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System based on Law of the third-need comments

Started by Drazen, Apr 26, 12:39 PM 2011

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Drazen

Hello to everyone! This is my first post on this forum and that is why is so long.  Sory about that.   First of all i have to apologize for my not so good english, but i hope you will understand me.  Please correct me on anything i do or say wrong. 
I will later in the post explain my system, of course that is why i choosed this subject.  But please, allow me to tell you in short my story about roullete.  It is imoprtant. 
I am 23 years old student of economics faculty in Croatia.  I am relative newbie in this thing, beacuse i started to study roulette a few months ago.  But in that time i was spending up to 7-8 hours a day studying all mathematical and statistical facts about roulette. .  (And of course they were all saying that roulette is in long term unbeatable).  That game was magical for me and i was infatuated by this game. ( So please dont underestimate me about knowing all that facts about roulette).  But deep down i felt the desire to beat him.  I have red almost anything i could find about roulete and i have tried a hundredths of systems.  Most of them i tested,were based on some kind of progression.  .  Of course all of them failed at some point, because of the table limits.  Some of them were more successful than the others, but that wasnt enough for me.  I wanted more, i wanted to beat him every time.  Although I never knew how I felt that it is possible. . .   I was looking for something I could use against him. .  and now  i think i found that. . .   It is based on the Law of the third.  Although of course I knew about it, and some systems are based on that, I have never seen anyone is using  all advantages of this, earlier.  Sorry I have not read plenty posts on this forum, but if there is this system like this please tell me.  Any suggestion or correction is welcome.  And now my idea.
As you know The law of third affects on every random occurrence in nature, and of course on randomly throwed roulette ball.   As it effects on the  wheel of the roulette it should also affect on the board too, precisely on the positions of the numbers.  It is all conected thanks to that law. . . .  Let me try to explain you how. . .  Huh this is the difficult part but i hope you will understand me.  I ll do my best.  (because of my average english).
Many variations  can be done with this, but i will explain to you how did i figured this out on original example.  Lets take an example on first 37 roulette spins.   Folowing the law of the third you all know how  many approximatly numbers will show up, and how many will be sleepers.   Aprox.  1/3 of course will be sleepers.   And if we look at the table through the thirds ( i mean dozens), we will see that  numbers in the dozens are also hit by that principle.  You all know that in 37 spins  is imposible that in any of dozens wont be sleepers. . .  it cant be that in 37 spins  all numbers in at least one dozen are hit.   (I will explain all of this on real numbers later.  ) Bearing in mind that the law of the third act constantly,  I wondered if that would not be expected to act in the next 37 spins. For now  I am focused on sleepers only, but i think that applies to repeaters also.  . .  Just focused on sleepers for now. 
Now i will give an example with real numbers taken from â€Ã...“ random. org â€Ã...¾




Ok the first 37 spins are:

14   29   31   15   19   32   13   34   8   7
10   9   13   32   16   9   31   1   26   21
18   12   8   31   19   0   21   36   1   8
36   6   29   10   4   15   34

We record the sleepers:
1. dozen sleepers:  2  3  5  11
2. dozen sleepers: 17 20 22 23 24
3. dozen sleepers: 25 27 28 30 33 35

We have 15 numbers that didnt show up. . .  And if the law of the third acts all the time, these numbers should behave similary in next 37 spins.   Wright? So now I know that 2/3 of these sleepers will show up in next 37 spins.  When we look in dozens, that means that we must have 2/3 hitten sleepers in every dozen also.  Wright? Example: if we have 4 sleepers in the first dozen we can expect that that number of sleepers will occur in ratio 2/3.  So 4*2/3= 2. 4.  we expect to have at least 2 hits in next 37 spins for sleeper numbers in first dozen.  We do the same thing for every dozen.  2nd dozen: 5 sleepers *2/3= 3 so here we expect 3 hits minimum.  3.  Dozen: 6*2/3=3. 6 and that is 3.  Of course in some dozens will be much more hits.  I ll explain that also, but later.  We dont know which dozen is that going to be,  and in that we are not interested,  but the thing that protect us from unnecessary risking is that we know that 2/3  of the sleepers will have a hit in every dozen.  Maybe now you will say what is new in that, we can bet on sleepers, eventualy they will be hit. . . But, since we expect a certain number of hits in every dozen we can take the numbers in each dozen individually and bet on them like they are only numbers we are betting on in 37 spins.  Example of 1.  Dozen: we have 4 unhit numbers, and we expect at least 2 hits in 37 spins.  So that means that we can use much better (safer, longer) progression, than we bet on all sleepers together.  If I use profit calculator, with minimun profit (this was tested on unibet, min.  Bet 1 max 25 per number) i can get  32 steped progression, and i know that first sleeping number in my first dozen must show up in 2/3 of spins.  So 25.  Spin is the latest spin in which should first number appear.  And i have 32 steps for that.  Much more,  you see.  ïÃ,Ã...  When i hit the first of expected numbers, i reset progression or recalculate it.  And when i hit last  expected in dozen, I stop.  No matter on which spin i am.  And continue playing like that with the remaining numbers in dozens which are not hitted as many times I expected.  I did my best to explain this, but still i owe you real example.
After we have tracked first 37 spins, wrote sleepers, and calculated their progressions.  (i use tools on loothog. com for that) we can run next 37 spins and start betting.


