roe
ONIT- 4
@ Nhix in Anateg a : =
7
Ing troduction
@
Noise is on onwonted signal thot interloces esith the origina
message Signal in an snalog, commonication SYSEEM:
Nowe
Exrernat noise
@tmosphexe Noise _—
Soros Noise —
Travstriat Noise is — Lk
> apise which is generatect outsicie of the
0) External Noise
communication systert aot ete
Noise
_
a —- . Blectricat motor and _«iating..Machines.¢ ce Noise
re noise —* fe eathode poe
f)_ gho:
| — eyecte¥ons
: : om mmoaveme
@)_Treseral Noise 3 “THE pgse caused DS sRe_ stone ene
ene s
erections in conducte’S*
———gare* wntch
As stt) _gnd Noise nid. ott) is _tsnown
3 Moduiaced Signal
___o& —Sxost 208 pec eiien Ole
jose sum of Ste) anc we).
The _secetves_tnpvt Signa
she band _catictth,
pase siren _is_ate)+
e___The_ovtput ot bond=
ie kept just wide enough _to_pass +6
a dard poss Pikes
modulated Signal Ste). “useRout AiSstacoM.
ye Tne _cemodutation_paccess sepmesenced by. tRe blocs
aerresuiaten cdepends on _aAe nodutatian. usec —___ as
Slt) ae dy Adealized
characteristic of
bandpass fittered.
__ noise...+t BordwidiR ot bandposs filtex is _equat wo tronsmissian..
bandwidtR oP the modulated .signat and is_cenaced
as Br :
Midband frequency is equal to ARE comes hreqoency.;
*
ond it ig denoted as Sc. ——
*. a owerage So As. given. OS 5
fu reise Aas aug_ncise power _pes_enit— “parciusidt® x
= a ____ Randunics 8 —___— - —
= No Br ale a
> Inpot goat to noise vatio
USNR) 3 = Avex powes_eb ‘een cen ce nigaae, Scie"
“average power of eurered n ee)
> Corpor Rignat to vise satio— sie
rage powes ¢ He S Aemeduiated Signal
(snrlo Aver
‘ Ruexoy
+ _ Channel Signal to mise sotio—
Average powes of the modotated Signal
noise in_meSsage bondwidtR
(SNe =
- average dower d
- SNR)» i a
rot of :
iguie_of mexit =
a CENR)e :
+ Highex the Molue of _mesit_, ostter “he _pasformance a
-Re__stecewers. - a
Me NaWwe. & Rigore. & morte “gise_depends pon. i.
type ¢& modulation vsect.Ae
X Noise in. DSB-SC__Receluers + |
ee a i 0 :
Band ~ Pass |
Pees
Signar
sue)
%* _“he__obove Figure Shows. “the model of OSREC weceiver_ “
using coherent _Derec tos.
* The enered sigaat is_appiled to tO cohevene detecthos xe).
Seis _couitipied uti _o_ tocauty generated sinsoidal wave
cagantct bSing product Modulatost.—the _pstoduct _is_then
Mltered__vsing to» _Pass_Fidtew-—____—
*__‘Time- ain t_psB- gc
* __channet_ 2t_Aignat to_neise taio_
GNR).= Average powes oF _ moctvtotedt_ Signals Sle) -
verge powes F noi'se message bancewilth
(ened, = 2th.
ry CO)
“Average ae eee Signal
ee Ne cosanhe)*
i - > Tete) (ve cosanke)?
>
a 2
eR fyee ee
= \+cesaR ast SO. =,
scoPs = eps | asinosied = sinsa
Ss
Weed = meet ‘eft — ser) + aa + cos =< ne (ain sale
3 a a
NiCr) = mceyVe + metive costmfct + nts) « nrercosumke
Ona a a a
Dect) sinungfct _
8 =
THIS VCH)_1S_possed _throogh tors pass liked then,
Site) = merc -« ns ce)
a 3
2 TWN Ce) + Date) =
~~ Gamponent
Ng = @®
hom eq-®> (sue =_mAW) eset
rae ce) Ae
2 = Ne |
can®e = 22 Po > CSnRly ater
UNoW dBin message pandend tA => De ce)
Average Powe? of ais:
tugepoeet
tondwidth .% borclenictth.
* quenoge reise poiser pes omit mae
7 plo + au *
a [PL ye
Tce) = wow —?@ Perrone
4 hom 87-7 (SNA.
