Math, asked by Anonymous, 5 months ago

the value of p(y)=y^2-y + 1 for p(0) is

Answers

Answered by madhavanpillai16234

1

Answer:

p(0) = 1

Step-by-step explanation:

Given,

p(y) = y²-y+1

At p(0), y=0

i.e, p(0) = 0²-0+1

= 1

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