2, and D pin connects the 8th pin of operational amplifier U2.
Resistance R1=R9=5k Ω in circuit, R2=98k Ω, R3=R4=R7=R8=10k Ω, R6=82.5k Ω, R5=R10=71.5k Ω, R11=1k Ω, R14=R16=R18=100K Ω, R15=R17=R19=80K Ω.
Certainly, above-mentioned explanation is not limitation of the present invention, and the present invention is also not limited only to above-mentioned citing, and the change that those skilled in the art make in essential scope of the present invention, remodeling, interpolation or replacement, also belong to protection scope of the present invention.

Claims (2)

1. a rank mixed type and chain type fractional order integration changing method, it is characterized in that being: a kind of mixed type 0.9 rank fractional order integration and a kind of 0.9 rank chain type fractional order integration carry out selection by alternative analog switch device and control to export, when the control signal of analog switch device is high level, mixed type 0.9 rank fractional order integration is selected to export, when the control signal of analog switch device is low level, chain type fractional order integration is selected to export, or, when the control signal of analog switch device is low level, mixed type 0.9 rank fractional order integration is selected to export, when the control signal of analog switch device is high level, chain type fractional order integration is selected to export.
2. a rank mixed type and chain type fractional order integration commutation circuit, it is characterized in that: described a kind of 0.9 rank mixed type and chain type fractional order integration commutation circuit are made up of 0.9 rank mixed type fractional order integration circuit and 0.9 rank chain type fractional order integration circuit and alternative analog switch U0 tri-part, described 0.9 rank mixed type fractional order integration circuit is made up of three parts, wherein resistance Rhx is in parallel with electric capacity Chx, form Part I, Part I is in parallel with electric capacity Chy again after connecting with resistance Rhy, form Part II, front two parts are in parallel with electric capacity Chz again after connecting with resistance Rhz, form Part III, output pin HA connects Part I, output pin HB connects Part III, described 0.9 rank chain type fractional order integration circuit is made up of three parts, wherein resistance Rlx is in parallel with electric capacity Clx, form Part I, resistance Rly is in parallel with electric capacity Cly, forms Part II, Part II is connected with Part I, resistance Rlz is in parallel with electric capacity Clz, and form Part III, Part III is connected with front two parts, output pin LA connects Part I, and output pin LB connects Part III, the output pin HB of described 0.9 rank mixed type fractional order integration circuit connects the SB pin of described alternative analog switch U0, the output pin LB of described 0.9 rank chain type fractional order integration circuit connects the SA pin of described alternative analog switch U0, the output pin D of described alternative analog switch U0 is as the output of 0.9 rank mixed type and chain type fractional order integration commutation circuit, the control pin IN of alternative analog switch U0 is as the control of 0.9 rank mixed type and chain type fractional order integration commutation circuit, the output pin HA of described 0.9 rank mixed type fractional order integration circuit and the output pin LA of described 0.9 rank chain type fractional order integration circuit is respectively as the input pin of 0.9 rank mixed type and chain type fractional order integration commutation circuit, described alternative analog switch U0 adopts ADG884, described resistance Rhx=61.52M, described potentiometer Rhx1=20K, described resistance Rhx2=22M, Rhx3=22M, Rhx4=10M, Rhx5=7.5M, described electric capacity Chx=0.5062uF, described electric capacity Chx1=470nF, Chx2=33nF, Chx3=2.2nF, Chx4=1nF, described resistance Rhy=1.552M, described potentiometer Rhy1=2K, described resistance Rhy2=1M, Rhy3=510K, Rhy4=20K, Rhy5=20K, described electric capacity Chy=0.2996uF, described electric capacity Chy1=220nF, Chy2=68nF, Chy3=6.8nF, Chy4=4.7nF, described resistance Rhz=15.65M, described potentiometer Rhz1=0.55K and described resistance Rhz2=10K, Rhz3=5.1K, Rhz4=0K, Rhz5=0K, described electric capacity Chz=0.441uF, described electric capacity Chz1=220nF, Chz2=220nF, Chz3=1nF, Chz4 are unsettled, described resistance RLx=62.84M, described potentiometer RLx1=22M and described resistance RLx2=10M, RLx3=10M, RLx4=10M, RLx5=10M, described electric capacity CLx=1.232uF, described electric capacity CLx1=1uF, CLx2=100nF, CLx3=100nF, CLx4=33nF, described resistance RLy=0.25M, described potentiometer RLy1=51K and described resistance RLy2=200K, RLy3=0K, RLy4=0K, RLy5=0K, described electric capacity CLy=1.840uF, described electric capacity CLy1=1uF, CLy2=470nF, CLy3=330nF, CLy4=47nF, described resistance RLz=0.0025M, described potentiometer RLz1=0.51K and described resistance RLz2=2K, RLz3=0K, RLz4=0K, RLz5=0K, described electric capacity CLz=1.1uF, described electric capacity CLz1=1uF, CLz2=100nF, CLz3 are unsettled, CLz4 is unsettled.
CN201510512420.2A 2015-08-19 2015-08-19 0.9 order mixed type and chain type fractional order integral switching method and circuit Pending CN105141410A (en)

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102385659A (en) * 2011-12-13 2012-03-21 滨州学院 Method for realizing fractional-order three-system automatic-switchover chaotic system and analog circuit
CN102497263A (en) * 2011-11-18 2012-06-13 滨州学院 Method for realizing integer order and fractional order automatic switching chaotic system and analog circuit
CN102904708A (en) * 2012-09-27 2013-01-30 滨州学院 Method for automatically switching fractional-order chaotic system by four systems based on Lu-type system and analog circuit
CN104202151A (en) * 2014-09-19 2014-12-10 王晓红 Chain-type fractional-order integral circuit module based 0.9-order Zhou chaotic system circuit
CN104393982A (en) * 2014-11-11 2015-03-04 韩敬伟 0.9-order xy-containing Liu chaotic system circuit based on hybrid fractional order integrating circuit module

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102497263A (en) * 2011-11-18 2012-06-13 滨州学院 Method for realizing integer order and fractional order automatic switching chaotic system and analog circuit
CN102385659A (en) * 2011-12-13 2012-03-21 滨州学院 Method for realizing fractional-order three-system automatic-switchover chaotic system and analog circuit
CN102904708A (en) * 2012-09-27 2013-01-30 滨州学院 Method for automatically switching fractional-order chaotic system by four systems based on Lu-type system and analog circuit
CN104202151A (en) * 2014-09-19 2014-12-10 王晓红 Chain-type fractional-order integral circuit module based 0.9-order Zhou chaotic system circuit
CN104393982A (en) * 2014-11-11 2015-03-04 韩敬伟 0.9-order xy-containing Liu chaotic system circuit based on hybrid fractional order integrating circuit module

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Application publication date: 20151209

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