Now i will write next 37 spins and explain progression and try to explain how this works in practice.
You have to follow all sleeping numbers individualy, but within dozens.  (i hope you understand)

28   33   4   12   0   9   22   36   2   17
28   1   24   33   3   20   0   3   0   35
33   9   16   30   21   14   4   34   18   25
7   1   34   30   13   16   8


In the first dozen i have 4 sleepers and I expect 2 hits.
I already said that i can make 32 step progression whith 4 numbers
In the 2nd dozen, there are 5 sleepers, I can use 25 stepped progression, but appearance of the first  number has to be for 1/3 earlier than if there are 4 sleepers.
For the third, we have 6 sleepers, we can use  21 stepped progression max, but the time of the first number appearance is 1/3 earlier than  with 5 sleepers, and that means that first number must appear latest by 12th spin and of course diference between 2 hitted number cant be more than 12 spins. .  Now lets see.  Down i will write, sleepers and next to them spin when some of them from that dozen was  hitted.  As the next 37 spins were going, i was just waiting  and carefuly watched the progression. . . 
I ll explain each dozen and number individualy so you can better get it. , ok DOZEN 1:
We know which are our sleepers and we wait them to be hitted.  Follow the 2nd spin cycle from the above
2   --number that has first hit from this dozen and that is at  9.  Spin (+32 in my progression) than i reset progression and wait for the second hit. . . .  that happened at 15.  Spin. . .   i hit number 3 and beacuse i reset the progresion that was 6.  step of progression (15-9=6) you get it? And that is +6 units more at that step of progression .  All together  32+6 =38 ,and here is the point where i stop for this dozen
3
5
11
As you can see from the numbers later,  number 3 was hitted again in 18.  Spin but at that time i have already stopped, because i got 2 expected hits, and I didnt want to unnecessarily risk.  Numbers 3, 5, 11 werent hit at this cycle, but law of the third is respected.  I hope you see it. 


Now lets see 2nd dozen.  Sleepers were 17 20 22 23 24 â€ââ,¬Å" we expect 3 hits here nad we have 25 step max progression.
Ok, first hit from this dozen happened on  7.  Spin, number  22 ( 7th step in progression, +1 unit, we reset progression,start from begining or we recalculate it)
2nd hit was number  17 on 10.  Spin and by the progression for this dozen that means step 3 (diference between 7th and 10th hitted spin is 3) (profit +21 unit)
For the 3rd hit we didnt had to wait for too long.  As you can see it happend on spin 13.  and with this hit we have got our 3rd expected hit, and we are removing all our bets from this dozen. . .  In progression this is also step 3 (2nd hitted spin 10.  and 3rd on 13. spin so diference is again 3, that means 3 step i progression and again profit +21) Total profit for this dozen is (1+21+21= 43 units)
As you can see and here we have one hit more than we have expected,(16. spin number 20) like in 1st dozen, but this is not our concern, beacuse, by the law of the third we couldnt guarante more than 3 hits. 
Ok, last dozen.  6 sleepers, expect to hit 3,  and i have said that first number has to show up in max 12 spin , and the diference between 2 most  farthest hitted number is of course also 12, logical.  I hope you understand all of this by now. . .  just pure following of The law of the third as i explained before. . .
And let see the numbers and hits. . . I ll try to explain one more time, what i think is the most important when you follow this law. . .  This is the dozen in wich we have the most sleepers. .  6 of them (25,27,28,30,33,35) When we put 6 numbers in our progression calculator, it gaves us max of 21 step progression
Now lets see. . . .
1st hit for the 3rd dozen came up on 1.  Spin ïÃ,Ã...  (number 28, 1st step of progression +30 units. )
2nd hit we have on 2nd spin.  Number 33, (after restart on the first win, this is also 1.  Step so +30 units again)
3rd hit happened on 11th spin (number 28 again- that is 9th step in progression and that is +24 units) 3 hits accomplished.  Stop.
Total of 30+30+24=85 units for this dozen
Total profit from all 3 dozens: 38 units(1st dozen) + 43 units(2nd dozen) + 85 units (3rd dozen) =166

Now something interesting, if you look at the rest of the numbers for this dozen. . . . You will see that we had 9 hits in this (3rd) dozen.  And I stopped at the third hit. . .  Why? Because distrubution like this could happen in any of dozen. . . I cant tell in which dozen is going to be the most of the hits, and that is not important.  But after all of this i can tell you one more thing.  We completed our game in just  15 spins.  You get it how? We got all of our needed hits by that spin. . .   And sugar for the end of explanation of this system.  At the start we had 15 numbers (sleepers).  Now look at these numbers after 74th spin. . . . 
1st dozen numbers 5 11 stays unhit
2nd dozen numbers 23 27 stays unhit
3rd dozen number 27 stays
4 out of 15.  Hm. .  isnt that close to 1/3? Yap! How are they distributed?  I hope you see this, this law is magical. . .  And apply this in the next 37 spins,  and you will hit again 2/3 of these sleepers that have left. . . That means at least 3 numbers  out of these 5.  Apply appropriate progression and bum.  Do i need to say that i continued as  i just suggested, and The Law of the Third  just did the rest? :)
Similar variant of this system is that you can do this with dozen, double dozens. . . But about that later. . .  There are many ways of betting and many ways of using this method.

