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Experimental verification of chaotic encryption of audio using monolithic chaotic modulators

Abstract

This paper reports the first experimental verification of chaotic encryption of audio signals using integrated circuits. It is based on a g m-C modulator/demodulator analog CMOS IC that implements a 3rd-order nonlinear differential equation. This has been fabricated in 2.4 micrometer double-poly technology and includes on-chip tuning circuitry based on amplitude detection. It is capable of generating controllable continuous-time chaotic signals. Also, measurements demonstrate how to exploit the synchronization between two of them for encrypted transmission. In these experiments, the worst-case signal to noise ratio of the recovered signal is greater than +40 dB (at the low corner of the audio spectrum) with less than -0.2 dB loss of the input signal power. At higher frequencies, the signal-to-noise ratio rises up to +60 dB, while retaining similar losses at the receiver.

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Experimental verification of chaotic encryption of audio using monolithic chaotic modulators

Author: Delgado Restituto, Manuel; Rodríguez Vázquez, Ángel Benito; Liñán Reyes, Matías
Publisher: SPIE- The International Society for Optical Engineering
Year: 1995
Source: https://idus.us.es/bitstreams/6995fb57-d5f6-46f5-bd3f-bbd2aad6a5ac/download
Expe imen al Ve i ica ion o Chao ic Enc yp ion o Audio using Monoli hic Chao ic Modula o s
M. Delgado-Res i u o, A. Rod Iguez-Vázquez and M. Li lán
Dep . o Analog Design, CNM
Edi icio CICA, C/ Ta ia sn, 41012-Se illa, SPAIN
Phone #34 5 462381 1, FAX #34 5 4624506
ABSTRACT
This pape epo s he i s expe imen al e i ica ion o chao ic enc yp ion o audio signals using in eg a ed ci cui s. I is based
on a g—Cmodula o /demodula o analog CMOS IC ha implemen s a 3 d-o de nonlinea di e en ial equa ion. This has been
ab ica ed in 2.4J1m double-poly echnology and includes on-chip uning ci cui y based on ampli ude de ec ion. I is capable o
gene a ing con ollable con inuous- ime chao ic signals. Also, measu emen s demons a e how o exploi he synch oniza ion
be ween wo o hem o enc yp ed ansmission. In hese expe imen s, he wo s -case signal o noise a io o he eco e ed signal
is g ea e han +40dB (a he low co ne o he audio spec um) wi h less han -0.2dB loss o he inpu signal powe . A highe
equencies, he signal- o-noise a io ises up o +60dB, while e aining simila losses a he ecei e .
KEYWORDS: Chao ic Ci cui s, Chao ic Enc yp ion, Nonlinea Mic oelec onics, Analog In eg a ed Ci cui s
I . INTRODUCTION
In he las yea s, many expe imen al esul s ha e con i med ha he cells in a ne wo k o chao ic oscilla o s may e ol e in
phase, in spi e o hei in insically i egula beha io and sensi i i y o ini ial condi ions .Thisnon i ial ac has d awn consid-
e able in e es , no only a a heo e ical le el (gi ing ise o an inc easing numbe o pape s abou he phenomenon), bu also due
o he po en ial enginee ing applica ions based on so-called chao ic synch oniza ion.
One o he mos p omising applica ions e e s o he enc yp ion o da a. The basic idea is o exploi he noise-like appea ance
o a chao ic ca ie o hide an in o ma ion-bea ing signal, and make use o he synch oniza ion p ope y o eco e he da a. Fig. 1
shows a block diag am o he ealiza ion o his idea based on chao ic modula ion2'3 A he emi e side he in o ma ion bea ing
signal, ep esen ed by he cu en 5( ), iS injec ed in o a chao ic oscilla o (modula o uni ), he eby modi ying i s dynamics. I he
powe o he chao ic signal is la ge as compa ed o ha o he in o ma ion signal, he ansmi ed signal ( ) emains chao ic and,
hus, undeciphe able. Howe e , his ansmi ed signal s ill con ain he in o ma ion ela ed o 5( ), which can be eco e ed a he
ecei e side by using a demodula o uni which synch onizes o he modula ion used in he ansmi e .