=. eel
mw ce) L
ConR)e =
Nola!
__¢swrie = NEP ©
aN hl ee
& — Qvepot Signal ret to noise yakiO+— Pera
——-puerage poues a demodviared mag Signal
CSNR)o = - - = os vas
Puerage powes oF neise
: Z
a met 5)
MR) mse) > ® mete)
Tote nce) = we cosanlet
~ nate Sisanlet
x Pemodutated Sgnat =)
the oveput ef banalpass filtes => xe).
xee)= Sit) nce)
Xtt) = Be mee) Me SosaTlck + Nelbeos anect = mace singnle
Now, Ct) IS PASSEA “through _Prodiect modula tar.with ‘Ae
orothes Input cos ANTEC’ « THEN » i ne
Nee) = xCE) Cos attet_
TNL) = meeNe cop anfet + Os wes 2 anfet - Nate sinanlet
cosTntetFae asta
——the_block_oliagram_4 "am _rereit ae
Se > =
——_ pause Seno] Bee. =a Envelop
— | detector}
Ml :
sts ke [i+ bamilcosan&e 6 ee |
Expression foram ue AG |
= cB Sees 7
*_channel__Signat_to_noise_vatio +
CSA e =>
—futerage power qf modolated -signats ste) a
_____fiterage Poweer_optsie- message bandssicit_ 2=——
=o
3e_Auierage._ POLwss musty = *Awolt)
rote) = Now > @
¥ = &g-O.> CSNRe = Ste
nS Ce)
VE Cee KP)
eh
AN.
ve Conese) —>@ - -
Bo
ee SS
ee og
= rico :
68 1 Bgnat aseenoes
“the output of band _pass_ Fitter > er cds
ete) = SCE) mie) -_
Ue Ci + ka mee)) cos antet + ngcelcas a Loe = nate) smart.
ete) = | Un prose componenty= Cavadrawre comp)™
cee (ve + Vekamee) +07 COP + Enter]
inthis case, Ve fobmipyssne). i
ee a.
a Remet)_22* Mate)’ “eo Dale)ne _ootput_f envelop detector is YC) ae
Sey = Meko mee + Dale) .
= Tg te) + Od tt) “ _—___——
Average power of Md Ct) = md ce), oe
9 |
= Grekamce))®
7 : mat) = ark P > @
No Caw)
Figure oP merit © -_CSNR)p
(fom) .. COR)dor tote medutation 4, 4
CoM» b=
enon in xoctto. receive tS
ruve eect iS opnend!
. "em siqnals are received
— Awe copt
shat occu
ot rhe Some Frequenct -
eanen twO oF MOTE
> The Receives tml Cnty demodviate | tne gtronges of the
ceoo Signals.» and the tweaker _Signat _witt_be_suppressed.
demedviator uses o_limiter _cireuit
fron exceeding o cestaig ————
> This is because the FM
to prevent the Signal
amptteede.
> The Capture CfPect is important 20M. rodio because it_+
ollows receivers to retiably democuiate signals even
intesterence trom other Signats.__
in the presence 4
in othes applications +
} ‘The Coptore ePPect is also important
that use FM mocotation » Such as Raday_and Telemetry...
> Foctors thot atfect the Copture eFPect- -
+ The miefevence in Signal Strength
= The bondesiath of the receiver ne
= whe Linearity of “the receives : — “
ri |
> canbe .
The Capture effect “i Used’ to improve the” pesformancs
OF FM receivers in Noisy environments ——-"SE The ThresASIH effect Tn FM fs much more pronounced han
ina ~ —<—<—————
—~ e_The figure of} merie Com) of FM _ is. valid. Tf the carrier -to-
gh compared to unity (greater thon. :
ais ENR oot a rd saci
wT
0,
___Sigoais. sore _demoauinsich:
3e__The_ threshold e8fect scours’ unen the opise in the received
_-Sigoot 1s _targe enoegh to cause the: discriminates —__
__Sotput +2 exceed _o cestain thyeshotd:
Sie seceiuera she foput aight iss aut) sacedtmteh =
nstercosantet —natersinanke
ator _Input_is_given by
ol cos antet - saseaneisl sa
where . 72 ft) ana Nett) ee aes cand_quacrature.
