Can't find.

[gene]

Spent some time finding the thread that asked how to find 20x + 10x^2 = 0

 

So, moderators, please help. Sorry.

 

Ok, you can solve graphically although i know the answer might not be accurate. By trial and error, i got an answer where x=0.03... something.

I guess you can't solve by log as you can't log a negative 20x.

 

the answer should be from between y=-20x and y=10x^2

 

I think only by using a special software to graphically draw out the graph and read from it.

Hope it might help. :x

[swansont]

Spent some time finding the thread that asked how to find 20x + 10x^2 = 0

 

So' date=' moderators, please help. Sorry.

 

Ok, you can solve graphically although i know the answer might not be accurate. By trial and error, i got an answer where x=0.03... something.

I guess you can't solve by log as you can't log a negative 20x.

 

the answer should be from between y=-20x and y=10x^2

 

I think only by using a special software to graphically draw out the graph and read from it.

Hope it might help. :x[/quote']

 

special software? log? It's a quadratic.

 

Try the quadratic formula. But just by inspection, one answer is 0.

 

The other answer is -2.

[Fellowes]

-2 is what i got just doing it in my head now.........

 

x=(-2)

 

20x + 10x^2= 0

 

20 times -2 = -40

 

-2^2 = 4 times 10 = +40

 

-40 + 40 = 0

 

I'm only in junior high school and unless this problem is something totally different than that, then those are my thoughts on that question.

[Fellowes]

0 is one of the obvious answers, lol

[gene]

Shoots!!!

 

The equation is suppose to be 20x+10^x = 0

 

Sorry folks. I remembered wrongly... anyone know's where is the thread??? can't find.

[Fellowes]

K, lol well i dont have my scientific calculater here with me so give me a bit to figure this one out.

[gene]

yeah. can't seem to get the answer. only be computer's plotting of graph then i think an answer would be possible. i ask my teacher on that one. he talked about searching it through graphs. log would be impossible.

 

No reply since.

[Fellowes]

mhm ill keep workin at it when i get my clalc back

[gene]

thanks. this question is sure interesting.

[Fellowes]

yeah, it looks like a typical question but its decieving....

[gene]

the tricky part is 10^x.

 

AND i still can't find who started this thread. Dammn.

[Fellowes]

yeah really eh. Are you sure this question is possible?

[Fellowes]

yeah really eh. Are you sure this question is possible?

[gene]

not sure. but graphically it is possible. if you have that so called "advance mathematics software plotting system" ha.

forget it, i can't get it too. Althought it is food for thought!

 

Thanks for your help.

[gene]

not sure. but graphically it is possible. if you have that so called "advance mathematics software plotting system" ha.

forget it, i can't get it too. Althought it is food for thought!

 

Thanks for your help.

[Xandrabeast]

Doesn't x have to be 0? I can't see it working any other way...oh wait, nevermind...it can't be zero.

 

...by the way, where was this equation found? I mean, besides the thread that can't be found...

[Xandrabeast]

Doesn't x have to be 0? I can't see it working any other way...oh wait, nevermind...it can't be zero.

 

...by the way, where was this equation found? I mean, besides the thread that can't be found...

[gene]

no idea. i got it from another thread which i could not find. no one seems to be able to find it either.

[gene]

no idea. i got it from another thread which i could not find. no one seems to be able to find it either.

[Joshua]

OK. I'm on the case. Let's crack this baby open! A little experimentation shows the answer must be very close to zero and it must be negative.

I could post the answer now(I used Mathematica) but that'd be no fun! Let's figure out how to do it algebraicly. Hint: I don't know the exact procedure but this CAN be done with logs.

[Joshua]

OK. I'm on the case. Let's crack this baby open! A little experimentation shows the answer must be very close to zero and it must be negative.

I could post the answer now(I used Mathematica) but that'd be no fun! Let's figure out how to do it algebraicly. Hint: I don't know the exact procedure but this CAN be done with logs.

[Fellowes]

No really, at least explain to us how to start about doing it, if it's possible without 'Mathmatica'.

[gene]

Josh. i disagree. It CAn't be done with log because we can't log a negative number.

 

10^x + 20x = 0

10^x = -20x

log 10^x = log (-20x) ---> Impossible.

[Dave]

That statement isn't impossible, it just implies x is negative.

 

Also, I'm not sure whether you can solve the equation analytically - looks like a transdental equation to me.

[Dave]

(also moved to mathematics forum because this is where it belongs )