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Hi Luc! Had a sneeky feeling you might turn up.
Luc Pattyn wrote: Seems to me the difference is only a matter of time.
Can't believe how much I've forgotten (or never knew!)
Luc Pattyn wrote: almost there. It is hard to believe you get stuck at this point.
Move all the terms containing b to one side, all other to the other and you get
b.a2 - b = 1
We've been here - we can't the get a2 - 1 . You managed to tease an answer out me before regarding lemmings so I know you're not gonna give me the answer, but there is some obvious algebraic rule I am missing.
I need to get down to a single b on one side of the equation. If I take the a2 over to get 1/a2 , I am left on the left hand side with b-b , which equals zero, so that seems wrong. We took the a2-b over, giving us b= 1/a2-b , which is very nearly there, except it should ne a2-1 , not a2-b . (maths isn't my main thing - you can tell!)
My son is convinced the book is wrong - can you at least confirm
b = 1 / (a<sup>2</sup> - 1)
is correct?
so you answer don't be scared of failure
The only failure is never to try
Things You've Never Done - Passenger -2008
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I'll never forget those lemmings that approach a lethal ravine at high speed, suddenly
fall down strictly vertically, at a constant speed, and survive it all.
Malcolm Smart wrote: b = 1 / (a2 - 1)
is correct.
Fact: you can't "take a2-b over", taking over basically means you add something both
left and right in such a way that it cancels out something on one side. Now what would you add
to get rid of b.a2? certainly not a2!
Hint: if x.y = z how much is x? so try bringing your equation in a similar form.
Luc Pattyn [Forum Guidelines] [My Articles]
This month's tips:
- before you ask a question here, search CodeProject, then Google;
- the quality and detail of your question reflects on the effectiveness of the help you are likely to get;
- use PRE tags to preserve formatting when showing multi-line code snippets.
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I either get b-b on the left, or b back on both sides!
(a2 = a2) <-- saves typing html tags for sup
b.a2-b=1
(b.a2)-b=1
b.a2 = 1 + b
b = (1 + b) / a2
but don't know how this then gets to
b = 1 / (a2 -1) There must be something so obvious I am missing, but I have to give up at this point (my son already has - he will learn soon that isn't an option sometimes in the real world) - my own work is pressing as I am having to work weekends at the moment. I will get this solved, but have to leave it until in the week.
Thanks Luc - appreciate your help.
so you answer don't be scared of failure
The only failure is never to try
Things You've Never Done - Passenger -2008
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You can factor the lefthand side b.a2-b=1 into b and something,
then you have the form x.y=z which just requires a division.
Luc Pattyn [Forum Guidelines] [My Articles]
This month's tips:
- before you ask a question here, search CodeProject, then Google;
- the quality and detail of your question reflects on the effectiveness of the help you are likely to get;
- use PRE tags to preserve formatting when showing multi-line code snippets.
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Luc Pattyn wrote: You can factor the lefthand side b.a2-b=1 into b and something
Waheeeyyy!!! I just called him down and asked him to factorise
b.a2-b
b(a<sup>2</sup>-1) which gives
b(a<sup>2</sup>-1) = 1
b = 1 / (a<sup>2</sup> - 1) It's all about applying what he knows. He didn't think to factorise ( I didn't know you could!). Thanks a million Luc. He only has another 12 to do!! I'm going to have to really get into this stuff - it's actually quite cool.
so you answer don't be scared of failure
The only failure is never to try
Things You've Never Done - Passenger -2008
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You're welcome.
Malcolm Smart wrote: It's all about applying what he knows
Of course. Don't apply what you don't know, but don't forget to apply what you do know; what is
the purpose of knowing something, if you don't apply it...
Malcolm Smart wrote: I'm going to have to really get into this stuff
Knowledge is hereditary, it will find its way up or down.
Luc Pattyn [Forum Guidelines] [My Articles]
This month's tips:
- before you ask a question here, search CodeProject, then Google;
- the quality and detail of your question reflects on the effectiveness of the help you are likely to get;
- use PRE tags to preserve formatting when showing multi-line code snippets.
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Of course this is probably way too late to help but...