fomponents narmw hand noise signal née) ev-rt Carries:
%_let_us deriue the conditions for +ve clicks to occur and -ve
ticks tp _eceut areas fottems:. a]
condigens fox sve. clicks: PCE) = tan’ [ny \
eats)
reed > Ae
\ o)
| led < TW <, Blt) ta HCE) Ye) varies trom,
dee) >o 0°to.60°for
de |
One. complete.
cenditiens “or -VE elickSt = cycle. 24
Te) > de . ‘ Ypuuese wenn |
s ele) >= B > He) td Mle). 4
S AYE) 2o . |
ee) : ‘
Sox xwe clicks ensure that © Ce) changes
we cttctes ensurs’ tno &Ct)
increment,
"Re _sendivons
BYy_ST_Aodians__and fox
grances HY. ~AN Tadians during the time
axe 42 sett
& The averags— nord clickSs pt
| _____prnpansinnal_to_2.!
*® Treshsiad con be avoided by keeping P.>A0 #, \8d8 s+
fg. 280 > AL > anwab 0
2 Wo 2
FE > WowAle ~
# To Overcome the Threshold Sfbect in FM. ell
- vsing oa high quality receiver ee
- placing the receives _in_a quiet tocation.____—— |
= wsing an antenna ewith_goed shielding —__—
- osing pre-emphasis and cde- emphasis techniques. _
- using a noise - canceling receiver +
AEM Testa Reset
#* FM Threshold Reduction isa technique osed to improve
= noise
the pesformonce of FM receivers in teu signat=
Can) conditions. hella —ail
# “he Thresnotd crfect is a phenomenon that occurs «nen _
the SNR dtops below a cestain tevet, xesviting in the
Meceiver. ee
There ore. B main. techniques. fox EM. threshold rechuctions
FMB: demodolatos: # This LYyPE of aemodviatos uses.a—
negative feedback top to improve ‘SNR. The. Feedback
loop he\ps to geduce the noise thar is added by
she demodotatos Unsere.
Réx PLL. Cemodulator 2 "This type gf dermmedviarer- uses a
PNASE - LOCKE Ioop to Mack the Frequency of the _
incoming Signal, This helps to seduce. the effects,
a Meine on He Stgrat, which con improve tAE SNR,4 An addition (a these teehniqueds there ore 0 O6.d othe's
approaches that can be obec In eEduce FM thieohaid + these
Tnotudte
Aptimem filtering & This Ceghnique vse9 a fitter that
in speciticavy designed te improve
the snk al 64 signals.
oie cancelling thio Cechnique voes O noise
CAN COU AQ Villes to remove noise
liom the recelued efgnat ~
BenePits ¢
Ampinied Teception a mek Signals
Redocea Noise
Improved andio qualita
Increased Range. ‘
Chattenges ¢
an be complex “to Traplement
Can yeqotre Specialized components s
Can alPect the dynamic yange d the receiver.
| AT Tre-Soptasio ona ‘De
> Poe. Emphasia and De- Emphasis are two techniques vsed
mphoosis wm FM: “Net
in FM transmission ond reEeption to improve the signat-
to- noise “CONR) satio- ' fet
Pae- emphasis + ‘
> te 1S A .proeess that increases we armpuitode of
high= Frequency components o€ the signal.
WE 1S done by Passing the Gignat through o. Filter
thaw besGts the Wiah Frequencies.= The amount gd pre-emphasis. is typicauy specified. 1
xerms_ do time constant- m
| De - Emphasis:
| = Ik is the opposite of pre-emphasis:
= ik meduees the ampittude oP high-frequency component?
e€ the signal 2 i<
= This {g done by passing the signet. ehrough & FrEEY Fhae
actenvates the high. frequencies. -
ciPi@d iO
= “The amount cf cde- emphasis. is typicatty_» SPE
texms gq a time constant — - =
Pre - Emphased—
_-FM_Oveput. -
Cem signat) =
088
eur Fu EBOKHe
De - emphasis: _
FM.
demodulator
e-emphasis circuit/
—> Pue- Emphasis and He Emphasis are sect in wide Uarieey
oP PM applications. including FM radio » FM television
and pm audio broadcaseine
> The amount d pie- Empha:
Specified in the FM standard
> Pae- Emphasis and De-Emphasis can be
“eithes. onaiog of digital town
> Pre- Emphasis and De~ emphasis
Modulation
“BeneFies
Improved Signal ~ to - noise vaio
Reduced Pistcstion
Improved frequency Response.
can also be used
Schemes » Such ao AM.
516 ang De Emphasis iG vsvally
implementect in
1
in othes