simple concept which i can not understand (1 Viewer)

girlworld_club · Jun 24, 2013

How does:

1. e^20k = 2 equal
20k = ln2

what is the working in between?

2. also what is e^x = 0

3. and another one, how would you solve e^x = 20
i.e what is x?

4. Also how to solve 2^x

thank you so much for your time.

HeroicPandas · Jun 24, 2013

1. $e^{20k} = 2$

Imagine a hammer smashing down the "20k". Where can the e go? It goes to another universe, transforms into an "ln or log base e" and attaches itself to that lonely 2

2. e^x = 0

x = ln(0) = impossibru

U can draw out the curve y = e^x. Notice that y > 0? Therefore y =/= 0, therefore e^x =/= 0

3. 2^x? Impossibru again....how can u solve something that has no LHS and RHS

Do u mean differentiate? Integrate?

If so, please recall a special rule:

$e^{lna} = a$

asianese · Jun 24, 2013

For the first one - reacall the definition of a logarithm

$\log_a b = c \iff a^c=b$ . You can use this definition directly to show that $e^{20k}= 2 \iff \log_e 2 = 20 k \Rightarrow k = \frac{1}{20}\log_e 2.$

asianese · Jun 24, 2013

HeroicPandas said:
1. $e^{20k} = 2$

Imagine a hammer smashing down the "20k". Where can the e go? It goes to another universe and attaches itself to that lonely 2

No, the e NEVER goes into another universe! All parts of that equation stay there, just in a different form. The e becomes the base of the logarithm...without a base a logarithm is meaningless. Obviously this is what you tried to imply lol

HeroicPandas · Jun 24, 2013

asianese said:
no, the e never goes into another universe! All parts of that equation stay there, just in a different form. The e becomes the base of the logarithm...without a base a logarithm is meaningless. Obviously this is what you tried to imply lol

hahahahaha!

RishBonjour · Jun 24, 2013

girlworld_club said:
How does:

4. Also how to solve 2^x

As HeroicPandas pointed it, what do you mean? it is a typical question in 2u so I assume differentiate?
If thats the case, there is a 'formula' (just a shortcut) can't seem to remember, but this is how I would do it:

y = 2^x

lets make x the subject so we can differentiate normally:

lny = ln(2^x)

therefore, lny = x ln2
rearrange --> x = (lny)/(ln2)

this can now be easily differentiated (with respect to y)

dx/dy = 1/(yln2)

therefore, dy/dx = (yln2)
since y = 2^x ---> dy/dx = (2^x)(ln2)

if integrating, you could think of it as 'what can I differentiate to get 2^x' (usually the question will guide you with this).
well it would be '(2^x)/(ln2) + C'

HeroicPandas said:
1. $e^{20k} = 2$

Imagine a hammer smashing down the "20k". Where can the e go? It goes to another universe and attaches itself to that lonely 2 by fusing with a log first

$e^{lna} = a$

Fuaaarrk

Parvee · Jun 24, 2013

HeroicPandas said:
1. $e^{20k} = 2$

Imagine a hammer smashing down the "20k". Where can the e go? It goes to another universe and attaches itself to that lonely 2 by fusing with a log first

damnnnnn

girlworld_club · Jun 26, 2013

Also how do we integrate In2

??? thanks

SpiralFlex · Jun 26, 2013

simple concept which i can not understand (1 Viewer)

girlworld_club

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HeroicPandas

Heroic!

asianese

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asianese

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HeroicPandas

Heroic!

RishBonjour

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Parvee

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girlworld_club

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SpiralFlex

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