The key here is that you need to isolate b
starting from your step:
(b+1) / b = a^2
this is equal to:
(b+1) * (1/b) = a^2
multiply out left side:
(b/b) + (1/b) = a^2
reduce (b/b):
1 + (1/b) = a^2
subtract 1 from both sides:
1/b = a^2 - 1
multiply both sides by b:
b/b = (a^2 - 1) * b
multiply both sides by 1/(a^2 -1):
(1/(a^2 - 1))*(b/b) = (a^2 - 1) * (1/(a^2 - 1)) * b
reduce both sides:
1/(a^2 - 1) = b
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Simpler way
(b+1)/b=a^2
(b/b) + (1/b)=a^2
1 + (1/b) =a^2
(1/b)= a^2 - 1
=> b= 1/(a^2-1)
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Thats the same thing as I posted. I just included all the steps that you left out which would be required by a math teacher who is actually teaching this stuff
Although I could have sworn that the entire other thread didn't exist from 2 weeks before walking them through it when I posted this....
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Hello
Does anyone have a good idea of a decent line segment detection algorithm to be used on binary images (black and white)? The images are pages from newspapers, so they contain a lot of text.
The algorithm should detect almost straight vertical lines (maximum deviation of 5 degrees).
It should also be able to detect dotted lines, and some imperfect lines (with noise pixels, either white or black).
I've tried using Hough transform, but didn't get reasonable results.
Also tried some straight-forward methods, but they don't seem to give the same accuracy on different images.
I'm not so knowledgeable in this domain, and if there's someone to point me in the right direction, I would greatly appreciate it.
Thank you.
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The Hough transform is probably the right approach, since it handles noise and imperfections. The problem is that the last step involves interpreting the transform results, which isn't straightforward.
It may help to do some noise removal before processing to get clearer results.
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It looks very impressive. What does it do?
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Found out about SheetCalculator[^] today.
Very nice!
There are II kinds of people in the world, those who understand binary and those who understand Roman numerals. Web - Blog - RSS - Math
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Looks very interesting
"Real programmers just throw a bunch of 1s and 0s at the computer to see what sticks" - Pete O'Hanlon
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Yeah, and the perfect excuse to learn Java.
There are II kinds of people in the world, those who understand binary and those who understand Roman numerals. Web - Blog - RSS - Math
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Hello,
I'm an Italian student and I'm new on this site.
I have to implement in Java the Map abstract data type with separate chaining collison handlin without using java.util classes.
Is there anyone who could help me please?Because I've some doubts.
Thanks in advance,
Giorgio Vezzaro
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You might want to try some Java specific forum.
"I guess it's what separates the professionals from the drag and drop, girly wirly, namby pamby, wishy washy, can't code for crap types." - Pete O'Hanlon
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This is a C#-forum - so nobody will help you with java-code.
So some simple questions: are the algorithms clear?
(You will want to implement a hash-function mapping integer-values (the hash-values) to some memory-address containing - in it's simplest form - the head of a linked list containing all the stored objects).
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CKnig wrote: his is a C#-forum - so nobody will help you with java-code.
If the Lord God Almighty had consulted me before embarking upon the Creation, I would have recommended something simpler.
-- Alfonso the Wise, 13th Century King of Castile.
This is going on my arrogant assumptions. You may have a superb reason why I'm completely wrong.
-- Iain Clarke
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What's the matter?
He was asking for help in java writing a hashtable with collision-managment.
So I tried to express my opinion that he won't get any java-code from here (I myself am hardly competent to give "working" java code
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Well, using Java is just one of his requirements. On the other hand this forum is focused on algorithms (hence is, to some level, language-independent), specifically C# language should have no privilege here.
If the Lord God Almighty had consulted me before embarking upon the Creation, I would have recommended something simpler.
-- Alfonso the Wise, 13th Century King of Castile.
This is going on my arrogant assumptions. You may have a superb reason why I'm completely wrong.
-- Iain Clarke
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You are right on this - but I think this is a .net-"centric" forum and you will see mostly C#-code (or VB but never java - right?).
And I tried hinting at the basic points of a hashtable - but this concept is so simple that the hardest part will be implementing it!
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OMG.
All these years I was under the impression that this was an VC++ only forum.
Glad that this is now sorted out
codito ergo sum
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Well I think this is getting OT but one last remark:
of course you will find a lot of VC++ code here but a major part of articles and posts deals with .net - so I'm sorry if I hurt your feelings (yeah I know C++ is the only real thing - and all the nasty GC-noobs can kneel in the light of your superior coding-skills ) ....
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