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Beginner calculus question... (1 Viewer)
- Thread starter OH1995
- Start date
u can differentiate it normally if u want( simpler) but it is good to know first principles.
so y=x^3 ( when u differentiate u bring the power down and times it by the coefficient and u minus one from original power..)
so dy/dx=3x^2
at x=1
sub it in.
,=3(1)^2
=3
so y=x^3 ( when u differentiate u bring the power down and times it by the coefficient and u minus one from original power..)
so dy/dx=3x^2
at x=1
sub it in.
,=3(1)^2
=3
the squared is only on the xvalue... and then u times by 3
but if it was (3x)^2
then u would be right...
Yes, sorry saw it wrong, wow I couldn't even do a basic 2u question.
oh lord, my hsc LOL
lol it would be a year 8 question haha and you are doing ext 2
Its alright. Its not a bad mistake, just one of those things people over look.
dw cuz.
YOLO.
Long way is first principalYeh we just started today and have learnt the first principle. How do I do it using the long way, because we haven't done differentiation properly yet
The short method is for only equations like 3x^2 (ones which aren't fractions, brackets etc.)
You take the power put it at the front and then reduce the power again.
i.e. x^3
Take the power of three to the front and reduce the power to 2 to make 3x^2
YES YOLO!
are you doing 4u and 3u hsc this year? and you're in year 11?
damn son, u do 4unit and u can read a sig.
marry me pls.
hehehe, nah, on a srs note.
yeah i do
u do 4u as well aye how u finding it?
pretty hard, but it's okay I guess?damn son, u do 4unit and u can read a sig.
marry me pls.
hehehe, nah, on a srs note.
yeah i do
good luck in the HSC, i'm competing against you, go ez!
thank you
all the best to you.
and yeah, me and only the rest of NSW.
ill make sure i let every1 know to take it ezy aye