5( )
Fig. 1 : Chao ic Modula ion Scheme.
This concep ually simple enc yp ion mechanism open new is as o inno a i e applica ion o analog in eg a ed ci cui s, based
on nonlinea signal p ocessing concep s. Howe e , p ope design o his kind o ci cui s in ol e a s ic comp omise be ween he
obus ness agains pa ame e a ia ions o he chao ic synch oniza ion, needed o decode he enc yp ed signal, and he secu i y o
he communica ion, so ha an in ude canno in e cep he in o ma ion con en . Al hough some g oups ha e ealized chao ic
enc yp ion using disc e e ci cui s, he abo e di icul ies ha e p ecluded hei ealiza ion using monoli hic modula o /demodula o
uni s. This pape epo s he i s expe imen al e i ica ion o chao ic enc yp ion o audio signals using in eg a ed ci cui s.
2. MATHEMATICAL MODEL AND CIRCUIT DESIGN
I is ep esen ed by a hi d o de con inuous- ime nonlinea s a e equa ion,
98 /SPIE Vol. 2612 O819419761/95/$6.OO
emi e ecei e
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-x( ) = Ax( ) + B [DTx( )] (1)
whe e x( ) = {x( ),y( ), z( )] Tis he s a e ec o ; A=[ a is a eal ma ix which de ines he linea pa o he sys em; B[ b,}
and D=[ d1J a e eal ec o s; and (.) is a eal- alued odd symme ic piecewise-linea (PWL) unc ion,
so — Si
(i)=s1i÷ 2
Smoo he app oxima ions o his PWL unc ion also quali y o da a enc yp ion pu poses.
(2)
S a e equa ions (1) can be mapped on o a gm—Cci cui whe e s a e a iables a e ep esen ed by he capaci o ol ages. Fig.2
shows a block diag am whe e a equals gj/Cj,b1 equals and he componen s o D a e implemen ed ia ini e gain ol age
ampli ie s.
--
—=AA/ ciA
/gmi3
'IL
—
—
-
=
=
AA L cLA
/gm23
IL
4x,cL:x / C3I/
/gm33
IL
2d3
,.J
Fig. 2: Chao ic Uni Block Diag am.
The in ended applica ion o da a enc yp ion can be ealized using many di e en se o pa ame e alues. The poin is o iden-
i y hose which a e he bes sui ed o monoli hic implemen a ion. I in ol es sea ching in he pa ame e space o ind he op i-
mum solu ion owing o conside a ions on misma ching, loading, e c. In pa icula , loading conside a ions ecommend o equalize
he capaci o s, i.e. C C1 C2 C3, and o keep each capaci o loaded by he same numbe o ansconduc o s. On he o he
hand, ma ching o he ansconduc o s is imp o ed by en o cing he ollowing ules:
. T ansconduc ances mus be in ege mul iples o a gi en uni elemen gmu• Thus, non-in ege n/ n a ios can be ealized by
sepa a ely g ouping n and n uni ansconduc o s. Applica ion o his c i e ium signi ican ly simpli ies he design o he
ci cui , since only one ansconduc o need be designed o ep oduce all he es .
. Sp ead o ansconduc ances should be minimized.
This, oge he wi h he use o on-chip uning, p o ide accu acies o abou 1 -2% in he pole equency --enough o gua an ee syn-
ch oniza ion o he emi e (modula o ) and he ecei e (demodula o ) uni s. Wi h hese ules in mind we ha e done an exhaus i e
sea ch in he pa ame e space o (1), o de e mine he op imum con igu a ion. The esul ing model is desc ibed by he ollowing
se o equa ions:
whe e .) is gi en by (2), and he pa ame e alues a e:
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(x)+ay dy dz
—= —=cx(x—z)—y
d (3)
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(a, 3, s0, s1) = (3,4,—2, 2) (4)
Mon e Ca lo analysis wi h unco ela ed ela i e a ia ions o up o 7% om he nominal alues in (4), show ha 100% o he
ob ained ajec o ies e ol e owa ds a chao ic a ac o .