Wow, finaly the end. . .  Once again i apologize for my english, i ll try to make it better, i promise.
One little confession at the end. . .  I already said that i am a newbie in this, at least in terms of playing for real money. . .  I have never played this system for real money, and i tested it most on RNG-s,  but i made a few tests with numbers from live casino, and all passed smoothly too.
And dont laugh at me, but i have some basic questions about some thing, that i dont understand.
Why are there some systems that are not for RNG? Does that means that RNG-s are  cheating at some point?
Any kind of suggestion, question,  lesson is welcomed.  Test this, tell me if i am wrong at some point maybe?Be free to PM me at any time.  I am new at this, but l want to learn, to improve my game.  I want to help and to learn at this forum as much as i can.  Is it okay to notice that members like Johnlegend, ScoobyDoo,Hermes for example know about roulette very very much?  :) Regards
Drazen

jon86

Hi and welcome :)

Thanks for posting your system and RNG is not Roulette. Play real wheel to get real result :) just a friendly advice from me. RNG is a program just like the slots.

Cheers

Jon


F_LAT_INO

Lipi moj DraÃ…Ã,¾ene,

Your English is quite fluent/as if you from there...LOL/
and there is lot of logic in your sayings of which we
here are aware of for long time.......but/most/of the players are inpatient
waiting and writing 37 spins,me for one,but am sure that you will find
lot of ppl.interested in your method.
Welcome on the board.
You can always get me on  
ivica.boban@ri.t-com.hr

Drazen


GLC

DC,
Thanks for your system.  It is a very well thought out.  As Flat said it is a lot of tracking, but if it works on a-consistent basis, it is always worth tracking for a winning bet.
How much have you tested this?  Do your test indicate it is a winner?

Lol

G
In my case it doesn't matter.  I'm both!

Drazen

Hm.  i did over 50 tests. .  and they all passed  good.  But on RNG-s most. I ll take some live casino numbers and than do some more serious tests.  Honestly, i am very scared of RNG-s  :ooh: i dont trust them even though someone will say that there is no diference. . .  But I think that the system in theory should be just as i tryed to describe. . .  hm. .  We will see i hope so

Big EZ

drazen...

interesting take on things here. may i suggest that you go to the ACTUAL SPIN SECTION in this forum, tons of live spins for testing. let us know how it goes on those
Quitting while your ahead is not the same as quitting

Drazen

Oh i see now.  Thank you i will do the tests. 

aleks06

hi welcome on the forum.

very intersting post, you said you did 50 sessions how many placed bets is it ?

In my opinion there is no problem with RNG they don't need to cheat because 99,9999% of systems are loosers.


Rolletti

Incredible Drazen.
You have really understood how to read random's law and formed an extraordinary system.
My deepest respect.

Maybe u can explain a littel bit more on your progression system, and why u stop playing a Dozen when a number repeats instead to continue untill the 2/3 is filled.

1st hit for the 3rd dozen came up on 1.   Spin ïÃ,Ã...  (number 28, 1st step of progression +30 units.  )
2nd hit we have on 2nd spin.   Number 33, (after restart on the first win, this is also 1.   Step so +30 units again)
3rd hit happened on 11th spin (number 28 again- that is 9th step in progression and that is +24 units) 3 hits accomplished.   Stop. 

Big EZ

Drazen....

A couple quick questions...

1. Do you play a separate progression on each set of numbers in each dozen?
2. Would it not be better to only bet the dozen that has the most un-hit numbers in it?
3. Can you do continuous play at the same wheel, or only 1 cycle per wheel?
Quitting while your ahead is not the same as quitting

Fripper

Hi Drazen

Thanks for sharing your system.

This seems very interesting and have some logic behind it, I will report back with some results or some questions :)
All i'm doing is living my life.

kenio

166 units in profit after 74 spins. . .  i will take it anytime.  I don't even mind waiting 37 spins.
Interesting concept Drazen.
i still would like to know a little bit more about progression you use.

Drazen

Oh i see now, very well noticed.   I was quite tired when i was finisihg that first post, and when i was testing the system at that time i just overviewed that.  Yes in that case only, you can add one number more.  We stop whenever are 2/3 satisfied.

Drazen

Hi Big Ez

1.  yes you got it well, i play separate progression on each set of numbers in each dozen
2.  No.  The law of the third equals for every part of the table, so analog to that, we can take a advantage of that in every dozen.  We can gain more profit with this.  If we play only the dozen with most sleepers, that does not gives us any more or less chance to win.
3. Continuos of course

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