Looking for HSC notes and resources? Check out our Notes & Resources page

Logarithm question (1 Viewer)

Thread starter tam89
Start date Aug 4, 2005

T

tam89

Member

#1

Solve for y in terms of t:
ln (y-1) - ln2 = t + lnt

--> I had a different answer: y = 2e^t + 2t + 1

Ans should be: y = 2te^t +1

S

shafqat

Member

#2

tam89 said:
Solve for y in terms of t:
ln (y-1) - ln2 = t + lnt

--> I had a different answer: y = 2e^t + 2t + 1

Ans should be: y = 2te^t +1

ln (y-1) - ln2 = t + lnt
antilogs:
y - 1 = e(ln2 + t+ lnt)
= e^ln2 . e^t . e^lnt
y - 1 = 2. e^t .t
So y = 2te^t +1

Emma-Jayde

Muahahahaha

#3

:Edit: Damn, beaten to it!

ln (y-1) - ln2 = t + lnt

y - 1 = e^{(ln2 + t+ lnt)}

y - 1 = e^ln2 x e^t x e^lnt

y - 1 = 2 x e^t x t

So y = 2te^t +1

Last edited: Aug 4, 2005

T

tam89

Member

#4

Oh...
thankyou

You must log in or register to reply here.

Share:

Facebook Twitter Reddit Pinterest Tumblr WhatsApp Email Link

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top