The p elimina y conside a ions o he design a e comple ed by he choice o he ime cons an , ' =2icCIg. Ou pu pose in
his expe imen al p o o ype is he signal ansmission in he oice-band, which, a e se e al beha io al ials, has led o he ol-
lowing nominal alues, C= 3OpF and mu .0 A/ .
Fig.3 shows he schema ics used o he ansconduc o , which includes a sou ce-degene a ion scheme o linea iza ion .Fig.4
shows he ci cui used o he PWL unc ion consis ing o a on -end ansconduc o and a nonlinea ci cui ha ope a es in cu -
en domain based on he high-accu a e ec i ica ion mechanism p oposed by he au ho s in .All pa ame e s in his nonlinea
cha ac e is ics ha e been made ex e nally con ollable o se e as c yp og aphic key in he audio ansmission scheme.
Fig. 4: PWL Func ion Ci cui .
Fig.5 shows he block diag am o he ci cui used o on-chip uning, based on ampli ude de ec ion. He e, a e e ence sinusoidal
signal passes h ough an in eg a o and he changes in he ou pu ampli ude, i he signal equency changes, a e de ec ed and used
o une he sys em.
Fig. 5: On-chip Au oma ic Tuning.
3. EXPERIMENTAL RESULTS
Fig.6 shows a mic opho og aph o he chao ic modula o /demodula o uni , which includes he on-chip uning scheme, and
o he auxilia y ci cui y o biasing and measu emen pu poses. The dimensions o he ci cui (de eloped in a 2.4 jm double-poly
double-me al CMOS echnology) has been also indica ed in Fig.6. Powe dissipa ion is less han 1 .8mW o a symme ical biasing
o
Fo he p e iously ci ed design pa ame e s he oscilla o gene a es ully ape iodic, e godic wa e o ms a x( ), y( ), and z( ).
Despi e hei ape iodici y, hese ajec o ies emain con ined o egions o egula , cha ac e is ic shape wi hin he s a e space, c e-
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Fig. 3: Linea ized ansconduc o .
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a ing a ac o s. Fig.7 shows he double-sc oll Chua's a ac o ,measu ed om he ab ica ed p o o ype. The pic u e ep esen s
he Lissajous p ojec ion on o he (x, z) plane o he s a e space (ho izon al axis 25OmV/di , e ical axis 35OmV/di ). Resul s a e
in ull acco dance wi h he heo y and simula ions.
Fig.8 illus a es he pe o mance o he whole secu e communica ion scheme. Inpu signal (Fig.8(a)) consis s o a segmen o
speech. The wo s -case signal o noise a io o he eco e ed signal (Fig.8(b)) is g ea e han +40dB ( his occu s a e y low e-
quencies) wi h less han -0.2dB loss o he inpu signal powe . A highe equencies, he signal- o-noise a io ises up o +60dB,
while e aining simila losses a he ecei e . As can be seen om Fig.8, he ansmi ed signal (Fig.8(c)) keeps no esemblance o
he in o ma ion con en .
4. ACKNOWLEDGMENTS
This esea ch has been suppo ed pa ially by ESPRIT IV P ojec 8795 AMFIS.
2620j. m
5. REFERENCES
0
1. M. J. Ogo zalek: "Taming Chaos--Pa I: Synch oniza ion". IEEE T ansac ions on Ci cui s and Sys ems -I: Fundamen al
SPIE Vol. 2612 / 101
Fig. 6: Chip Mic opho og aph.
Chao ic Enc yp ion
5.0
0.0
-5.0
0.Oms
(a)
(b)
(c)
200.Oms
Fig. 7: Measu ed Chao ic A ac o .
100.Oms
Time (2Oms/di )
Fig. 8: Audio Da a T ansmission.
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