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Machine learning assignment Contains notes of different topics
Typology: Assignments
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ASSIGNMENT 1 Nae: NISHA KAUSH1K Rlno: 19PG CSo
Q hat^ du^ you^ mean^ by^ Machine^ Leasunin^? Dleunuate b^ atunun^ Supauuise^ d^ and
ms Machine^ leauninq^ enablu^8 a^ mochi^ ne^ toto
ct thinqs wwthout^ being^ explicitl^ PuDammed Machine Lewnninq^ a^ 8ub&tt^ a^ AI with the^ hulþ o sampla^ histori^ cal^ d (^) ata, which
alguthms b^ ulld^ a^ " Mathem^ ati^ cal^ Modil"^ at heus un^ makinq^ pas^ di^ du^ on^ S (^) a dsision3 (^) ui th dut
Th mau
uu (^) p0w di^ thu^ in^ @umati^ oD,^
be ho^ pe m an^ ce. Machine leauninq^ Can^ be^ classiie^ d^ as (^) b elow :
CA Sup used lsaHninq
B) UnS^ upeuis ed Leainin
LA) Sup^ uised^ Leastninq^ a^ methud^ in^ uhich^ ul pHOids Sample lablo d dat a to Hhu 3ygkm in Odtxi wain it, and an th basie,ib psudicts h 0up ut (^8) unsupesuuised Leauninqamthod n uuhich a mochine eans uitmd'ur any 8up eui si on. The lainin 9 pOuids uüth thi tt a d ala itha has (^) not bean Jab tud,cla ssitd ocateqavized anà tha alqorithm needs o akt an that dalta wi hout any8upeuuision
Supouised Le.auninq Dtained usinq Labed data Lb aka direet jeedback h cherk iit psudicing C0uttolp nob. pudicts He ourput
Un Supeuui sed laaxninq usinq unlabelad data does (^) not (^) takA anu
La)
Jinds thu^ hidden^ patern in data ony in put data io p.suoui dsd o tho model
c
Lo)inpur dato o proLidod tD th mddsl alonq uith h uBbut ce) need8^ &upauiuon^ D ain h modal. CF Cateqaized in Classii- cation and^ Requ 8ion
does not nard oany
cLassiied an clusierinq and (^) A'sS o ciati (^) on pJHOblo ms.
ConuSidn maUx.
ACCusiacy io dein ed as tha 7 a C8tt
Pu cisiCn io dained as the Haction a ulwant examples (u posius) amo'ng au
au
w posiiw t fa) se positiuu Mean Ab saluute^ Euok^ tha^ auwaqe^ o^ he
Uau S^ t^ quus us^ H^ measu^ a)^ how^ Jax^ th pwdictions w Juom ha acbualautbut, 2
dms Statisucal^ leauning^ heosy^ Jo^ a^ am^ eu^ ok^10
o
Machine Leauning dt^ aung^ om^ ths^ Jiuds^ a StaistcS and^ Juncbonal^ Analy^ 3is.^ Jt^ deal3^ with he (^) oblam a Jinding^ a^ þw^ di^ ctiuu^ un^ ction^ based on data.^ Stattstucal^ Leauninq^ Thooy^ has^ Jud^ to Successul appi^ cati^ on^9 in^ eld^9 8uch^ ag Computer^ u^ S1om,^ 8peech^ ucoqnib^
bio-in g*m atie9. he (^) qo al^3 aunng^ a^
i c^ an.^ keasuninq^ Jals^
unt (^) many at e9^ oeS Un (^) clu dn9 3up wused^ Laasunt^ ng^
auning onu^ no^ oaLni^ nq^ and (^) oi (^) n| o Cment Janina
Lv Reea th iii) 3p (vid (^) any 0n381qnnm ent OceMS (^) g 0D 810 li Finis Th (^) modal ib (^) ad
olse Lvii)
ine ak^ 9uQHU8^ uon^ do^ ong^ o^ the^ mo8tamOua^ wa^ to dus cube yowe data an d maka bsu dfcu ons en E.
Oveuew o Linea Reqyuion Aqosithm
Ttainin Set
Leuning Alqorithm
Hypathesis Juncion
house (^) Pice The (^) uain in q su^ a Housin^ q lsuce^ in^ td nto^ h Leauning Ho thm. s^ mäin^ job to^ haoduce a untti o0, which^ by^ onuntien^ w^ callad^ h^ for^ hypat he3is). Yau thun use tmat hypathesis uncti on to
a hoU3e^ un^ nput^ c. hg (oc)^ +0,^ (x)^ Th (^) eta's (0 n^ qenetal)^ as^ h Pauametes^ o^ the wun cu on. n abouu^ hyp heSis un^ cion,^ hau^ s^ any^ ans ULatiabla ,i.e.", dat his sUa8an,it io callod Linea RegsusSaon uith ona ya ablu.
qtt batk^ to^ Ahs^ Ofigin (^) a) matu%.^ Mabux (^) Jactosuzation Can bt Used to ds coUU Latent je at Usg. examplu n a CD m mend ation system ik Psume Ne| Ux, ha a ADUP o Usg and a seb a t em s.Giwn hat ta Ch use nau 9Oted 3 om item (^) in Hhu (^) SyStem and uld^ uud^ iko to (^) prediut
not uet ated gu ch a9 UU can mal CO Mm d ati on s D he use n thi g ca3e^ al^ ho^ inamati^ on^ u^ hau^ abauh^ ho e1shn q^ at^ ngs^ Can^ be^ Hou0S^ entéd^
unamatuix.
sSunme w^ hau^5 us3^ and^ 1o^ item3^ and 90tin^9 3 C^ V^ aluus^ ntea^ anqn^ om^ I (^) to (^) 5, 8D Hhu^ matux^ m^ JDok^ So^ mehinq^ Uke^ Hhus
U 1 (^03 )